Wake-up information acquisition method and apparatus, wake-up information transmission method and apparatus, terminal, and network device
By determining the resource location at the terminal and receiving OOK, FSK, and/or OFDM waveform signals, the problem of accurately receiving wake-up information in a low-power state is solved, thus improving the accuracy and efficiency of wake-up information reception.
Patent Information
- Authority / Receiving Office
- WO · WO
- Patent Type
- Applications
- Current Assignee / Owner
- Filing Date
- 2025-09-23
- Publication Date
- 2026-04-02
AI Technical Summary
How to ensure that the terminal accurately receives wake-up information based on OOK and/or OFDM waveforms to wake up the terminal in a low-power state, and solve the problems of inaccurate reception and insufficient information carrying capacity of LP-WUS signals in the existing technology.
By determining the resource location of the first signal associated with the first object, the wake-up information is received and acquired. Signals generated using OOK waveform, FSK waveform and/or OFDM waveform are used to ensure that the terminal receives the wake-up information at a specific resource location, including PEI, PDCCH, PDSCH, SIB, SSB, etc.
This enables the terminal to accurately receive wake-up information in a low-power state, reducing unnecessary power consumption and improving the accuracy and efficiency of wake-up information reception.
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Figure CN2025123235_02042026_PF_FP_ABST
Abstract
Description
Wake-up information acquisition and transmission method and device, terminal and network equipment
[0001] The present disclosure claims priority to the Chinese patent application No. 202411382689.9, filed on September 30, 2024, and entitled "Wake-up information acquisition and transmission method and device, terminal and network equipment", the whole content of which is incorporated herein by reference. TECHNICAL FIELD
[0002] The present disclosure relates to the field of communication technology, in particular to a wake-up information acquisition and transmission method and device, terminal and network equipment. BACKGROUND
[0003] A terminal energy saving task proposes to generate a lower power consumption signal based on On-Off Keying (OOK) and / or Orthogonal Frequency Division Multiplexing (OFDM), which can further reduce the level of terminal energy consumption on the basis of related energy saving technologies. The terminal receives such a signal in a low power consumption state. Such a signal is used to carry wake-up information to wake up the terminal to receive signals in a normal power consumption state.
[0004] How to ensure that the terminal can accurately receive such a signal to realize terminal wake-up is a problem to be solved. SUMMARY
[0005] The present disclosure provides a wake-up information acquisition and transmission method and device, terminal and network equipment to ensure that the terminal can accurately receive wake-up information carried by a signal based on an OOK waveform and / or an OFDM waveform.
[0006] To solve the above technical problem, the present disclosure provides a wake-up information acquisition method applied to a terminal, comprising:
[0007] determining a target resource position in at least one resource position of a first signal associated with a first object;
[0008] receiving the first signal at the target resource position;
[0009] acquiring wake-up information of the terminal according to the received first signal;
[0010] The wake-up information is used to trigger the terminal to receive a second object, and the second object includes at least one of the following: paging early indication (PEI), paging physical downlink control channel (PDCCH), physical downlink shared channel (PDSCH), paging PDSCH, physical downlink control channel (PDCCH), system information block (SIB), and synchronization signal block (SSB).
[0011] The first signal is a signal generated by a first waveform and / or a second waveform, the first waveform includes: on-off keying (OOK) waveform and / or frequency shift keying (FSK) waveform, and the second waveform includes: orthogonal frequency division multiplexing (OFDM) waveform.
[0012] The first object includes at least one of the following: a paging opportunity (PO), a paging frame (PF), at least one terminal, and discontinuous reception (DRX).
[0013] The embodiments of the present disclosure further provide a method for transmitting wake-up information, applied to a network device, and including the following steps:
[0014] The first signal is transmitted to the terminal at a target resource position in resource positions of at least one first signal associated with the first object, and the first signal carries the wake-up information of the terminal.
[0015] The wake-up information is used to trigger the terminal to receive a second object, and the second object includes at least one of the following: paging early indication (PEI), paging physical downlink control channel (PDCCH), physical downlink shared channel (PDSCH), paging PDSCH, physical downlink control channel (PDCCH), system information block (SIB), and synchronization signal block (SSB).
[0016] The first signal is a signal generated by a first waveform and / or a second waveform, the first waveform includes: on-off keying (OOK) waveform and / or frequency shift keying (FSK) waveform, and the second waveform includes: orthogonal frequency division multiplexing (OFDM) waveform.
[0017] The first object includes at least one of the following: a paging opportunity (PO), a paging frame (PF), at least one terminal, and discontinuous reception (DRX).
[0018] The embodiments of the present disclosure further provide a terminal, including a memory, a transceiver, and a processor.
[0019] The memory is used to store a computer program; the transceiver is used to transceive data under the control of the processor; and the processor is used to read the computer program in the memory and perform the following operations:
[0020] A target resource position in at least one resource position of a first signal associated with a first object is determined.
[0021] The first signal is received at the target resource position.
[0022] According to the received first signal, the wake-up information of the terminal is obtained.
[0023] The wake-up information is used to trigger the terminal to receive a second object, and the second object includes at least one of the following: a paging early indication PEI, a paging physical downlink control channel PDCCH, a physical downlink shared channel PDSCH, a paging PDSCH, a physical downlink control channel PDCCH, a system information block SIB, and a synchronization signal block SSB.
[0024] The first signal is a signal generated by a first waveform and / or a second waveform, the first waveform includes an on-off keying OOK waveform and / or a frequency shift keying FSK waveform, and the second waveform includes an orthogonal frequency division multiplexing OFDM waveform.
[0025] The first object includes at least one of the following: a paging opportunity PO, a paging frame PF, at least one terminal, and discontinuous reception DRX.
[0026] The present disclosure also provides a network device, including a memory, a transceiver, and a processor.
[0027] The memory is configured to store a computer program; the transceiver is configured to transceive data under control of the processor; and the processor is configured to read the computer program in the memory and perform the following operations:
[0028] The processor is configured to send a first signal to the terminal at a target resource position in at least one resource position of a first signal associated with the first object, and the first signal carries wake-up information of the terminal.
[0029] The wake-up information is used to trigger the terminal to receive a second object, and the second object includes at least one of the following: a paging early indication PEI, a paging physical downlink control channel PDCCH, a physical downlink shared channel PDSCH, a paging PDSCH, a physical downlink control channel PDCCH, a system information block SIB, and a synchronization signal block SSB.
[0030] The first signal is a signal generated by a first waveform and / or a second waveform, the first waveform includes an on-off keying OOK waveform and / or a frequency shift keying FSK waveform, and the second waveform includes an orthogonal frequency division multiplexing OFDM waveform.
[0031] The first object includes at least one of the following: a paging opportunity PO, a paging frame PF, at least one terminal, and discontinuous reception DRX.
[0032] The present disclosure also provides a wake-up information acquisition apparatus applied to a terminal and including:
[0033] The first determining unit is configured to determine a target resource position in at least one resource position of a first signal associated with a first object.
[0034] The receiving unit is configured to receive the first signal at the target resource position;
[0035] The obtaining unit is configured to obtain wake-up information of the terminal according to the received first signal.
[0036] The wake-up information is used to trigger the terminal to receive a second object, and the second object includes at least one of the following: paging early indication (PEI), paging physical downlink control channel (PDCCH), physical downlink shared channel (PDSCH), paging PDSCH, physical downlink control channel (PDCCH), system information block (SIB), and synchronization signal block (SSB).
[0037] The first signal is a signal generated by a first waveform and / or a second waveform, the first waveform includes on-off keying (OOK) waveform and / or frequency shift keying (FSK) waveform, and the second waveform includes orthogonal frequency division multiplexing (OFDM) waveform.
[0038] The first object includes at least one of the following: paging opportunity (PO), paging frame (PF), at least one terminal, and discontinuous reception (DRX).
[0039] The embodiments of the present disclosure further provide a wake-up information transmission device applied to a network device, and including:
[0040] The first sending unit is configured to send a first signal to a terminal at a target resource position in a resource position of at least one first signal associated with a first object, and the first signal carries wake-up information of the terminal.
[0041] The wake-up information is used to trigger the terminal to receive a second object, and the second object includes at least one of the following: paging early indication (PEI), paging physical downlink control channel (PDCCH), physical downlink shared channel (PDSCH), paging PDSCH, physical downlink control channel (PDCCH), system information block (SIB), and synchronization signal block (SSB).
[0042] The first signal is a signal generated by a first waveform and / or a second waveform, the first waveform includes on-off keying (OOK) waveform and / or frequency shift keying (FSK) waveform, and the second waveform includes orthogonal frequency division multiplexing (OFDM) waveform.
[0043] The first object includes at least one of the following: paging opportunity (PO), paging frame (PF), at least one terminal, and discontinuous reception (DRX).
[0044] The embodiments of the present disclosure further provide a processor-readable storage medium, which stores a computer program for causing a processor to execute the above method.
[0045] The embodiment of the present disclosure further provides a computer program product comprising computer instructions which, when executed by a processor, implement the steps of the method described above.
[0046] The present disclosure has the following beneficial effects:
[0047] The above scheme determines a target resource position in at least one resource position of a first signal associated with a first object, receives the first signal at the target resource position, and acquires wake-up information of the terminal according to the received first signal, thereby enabling the terminal to receive the wake-up information belonging to itself at a specific resource position and ensuring accurate reception of the wake-up information. BRIEF DESCRIPTION OF DRAWINGS
[0048] In order to more clearly illustrate the technical solutions in the embodiments of the present disclosure or the related art, the drawings needed to be used in the embodiments or related art description will be briefly introduced. Obviously, the drawings in the following description are only some embodiments described in the present disclosure, and for those skilled in the art, other drawings can also be obtained from these drawings without creative labor.
[0049] FIG. 1 shows a structure diagram of a network system suitable for the embodiments of the present disclosure;
[0050] FIG. 2 shows a flowchart of a wake-up information acquisition method according to the embodiments of the present disclosure;
[0051] FIG. 3 shows a schematic diagram of the relationship between a reception opportunity and a time offset;
[0052] FIG. 4 shows a schematic diagram of a mapping method of a listening opportunity and a terminal group;
[0053] FIG. 5 shows a flowchart of a wake-up information transmission method according to the embodiments of the present disclosure;
[0054] FIG. 6 shows a schematic diagram of a unit of a wake-up information acquisition device according to the embodiments of the present disclosure;
[0055] FIG. 7 shows a structure diagram of a terminal according to the embodiments of the present disclosure;
[0056] FIG. 8 shows a schematic diagram of a unit of a wake-up information transmission device according to the embodiments of the present disclosure;
[0057] FIG. 9 shows a structure diagram of a network device according to the embodiments of the present disclosure. DETAILED DESCRIPTION
[0058] With reference to the drawings, the technical solutions in the embodiments of the present disclosure will be described clearly and completely. Obviously, the described embodiments are only some of the embodiments of the present disclosure, but not all the embodiments. Based on the embodiments in the present disclosure, all other embodiments obtained by those of ordinary skill in the art without creative efforts are within the scope of the present disclosure.
[0059] The terms "first", "second", and the like in the description and claims of the present disclosure are used to distinguish similar objects, and do not necessarily indicate a specific order or sequence. It should be understood that the data used in this way can be interchanged under appropriate circumstances, so that the embodiments of the present disclosure described herein, for example, are implemented in an order other than that illustrated or described herein. In addition, the terms "include" and "have" and any variations thereof are intended to cover non-exclusive inclusion, for example, a process, method, system, product, or device that includes a series of steps or units does not necessarily have to include only those steps or units clearly listed, but can include other steps or units that are not clearly listed or inherent to these processes, methods, products, or devices.
[0060] In the embodiments of the present disclosure, the term "and / or" describes the association relationship of the associated objects, which means that there can be three relationships, for example, A and / or B can mean that A exists alone, A and B exist together, and B exists alone. The character " / " generally represents an "or" relationship between the associated objects. In the embodiments of the present disclosure, the term "a plurality of" means two or more, and other quantifiers are similar.
[0061] In the embodiments of the present disclosure, the words "exemplary" or "for example" are used to mean serving as an example, instance, or illustration. Any embodiment or design solution described as "exemplary" or "for example" in the embodiments of the present disclosure should not be interpreted as being more preferred or advantageous than other embodiments or design solutions. Rather, the use of the words "exemplary" or "for example" is intended to present relevant concepts in a specific manner.
[0062] The related concepts mentioned in the present disclosure will be briefly described as follows.
[0063] The terminal energy saving task proposes the concept of low power wake-up signal (LP-WUS) and low power wake-up receiver (LP-WUR), which further reduces the level of terminal energy consumption on the basis of related energy saving technologies. When there is no service transmission between the base station and the terminal, the main device (MR) with high energy consumption is turned off, and the LP-WUR device is turned on to receive the LP-WUS sent by the base station to determine whether the MR needs to be awakened to receive the paging information sent by the base station on the paging occasion (PO). In this way, unnecessary power consumption overhead generated by the terminal in receiving time-frequency synchronization preparation and listening to the Paging Physical Downlink Control Channel (PDCCH) or PEI signal before the PO or Paging Early Indication (PEI) when the base station does not send paging information to the terminal can be greatly saved.
[0064] In the LP-WUS task, the design and reception method of the LP-WUS signal based on the joint generation of OOK and OFDM need to be standardized. Among them, the reception of the LP-WUS signal needs to consider the time-frequency resource position of the LP-WUS reception. Since the OOK signal can only be received in the time domain, the receiving end has no Fast Fourier Transform (FFT) module and cannot obtain the frequency domain information of the signal. Therefore, the LP-WUS signal cannot reuse the resource determination method of the existing wake-up signal based on the PDCCH channel, and the information carrying capacity is much lower than the existing PDCCH channel.
[0065] 1. LP-WUS WI objectives
[0066] It is determined in the WI scope that the LP-WUS signal based on the joint generation of OOK and OFDM needs to be standardized. In the radio resource control idle or inactive mode (RRC_IDLE / INACTIVE mod), the process and related configuration of the LP-WUS indicating paging reception need to be studied.
[0067] 2. PEI-O resource position determination method
[0068] In the discussion of terminal energy saving technology, it is determined that DCI format 2_7 in RRC_IDLE mode is used as the paging early indication PEI, which indicates whether the terminal group in multiple POs needs to receive paging information in the PO position. This energy saving technology can save unnecessary paging reception power consumption of the terminal. The specific steps are as follows:
[0069] The terminal acquires resource location configuration information (pei-SearchSpace) of a PEI receiving opportunity (Paging Early Indication Occasion, PEI-O) and configuration information (T (default-paging cycle), N, Ns, PF_offset, etc.) of a PO resource location from a SIB1 message;
[0070] The terminal determines the specific time domain resource location of the PO, including the system frame number (SFN) where the paging frame (PF) is located, the PO index under the PF, and the starting receiving location of the PO.
[0071] The terminal calculates the SFN location corresponding to the PF where the PO is located, and the SFN satisfies the formula: (SFN+PF_offset)mod T=(T div N)*(UE_ID mod N).
[0072] The terminal calculates the sequence number of the PO under the PF: i_s=floor(UE_ID / N)mod Ns.
[0073] The terminal determines the starting location of PO monitoring according to firstPDCCH-MonitoringOccasionOfPO.
[0074] The terminal determines the specific frequency domain resource location of receiving PEI and the time domain resource location of all receivable PEI-O (Cell-specific) based on the pei-SearchSpace.
[0075] The terminal acquires the time domain offset of the PEI-O from the target PO location based on the pei-FrameOffset, firstPDCCH-MonitoringOccasionOfPEI-O, and determines the specific time domain receiving location of the target PEI-O (UE(group)-Specific).
[0076] The standardized PEI can indicate the terminal to receive Paging at the PO, and the receiving resource location of the DCI-based PEI signal is determined based on the PEI-specific synchronization signal (SS) configured by the SIB-1 and the fixed time domain offset from the target PO to determine the specific time-frequency resource location of the PEI-O. For the LP-WUS signal generated by the OOK signal to be standardized, there are the following problems in the time-frequency resource location determination method compared with the resource location determination of the PEI:
[0077] 1. A single PDCCH monitoring opportunity (MO) under a PEI-O can transmit a PEI (carrying up to 43 bits) that can simultaneously indicate wake-up information for multiple consecutive PO subgroups. Subgroups belonging to the same PO receive wake-up information on the same MO. However, LP-WUS has a weaker information carrying capacity (maximum 8 bits). A single LP-WUS monitoring opportunity (LP-WUS MO) can only transmit wake-up information for a portion of the PO subgroups. In this case, the same PO subgroup needs to receive wake-up information on different LP-WUS MOs. How the terminal determines the resource location of the MO needs to be studied.
[0078] 2. The PDCCH channel indicates the wake-up information of multiple subgroups simultaneously based on the bitmap method. The number of candidate sequences for generating LP-WUS based on the sequence is relatively limited, and it is impossible to distinguish various situations where multiple subgroups wake up at the same time. Further research is needed on how to design sequences to carry the wake-up information of multiple subgroups.
[0079] To address the above issues, this disclosure presents a method for designing LP-WUS receive resource locations and indication information, used to determine the receive resource locations of multiple LP-WUS listening opportunities associated with a PO and to design the LP-WUS wake-up sequence.
[0080] The embodiments of this disclosure are described below with reference to the accompanying drawings. The wake-up information acquisition, transmission method, apparatus, terminal, and network equipment provided in the embodiments of this disclosure can be applied to wireless communication systems. This wireless communication system can be a system employing fifth-generation (5G) mobile communication technology (hereinafter referred to as a 5G system). Those skilled in the art will understand that the 5G New Radio (NR) system is merely an example and not intended to be limiting.
[0081] Referring to FIG. 1, FIG. 1 is a structural diagram of a network system to which embodiments of the present disclosure can be applied. As shown in FIG. 1, the network system includes a user terminal 11 and a base station 12. The user terminal 11 can be a user equipment (UE), such as a mobile phone, a tablet personal computer (Tablet Personal Computer), a laptop computer (Laptop Computer), a personal digital assistant (personal digital assistant, PDA), a mobile Internet device (Mobile Internet Device, MID), or a wearable device, and the like. It should be noted that the specific type of the user terminal 11 is not limited in the embodiments of the present disclosure. The base station 12 can be a base station of 5G and later versions (for example, gNB, 5G NR NB), or a base station in other communication systems, or a node B. It should be noted that the embodiments of the present disclosure only take the 5G base station as an example, but the specific type of the base station 12 is not limited.
[0082] Embodiments of the present disclosure provide a wake-up information acquisition and transmission method and device, a terminal and a network device, to ensure that a terminal can accurately receive wake-up information carried by a signal based on an OOK waveform and / or an OFDM waveform.
[0083] The method and the device are based on the same application concept. Since the principles of the method and the device for solving problems are similar, the implementation of the device and the method can be referred to each other, and the repeated parts will not be described again.
[0084] As shown in FIG. 2, the embodiments of the present disclosure provide a wake-up information acquisition method, which is executed by a terminal and includes the following steps.
[0085] In step S201, a target resource position in at least one resource position of a first signal associated with a first object is determined.
[0086] In some embodiments, the first object includes at least one of the following: a PO, a PF, at least one terminal, and discontinuous reception (DRX). It can be understood that the present disclosure mainly relates to a PO associated first signal, a PF associated first signal, or at least one terminal associated first signal. In the case of at least one terminal associated first signal, the at least one terminal can be understood as one terminal group or multiple terminal groups. In this case, the terminal group is associated with the first signal. At this time, the terminal in the embodiments of the present disclosure refers to one terminal in the terminal group.
[0087] In some embodiments, the first signal is a signal generated by a first waveform and / or a second waveform, the first waveform includes an OOK waveform and / or a frequency-shift keying (FSK) waveform, and the second waveform includes an OFDM waveform. In some embodiments, the first signal is an LP-WUS. Of course, the first signal can also be other signals capable of waking up the terminal generated by the above-mentioned waveforms.
[0088] In some embodiments, the resource location refers to a time domain resource location and / or a frequency domain resource location.
[0089] Step S201, receiving the first signal at the target resource location;
[0090] It should be noted that the target resource location refers to a resource location associated with the terminal for receiving the first signal.
[0091] Step S201, obtaining the wake-up information of the terminal according to the received first signal;
[0092] The wake-up information is used to trigger the terminal to receive a second object, and the second object includes at least one of the following: PEI, paging PDCCH, physical downlink shared channel (PDSCH), PDCCH, system information block (SIB), synchronization signal block (SSB, also referred to as synchronization signal / physical broadcast channel signal block). It can be understood that the second object can be at least one of the PEI, the paging PDCCH, the paging PDSCH, the PDSCH, the PDCCH, the SIB, and the SSB.
[0093] It should be noted that, in the embodiments of the present disclosure, the target resource location in the at least one resource location associated with the first signal of the first object is determined, the first signal is received at the target resource location, the wake-up information of the terminal is obtained according to the received first signal, so that the terminal receives the wake-up information belonging to itself at a specific resource location, and the accurate reception of the wake-up information is ensured.
[0094] In some embodiments, the wake-up information of the at least one terminal under the at least one first object carried on the target resource position can also be understood as the wake-up information of a terminal group under the at least one first object carried on the target resource position. It should be noted that the terminal group can also be understood as a subgroup, which can be determined based on network side configuration acquisition or terminal identification (UE_ID) derivation. That is, whether it is a terminal group or a subgroup, it refers to a group including at least one terminal.
[0095] In some embodiments, in an implementation, the target resource position of the at least one resource position associated with the first signal of the first object includes at least one of A11 and A12:
[0096] A11, in at least one listening opportunity under at least one receiving opportunity of the first signal associated with the first object, determining that the resource position corresponding to the target listening opportunity of receiving the first signal is the target resource position;
[0097] In some embodiments, in this case, the first signal includes one or more receiving opportunities, and each receiving opportunity includes at least one listening opportunity. The terminal determines the target listening opportunity in the at least one listening opportunity, and the resource position corresponding to the target listening opportunity is the target resource position of the terminal receiving the first signal.
[0098] In some embodiments, in an implementation, the receiving opportunity of the first signal includes resource positions corresponding to N×K listening opportunities, and the resource position corresponding to one listening opportunity is associated with at least one terminal or terminal group. N is the number of beams, and K is the number of listening opportunities in one beam direction.
[0099] In this case, the number of listening opportunities included in one receiving opportunity of the first signal is determined by N and K.
[0100] A12, in a plurality of candidate listening opportunities of a first signal associated with a first object, determining that the resource position corresponding to the target listening opportunity of receiving the first signal is the target resource position;
[0101] It should be noted that in this case, the first signal includes a plurality of listening opportunities, that is, in this case, there is only a listening opportunity, not a receiving opportunity.
[0102] In some embodiments, for A11 above, if the first object is associated with one receiving opportunity of the first signal, the terminal only needs to determine the target listening opportunity in at least one listening opportunity under the one receiving opportunity; if the first object is associated with multiple receiving opportunities of the first signal, which may not all belong to the terminal, the terminal needs to determine the target receiving opportunity in the multiple receiving opportunities, that is, the specific implementation process of determining the target resource location corresponding to the target listening opportunity for receiving the first signal includes at least one of A21 and A22:
[0103] A21, determining an index of a target receiving opportunity in the multiple receiving opportunities, determining a resource location of the target receiving opportunity according to the index of the target receiving opportunity, and determining the target resource location corresponding to the target listening opportunity for receiving the first signal in at least one listening opportunity under the resource location of the target receiving opportunity of the first object associated with the first signal;
[0104] In this case, the index of the target receiving opportunity is determined first, and the resource location of the target receiving opportunity can be determined based on the index of the target receiving opportunity, and the terminal determines the target listening opportunity in at least one listening opportunity under the resource location of the target receiving opportunity; in some embodiments, the target receiving opportunity in the embodiments of the present disclosure includes one or more receiving opportunities.
[0105] In some embodiments, in one implementation, the specific implementation of determining the index of the target receiving opportunity in the multiple receiving opportunities includes:
[0106] determining the index of the target receiving opportunity based on a first formula;
[0107] wherein the first formula is related to at least one of a terminal group index, a number of listening opportunities associated with different terminal groups or a terminal group set, a terminal index, a terminal group set index, a number of receiving opportunities of the first signal associated with the first object, a number of first objects associated with the receiving opportunities of the first signal, a number of first objects associated with the listening opportunities of the first signal, beam information, and a receiving opportunity index.
[0108] In some embodiments, the first formula includes or satisfies at least one of A211-A219:
[0109] A211, A1 mod X3;
[0110] wherein A1 represents a terminal group index, a terminal group set index, or a terminal index, and X3 represents a number of listening opportunities associated with different terminal groups or a terminal group set, a number of first objects associated with the receiving opportunities of the first signal, or a number of first objects associated with the listening opportunities of the first signal.
[0111] A212, A1 mod X3+1;
[0112] A213,
[0113] wherein, denotes a floor function.
[0114] A214,
[0115] A215,
[0116] wherein, denotes a ceiling function.
[0117] A216,
[0118] Generally, each value obtained by the above A211-A216 corresponds to an index of a receiving opportunity.
[0119] A217, A2 / X31;
[0120] wherein, A2 denotes an index of a receiving opportunity, and X31 denotes a number of receiving opportunities of a first signal associated with a first object.
[0121] A218, A2 / X31-1;
[0122] A219, A2 / X31+1;
[0123] Generally, each value obtained by the above A217-A219 corresponds to an index of one or more receiving opportunities.
[0124] The receiving opportunity index that determines the same output result based on A217-A219 is a target receiving opportunity.
[0125] Of course, the above is only an example of the first formula and does not constitute a limitation on the embodiments of the disclosure.
[0126] A22, determining an index of a time domain offset of a target receiving opportunity in a plurality of receiving opportunities and a first object, determining a resource position of the target receiving opportunity according to the index of the time domain offset of the target receiving opportunity and the first object, and determining a target resource position corresponding to a target listening opportunity of receiving a first signal in at least one listening opportunity at the resource position of the target receiving opportunity of the first signal associated with the first object.
[0127] In this case, the index of the time domain offset of the target receiving opportunity from the first object is determined first, the time domain offset of the target receiving opportunity from the first object is determined based on the index of the time domain offset and the value of the time domain offset in the configuration information, and the resource location of the target receiving opportunity is determined based on the time domain offset. The terminal determines the target monitoring opportunity in at least one monitoring opportunity at the resource location of the target receiving opportunity.
[0128] In some embodiments, in one implementation, the specific implementation of determining the index of the time domain offset of the target receiving opportunity from the first object in the plurality of receiving opportunities includes:
[0129] determining the index of the time domain offset of the target receiving opportunity from the first object based on a second formula;
[0130] The second formula is related to at least one of the terminal group index, the number of monitoring opportunities associated with different terminal groups or terminal group sets, the terminal index, the terminal group set index, the number of receiving opportunities of the first signal associated with the first object, the number of first objects associated with the receiving opportunities of the first signal, the number of first objects associated with the monitoring opportunities of the first signal, the beam information, and the receiving opportunity index.
[0131] In some embodiments, the second formula includes or satisfies at least one of A211-A219 described above.
[0132] It should be noted that in this case, the index of the time domain offset obtained can be one or more. In the case of obtaining only one index of the time domain offset, it indicates that the target receiving opportunity only includes one receiving opportunity. In the case of obtaining multiple indexes of the time domain offset, it indicates that the target receiving opportunity only includes multiple receiving opportunities.
[0133] In some embodiments, for A12 described above, since only multiple candidate monitoring opportunities are included under the first signal, the terminal only needs to determine the target monitoring opportunity in these candidate monitoring opportunities.
[0134] In some embodiments, as can be seen from the above description, the terminal finally determines the target monitoring opportunity from the monitoring opportunities under the one or more receiving opportunities of the first signal associated with the first signal, or determines the target monitoring opportunity from at least one monitoring opportunity of the first signal associated with the first signal. Specifically, the specific implementation of the terminal determining the target resource location corresponding to the target monitoring opportunity for receiving the first signal includes the processes of S11 and S12:
[0135] S11, determining the resource location corresponding to the N×K monitoring opportunities or at least one monitoring opportunity under at least one receiving opportunity of the first signal based on the configuration information, N being the number of beams and K being the number of monitoring opportunities in one beam direction;
[0136] It should be noted that the step is to determine the resource position of the N×K monitoring opportunities under the at least one receiving opportunity of the first signal based on the configuration information, or to determine the resource position corresponding to the at least one monitoring opportunity of the first signal based on the configuration information.
[0137] In some embodiments, the configuration information includes at least one of the following: a time offset parameter, a resource time domain duration, a frequency domain resource position, a waveform parameter of the first signal.
[0138] Generally, the frequency domain resource position in the resource position corresponding to the monitoring opportunity is determined by the terminal from the configuration information; and the time domain resource position in the resource position corresponding to the monitoring opportunity is determined based on at least one of the following: the time offset parameter and the resource time domain duration.
[0139] In some embodiments, the time offset parameter is a time domain offset of a starting time domain position of the at least one monitoring opportunity and / or the at least one receiving opportunity of the first signal from a target position, and the target position includes at least one of the following: an SFN or a first SFN where the monitoring opportunity and / or the receiving opportunity of the first signal is located, an SFN where a target PO is located, a time slot where the target PO is located, a starting OFDM symbol in the time slot where the target PO is located, an SFN where a target PF is located, a first SFN where the target PF is located.
[0140] In some embodiments, in the case where one first object is associated with one PF, the target position is the SFN where the PF is located; and in the case where one first object is associated with multiple PFs, the target position is the first SFN where the PFs are located, that is, the SFN where the first PF is located, or the SFN where other PFs other than the first PF are located.
[0141] It should be noted that the SFN mentioned in the embodiments of the present disclosure refers to a system frame (SF) corresponding to the SFN.
[0142] In some embodiments, the unit of the time offset parameter can be SFN, ms, symbol, slot, etc.
[0143] The target PF includes at least one of the following:
[0144] A31, an SFN of a PF where a target PO associated with the first signal is located;
[0145] It should be noted that if the first signal is associated with one PO, the target PO is the one associated with the first signal; in some embodiments, the SFN of the PF can be determined based on the formula (SFN+PF_offset)mod T=(T div N1)*(UE_ID mod N1), wherein PF_offset represents a time domain offset value in SFN units, T represents a paging cycle or a DRX cycle, UE_ID represents a terminal identifier, and N1 represents the number of PFs in a paging cycle or a DRX cycle.
[0146] A32, the SFN of the PF in which the first PO associated with the first signal is located;
[0147] It should be noted that if the first signal is associated with multiple POs, the first PO refers to the PO arranged first in time domain associated with the first signal; in some embodiments, the SFN of the PF is determined based on the formula (SFN+PF_offset)mod T=(T div N1)*(UE_ID mod N1).
[0148] The target PO includes one of the following: a PO associated with one reception opportunity of the first signal, and at least one PO of multiple POs associated with one reception opportunity of the first signal.
[0149] In some embodiments, the at least one PO of the multiple POs associated with one reception opportunity of the first signal includes a first PO of the multiple POs associated with one reception opportunity of the first signal.
[0150] S12, in the resource position corresponding to the N×K monitoring opportunities or at least one monitoring opportunity, determine the target resource position corresponding to the target monitoring opportunity of receiving the first signal;
[0151] This step is to directly determine the target resource position corresponding to the target monitoring opportunity from the resource position corresponding to the N×K monitoring opportunities or at least one monitoring opportunity.
[0152] In some embodiments, the specific implementation of determining the resource position corresponding to the N×K monitoring opportunities or at least one monitoring opportunity under one reception opportunity of the first signal based on the configuration information in the above step S11 includes S111 and S112:
[0153] S111, determine the starting reception time domain resource position of the N×K monitoring opportunities or at least one monitoring opportunity under one reception opportunity of the first signal based on the time offset parameter in the configuration information;
[0154] It should be noted that this step is to determine the starting reception time domain resource position in the time domain resource position based on the time offset parameter, that is, to determine the starting reception time of the monitoring opportunity.
[0155] In some embodiments, in one implementation, the specific implementation of determining the starting receiving time domain resource position of the N×K monitoring opportunities or at least one monitoring opportunity under one receiving opportunity of the first signal based on the time offset parameter in the configuration information includes at least one of B11 and B12:
[0156] B11, determining the SFN in which one receiving opportunity of the first signal is located based on a first time offset in the time offset parameter, and determining the starting receiving OFDM symbol resource position of the N×K monitoring opportunities or at least one monitoring opportunity under one receiving opportunity of the first signal based on a second time offset in the time offset parameter;
[0157] That is, in this case, the starting receiving OFDM symbol resource position in the starting receiving time domain resource position is determined, or it can also be understood that the starting receiving OFDM symbol resource position is the starting receiving time domain resource position.
[0158] For example, the starting receiving OFDM symbol resource position of the first monitoring opportunity under one receiving opportunity of the first signal can be determined.
[0159] In some embodiments, the first time offset is the time domain offset of the SFN or the first SFN in which at least one receiving opportunity or at least one monitoring opportunity of the first signal is located from the target PF, and the unit can be SFN, millisecond (ms), second (s), etc.
[0160] In some embodiments, if multiple candidate first time offsets are included in the configuration information, the used first time offset is determined according to at least one of the terminal identifier, the terminal group set identifier, the terminal group identifier, the PO index, the PF index, and the number of terminal groups associated with the resource position.
[0161] For example, if two candidate first time offset values are included in the configuration information, the terminal determines the used first time offset value based on the formula Ceil(Subgroup_ID / 2), and Subgroup_ID represents the subgroup identifier (i.e., the terminal group identifier); in some embodiments, the terminal usually determines the index of the used first time offset value based on the formula, and the index has a corresponding relationship with the value, so the index can be used to determine the used first time offset value.
[0162] As shown in FIG. 3, it can be seen that each receiving opportunity has a time offset, for example, the time offset is the offset of the receiving opportunity for the first PO, that is, the network device configures a time offset for each receiving opportunity, and the time corresponding to different receiving opportunities is usually different.
[0163] In some embodiments, in one implementation, the specific implementation of determining the starting receiving OFDM symbol resource position of the N×K monitoring opportunities or at least one monitoring opportunity under one receiving opportunity of the first signal based on the second time offset in the time offset parameter includes at least one of B21 and B22:
[0164] B21, based on the first SFN where the first signal is located as the reference point, determining the starting receiving OFDM symbol resource position of the N×K monitoring opportunities or at least one monitoring opportunity under one receiving opportunity of the first signal in turn according to the second time offset and the resource time domain duration;
[0165] It should be noted that since the second time offset represents the time offset of the first monitoring opportunity under one receiving opportunity from the reference position, after determining the reference position corresponding to the monitoring opportunity, the starting receiving OFDM symbol resource position of the monitoring opportunity can be determined based on the second time offset and the resource time domain duration. In some embodiments, in this case, the time interval between adjacent monitoring opportunities is the same.
[0166] Usually, the second time offset in this case only includes one configuration value.
[0167] B22, the second time offset includes at least one configuration value, and based on the first SFN where the first signal is located as the reference point, determining the starting receiving OFDM symbol resource position of the N×K monitoring opportunities or at least one monitoring opportunity (for example, which can be the first monitoring opportunity) of the first signal according to the second time offset;
[0168] In some embodiments, in this case, the second time offset includes one or more configuration values, and after determining the reference point corresponding to the monitoring opportunity, the terminal directly determines the starting receiving OFDM symbol resource position of the monitoring opportunity based on the one or more configuration values.
[0169] In some embodiments, the specific implementation of determining the starting receiving OFDM symbol resource position of the N×K monitoring opportunities or at least one monitoring opportunity of the first signal based on the first SFN where the first signal is located as the reference point according to the second time offset includes at least one of B221-B222:
[0170] B221, in the case that the configuration value is included in the second time offset, the starting OFDM symbol index corresponding to the starting OFDM symbol resource position of the first listening opportunity of a target receiving opportunity of the first signal is determined according to the second time offset, and the remaining N×K-1 listening opportunities or the remaining listening opportunities other than the first listening opportunity are sequentially arranged after the first listening opportunity in the continuous N×K-1 downlink slots, and the starting OFDM symbol resource position of each listening opportunity is the same as that of the first listening opportunity in the slot.
[0171] In some embodiments, the unit of the configuration value in this case is Symbol, that is, the starting OFDM symbol resource position of the first listening opportunity is determined first, and the time domain resource positions of the remaining listening opportunities are sequentially arranged after the first listening opportunity in the continuous N×K-1 downlink slots, and the starting OFDM symbol resource position of each listening opportunity is the same as that of the first listening opportunity in the slot.
[0172] B222, in the case that the configuration value is included in the second time offset, the starting OFDM symbol index corresponding to the starting OFDM symbol resource position of the first listening opportunity of a target receiving opportunity of the first signal is determined according to the second time offset, and the remaining N×K-1 listening opportunities or the remaining listening opportunities other than the first listening opportunity are sequentially arranged after the first listening opportunity in the continuous N×K-1 downlink slots, and the starting OFDM symbol resource position of each listening opportunity is the same as that of the first listening opportunity in the slot.
[0173] In some embodiments, the unit of the configuration value in this case is Symbol, that is, the starting OFDM symbol resource position of the first listening opportunity is determined first, and the time domain resource positions of the remaining listening opportunities are sequentially arranged after the first listening opportunity in the continuous N×K-1 downlink slots, and the starting OFDM symbol resource position of each listening opportunity is the same as that of the first listening opportunity in the slot.
[0174] B223. When the second time offset includes two configuration values, the starting OFDM symbol index corresponding to the OFDM symbol resource position of the first listening opportunity of the first target receiving opportunity of the first signal is determined according to the first configuration value. Among the N×K or at least one listening opportunity, the remaining listening opportunities other than the first listening opportunity are based on the starting OFDM symbol index corresponding to the starting OFDM symbol resource position of the previous listening opportunity or the ending OFDM symbol resource position corresponding to the ending OFDM symbol resource position of the previous listening opportunity as reference points. The second configuration value is used to determine the interval.
[0175] In some embodiments, the unit of the configuration value in this case is a symbol. That is, the OFDM symbol resource position of the first listening opportunity is determined based on the first configuration value. The OFDM symbol resource position of the remaining listening opportunities is determined based on the OFDM symbol resource position of the previous listening opportunity or the OFDM symbol resource position of the previous listening opportunity. The second configuration value is determined sequentially at intervals.
[0176] B224. When the second time offset includes more than two configuration values, the starting OFDM symbol index corresponding to the starting reception OFDM symbol resource location of N×K listening opportunities or at least one listening opportunity is determined based on the configuration value corresponding to the listening opportunity. The configuration value corresponding to the listening opportunity is determined based on at least one of the following: terminal identifier, terminal group identifier, terminal group set identifier, PO index or number of terminal groups associated with resource location, beam index, number of listening opportunities transmitting the same wake-up information, and number of listening opportunities under a single beam under a receiving opportunity.
[0177] It should be noted that in this case, when the second time offset includes more than two configuration values, the configuration value corresponding to the listening opportunity is first determined based on at least one of the following: terminal identifier, terminal group identifier, terminal group set identifier, number of terminal groups associated with PO index or resource location, beam index, number of listening opportunities transmitting the same wake-up information, and number of listening opportunities under a single beam under a receiving opportunity. Then, the OFDM symbol resource location for the start of reception is determined based on the determined configuration value.
[0178] In some embodiments, the configuration value corresponding to the listening opportunity can be one or more.
[0179] For example, the second time offset includes two configuration values, which the terminal determines to use based on the formula Ceil(Subgroup_ID / 2) or Ceil(PO_index / 2), where PO_index is the index of PO.
[0180] For example, M configuration values are included in the second time offset, and the terminal determines the used configuration value based on the formula Ceil(Subgroup_ID / M) or Ceil(PO_index / M), where PO_index is the index of the PO.
[0181] B12, determining the starting receiving OFDM symbol resource position corresponding to the N×K monitoring opportunities or at least one monitoring opportunity in one receiving opportunity of the first signal based on at least one third time offset in the time offset parameter;
[0182] For example, the starting receiving OFDM symbol resource position corresponding to the first monitoring opportunity in one receiving opportunity can be determined.
[0183] In some embodiments, the third time offset is a time offset representing a monitoring opportunity, which can be in units of SFN, millisecond (ms), second (s), etc.
[0184] In some embodiments, in one implementation, the specific implementation of determining the starting receiving OFDM symbol resource position corresponding to the N×K monitoring opportunities or at least one monitoring opportunity in one receiving opportunity of the first signal based on at least one third time offset in the time offset parameter includes at least one of B121-B124:
[0185] B121, in the case where two configuration values are included in the third time offset, determining the starting OFDM symbol index corresponding to the starting receiving OFDM symbol resource position of the first monitoring opportunity of the first signal based on the first configuration value, and determining the second configuration value based on the starting receiving OFDM symbol resource position corresponding to the starting OFDM symbol index or the ending receiving OFDM symbol resource position corresponding to the ending OFDM symbol index of the previous monitoring opportunity as the reference point for the remaining monitoring opportunities except the first monitoring opportunity in the N×K monitoring opportunities or at least one monitoring opportunity;
[0186] In some embodiments, in this case, the unit of the configuration value is symbol, i.e., the starting receiving OFDM symbol resource position of the first monitoring opportunity is determined based on the first configuration value, and the starting receiving OFDM symbol resource position of the remaining monitoring opportunities is determined based on the starting receiving OFDM symbol resource position or the ending receiving OFDM symbol resource position of the previous monitoring opportunity as the reference point, and the second configuration value is the interval in turn.
[0187] B122, in the case that the third time offset includes one configuration value, the starting OFDM symbol index corresponding to the starting receiving OFDM symbol resource position of the first listening opportunity of the first signal is determined based on the third time offset, and the remaining N×K-1 listening opportunities or the remaining listening opportunities other than the first listening opportunity are located continuously after the first listening opportunity in N×K-1 downlink slots, and the OFDM symbol resource position occupied by each listening opportunity in each slot is the same as the OFDM symbol resource position occupied by the first listening opportunity in the slot;
[0188] In some embodiments, the unit of the configuration value in this case is a symbol, that is, the starting receiving OFDM symbol resource position of the first listening opportunity is determined first, and the time domain resource positions of the remaining listening opportunities are occupied continuously after the first listening opportunity in N×K-1 downlink slots, and the starting and / or continuous receiving OFDM symbol resource position in each slot is the same as the starting and / or continuous receiving OFDM symbol resource position in the slot where the first listening opportunity is located.
[0189] B123, in the case that the third time offset includes one configuration value, the starting OFDM symbol index corresponding to the starting receiving OFDM symbol resource position of the first listening opportunity of the first signal is determined based on the third time offset, and the starting receiving OFDM symbol resource position corresponding to the starting OFDM symbol index of the remaining N×K-1 listening opportunities or the remaining listening opportunities is determined in turn based on the resource time domain duration of the first signal and the time interval of adjacent listening opportunities, wherein the time interval between adjacent listening opportunities is T2 symbols, and T2 is greater than or equal to 0;
[0190] In some embodiments, the unit of the configuration value in this case is a symbol, that is, the starting receiving OFDM symbol resource position of the first listening opportunity is determined first, and the time domain resource positions of the remaining listening opportunities are determined in turn based on the resource time domain duration of the listening opportunity (the unit of the resource time domain duration can be a symbol or a slot), wherein the time interval between adjacent listening opportunities is T2 symbols, and in some embodiments, the T2 can be agreed by the protocol or configured by the network device.
[0191] B124, in the case that the third time offset includes more than two configuration values, the starting OFDM symbol index corresponding to the starting receiving OFDM symbol resource position of the N×K listening opportunities or the at least one listening opportunity is determined according to the configuration value corresponding to the listening opportunity, and the configuration value corresponding to the listening opportunity is determined based on at least one of the terminal identifier, the terminal group identifier, the terminal group set identifier, the PO index, or the number of terminal groups associated with the resource position;
[0192] It should be noted that in this case, when more than two configuration values are included in the third time offset, the configuration value corresponding to the monitoring opportunity is determined based on at least one of the terminal identifier, the terminal group identifier, the terminal group set identifier, the PO index, or the number of terminal groups associated with the resource location, and then the determination of the starting receiving OFDM symbol resource location based on the determined configuration value is performed.
[0193] S112, determining, according to the starting receiving time domain resource location and the time offset parameter and / or the resource time domain duration in the configuration information, resource locations corresponding to N×K monitoring opportunities or at least one monitoring opportunity of the first signal;
[0194] It should be noted that after the starting receiving time domain resource location is determined, the terminal can determine the resource locations corresponding to all monitoring opportunities based on the starting receiving time domain resource location as the starting point, the time offset parameter, and / or the resource time domain duration.
[0195] In some embodiments, the specific implementation of the step S12 of determining, in the resource locations corresponding to the N×K monitoring opportunities or at least one monitoring opportunity, a target resource location corresponding to a target monitoring opportunity of receiving the first signal includes at least one of S121-S123:
[0196] S121, according to the first information, determining an index of a first monitoring opportunity of a next beam direction of the target monitoring opportunity, sequentially determining indexes of other monitoring opportunities of the target monitoring opportunity except the first monitoring opportunity based on N and / or K, and determining a resource location corresponding to the index as the target resource location, the first information including at least one of the following: one resource location or the number of terminal groups associated with the first signal, a terminal group set index, a terminal group index, the number of monitoring opportunities of transmitting different wake-up information under one beam, and the number of monitoring opportunities of transmitting the same wake-up information under one beam;
[0197] It should be noted that in this case, the index of the first monitoring opportunity in each beam direction is determined in the target monitoring opportunity, and then the indexes of the remaining monitoring opportunities in the target monitoring opportunity are sequentially determined based on N and K. After the index of each monitoring opportunity is obtained, the resource location corresponding to each monitoring opportunity can be known.
[0198] For example, the determination of the above index can satisfy one of the following cases:
[0199] Case one: the first monitoring opportunity in the i-th beam included in the target monitoring opportunity under the receiving opportunity = f (subgroup_index) + g (i), and the next X2-1 monitoring opportunities are associated with the same terminal group or terminal group set, X2 representing the number of monitoring opportunities of transmitting the same wake-up information under one beam.
[0200] The mapping of the listening opportunity to the terminal group in this case can refer to mapping mode 1 in FIG. 4.
[0201] Wherein, f(subgroup_index) is related to the terminal group set index or the terminal group index, and the number of listening opportunities for transmitting the same wake-up information in one beam, for example, the terminal group index takes the value range of 0~subgroupsNumPerPO-1 or 1~subgroupsNumPerPO, wherein subgroupsNumPerPO represents the number of subgroups associated with each PO; X2 is the number of listening opportunities for transmitting the same wake-up information in one beam, and the formula can include one of the following:
[0202] Formula one, subgroup_index mod(X1);
[0203] Formula two, subgroup_index mod(X1)+1;
[0204] Formula three, Or
[0205] Formula four, Or
[0206] Wherein, subgroup_index represents the terminal group set index, the terminal group index or the subgroup index, which can reuse the subgroup index of the PEI configuration or can be newly defined; X1 represents the number of subgroups associated with a single listening opportunity.
[0207] Wherein, g(i) is related to the beam index and N, and the formula can include one of the following:
[0208] Formula five, (i-1)*N, i takes the value of 1~K;
[0209] Formula six, (i-1)*N+1, i takes the value of 1~K;
[0210] Formula seven, i*N, i takes the value of 0~K-1;
[0211] Formula eight, i*N+1, i takes the value of 0~K-1;
[0212] Wherein, i is the beam index.
[0213] Case two, the first listening opportunity in the i-th beam included in the target listening opportunity under the receiving opportunity = f(X1) + g(N), this listening opportunity and the following interval j*K (j is valued from 1 to X2-1) or (j+1)*K (j is valued from 0 to X2-2) listening opportunities are associated with the same terminal group or terminal group set.
[0214] The mapping of the listening opportunity and the terminal group in this case can refer to the mapping mode 2 in FIG. 4.
[0215] Case three, the first listening opportunity in the i-th beam included in the target listening opportunity under the receiving opportunity = f(X1)*K+T(i), this listening opportunity and the following interval X3*K*j (j is valued from 1 to X2-1) listening opportunities are associated with the same terminal group or terminal group set.
[0216] The mapping of the listening opportunity and the terminal group in this case can refer to the mapping mode 3 in FIG. 4.
[0217] Wherein, T(i) is related to the beam index, and the formula can include one of the following:
[0218] Formula nine, T(i) = i-1, i is valued from 1 to K;
[0219] Formula ten, T(i) = i, i is valued from 0 to K-1.
[0220] Case four, the first listening opportunity in the i-th beam included in the target listening opportunity under the receiving opportunity = f(X1)*K*X2+T(i), this listening opportunity and the following interval j*X2 (j is valued from 1 to K-1) listening opportunities are associated with the same terminal group or terminal group set.
[0221] The mapping of the listening opportunity and the terminal group in this case can refer to the mapping mode 4 in FIG. 4.
[0222] For example, there are 8 subgroups (subgroup, i.e., the terminal group in the embodiment of the present disclosure) under a PO, one listening opportunity is associated with 4 subgroups (X1 = 4, X2 = 2), the number of beams under a receiving opportunity is 2 (K = 2), and the number of listening opportunities associated with the same subgroup under a single beam is 2 (X3 = 2), so there are a total of 8 listening opportunities under a receiving opportunity, and the index is valued from 0 to 7:
[0223] For case one, the listening opportunity index 0~3 is beam#1 and the listening opportunity index 4~7 is beam#2 under one receiving opportunity; the listening opportunity index 0 / 1 is associated with PO under subgroup#0~3, and the transmission beam direction is beam#1; the listening opportunity index 4 / 5 is associated with PO under subgroup#0~3, and the transmission beam direction is beam#2; the listening opportunity index 2 / 3 is associated with PO under subgroup#4~7, and the transmission beam direction is beam#1; the listening opportunity index 6 / 7 is associated with PO under subgroup#4~7, and the transmission beam direction is beam#2.
[0224] For case two, the listening opportunity index 0~3 is beam#1 and the listening opportunity index 4~7 is beam#2 under one receiving opportunity; the listening opportunity index 0 / 2 is associated with PO under subgroup#0~3, and the transmission beam direction is beam#1; the listening opportunity index 4 / 6 is associated with PO under subgroup#0~3, and the transmission beam direction is beam#2; the listening opportunity index 1 / 3 is associated with PO under subgroup#4~7, and the transmission beam direction is beam#1; the listening opportunity index 5 / 7 is associated with PO under subgroup#4~7, and the transmission beam direction is beam#2.
[0225] For case three, the listening opportunity index 0 / 2 / 4 / 6 is beam#1 and the listening opportunity index 1 / 3 / 5 / 7 is beam#2 under one receiving opportunity; the listening opportunity index 0 / 4 is associated with PO under subgroup#0~3, and the transmission beam direction is beam#1; the listening opportunity index 1 / 5 is associated with PO under subgroup#0~3, and the transmission beam direction is beam#2; the listening opportunity index 2 / 6 is associated with PO under subgroup#4~7, and the transmission beam direction is beam#1; the listening opportunity index 3 / 7 is associated with PO under subgroup#4~7, and the transmission beam direction is beam#2.
[0226] For case four, the listening opportunity index 0 / 2 / 4 / 6 is beam#1 and the listening opportunity index 1 / 3 / 5 / 7 is beam#2 under one receiving opportunity; the listening opportunity index 0 / 2 is associated with PO under subgroup#0~3, and the transmission beam direction is beam#1; the listening opportunity index 1 / 3 is associated with PO under subgroup#0~3, and the transmission beam direction is beam#2; the listening opportunity index 4 / 6 is associated with PO under subgroup#4~7, and the transmission beam direction is beam#1; the listening opportunity index 5 / 7 is associated with PO under subgroup#4~7, and the transmission beam direction is beam#2.
[0227] In some embodiments, the subgroup index in the embodiments of the present disclosure can be determined based on the subgroup index of the existing PEI or the subgroup index specific to the LP-WUS mechanism (which can be different from the subgroup index of the PEI).
[0228] S122, determine the index of the first listening opportunity in the target listening opportunity according to the second information, determine the indexes of the remaining listening opportunities in the target listening opportunity in turn based on the beam index, the terminal group set index, the terminal group index, and N, and determine the resource position corresponding to the indexes as the target resource position, the second information including at least one of the following: one resource position, the number of terminal groups associated with the first signal, the terminal group index;
[0229] It should be noted that in this case, the index of the first listening opportunity in the target listening opportunity (i.e., the first listening opportunity associated with the first beam included in the target listening opportunity) is determined based on N, the terminal group index, the terminal group set index, and the beam index in turn, and after the index of each listening opportunity is obtained, the resource position corresponding to each listening opportunity can be known.
[0230] It should be noted that in the above cases 1 to 4, the index of the listening opportunity with i=1 in the formula is the index of the first listening opportunity in the receiving opportunity included in the target listening opportunity, and the indexes of the remaining listening opportunities are determined based on N, the terminal group index, and the beam index in turn.
[0231] S123, determine the indexes of the listening opportunities in different beam directions in the target listening opportunity according to the third information, and determine the resource position corresponding to the indexes as the target resource position, the third information including at least one of the following: the terminal group index, the terminal group set index, one resource position, the number of terminal groups associated with the first signal, the number of terminal groups associated with one listening opportunity, the number of terminal groups associated with one receiving opportunity, N, K, and the number of listening opportunities in which the same wake-up information is transmitted in one beam.
[0232] It should be noted that in this case, the indexes of the listening opportunities in different beam directions in the receiving opportunity are determined respectively.
[0233] For example, the determination of the above indexes can satisfy one of the following cases:
[0234] Case five: the index of the target listening opportunity corresponding to the terminal group index or the terminal group set index is [f(subgroup_index)+g(i)+h1], i is the beam index, and the value range is 1~K or 0~K-1; the value range of h1 is 0~X2-1 or 1~X2.
[0235] The mapping between the monitoring opportunity and the terminal group in this case can refer to mapping mode 1 in FIG. 4.
[0236] Case six, the index of the target monitoring opportunity corresponding to the terminal group index or the terminal group set index is [f(subgroup_index)+g(i)+h2*K], i is the beam index, the value range is 1~K or 0~K-1, the value range of h2 is 0~X2-1 or 1~X2.
[0237] The mapping between the monitoring opportunity and the terminal group in this case can refer to mapping mode 2 in FIG. 4.
[0238] Case seven, the index of the target monitoring opportunity corresponding to the terminal group index or the terminal group set index is [f(subgroup_index)+T(i)+h3*K*K3], i is the beam index, the value range is 1~K or 0~K-1, the value range of h3 is 0~X2-1 or 1~X2, K3 is the number of MOs for transmitting different information under one beam, the value range is 0~N / X2-1 or 1~N / X2;
[0239] The mapping between the monitoring opportunity and the terminal group in this case can refer to mapping mode 3 in FIG. 4.
[0240] Case eight, the index of the target monitoring opportunity corresponding to the terminal group index or the terminal group set index is [f(subgroup_index)+T(i)+h4*X2], i is the beam index, the value range is 1~K or 0~K-1, the value range of h4 is 0~X2-1 or 1~X2;
[0241] The mapping between the monitoring opportunity and the terminal group in this case can refer to mapping mode 4 in FIG. 4.
[0242] In some embodiments, the network device can associate multiple first objects with at least one receiving opportunity of a first signal when configuring, but the terminal can only receive the first signal associated based on one first object, so from the terminal side, it is still one first object associated with at least one receiving opportunity of the first signal.
[0243] For example, in the case that at least one receiving opportunity of an LP-WUS is associated with multiple POs, the PO index value is or The PO index is determined based on the following formula: PO_index=((UE_ID mod Q)*Ns+i_s)mod or ((UE_ID mod Q)*Ns+i_s)mod Ns is the number of POs in one PF, and takes the value of 1 or 2; i_s is the index of the PO in the PF, and takes the value of 0 or 1. Ns is the number of POs associated with the first signal, one receiving opportunity or one listening opportunity.
[0244] For example, in the case that one LP-WUS is associated with multiple POs in at least one receiving opportunity, the PO index takes the value of The PO index is determined based on the following formula: PO_index=((UE_ID mod Q)*Ns+i_s)mod Ns is the number of POs in one PF, and takes the value of 1 or 2; i_s is the index of the PO in the PF, and takes the value of 0 or 1. Ns is the number of POs associated with the first signal, one receiving opportunity or one listening opportunity.
[0245] In some embodiments, in the case that one first signal is associated with multiple first objects in at least one receiving opportunity, the specific implementation of determining the target listening opportunity for receiving the first signal includes at least one of C11-C13:
[0246] C11, if the receiving opportunity and / or listening opportunity of one first signal is associated with X5 first objects, all listening opportunities in at least one receiving opportunity of the first signal are the target listening opportunities for receiving the first signal, and X5 is an integer greater than or equal to 2;
[0247] It should be noted that in this case, all listening opportunities are determined to be target listening opportunities.
[0248] C12, if the receiving opportunity and / or listening opportunity of one first signal is associated with X5 first objects, one first signal listening opportunity is associated with X6 POs, and the target listening opportunity for receiving the first signal is determined according to at least one of the PO index, the terminal identifier, the terminal group index, the terminal group set index, and the number of POs associated with the first signal, X6 is an integer greater than or equal to 2, and X6 is less than X5.
[0249] It should be noted that in this case, the target listening opportunity is related to at least one of the PO index, the terminal identifier, the terminal group index, the terminal group set index, and the number of POs associated with the first signal.
[0250] For example, the target listening opportunity can be determined by at least one of the following ways:
[0251] Method one, MO_index=i*Q+((PO_index-1) / X6)*(Q*X6 / X5);
[0252] wherein, MO_index represents the index of the target monitoring opportunity, i = 0 ~ K, PO_index = ((UE_ID mod Q) * Ns + i_s) mod j = 0 ~ Q * X6 / X5-1 or j = 1 ~ Q * X6 / X5.
[0253] Mode two, MO index = i * Q + (((PO_index) / X6) * (Q * X6 / X5) + j);
[0254] i = 0 ~ K, PO_index = ((UE_ID mod Q) * Ns + i_s) mod j = 0 ~ Q * X6 / X5-1 or j = 1 ~ N * X6 / X5.
[0255] C13, if one first signal receiving opportunity and / or monitoring opportunity is associated with X5 first objects, one monitoring opportunity is associated with X7 terminal groups, according to at least one of the PO index, the terminal identifier, the terminal group index, the number of POs associated with the monitoring opportunity of the first signal, the number of terminal groups associated with the monitoring opportunity of the first signal, the number of POs associated with the receiving opportunity of the first signal, and the number of terminal groups associated with the receiving opportunity of the first signal, the target monitoring opportunity for receiving the first signal is determined, X7 is an integer greater than or equal to 2, X7 is less than X5 or X7 is less than the product of X5 and the number of terminal groups under one PO;
[0256] It should be noted that in this case, the target monitoring opportunity is related to at least one of the PO index, the terminal identifier, the terminal group index, the number of POs associated with the monitoring opportunity of the first signal, the number of terminal groups associated with the monitoring opportunity of the first signal, the number of POs associated with the receiving opportunity of the first signal, and the number of terminal groups associated with the receiving opportunity of the first signal.
[0257] For example, the target monitoring opportunity can be determined by at least one of the following ways:
[0258] Mode one,
[0259] wherein, j = 0 ~ Q * X6 / X5-1 or j = 1 ~ N * X6 / X5. Ns is the number of subgroups under one PO, i SG Ns is the number of subgroups under one PO, i
[0260] Mode two,
[0261] wherein, i = 1 ~ K, j = 0 ~ Q * X6 / X5-1 or j = 1 ~ Q * X6 / X5; is the number of subgroups under a PO, i SG is the subgroup index under a PO, and takes values of
[0262] In some embodiments, in the case of a plurality of first objects associated with at least one receiving opportunity of a first signal, the index of a first object associated with a target resource position of the first signal received by the terminal is determined by at least one of the following: a terminal index, a terminal group index, the number of PFs in a paging cycle, the number of POs in a PF, the value of the index of a PO in a PF, the number of POs associated with a monitoring opportunity of the first signal, the number of terminal groups associated with a monitoring opportunity of the first signal, the number of POs associated with a receiving opportunity of the first signal, and the number of terminal groups associated with a receiving opportunity of the first signal.
[0263] In some embodiments, in the case of a plurality of first objects associated with at least one receiving opportunity of a first signal, the index of a first object associated with a target resource position of the first signal received by the terminal is determined by at least one of the following: a terminal index, a terminal group index, the number of PFs in a paging cycle, the number of POs in a PF, the value of the index of a PO in a PF, the number of POs associated with a monitoring opportunity of the first signal, the number of terminal groups associated with a monitoring opportunity of the first signal, the number of POs associated with a receiving opportunity of the first signal, and the number of terminal groups associated with a receiving opportunity of the first signal.
[0264] According to the sequence reception information corresponding to the first signal, the first signal is decoded to obtain the wake-up information of the terminal.
[0265] In some embodiments, the sequence reception information is usually configured and sent to the terminal by the network device.
[0266] In some embodiments, the sequence reception information includes at least one of D11-D14:
[0267] D11, information carried by a wake-up sequence;
[0268] In some embodiments, the information carried by the wake-up sequence is related to one or more of the following: a terminal group index, a bound terminal group index, an identifier of the terminal, a PO index, a PF index, and a cell identifier.
[0269] In some embodiments, the bound terminal group index corresponds to a terminal group set index, which can be determined by at least one of the following:
[0270] Subgroup_index mod X4;
[0271] Subgroup_index mod X4+1;
[0272] wherein X4 represents the number of terminal groups in a terminal group set.
[0273] The information carried by the wake-up sequence satisfies at least one of D111-D113:
[0274] D111、terminal subgroup specific sequence;
[0275] In some embodiments, the sequence is used to indicate the wakeup of one or more terminal subgroups in a plurality of terminal subgroups associated with at least one of the listening opportunity, the receiving opportunity and the first signal;
[0276] D112、terminal subgroup set specific sequence;
[0277] In some embodiments, at least one terminal subgroup is included in a terminal subgroup set, and a single sequence indicates the wakeup of at least one terminal subgroup set associated with at least one of the listening opportunity, the receiving opportunity and the first signal, which can be implemented in one of the following ways:
[0278] Way one, a protocol agreement (which can also be understood as pre-defined), Radio Resource Control (RRC) signaling or SIB-X signaling configures one or more terminal subgroups in a terminal subgroup set;
[0279] Way two, a protocol agreement, RRC signaling configuration or SIB-X signaling configures a corresponding terminal subgroup set index for each terminal or terminal subgroup index;
[0280] Way three, a protocol agreement, RRC signaling configuration or SIB-X signaling mapping relationship between terminal subgroup set index and terminal subgroup index.
[0281] It should be noted here that, for example, the mapping relationship between the terminal subgroup set index and the terminal subgroup index can be understood as: the mapping relationship between the terminal index and the terminal subgroup index can be represented by a specific formula composed of the terminal index and / or the terminal subgroup index.
[0282] D113、terminal subgroup Common sequence;
[0283] In some embodiments, the sequence is used to indicate the wakeup of all terminal subgroups associated with the listening opportunity;
[0284] For example, 8 subgroups are associated with a PO, and one listening opportunity is associated with 4 subgroups in a PO, as shown in Table 1. Five sequences can be configured on this listening opportunity, the first four sequences are terminal subgroup specific, and the last sequence is terminal subgroup Common.
[0285] Table 1: Correspondence between sequences that can be configured on the listening opportunity and the wakeup terminal subgroup
[0286] D12, structure information of the sequence;
[0287] In some embodiments, the structure information of the sequence comprises at least one of D121 and D122:
[0288] D121, single-stage sequence, i.e., a single sequence is transmitted on one listening opportunity.
[0289] D122, multi-stage sequence;
[0290] i.e., multiple sequences are transmitted on one listening opportunity in time division multiplexing (TDM), and the multiple sequences can be independently generated or generated based on a specific association relationship; in some embodiments, the multi-stage sequence comprises at least one of D1221-D1225:
[0291] D1221, each stage sequence is an independent sequence, carrying part of the wake-up information of the first signal;
[0292] D1222, the first stage sequence carries wake-up information of at least one terminal group set, and the terminal group set contains at least one terminal group, and the second stage sequence carries terminal group information within the group;
[0293] D1223, the first stage sequence carries the number information of the terminal group to be woken up, and the remaining at least one stage sequence carries the terminal group information to be woken up;
[0294] D1224, the first stage sequence carries the number information of the terminal group set to be woken up, and the remaining at least one stage sequence carries the terminal group set information to be woken up;
[0295] D1225, the first stage sequence carries at least one of the wake-up information of one terminal group, the wake-up information common to the terminal group, and the next stage sequence detection information, and the second stage sequence carries the wake-up information of at least two terminal groups or the wake-up information of a terminal group set.
[0296] D13, generation information of the sequence;
[0297] In some embodiments, the generation information of the sequence comprises at least one of D131-D135:
[0298] D131, sequence format;
[0299] For example, it can be a GOLD sequence, an M-seq sequence, a ZC sequence, or a Walsh sequence.
[0300] D132, sequence generation polynomial;
[0301] In some embodiments, the sequence generation polynomial is related to sequence format, sequence length, etc.
[0302] D133, initial value of the sequence;
[0303] D134, initial sequence;
[0304] D135, cyclic shift value.
[0305] D14, waveform information.
[0306] In some embodiments, at least one of the above-mentioned configuration information, first information, second information, and third information can be configured by the network device for the terminal. These information can be cell-specific, UE-specific, and / or UE group-specific information, and the acquisition manner of these information can be configured through RRC signaling, dynamic signaling (e.g., PDCCH, PDSCH), broadcast signaling (e.g., SIB-X, physical broadcast channel (PBCH)), and the like. In some embodiments, these information can also be activated or deactivated through dynamic signaling.
[0307] It should be noted that the understanding of the target resource location by the terminal and the network device is consistent, that is, the network device determines the target resource location in the same way as the terminal side.
[0308] The following takes the first signal transmitted by the base station and the terminal in communication as an example of LP-WUS, and the terminal belongs to a subgroup, and illustrates the specific application of the embodiments of the present disclosure as follows.
[0309] Application case one: one PO is associated with one receiving opportunity, and different monitoring opportunities bear different subgroups
[0310] Mainly includes the following processes:
[0311] Step one, the base station sends LP-WUS configuration information to at least one terminal;
[0312] The LP-WUS configuration information includes: LP-WUS resource location (receiving opportunity of LP-WUS and / or monitoring opportunity of LP-WUS) information and / or signal receiving information of LP-WUS;
[0313] In some embodiments, the resource location information of the LP-WUS includes at least one of the following:
[0314] E11, LP-WUS cycle: can be an independently configured LP-WUS cycle, or can be the same as the Paging Cycle or the DRX Cycle by default;
[0315] E12, resource location corresponding to the receiving opportunity and the monitoring opportunity;
[0316] E13, Frequency domain location of LP-WUS: bandwidth, start RB index, end RB index, subcarrier spacing (SCS);
[0317] E14, Reception resource information of PO / PF associated with LP-WUS;
[0318] E15, PEI-O resource information associated with LP-WUS.
[0319] In some embodiments, the signal reception information of the LP-WUS includes at least one of:
[0320] E21, OOK waveform information, for example, including OOK type, number of OOK symbols carried by one OFDM symbol, SCS;
[0321] E22, Sequence information of OOK waveform (can be a protocol agreed rule), including at least one of: OOK waveform sequence generation rule and OOK waveform sequence time-frequency mapping rule;
[0322] In some embodiments, the OOK waveform sequence generation rule can include at least one of the following ways:
[0323] Rule one: generated based on at least one base sequence after cyclic shift Y bits, the value of Y is related to one or more of cell ID (Cell ID), terminal ID (UE ID), PO index, PF index, subgroup index, UE(group) ID, area ID:
[0324] In some embodiments, the base sequence can be one of gold sequence, ZC sequence, m sequence, Walsh sequence, other predefined sequence.
[0325] For example, in some embodiments, Y=Y1 mod(Z), Y1 can be one or more of Cell ID, UE ID, PO index, PF index, subgroup index, subgroup set index, UE(group) ID, Area ID; Z is the total number of total cyclic shift values, which can be agreed by the protocol or obtained from base station configuration information.
[0326] For example, in some embodiments, Y=Y1.
[0327] For example, in some embodiments, Y=f(Y1), f(Y1) is a function related to Y1, and the function is agreed by the protocol. Rule two: generate target OOK sequence based on initial value and predefined sequence generation polynomial, initial value C initOne or more of the Cell ID, UE ID, PO index, PF index, subgroup index, subgroup set index, UE(group)ID, Area ID, can be determined based on at least one of the following functions: C init = (A * (f(B) * f(C) + D)) mod (F); C init = (A * (f(B) * f(C) + C)) mod (F); C init = (A * (f(B) * f(C) + C + D)) mod (F); C init = (A * (f(B) * f(C) + D + E)) mod (F);
[0328] Where A, F can be a fixed value agreed by the protocol or a base station configuration value, such as A = ab, F = cd, a, b, c, d can be determined based on the protocol agreement or based on the configuration parameter; f(B) is a function related to the signal location parameter B, B can include one or more of the following: wireless frame number, time slot number in the wireless frame, OFDM symbol number in the time slot, and carrier spacing. f(C) and f(D) are pre-configured parameters of the base station, which can be related to the Cell ID or a fixed value,
[0329] For example, C init = (2b * ((14 * n + 1) * (2 * NID + 1) + NID)) mod 2 c ;
[0330] In the above formula, b and c can be protocol pre-defined or base station side configuration, n and the signal location in time-frequency resource are related, for example, n is the sequence of the first OFDM symbol occupied by the signal in the time slot. NID can be pre-configured by the base station, and at least one of the following: UE_ID, PO index, PF index, subgroup index, Cell ID, UE(group)ID, Area ID.
[0331] Rule three: generate the target OOK sequence based on the Root index and the pre-defined sequence generation polynomial, the Root index and one or more of the following: Cell ID, UE ID, PO index, PF index, subgroup index, subgroup set index, UE(group)ID, Area ID:
[0332] For example, the ZC sequence generation polynomial is: 0≤n≤L, where q is Root index, L is length of the sequence.
[0333] E23, OFDM sequence information (can be protocol agreed rule), including at least one of the following: OFDM sequence type, OFDM sequence generation rule, OFDM sequence time-frequency mapping rule;
[0334] The OFDM sequence generation rule is the same as the OOK waveform sequence generation rule.
[0335] In some embodiments, the LP-WUS configuration information can be Cell-specific, UE-Specific and / or UE group-Specific information, and the acquisition of these information can be configured through RRC signaling, dynamic signaling (e.g., PDCCH, PDSCH), broadcast signaling (e.g., SIB-X, physical broadcast channel (PBCH)) and the like. In some embodiments, these information can also be activated or deactivated through dynamic signaling.
[0336] Step two, the terminal determines the resource location of the listening opportunity of the periodic LP-WUS associated with the target PO / PF and / or the first sequence of the LP-WUS carrying wake-up information.
[0337] It should be noted that one receiving opportunity of LP-WUS in a period is composed of N*K listening opportunities, and one listening opportunity is associated with X1 subgroups (X1 >= 1) or one first signal is associated with X1 subgroups (X1 >= 1). The method for the terminal to determine the receiving listening opportunity includes one of the following ways:
[0338] Way 1, one PO is associated with one receiving opportunity (LO) of LP-WUS, and the terminal determines the starting receiving location of the LO and the resource location of N*K listening opportunities (MOs) under the LO based on at least one time offset parameter from the target PO / PF;
[0339] In some embodiments, the time offset parameter can include: SFN level time offset, symbol level time offset, ms level time offset, slot level time offset.
[0340] The index i of the MO under the LO is 0~N*K-1 or i=1~N*K, K is the number of beam directions, and N is the number of MOs in a single beam direction.
[0341] N MOs in a single beam direction are composed of X2*X3 MOs (N=X2*X3), X2 is the number of MOs in a beam that are associated with the same subgroup, and X3 is the number of MOs associated with different subgroups (X3=total number of subgroups under a single PO / X1);
[0342] Mode two, the resource position determination mode of the MOs under a single LO can include one of the following:
[0343] Determination mode one: the agreement rule is that the offset between each MO is equal, and the time offset (offset) of the first MO from the SFN of the LO is determined based on the time domain resource duration of at least one MO and the time domain resource duration between each MO;
[0344] Determination mode two: the time domain resource duration related parameters of a single MO are determined based on the starting position of the first MO in the N*K MOs or the offset from the SFN where the LO is located;
[0345] Determination mode three: the agreement rule is that the resource positions of the MOs that transmit the same wake-up information in the same beam direction under a single LO are continuous (Slot level or Symbol level), and the offsets of multiple MOs are determined.
[0346] Mode three, in the resource positions corresponding to the N*K monitoring opportunities or at least one monitoring opportunity, the specific implementation of determining the resource position corresponding to the target monitoring opportunity as the target resource position includes one of the following:
[0347] According to the first information, the index of the first monitoring opportunity in a beam direction under the target monitoring opportunity is determined, and the indexes of the other monitoring opportunities in the target monitoring opportunity except the first monitoring opportunity are sequentially determined based on N and / or K. The resource position corresponding to the index is determined as the target resource position. The first information includes at least one of the following: a resource position or the number of terminal groups associated with the first signal, a terminal group set index, a terminal group index, the number of monitoring opportunities that transmit different wake-up information under a beam, and the number of monitoring opportunities that transmit the same wake-up information under a beam;
[0348] According to the second information, the index of the first monitoring opportunity in the target monitoring opportunity is determined, and the indexes of the other monitoring opportunities in the target monitoring opportunity except the first monitoring opportunity are sequentially determined based on the beam index, the terminal group set index, the terminal group index, and N. The resource position corresponding to the index is determined as the target resource position. The second information includes at least one of the following: a resource position or the number of terminal groups associated with the first signal, and a terminal group index;
[0349] According to the third information, an index of a target monitoring opportunity of the target in different beam directions of the first signal is determined, a resource position corresponding to the index is determined as a target resource position, and the third information includes at least one of the following: a terminal group index, a terminal group set index, a number of terminal groups associated with one resource position or the first signal, a number of terminal groups associated with one monitoring opportunity, a number of terminal groups associated with one receiving opportunity, N, K, and a number of monitoring opportunities of the same wake-up information transmitted in one beam.
[0350] In some embodiments, one MO configures at least one wake-up sequence to indicate the wake-up of one or more subgroups, and the sequence receiving information includes one of the following:
[0351] P11, information carried by the wake-up sequence, and the information carried by the wake-up sequence is related to one or more of the following: a terminal group index, a binding terminal group index, a terminal identifier, a PO index, a PF index, and a cell identifier;
[0352] In some embodiments, the information carried by the wake-up sequence includes at least one of the following:
[0353] Format one: subgroup-specific sequence, indicating the wake-up of one or more subgroups in a plurality of subgroups associated with the MO;
[0354] Format two: subgroup set specific, at least one subgroup is included in a subgroup set, and a single sequence indicates the wake-up of at least one subgroup set associated with the MO, which can be in one of the following ways:
[0355] Way one: protocol agreement or RRC signaling or SIB-X signaling configures X4 consecutive subgroups in one subgroup set;
[0356] Way two: protocol agreement or RRC signaling or SIB-X signaling configures a corresponding subgroup set index for each UE or subgroup index;
[0357] Way three: protocol agreement or RRC signaling or SIB-X signaling configures a mapping relationship between the subgroup set index and the subgroup index.
[0358] P12, sequence structure information, which includes at least one of the following:
[0359] Single-level sequence: a single sequence is sent on a single first signal monitoring opportunity;
[0360] Multi-stage sequence: multiple sequences are transmitted on a single first signal monitoring opportunity, which can be generated independently or based on a specific correlation, including at least one of the following:
[0361] Method one: each stage sequence is an independent sequence, which carries wake-up information based on sequence format and generation information;
[0362] Method two: the first stage sequence carries the information of the wake-up subgroup set, and the second stage sequence carries the wake-up subgroup information in the subgroup set;
[0363] Method three: the first stage sequence carries the number information N1 of the wake-up subgroup, and at least one of the following sequences carries the subgroup information of the wake-up subgroup;
[0364] Method four: the first stage sequence carries the number information N1 of the wake-up subgroup set, and at least one of the following sequences carries the subgroup set information of the wake-up subgroup set.
[0365] P13, sequence generation information, including at least one of the following: sequence format (GOLD or M-seq or ZC sequence), sequence generation polynomial, initial value or initial sequence or cyclic shift value of the sequence.
[0366] Step three, the LP-WUR of the terminal determines the target resource position of receiving the LP-WUS and receives the LP-WUS at the target resource position, and determines whether the MR device needs to be woken up to receive the Paging at the PO time-frequency resource position or the PEI at the PEI-O time-frequency resource position.
[0367] Application case two: one PO is associated with multiple receiving opportunities, and different monitoring opportunities carry different subgroups
[0368] Mainly includes the following processes:
[0369] Step one, the base station sends LP-WUS configuration information to at least one terminal;
[0370] The LP-WUS configuration information includes: LP-WUS resource position (LP-WUS receiving opportunity, LP-WUS monitoring opportunity) information and / or LP-WUS signal receiving information;
[0371] In some embodiments, the LP-WUS resource position information includes at least one of the following:
[0372] F11, the cycle of the LP-WUS: it can be an independently configured LP-WUS cycle, or it can be the same as the Paging Cycle or the DRX Cycle by default;
[0373] F12, resource location corresponding to the reception opportunity and the listening opportunity;
[0374] F13, frequency domain location of the LP-WUS: bandwidth, start RB index, end RB index, subcarrier spacing (SCS);
[0375] F14, reception resource information of the PO / PF associated with the LP-WUS;
[0376] F15, PEI-O resource information associated with the LP-WUS.
[0377] In some embodiments, the signal reception information of the LP-WUS includes at least one of the following:
[0378] F21, OOK waveform information, for example, including OOK type, number of OOK symbols carried by one OFDM symbol, SCS;
[0379] F22, sequence information of the OOK waveform (which can be a protocol agreed rule), including at least one of the following: OOK waveform sequence generation rule and OOK waveform sequence time-frequency mapping rule;
[0380] In some embodiments, the OOK waveform sequence generation rule can refer to the description of application case one, which will not be repeated here.
[0381] F23, OFDM sequence information (which can be a protocol agreed rule), including at least one of the following: OFDM sequence type, OFDM sequence generation rule, OFDM sequence time-frequency mapping rule;
[0382] The OFDM sequence generation rule is the same as the OOK waveform sequence generation rule.
[0383] In some embodiments, the LP-WUS configuration information can be Cell-specific, UE-Specific and / or UE group-Specific information, and the acquisition of these information can be configured through RRC signaling, dynamic signaling (for example, PDCCH, PDSCH), broadcast signaling (for example, SIB-X, physical broadcast channel (PBCH)) and the like. In some embodiments, these information can also be activated or deactivated through dynamic signaling.
[0384] Step two, the terminal determines the resource location of the listening opportunity of the periodic LP-WUS associated with the target PO / PF and / or the first sequence of the LP-WUS carrying wake-up information.
[0385] It should be noted that one receiving opportunity of the LP-WUS in one cycle is composed of N*K monitoring opportunities, one monitoring opportunity is associated with X1 subgroups or the first signal is associated with X1 subgroups (X1 >=1). The method for the terminal to determine the receiving monitoring opportunity includes one of the following ways:
[0386] Way one, one PO is associated with X4 (X4>1) LP-WUS resource positions (X4 LOs), and the terminal determines the starting receiving position of the first signal resource and the resource position of the N*K MOs under the LO based on at least one time offset parameter of the distance target PO / PF;
[0387] The time offset parameter can include: SFN level time offset, symbol level time offset, ms level time offset, slot level time offset;
[0388] The LO index associated with one PO is 0~X4-1, and the specific method for the terminal to determine the position information of the target LO includes at least one of the following:
[0389] Based on the first formula, the index of the target receiving opportunity is determined, and the resource position of the target receiving opportunity is determined according to the index of the target receiving opportunity;
[0390] Based on the second formula, the index of the time domain offset of the target receiving opportunity and the first object is determined, and the resource position of the target receiving opportunity is determined according to the index of the target receiving opportunity;
[0391] The first formula and the second formula are related to at least one of the following: terminal group index, the number of monitoring opportunities associated with different terminal groups or terminal group sets, terminal index, terminal group set index, the number of receiving opportunities of the first signal associated with the first object, the number of first objects associated with the receiving opportunity of the first signal, the number of first objects associated with the monitoring opportunity of the first signal, beam information, and receiving opportunity index.
[0392] For example, one PO is associated with two LOs (X4=2), and there are two LP-WUS_offset (index 0 and 1) in the configuration information, that is, one LO is associated with 4 subgroups, and the terminal determines to use LP-WUS_offset based on subgroup index mod X4;
[0393] For example, one PO is associated with two LOs (X4=2), and there are four LP-WUS_offset (index 0~3) in the configuration information, that is, one LO is associated with 4 subgroups, and the terminal determines to use LP-WUS_offset based on subgroup index mod X4 and subgroup index mod X4+1.
[0394] The index i of the MO under the LO is 0-N*K-1, K is the number of beam directions, and N is the number of MOs in a single beam direction, wherein the N MOs in a single beam direction transmit the same wake-up information;
[0395] The second mode of determining the resource position of one MO under the LO can include one of the following:
[0396] The first determination mode: the offset between each MO is equal, and the time offset (offset) of the first MO from the SFN of the LO is determined based on the time domain resource duration of at least one MO and the time domain resource duration between each MO;
[0397] The second determination mode: the time domain resource duration related parameters of a single MO are determined based on the starting position of the first MO in the N*K MOs or the offset from the SFN where the LO is located;
[0398] The third determination mode: the resource position of the MOs transmitting the same wake-up information in the same beam direction under a single LO is continuous (Slot level or Symbol level) based on the offset (offset) of multiple MOs.
[0399] In some embodiments, one MO configures at least one wake-up sequence to indicate the wake-up of one or more subgroups, and the sequence receiving information includes one of the following:
[0400] P21, the information carried by the wake-up sequence, the information carried by the wake-up sequence is related to one or more of the terminal group index, the bound terminal group index, the identification of the terminal, the PO index, the PF index and the cell identification;
[0401] In some embodiments, the information carried by the wake-up sequence includes at least one of the following:
[0402] Format one: subgroup-specific sequence, indicating the wake-up of one or more subgroups in the multiple subgroups associated with the MO, and the information carried by the wake-up sequence is related to one or more of the subgroup index, the UE ID, the PO index and the cell ID;
[0403] Format two: subgroup set specific, at least one subgroup is included in a subgroup set, and a single sequence indicates the wake-up of at least one subgroup set associated with the MO, which can be in one of the following ways:
[0404] Way one: protocol agreement, RRC signaling or SIB-X signaling configures X4 consecutive subgroups in a subgroup set;
[0405] Way two: protocol agreement, RRC signaling or SIB-X signaling configures the corresponding subgroup set index for each UE or subgroup index;
[0406] Way three: protocol agreement, RRC signaling or SIB-X signaling configures the mapping relationship between subgroup set index and subgroup index.
[0407] P22, the structure information of the sequence, including at least one of the following:
[0408] Single-stage sequence: a single sequence is sent on a single first signal monitoring opportunity;
[0409] Multi-stage sequence: multiple sequences are TDMed on a single first signal monitoring opportunity, and the multiple sequences can be independently generated or generated based on a specific association relationship, including at least one of the following ways:
[0410] Way one: each stage sequence is an independent sequence, and the wake-up information is independently carried based on the sequence format and generation information;
[0411] Way two: the first stage sequence carries the information of waking up the subgroup set, and the second stage sequence carries the information of waking up the subgroup in the subgroup set;
[0412] Way three: the first stage sequence carries the number information N1 of the subgroup to be woken up, and at least one of the following sequences carries the subgroup information to be woken up;
[0413] Way four: the first stage sequence carries the number information N1 of the subgroup set to be woken up, and at least one of the following sequences carries the subgroup set information to be woken up.
[0414] P23, the generation information of the sequence, including at least one of the following: sequence format (GOLD or M-seq or ZC sequence), sequence generation polynomial, initial value or initial sequence or cyclic shift value of the sequence.
[0415] Step three, the LP-WUR of the terminal determines the target resource position of receiving the LP-WUS and receives the LP-WUS at the target resource position, and determines whether the MR device needs to be woken up to receive the paging or PEI on the PO or PEI-O time-frequency resource position associated with the LP-WUS.
[0416] Case 3: One PO is associated with one receiving opportunity, different listening opportunities carry different subgroups, and the generation manner of the wake-up sequence is different from that in case 1
[0417] The method mainly includes the following processes:
[0418] Step 1: The base station sends LP-WUS configuration information to at least one terminal;
[0419] The LP-WUS configuration information includes: LP-WUS resource location (LP-WUS receiving opportunity, LP-WUS listening opportunity) information and / or LP-WUS signal receiving information;
[0420] In some embodiments, the LP-WUS resource location information includes at least one of the following:
[0421] H11, LP-WUS period: can be independently configured, or can be the same as the paging cycle or DRX cycle by default;
[0422] H12, resource location corresponding to the receiving opportunity and the listening opportunity;
[0423] H13, frequency domain location of the LP-WUS: bandwidth, starting RB index, ending RB index, and subcarrier spacing (SCS);
[0424] H14, receiving resource information of the PO / PF associated with the LP-WUS;
[0425] H15, PEI-O resource information associated with the LP-WUS.
[0426] In some embodiments, the LP-WUS signal receiving information includes at least one of the following:
[0427] H21, OOK waveform information, for example, including OOK type, number of OOK symbols carried by one OFDM symbol, and SCS;
[0428] H22, sequence information of the OOK waveform (which can be a protocol agreed rule), including at least one of the following: OOK waveform sequence generation rule and OOK waveform sequence time-frequency mapping rule;
[0429] In some embodiments, the specific description of the OOK waveform sequence generation rule can be referred to case 1, which is not repeated here.
[0430] H23, OFDM sequence information (which can be a protocol agreed rule), including at least one of the following: OFDM sequence type, OFDM sequence generation rule, and OFDM sequence time-frequency mapping rule;
[0431] The OFDM sequence generation rule is the same as the OOK waveform sequence generation rule.
[0432] In some embodiments, the LP-WUS configuration information can be Cell-specific, UE-Specific, and / or UE group-Specific information, which can be configured through RRC signaling, dynamic signaling (e.g., PDCCH, PDSCH), broadcast signaling (e.g., SIB-X, Physical Broadcast Channel (PBCH)), etc. In some embodiments, the information can also be activated or deactivated through dynamic signaling.
[0433] Step two, the terminal determines the resource location of the monitoring opportunity of the periodic LP-WUS associated with the target PO / PF and / or the first sequence of the LP-WUS carrying wake-up information.
[0434] It should be noted that one receiving opportunity of the LP-WUS in one period is composed of N*K monitoring opportunities, and one monitoring opportunity is associated with X1 subgroups (X1 >= 1). The method for the terminal to determine the receiving monitoring opportunity can be referred to the description of Case 1, which will not be repeated here.
[0435] In some embodiments, one MO configures at least one wake-up sequence to indicate the wake-up information of at least one subgroup (including: a single subgroup, all subgroups, a subgroup set) associated with the subgroup, and the sequence reception information includes one of the following:
[0436] P31, the information carried by the wake-up sequence, the information carried by the wake-up sequence is related to one or more of the following: terminal group index, bound terminal group index, terminal identification, PO index, PF index, and cell identification;
[0437] In some embodiments, the information carried by the wake-up sequence includes at least one of the following:
[0438] Format one: subgroup specific sequence, indicating the wake-up of one or more subgroups associated with the MO, the information carried by the wake-up sequence is related to one or more of the following: subgroup index, UE_ID, PO index, and cell ID;
[0439] Format two: subgroup common sequence, a single sequence indicating the simultaneous wake-up of all subgroups associated with the MO.
[0440] Format three: subgroup Set Specific sequence, a single sequence indicates the terminal in at least one subgroup Set associated with MO wake-up.
[0441] P32, structure information of the sequence, including at least one of the following:
[0442] Single-stage sequence: a single sequence is sent on a single first signal monitoring opportunity;
[0443] Multi-stage sequence: multiple sequences are TDMed on a single first signal monitoring opportunity, and the multiple sequences can be independently generated or generated based on a specific association relationship, including at least one of the following:
[0444] Method one: each stage sequence is an independent sequence, and the wake-up information is independently carried based on the sequence format and generation information;
[0445] Method two: the first stage sequence carries the information of the wake-up subgroup set, and the second stage sequence carries the wake-up subgroup information in the subgroup set;
[0446] Method three: the first stage sequence carries the subgroup number information N1, and at least one of the following sequences carries the subgroup information;
[0447] Method four: the first stage sequence carries the subgroup set number information N1, and at least one of the following sequences carries the subgroup set information.
[0448] P33, sequence generation information, including at least one of the following: sequence format (GOLD or M-seq or ZC sequence), sequence generation polynomial, initial value or initial sequence or cyclic shift value of the sequence.
[0449] Step three, the LP-WUR of the terminal determines the target resource position of receiving the LP-WUS and receives the LP-WUS at the target resource position, and determines whether to wake up the MR device to receive the Paging at the PO time-frequency resource position or the PEI at the PEI-O time-frequency resource position.
[0450] Application case four: multiple POs are associated with the same monitoring opportunity under a single receiving opportunity
[0451] Mainly includes the following processes:
[0452] Step one, the base station sends LP-WUS configuration information to at least one terminal;
[0453] The LP-WUS configuration information includes: resource location (reception opportunity of the LP-WUS, monitoring opportunity of the LP-WUS) information of the LP-WUS and / or signal reception information of the LP-WUS;
[0454] In some embodiments, the resource location information of the LP-WUS includes at least one of the following:
[0455] K11, period of the LP-WUS: the LP-WUS period can be independently configured or can be the same as the paging cycle or the DRX cycle by default;
[0456] K12, resource location corresponding to the reception opportunity and the monitoring opportunity;
[0457] K13, frequency domain location of the LP-WUS: bandwidth, start RB index, end RB index, subcarrier spacing (SCS);
[0458] K14, reception resource information of the PO / PF associated with the LP-WUS;
[0459] K15, PEI-O resource information associated with the LP-WUS.
[0460] In some embodiments, the signal reception information of the LP-WUS includes at least one of the following:
[0461] K21, OOK waveform information, for example, including OOK type, number of OOK symbols carried by one OFDM symbol, SCS;
[0462] K22, sequence information of the OOK waveform (which can be a protocol agreed rule), including at least one of the following: OOK waveform sequence generation rule and OOK waveform sequence time-frequency mapping rule;
[0463] In some embodiments, the OOK waveform sequence generation rule can be referred to the description of application case one, which will not be repeated here.
[0464] K23, OFDM sequence information (which can be a protocol agreed rule), including at least one of the following: OFDM sequence type, OFDM sequence generation rule, OFDM sequence time-frequency mapping rule;
[0465] The OFDM sequence generation rule is the same as the OOK waveform sequence generation rule.
[0466] In some embodiments, the LP-WUS configuration information can be Cell-specific, UE-Specific, and / or UE group-Specific information, which can be configured through RRC signaling, dynamic signaling (e.g., PDCCH, PDSCH), broadcast signaling (e.g., SIB-X, Physical Broadcast Channel (PBCH)), etc. In some embodiments, the information can also be activated or deactivated through dynamic signaling.
[0467] Step two, the terminal determines the resource location of the monitoring opportunity of the periodic LP-WUS associated with the target PO / PF and / or the first sequence of the LP-WUS carrying wake-up information.
[0468] The first signal resource (LP-WUS Occasion, LO) in a period is composed of N*K first signal monitoring opportunities (LP-WUS MO), and one first signal monitoring opportunity is associated with X1 subgroups (X1 >= 1). The target monitoring opportunity for receiving the first signal determined by the terminal includes one of the following cases:
[0469] If the receiving opportunity and / or monitoring opportunity of one first signal is associated with X5 first objects, all monitoring opportunities in at least one receiving opportunity of the first signal are the target monitoring opportunities for receiving the first signal, and X5 is an integer greater than or equal to 2;
[0470] If the receiving opportunity and / or monitoring opportunity of one first signal is associated with X5 first objects, if one first signal monitoring opportunity, the target monitoring opportunity for receiving the first signal is determined according to at least one of the PO index, the terminal identifier, the terminal group index, the terminal group set index, and the number of POs associated with the first signal, X6 is an integer greater than or equal to 2, and X6 is less than X5;
[0471] If the receiving opportunity and / or monitoring opportunity of one first signal is associated with X5 first objects, one monitoring opportunity is associated with X7 terminal groups, and the target monitoring opportunity for receiving the first signal is determined according to at least one of the PO index, the terminal identifier, the terminal group index, the number of POs associated with the monitoring opportunity of the first signal, the number of terminal groups associated with the monitoring opportunity of the first signal, the number of POs associated with the receiving opportunity of the first signal, and the number of terminal groups associated with the receiving opportunity of the first signal, X7 is an integer greater than or equal to 2, X7 is less than X5 or X7 is less than the product of X5 and the number of terminal groups under one PO.
[0472] In some embodiments, the determination of the resource location of the current monitoring opportunity can refer to the description of the above-mentioned application case one, application case two, or application case three, which will not be described here.
[0473] In some embodiments, one MO configures at least one wake-up sequence to indicate wake-up information of one or all subgroups associated with the MO, and the sequence receives information including one of the following:
[0474] P41, information carried by the wake-up sequence, the information carried by the wake-up sequence is related to one or more of the following: terminal group index, bound terminal group index, terminal identity, PO index, PF index, and cell identity;
[0475] In some embodiments, the information carried by the wake-up sequence includes at least one of the following:
[0476] Format one: subgroup-specific sequence, indicating the wake-up of one or more subgroups of multiple subgroups associated with the MO, and the information carried by the wake-up sequence is related to one or more of the following: subgroup index, UE_ID, PO index, and cell ID;
[0477] Format two: subgroup set specific sequence, at least one subgroup in a subgroup set, a single sequence indicating the wake-up of at least one subgroup set associated with the MO, which can be one of the following:
[0478] Method one: protocol agreement, RRC or SIB-X signaling configures X4 subgroups in a subgroup set;
[0479] Method two: protocol agreement, RRC signaling configuration or SIB-X signaling configuration configures corresponding subgroup set index for each UE or subgroup index;
[0480] Method three: protocol agreement, RRC signaling configuration or SIB-X signaling configuration subgroup set index and subgroup index mapping relationship.
[0481] Format three: subgroup common sequence, a single sequence indicating the wake-up of all subgroups associated with the MO.
[0482] P42, sequence structure information, including at least one of the following:
[0483] Single-stage sequence: a single sequence is sent on a single first signal monitoring opportunity;
[0484] Multi-stage sequence: multiple sequences are transmitted on a single first signal monitoring opportunity, and the multiple sequences can be independently generated or generated based on a specific correlation relationship, including at least one of the following:
[0485] Method one: each stage sequence is an independent sequence, and the wake-up information is independently carried based on the sequence format and generation information;
[0486] Method two: the first stage sequence carries the information of the wake-up subgroup set, and the second stage sequence carries the wake-up subgroup information in the subgroup set;
[0487] Method three: the first stage sequence carries the number information N1 of the wake-up subgroup, and at least one of the following sequences carries the subgroup information of the wake-up subgroup;
[0488] Method four: the first stage sequence carries the number information N1 of the wake-up subgroup set, and at least one of the following sequences carries the subgroup set information of the wake-up subgroup set.
[0489] P43, sequence generation information, including at least one of the following: sequence format (GOLD or M-seq or ZC sequence), sequence generation polynomial, initial value or initial sequence or cyclic shift value of the sequence.
[0490] Step three, the LP-WUR of the terminal determines the target resource position of receiving the LP-WUS and receives the LP-WUS on the target resource position, and determines whether the MR device needs to be awakened to receive the Paging on the PO time-frequency resource position or the PEI on the PEI-O time-frequency resource position.
[0491] It should be noted that at least one embodiment of the present disclosure can achieve the following beneficial effects in the case of ensuring that the terminal can accurately receive the wake-up information:
[0492] 1. One PO corresponding to multiple monitoring opportunities or receiving opportunities can reduce the demand for information bits carried by the LP-WUS, especially when the number of subgroups under the PO is relatively large (for example, the total number of subgroups under the PO is >8).
[0493] 2. The sequence transmitted on the monitoring opportunity indicates a single subgroup and / or multiple subgroups and / or a subgroup set and / or wakes up all subgroups at the same time, which is beneficial to reduce the number of sequences of the LP-WUS and reduce the design complexity of the LP-WUS information sequence.
[0494] The technical solutions provided by the embodiments of the present disclosure can be applied to various systems, especially 5G systems. For example, the applicable systems can be global system of mobile communication (GSM) systems, code division multiple access (CDMA) systems, wideband code division multiple access (WCDMA) general packet radio service (GPRS) systems, long term evolution (LTE) systems, LTE frequency division duplex (FDD) systems, LTE time division duplex (TDD) systems, long term evolution advanced (LTE-A) systems, universal mobile systems (UMTS), worldwide interoperability for microwave access (WiMAX) systems, 5G new radio (NR) systems, and the like. Among these various systems, there are terminals (which can also be referred to as terminal devices) and network devices. The system can also include a core network part, such as an evolved packet system (EPS), a 5G system (5GS), and the like.
[0495] The terminal device to which the embodiments of the present disclosure relate can also be referred to as a device providing voice and / or data connectivity to a user, a handheld device having wireless connection function, or other processing devices connected to a wireless modem, etc. In different systems, the name of the terminal device can also be different, for example, in the 5G system, the terminal device can be referred to as a user equipment (UE). The wireless terminal device can communicate with one or more core networks (CN) via a radio access network (RAN). The wireless terminal device can be a mobile terminal device, such as a mobile phone (or called "cellular" phone) and a computer with a mobile terminal device, for example, it can be a portable, pocket, handheld, built-in computer or vehicle-mounted mobile device, which exchanges language and / or data with the radio access network. For example, personal communication service (PCS) phones, cordless phones, session initiated protocol (SIP) phones, wireless local loop (WLL) stations, personal digital assistants (PDAs), etc. The wireless terminal device can also be referred to as a system, a subscriber unit, a subscriber station, a mobile station, a mobile, a remote station, an access point, a remote terminal, an access terminal, a user terminal, a user agent, a user device, which is not limited in the embodiments of the present disclosure.
[0496] The network device related to the embodiments of the present disclosure can be a base station, which can include a plurality of cells serving terminals. According to different application scenarios, the base station can also be referred to as an access point, or can be a device in an access network that communicates with wireless terminal devices through one or more sectors over an air interface, or other names. The network device can be used to exchange received air frames and Internet Protocol (IP) packets as a router between the wireless terminal device and the rest of the access network, which can include an Internet Protocol (IP) communication network. The network device can also coordinate the management of the properties of the air interface. For example, the network device related to the embodiments of the present disclosure can be a network device (Base Transceiver Station, BTS) in the Global System for Mobile Communications (GSM) or Code Division Multiple Access (CDMA), and can also be a network device (NodeB) in Wide-band Code Division Multiple Access (WCDMA), and can also be an evolved network device (evolutional Node B, eNB or e-NodeB) in a long term evolution (LTE) system, a 5G base station (gNB) in a next generation system (5G network architecture), and can also be a Home evolved Node B (HeNB), a relay terminal node, a femto, a pico, etc., which are not limited in the embodiments of the present disclosure. In some network structures, the network device can include a centralized unit (CU) node and a distributed unit (DU) node, and the centralized unit and the distributed unit can also be arranged geographically apart.
[0497] The network device and the terminal device can each use one or more antennas for multi-input multi-output (MIMO) transmission, which can be single-user MIMO (SU-MIMO) or multiple-user MIMO (MU-MIMO). According to the shape and number of root antenna combinations, the MIMO transmission can be two-dimensional MIMO (2D-MIMO), three-dimensional MIMO (3D-MIMO), full-dimensional MIMO (FD-MIMO), or massive-MIMO, and can also be diversity transmission or precoding transmission or beamforming transmission, etc.
[0498] As shown in FIG. 5, the embodiment of the present disclosure provides a wake-up information transmission method, executed by a network device, comprising:
[0499] In step S501, a first signal carrying wake-up information of a terminal is sent to the terminal at a target resource position in a resource position of at least one first signal associated with a first object;
[0500] The wake-up information is used to trigger the terminal to receive a second object, and the second object includes at least one of the following: paging early indication (PEI), paging physical downlink control channel (PDCCH), paging physical downlink data channel (PDSCH), physical downlink shared channel (PDSCH), physical downlink control channel (PDCCH), system information block (SIB), and synchronization signal block (SSB).
[0501] The first signal is a signal generated by a first waveform and / or a second waveform, the first waveform includes on-off keying (OOK) waveform and / or frequency shift keying (FSK) waveform, and the second waveform includes orthogonal frequency division multiplexing (OFDM) waveform.
[0502] The first object includes at least one of the following: paging opportunity (PO), paging frame (PF), at least one terminal, and discontinuous reception (DRX).
[0503] In some embodiments, the method further includes at least one of the following:
[0504] In at least one listening opportunity under at least one receiving opportunity of the first signal associated with the first object, a target listening opportunity corresponding to a target resource position for receiving the first signal is determined.
[0505] In the plurality of candidate monitoring opportunities of the first signal associated with the first object, the resource position corresponding to the target monitoring opportunity of receiving the first signal is determined as the target resource position.
[0506] In some embodiments, the receiving opportunity of the first signal includes resource positions corresponding to N×K monitoring opportunities, a resource position corresponding to a monitoring opportunity is associated with at least one terminal or terminal group, N is the number of beams, and K is the number of monitoring opportunities in one beam direction.
[0507] In some embodiments, in the case that the first signal is associated with a plurality of receiving opportunities, the determination of the target resource position corresponding to the target monitoring opportunity of receiving the first signal includes at least one of the following:
[0508] determining the index of the target receiving opportunity in the plurality of receiving opportunities, determining the resource position of the target receiving opportunity according to the index of the target receiving opportunity, and determining the target resource position corresponding to the target monitoring opportunity of receiving the first signal in at least one monitoring opportunity under the resource position of the target receiving opportunity of the first signal associated with the first object;
[0509] determining the index of the target receiving opportunity and the time domain offset of the first object in the plurality of receiving opportunities, determining the resource position of the target receiving opportunity according to the index of the target receiving opportunity and the time domain offset of the first object, and determining the target resource position corresponding to the target monitoring opportunity of receiving the first signal in at least one monitoring opportunity under the resource position of the target receiving opportunity of the first signal associated with the first object.
[0510] In some embodiments, the determination of the index of the target receiving opportunity in the plurality of receiving opportunities includes:
[0511] determining the index of the target receiving opportunity based on a first formula;
[0512] wherein the first formula is related to at least one of the following: a terminal group index, the number of monitoring opportunities associated with different terminal groups or a terminal group set, a terminal index, a terminal group set index, the number of receiving opportunities of the first signal associated with the first object, the number of first objects associated with the receiving opportunities of the first signal, the number of first objects associated with the monitoring opportunities of the first signal, beam information, and a receiving opportunity index.
[0513] In some embodiments, the determination of the index of the target receiving opportunity and the time domain offset of the first object in the plurality of receiving opportunities includes:
[0514] determining the index of the target receiving opportunity and the time domain offset of the first object based on a second formula;
[0515] The second formula is related to at least one of the following: a terminal group index, a number of monitoring opportunities associated with different terminal groups or a terminal group set, a terminal index, a terminal group set index, a number of receiving opportunities of a first signal associated with a first object, a number of first objects associated with a receiving opportunity of the first signal, a number of first objects associated with a monitoring opportunity of the first signal, beam information, and a receiving opportunity index.
[0516] In some embodiments, the first formula or the second formula includes at least one of the following:
[0517] A1 mod X3;
[0518] A1 mod X3+1;
[0519] A1 / X3;
[0520] A1 / X3-1;
[0521] A1 / X3+1;
[0522] wherein A1 represents a terminal group index, a terminal group set index, or a terminal index, and X3 represents a number of monitoring opportunities associated with different terminal groups or a terminal group set, a number of receiving opportunities of a first signal associated with a first object, a number of first objects associated with a receiving opportunity of the first signal, or a number of first objects associated with a monitoring opportunity of the first signal.
[0523] In some embodiments, the determining the target resource location corresponding to the target monitoring opportunity for receiving the first signal comprises:
[0524] determining, based on the configuration information, an N×K number of monitoring opportunities or a resource location corresponding to at least one monitoring opportunity in at least one receiving opportunity of the first signal, N being a number of beams and K being a number of monitoring opportunities in one beam direction;
[0525] determining, in the N×K number of monitoring opportunities or the resource location corresponding to at least one monitoring opportunity, a target resource location corresponding to a target monitoring opportunity for receiving the first signal;
[0526] wherein the configuration information includes at least one of the following: a time offset parameter, a resource time domain duration, a frequency domain resource location, and a waveform parameter of the first signal.
[0527] The time offset parameter is a time domain offset of a starting time domain position of at least one listening opportunity and / or at least one receiving opportunity of the first signal from a target position, and the target position comprises at least one of: an SFN or a first SFN in which the listening opportunity and / or the receiving opportunity of the first signal is located, an SFN in which the target PO is located, a time slot in which the target PO is located, a starting OFDM symbol in the time slot in which the target PO is located, an SFN in which the target PF is located;
[0528] The target PF comprises at least one of:
[0529] an SFN of a PF in which a target PO associated with the first signal is located;
[0530] an SFN of a PF in which a first PO associated with the first signal is located;
[0531] The target PO comprises one of: a PO associated with one receiving opportunity of the first signal, and at least one PO in a plurality of POs associated with one receiving opportunity of the first signal.
[0532] In some embodiments, the at least one PO in the plurality of POs associated with one receiving opportunity of the first signal comprises: a first PO in the plurality of POs associated with one receiving opportunity of the first signal.
[0533] In some embodiments, the determining, based on the configuration information, of resource positions corresponding to the N×K listening opportunities or at least one listening opportunity of one receiving opportunity of the first signal comprises:
[0534] determining, based on the time offset parameter in the configuration information, a starting receiving time domain resource position of the N×K listening opportunities or at least one listening opportunity of one receiving opportunity of the first signal;
[0535] determining, according to the starting receiving time domain resource position and the time offset parameter and / or a resource time domain duration in the configuration information, the resource positions corresponding to the N×K listening opportunities or at least one listening opportunity of the first signal.
[0536] In some embodiments, the determining, based on the time offset parameter in the configuration information, of a starting receiving time domain resource position of the N×K listening opportunities or at least one listening opportunity of one receiving opportunity of the first signal comprises at least one of:
[0537] determining, based on a first time offset in the time offset parameter, an SFN in which one receiving opportunity of the first signal is located, and determining, based on a second time offset in the time offset parameter, a starting receiving OFDM symbol resource position of the N×K listening opportunities or at least one listening opportunity of one receiving opportunity of the first signal;
[0538] determine, based on at least one third time offset in the time offset parameters, a starting receiving OFDM symbol resource position of the N×K monitoring opportunities or at least one monitoring opportunity in one receiving opportunity of the first signal.
[0539] In some embodiments, the first time offset is a time domain offset of a SFN or a first SFN of at least one receiving opportunity or at least one monitoring opportunity of the first signal from the target PF.
[0540] In some embodiments, the method further comprises:
[0541] If a plurality of candidate first time offsets are included in the configuration information, the used first time offset is determined according to at least one of the following: a terminal identifier, a terminal group set identifier, a terminal group identifier, a PO index, a PF index, and a number of terminal groups associated with a resource position.
[0542] In some embodiments, the determination of the starting receiving OFDM symbol resource position of the N×K monitoring opportunities or at least one monitoring opportunity in one receiving opportunity of the first signal based on the second time offset in the time offset parameters comprises at least one of the following:
[0543] Based on the first SFN where the first signal is located as a reference point, the starting receiving OFDM symbol resource position of the N×K monitoring opportunities or at least one monitoring opportunity in one receiving opportunity of the first signal is determined according to the second time offset and a resource time domain duration.
[0544] The second time offset includes at least one configuration value, and based on the first SFN where the first signal is located as a reference point, the starting receiving OFDM symbol resource position of the N×K monitoring opportunities or at least one monitoring opportunity of the first signal is determined according to the second time offset.
[0545] In some embodiments, the determination of the target resource position corresponding to the target monitoring opportunity of the first signal in the resource position corresponding to the N×K monitoring opportunities or at least one monitoring opportunity comprises at least one of the following:
[0546] According to the first information, the index of the first monitoring opportunity in one beam direction under the target monitoring opportunity is determined, the indexes of the other monitoring opportunities except the first monitoring opportunity in the target monitoring opportunity are determined based on N and / or K, and the resource position corresponding to the index is determined as the target resource position, wherein the first information comprises at least one of the following: one resource position, a number of terminal groups associated with the first signal, a terminal group set index, a terminal group index, a number of monitoring opportunities for transmitting different wake-up information in one beam, and a number of monitoring opportunities for transmitting the same wake-up information in one beam.
[0547] According to the second information, an index of a first listening opportunity in the target listening opportunity is determined, indexes of other listening opportunities in the target listening opportunity except the first listening opportunity are determined in turn based on the beam index, the terminal group set index, the terminal group index and N, a resource position corresponding to the index is determined as the target resource position, and the second information includes at least one of the following: one resource position or the number of terminal groups associated with the first signal, the terminal group index, and the terminal group set index.
[0548] According to the third information, an index of a target listening opportunity in different beam directions of the first signal is determined, and a resource position corresponding to the index is determined as the target resource position. The third information includes at least one of the following: the terminal group index, the terminal group set index, one resource position, the number of terminal groups associated with the first signal, the number of terminal groups associated with one listening opportunity, the number of terminal groups associated with one receiving opportunity, N, K, and the number of listening opportunities in which the same wake-up information is transmitted in one beam.
[0549] In some embodiments, in the case that one first signal is associated with multiple first objects in at least one receiving opportunity, determining a target listening opportunity for receiving the first signal includes at least one of the following:
[0550] If the receiving opportunity and / or the listening opportunity of one first signal is associated with X5 first objects, all listening opportunities in at least one receiving opportunity of the first signal are target listening opportunities for receiving the first signal, and X5 is an integer greater than or equal to 2.
[0551] If the receiving opportunity and / or the listening opportunity of one first signal is associated with X5 first objects, if one first signal listening opportunity, a target listening opportunity for receiving the first signal is determined according to at least one of the following: the PO index, the terminal identifier, the terminal group index, the terminal group set index, and the number of POs associated with the first signal, X6 is an integer greater than or equal to 2, and X6 is less than X5.
[0552] If the receiving opportunity and / or the listening opportunity of one first signal is associated with X5 first objects, one listening opportunity is associated with X7 terminal groups, and a target listening opportunity for receiving the first signal is determined according to at least one of the following: the PO index, the terminal identifier, the terminal group index, the number of POs associated with the first signal listening opportunity, the number of terminal groups associated with the first signal listening opportunity, the number of POs associated with the first signal receiving opportunity, and the number of terminal groups associated with the first signal receiving opportunity, X7 is an integer greater than or equal to 2, X7 is less than X5, or X7 is less than the product of X5 and the number of terminal groups in one PO.
[0553] In some embodiments, in the case that a plurality of first objects are associated with at least one receiving opportunity of a first signal, the index of a first object associated with a target resource position of the first signal received by the terminal is determined by at least one of the following: a terminal index, a terminal group index, a number of PFs in a paging cycle, a number of POs in a PF, a value of a PO index in a PF, a number of POs associated with a monitoring opportunity of the first signal, a number of terminal groups associated with a monitoring opportunity of the first signal, a number of POs associated with a receiving opportunity of the first signal, and a number of terminal groups associated with a receiving opportunity of the first signal.
[0554] In some embodiments, the method further comprises:
[0555] sending sequence receiving information corresponding to the first signal to the terminal;
[0556] The sequence receiving information comprises at least one of the following:
[0557] information carried by a wake-up sequence;
[0558] structure information of the sequence;
[0559] generation information of the sequence;
[0560] waveform information.
[0561] In some embodiments, the information carried by the wake-up sequence is related to one or more of the following: a terminal group index, a binding terminal group index, a terminal identifier, a PO index, a PF index, and a cell identifier; and the information carried by the wake-up sequence satisfies at least one of the following:
[0562] a terminal group-specific sequence;
[0563] a terminal group set-specific sequence;
[0564] a terminal group-common sequence.
[0565] In some embodiments, the structure information of the sequence comprises at least one of the following:
[0566] a single-level sequence;
[0567] a multi-level sequence.
[0568] In some embodiments, the multi-level sequence comprises at least one of the following:
[0569] each level sequence is an independent sequence carrying part of the wake-up information of the first signal;
[0570] a first level sequence carries wake-up information of at least one terminal group set, and a second level sequence carries terminal group information within the terminal group set;
[0571] The first-level sequence carries number information of the terminal group to be woken up, and the remaining at least one level sequence carries terminal group information to be woken up;
[0572] The first-level sequence carries number information of the terminal group to be woken up, and the remaining at least one level sequence carries terminal group information to be woken up;
[0573] The first-level sequence carries at least one of the following: wake-up information of a terminal group, wake-up information common to terminal groups, and next-level sequence detection information; and the second-level sequence carries wake-up information of at least two terminal groups or wake-up information of a terminal group set.
[0574] It should be noted that all the implementation manners in the above embodiments are applicable to the embodiments of the method for transmitting wake-up information applied to a network device side, and can achieve the same technical effects, which will not be described herein again.
[0575] As shown in FIG. 6, the embodiment of the present disclosure provides a wake-up information acquisition apparatus 600 applied to a terminal, comprising:
[0576] A first determination unit 601 is configured to determine a target resource position in at least one resource position of a first signal associated with a first object;
[0577] A receiving unit 602 is configured to receive the first signal at the target resource position;
[0578] An acquisition unit 603 is configured to acquire wake-up information of the terminal according to the received first signal;
[0579] The wake-up information is used to trigger the terminal to receive a second object, and the second object comprises at least one of the following: a paging early indication (PEI), a paging physical downlink control channel (PDCCH), a physical downlink shared channel (PDSCH), a paging PDSCH, a physical downlink control channel (PDCCH), a system information block (SIB), and a synchronization signal block (SSB).
[0580] The first signal is a signal generated by a first waveform and / or a second waveform, the first waveform comprises an on-off keying (OOK) waveform and / or a frequency shift keying (FSK) waveform, and the second waveform comprises an orthogonal frequency division multiplexing (OFDM) waveform.
[0581] The first object comprises at least one of the following: a paging opportunity (PO), a paging frame (PF), at least one terminal, and a discontinuous reception (DRX).
[0582] In some embodiments, the first determination unit 601 is configured to implement at least one of the following:
[0583] determining a target resource location corresponding to a target listening opportunity for receiving the first signal in at least one listening opportunity under a target receiving opportunity for receiving the first signal associated with the first object;
[0584] determining a target resource location corresponding to a target listening opportunity for receiving the first signal in at least one listening opportunity under a target receiving opportunity for receiving the first signal associated with the first object.
[0585] In some embodiments, the receiving opportunity of the first signal includes resource locations corresponding to N×K listening opportunities, a resource location corresponding to a listening opportunity is associated with at least one terminal or terminal group, N is the number of beams, and K is the number of listening opportunities in one beam direction.
[0586] In some embodiments, in the case of multiple receiving opportunities of the first signal associated with the first object, the specific implementation of determining a target resource location corresponding to a target listening opportunity for receiving the first signal includes at least one of the following:
[0587] determining an index of a target receiving opportunity in the multiple receiving opportunities, determining a resource location of the target receiving opportunity according to the index of the target receiving opportunity, and determining a target resource location corresponding to a target listening opportunity for receiving the first signal in at least one listening opportunity under the resource location of the target receiving opportunity of the first signal associated with the first object.
[0588] determining an index of a time domain offset of a target receiving opportunity in the multiple receiving opportunities from the first object, determining a resource location of the target receiving opportunity according to the index of the time domain offset of the target receiving opportunity from the first object, and determining a target resource location corresponding to a target listening opportunity for receiving the first signal in at least one listening opportunity under the resource location of the target receiving opportunity of the first signal associated with the first object.
[0589] In some embodiments, the specific implementation of determining an index of a target receiving opportunity in the multiple receiving opportunities includes:
[0590] determining the index of the target receiving opportunity based on a first formula;
[0591] wherein the first formula is related to at least one of a terminal group index, a number of listening opportunities associated with different terminal groups or a terminal group set, a terminal index, a terminal group set index, a number of receiving opportunities of the first signal associated with the first object, a number of first objects associated with a receiving opportunity of the first signal, a number of first objects associated with a listening opportunity of the first signal, beam information, and a receiving opportunity index.
[0592] In some embodiments, the specific implementation of determining an index of a time domain offset of a target receiving opportunity in the multiple receiving opportunities from the first object includes:
[0593] determine, based on a second formula, an index of a time domain offset of the target reception opportunity and the first object;
[0594] The second formula is related to at least one of the following: a terminal group index, a number of monitoring opportunities associated with different terminal groups or a terminal group set, a terminal index, a terminal group set index, a number of reception opportunities of a first signal associated with the first object, a number of first objects associated with the reception opportunities of the first signal, a number of first objects associated with the monitoring opportunities of the first signal, beam information, and a reception opportunity index.
[0595] In some embodiments, the first formula or the second formula includes at least one of the following:
[0596] A1 mod X3;
[0597] A1 mod X3+1;
[0598] A2 / X31;
[0599] A2 / X31-1;
[0600] A2 / X31+1;
[0601] A1 represents a terminal group index, a terminal group set index, or a terminal index, X3 represents a number of monitoring opportunities associated with different terminal groups or a terminal group set, a number of reception opportunities of a first signal associated with the first object, a number of first objects associated with the reception opportunities of the first signal, or a number of first objects associated with the monitoring opportunities of the first signal, A2 represents a reception opportunity index, and X31 represents a number of reception opportunities of a first signal associated with the first object.
[0602] In some embodiments, the specific implementation of determining the target resource location corresponding to the target monitoring opportunity for receiving the first signal includes:
[0603] determining, based on configuration information, an N×K monitoring opportunities or a resource location corresponding to at least one monitoring opportunity under at least one reception opportunity of the first signal, N being a number of beams and K being a number of monitoring opportunities in one beam direction;
[0604] determining, in the N×K monitoring opportunities or the resource location corresponding to at least one monitoring opportunity, a target resource location corresponding to a target monitoring opportunity for receiving the first signal;
[0605] The configuration information includes at least one of the following: a time offset parameter, a resource time domain duration, a frequency domain resource location, and a waveform parameter of the first signal.
[0606] The time offset parameter is a time domain offset of a starting time domain position of at least one listening opportunity and / or at least one receiving opportunity of the first signal from a target position, and the target position comprises at least one of: an SFN or a first SFN in which the listening opportunity and / or the receiving opportunity of the first signal is located, an SFN in which the target PO is located, a time slot in which the target PO is located, a starting OFDM symbol in the time slot in which the target PO is located, an SFN in which the target PF is located;
[0607] The target PF comprises at least one of:
[0608] an SFN of a PF in which a target PO associated with the first signal is located;
[0609] an SFN of a PF in which a first PO associated with the first signal is located;
[0610] The target PO comprises one of: a PO associated with one receiving opportunity of the first signal, and at least one PO in a plurality of POs associated with one receiving opportunity of the first signal.
[0611] In some embodiments, the at least one PO in the plurality of POs associated with one receiving opportunity of the first signal comprises: a first PO in the plurality of POs associated with one receiving opportunity of the first signal.
[0612] In some embodiments, the specific implementation of determining, based on the configuration information, resource positions corresponding to the N×K listening opportunities or at least one listening opportunity of one receiving opportunity of the first signal comprises:
[0613] determining, based on the time offset parameter in the configuration information, a starting receiving time domain resource position of the N×K listening opportunities or at least one listening opportunity of one receiving opportunity of the first signal;
[0614] determining, according to the starting receiving time domain resource position and the time offset parameter and / or resource time domain duration in the configuration information, the resource positions corresponding to the N×K listening opportunities or at least one listening opportunity of the first signal.
[0615] In some embodiments, the specific implementation of determining, based on the time offset parameter in the configuration information, a starting receiving time domain resource position of the N×K listening opportunities or at least one listening opportunity of one receiving opportunity of the first signal comprises at least one of:
[0616] determining, based on a first time offset in the time offset parameter, an SFN in which one receiving opportunity of the first signal is located, and determining, based on a second time offset in the time offset parameter, a starting receiving OFDM symbol resource position of the N×K listening opportunities or at least one listening opportunity of one receiving opportunity of the first signal;
[0617] determine, based on at least one third time offset in the time offset parameters, a starting receiving OFDM symbol resource position of the N×K monitoring opportunities or at least one monitoring opportunity under one receiving opportunity of the first signal.
[0618] In some embodiments, the first time offset is a time domain offset of a SFN or a first SFN of at least one receiving opportunity or at least one monitoring opportunity of the first signal from the target PF.
[0619] In some embodiments, the apparatus further includes:
[0620] The second determining unit is configured to, if a plurality of candidate first time offsets are included in the configuration information, determine the used first time offset according to at least one of the terminal identifier, the terminal group set identifier, the terminal group identifier, the PO index, the PF index, and the number of terminal groups associated with the resource position.
[0621] In some embodiments, the specific implementation of determining the starting receiving OFDM symbol resource position of the N×K monitoring opportunities or at least one monitoring opportunity under one receiving opportunity of the first signal based on the second time offset in the time offset parameters includes at least one of the following:
[0622] determining, based on the first SFN where the first signal is located as a reference point, the starting receiving OFDM symbol resource position of the N×K monitoring opportunities or at least one monitoring opportunity of the first signal according to the second time offset and the resource time domain duration, in sequence;
[0623] The second time offset includes at least one configuration value, and the starting receiving OFDM symbol resource position of the N×K monitoring opportunities or at least one monitoring opportunity of the first signal is determined based on the first SFN where the first signal is located as a reference point and the second time offset.
[0624] In some embodiments, the specific implementation of determining the resource position corresponding to the target monitoring opportunity of the first signal as the target resource position in the resource position corresponding to the N×K monitoring opportunities or at least one monitoring opportunity includes at least one of the following:
[0625] determining, according to the first information, an index of a first monitoring opportunity in a target beam direction under a target monitoring opportunity, determining, based on N and / or K, indexes of other monitoring opportunities except the first monitoring opportunity in the target monitoring opportunity, and determining a resource position corresponding to the index as the target resource position, the first information including at least one of the following: one resource position or the number of terminal groups associated with the first signal, a terminal group set index, a terminal group index, the number of monitoring opportunities of different wake-up information transmitted under one beam, and the number of monitoring opportunities of the same wake-up information transmitted under one beam.
[0626] According to the second information, the index of the first listening opportunity in the target listening opportunity is determined, the indexes of the other listening opportunities in the target listening opportunity except the first listening opportunity are determined in turn based on the beam index, the terminal group set index, the terminal group index and N, and the resource position corresponding to the index is determined as the target resource position, and the second information includes at least one of the following: one resource position or the number of terminal groups associated with the first signal, the terminal group index;
[0627] According to the third information, the index of the target listening opportunity in different beam directions under the first signal is determined, and the resource position corresponding to the index is determined as the target resource position. The third information includes at least one of the following: the terminal group index, the terminal group set index, one resource position or the number of terminal groups associated with the first signal, the number of terminal groups associated with one listening opportunity, the number of terminal groups associated with one receiving opportunity, N, K, and the number of listening opportunities under one beam for transmitting the same wake-up information.
[0628] In some embodiments, in the case that one first signal is associated with multiple first objects in at least one receiving opportunity, the specific implementation of determining the target listening opportunity for receiving the first signal includes at least one of the following:
[0629] If the receiving opportunity and / or the listening opportunity of one first signal is associated with X5 first objects, all the listening opportunities in at least one receiving opportunity of the first signal are the target listening opportunities for receiving the first signal, and X5 is an integer greater than or equal to 2;
[0630] If the receiving opportunity and / or the listening opportunity of one first signal is associated with X5 first objects, if one first signal listening opportunity, according to at least one of the following: PO index, terminal identifier, terminal group index, terminal group set index, and the number of POs associated with the first signal, the target listening opportunity for receiving the first signal is determined, X6 is an integer greater than or equal to 2, and X6 is less than X5;
[0631] If the receiving opportunity and / or the listening opportunity of one first signal is associated with X5 first objects, one listening opportunity is associated with X7 terminal groups, and according to at least one of the following: PO index, terminal identifier, terminal group index, the number of POs associated with the listening opportunity of the first signal, the number of terminal groups associated with the listening opportunity of the first signal, the number of POs associated with the receiving opportunity of the first signal, and the number of terminal groups associated with the receiving opportunity of the first signal, the target listening opportunity for receiving the first signal is determined, X7 is an integer greater than or equal to 2, X7 is less than X5 or X7 is less than the product of X5 and the number of terminal groups under one PO.
[0632] In some embodiments, in a case that a plurality of first objects are associated with at least one receiving opportunity of a first signal, an index of a first object associated with a target resource position of the first signal received by the terminal is determined by at least one of a terminal index, a terminal group index, a number of PFs in a paging cycle, a number of POs in a PF, a value of an index of a PO in a PF, a number of POs associated with a listening opportunity of the first signal, a number of terminal groups associated with a listening opportunity of the first signal, a number of POs associated with a receiving opportunity of the first signal, and a number of terminal groups associated with a receiving opportunity of the first signal.
[0633] In some embodiments, the obtaining unit 603 is configured to:
[0634] decode the first signal according to sequence receiving information corresponding to the first signal to obtain the wake-up information of the terminal;
[0635] The sequence receiving information includes at least one of the following:
[0636] information carried by a wake-up sequence;
[0637] structure information of a sequence;
[0638] generation information of a sequence;
[0639] waveform information.
[0640] In some embodiments, the information carried by the wake-up sequence is related to one or more of a terminal group index, a binding terminal group index, a terminal identifier, a PO index, a PF index, and a cell identifier; and the information carried by the wake-up sequence satisfies at least one of the following:
[0641] a terminal group-specific sequence;
[0642] a terminal group set-specific sequence;
[0643] a terminal group-common sequence.
[0644] In some embodiments, the structure information of the sequence includes at least one of the following:
[0645] a single-level sequence;
[0646] a multi-level sequence.
[0647] In some embodiments, the multi-level sequence includes at least one of the following:
[0648] each level sequence is an independent sequence and carries part of the wake-up information of the first signal;
[0649] a first level sequence carries wake-up information of at least one terminal group set, and a second level sequence carries wake-up information of a terminal group in the terminal group set.
[0650] The first level sequence carries the number information of the terminal group to be woken up, and the rest of the at least one level sequence carries the terminal group information to be woken up;
[0651] The first level sequence carries the number information of the terminal group set to be woken up, and the rest of the at least one level sequence carries the terminal group set information to be woken up;
[0652] The first level sequence carries at least one of the wake-up information of a terminal group, the wake-up information common to terminal groups, and the next level sequence detection information, and the second level sequence carries the wake-up information of at least two terminal groups or the wake-up information of a terminal group set.
[0653] It should be noted that the apparatus embodiment is one-to-one correspondence with the above-mentioned method embodiment, and all implementation manners in the above-mentioned method embodiment are applicable to the apparatus embodiment, and the same technical effects can be achieved.
[0654] It should be noted that the division of units in the embodiments of the present disclosure is illustrative, and is only a logical function division. In actual implementation, another division manner can be used. In addition, each functional unit in each embodiment of the present disclosure can be integrated in one processing unit, or each unit can be physically present separately, or two or more units can be integrated in one unit. The integrated unit can be realized in the form of hardware or in the form of a software functional unit.
[0655] When the integrated unit is realized in the form of a software functional unit and sold or used as an independent product, it can be stored in a processor-readable storage medium. Based on this understanding, the technical solutions of the present disclosure, essentially or the part that contributes to the related art, or all or part of the technical solutions can be embodied in the form of a software product. The computer software product is stored in a storage medium, and includes several instructions to make a computer device (which can be a personal computer, a server, or a network device, etc.) or a processor execute all or part of the steps of the methods described in the various embodiments of the present disclosure. The foregoing storage medium includes: a U disk, a mobile hard disk, a read-only memory (ROM), a random access memory (RAM), a magnetic disk or an optical disk, and various program codes that can be stored in the medium.
[0656] As shown in FIG. 7, the embodiment of the present disclosure further provides a terminal, comprising a processor 700, a transceiver 710, a memory 720, and a program stored in the memory 720 and executable on the processor 700; wherein the transceiver 710 is connected with the processor 700 and the memory 720 through a bus interface, wherein the processor 700 is configured to read the program in the memory and execute the following processes:
[0657] determining a target resource position in at least one resource position of a first signal associated with a first object;
[0658] performing reception of the first signal at the target resource position;
[0659] obtaining wake-up information of the terminal according to the received first signal;
[0660] wherein the wake-up information is used to trigger the terminal to receive a second object, and the second object comprises at least one of the following: paging early indication (PEI), paging physical downlink control channel (PDCCH), physical downlink shared channel (PDSCH), paging PDSCH, physical downlink control channel (PDCCH), system information block (SIB), and synchronization signal block (SSB);
[0661] the first signal is a signal generated by a first waveform and / or a second waveform, the first waveform comprises on-off keying (OOK) waveform and / or frequency shift keying (FSK) waveform, and the second waveform comprises orthogonal frequency division multiplexing (OFDM) waveform;
[0662] the first object comprises at least one of the following: paging opportunity (PO), paging frame (PF), at least one terminal, and discontinuous reception (DRX).
[0663] the transceiver 710 is configured to receive and send data under the control of the processor 700.
[0664] In FIG. 7, the bus architecture can comprise any number of interconnected buses and bridges, which are specifically linked together by various circuits of the processor 700 representing one or more processors and the memory 720 representing the memory. The bus architecture can also link various other circuits such as peripheral devices, voltage stabilizers, and power management circuits, which are well known in the art, and thus, are not further described herein. The bus interface provides an interface. The transceiver 710 can be a plurality of elements, i.e., comprising a transmitter and a receiver, which provide units for communicating with various other devices on transmission media, including wireless channels, wired channels, optical cables, and the like. The user interface 730 can also be an interface capable of connecting external and internal required devices for different user devices, including but not limited to a keypad, a display, a speaker, a microphone, a joystick, and the like.
[0665] The processor 700 is responsible for managing the bus architecture and general processing, and the memory 720 can store data used by the processor 700 when performing operations.
[0666] In some embodiments, the processor 700 can be a central processing unit (CPU), an application specific integrated circuit (ASIC), a field programmable gate array (FPGA) or a complex programmable logic device (CPLD), and the processor can also adopt a multi-core architecture.
[0667] The processor calls the computer program stored in the memory to execute any of the methods provided by the embodiments of the present disclosure according to the obtained executable instructions. The processor and the memory can also be arranged physically separately.
[0668] In some embodiments, the processor is configured to read the computer program in the memory and perform at least one of the following operations:
[0669] In at least one listening opportunity of at least one receiving opportunity of a first signal associated with a first object, determine a target resource position corresponding to a target listening opportunity of receiving the first signal;
[0670] In a plurality of candidate listening opportunities of a first signal associated with a first object, determine a target resource position corresponding to a target listening opportunity of receiving the first signal.
[0671] In some embodiments, the receiving opportunity of the first signal includes resource positions corresponding to N×K listening opportunities, and a resource position corresponding to a listening opportunity is associated with at least one terminal or terminal group, N is the number of beams, and K is the number of listening opportunities in one beam direction.
[0672] In some embodiments, the processor is configured to read the computer program in the memory and perform at least one of the following operations:
[0673] Determine the index of a target receiving opportunity in a plurality of receiving opportunities, determine the resource position of the target receiving opportunity according to the index of the target receiving opportunity, and in at least one listening opportunity in the resource position of the target receiving opportunity of the first signal associated with the first object, determine a target resource position corresponding to a target listening opportunity of receiving the first signal;
[0674] determine an index of a target receiving opportunity and a first object based on a time domain offset, determine a resource position of the target receiving opportunity according to the index of the target receiving opportunity and the first object, and determine a target resource position as a resource position corresponding to a target listening opportunity for receiving the first signal in at least one listening opportunity at the resource position of the target receiving opportunity of the first signal associated with the first object.
[0675] In some embodiments, the processor is configured to read the computer program in the memory and perform the following operations:
[0676] determine an index of a target receiving opportunity based on a first formula;
[0677] The first formula is related to at least one of a terminal group index, a number of listening opportunities associated with different terminal groups or a terminal group set, a terminal index, a terminal group set index, a number of receiving opportunities of a first signal associated with a first object, a number of first objects associated with a receiving opportunity of the first signal, a number of first objects associated with a listening opportunity of the first signal, beam information, and a receiving opportunity index.
[0678] In some embodiments, the processor is configured to read the computer program in the memory and perform the following operations:
[0679] determine an index of a target receiving opportunity and a first object based on a time domain offset, determine a resource position of the target receiving opportunity according to the index of the target receiving opportunity and the first object, and determine a target resource position as a resource position corresponding to a target listening opportunity for receiving the first signal in at least one listening opportunity at the resource position of the target receiving opportunity of the first signal associated with the first object.
[0680] The second formula is related to at least one of a terminal group index, a number of listening opportunities associated with different terminal groups or a terminal group set, a terminal index, a terminal group set index, a number of receiving opportunities of a first signal associated with a first object, a number of first objects associated with a receiving opportunity of the first signal, a number of first objects associated with a listening opportunity of the first signal, beam information, and a receiving opportunity index.
[0681] In some embodiments, the first formula or the second formula includes at least one of the following:
[0682] A1 mod X3;
[0683] A1 mod X3+1;
[0684] A2 / X31;
[0685] A2 / X31-1;
[0686] A2 / X31+1;
[0687] Where A1 represents the terminal group index, terminal group set index, or terminal index; X3 represents the number of listening opportunities associated with different terminal groups or terminal group sets, the number of receiving opportunities for the first signal associated with the first object, the number of first objects associated with the receiving opportunity of the first signal, or the number of first objects associated with the listening opportunity of the first signal; A2 represents the receiving opportunity index; and X31 represents the number of receiving opportunities for the first signal associated with the first object.
[0688] In some embodiments, the processor is configured to read a computer program from the memory and perform the following operations:
[0689] Based on the configuration information, determine the N×K listening opportunities or the resource locations corresponding to at least one listening opportunity under at least one receiving opportunity of the first signal, where N is the number of beams and K is the number of listening opportunities in one beam direction.
[0690] Among the resource locations corresponding to the N×K listening opportunities or at least one listening opportunity, the resource location corresponding to the target listening opportunity that receives the first signal is determined as the target resource location;
[0691] The configuration information includes at least one of the following: time offset parameter, resource time domain duration, frequency domain resource location, and waveform parameters of the first signal;
[0692] The time offset parameter is the time domain offset of the starting time domain position of at least one listening opportunity and / or at least one receiving opportunity of the first signal from the target position. The target position includes at least one of the following: the SFN or the first SFN where the listening opportunity and / or receiving opportunity of the first signal is located, the SFN where the target PO is located, the time slot where the target PO is located, the starting OFDM symbol in the time slot where the target PO is located, and the SFN where the target PF is located.
[0693] The target PF includes at least one of the following:
[0694] The SFN of the PF where the target PO is located, which is associated with the first signal;
[0695] The SFN of the PF where the first PO associated with the first signal is located;
[0696] The target PO includes one of the following: a PO associated with a reception opportunity of the first signal, or at least one of a plurality of POs associated with a reception opportunity of the first signal.
[0697] In some embodiments, at least one of the plurality of points of origin (POs) associated with a reception opportunity of the first signal includes: the first PO among the plurality of POs associated with a reception opportunity of the first signal.
[0698] In some embodiments, the processor is configured to read the computer program in the memory and perform at least one of the following operations:
[0699] determine the starting receiving time domain resource position of the N×K monitoring opportunities or at least one monitoring opportunity under one receiving opportunity of the first signal based on the time offset parameter in the configuration information;
[0700] determine the resource position corresponding to the N×K monitoring opportunities or at least one monitoring opportunity of the first signal according to the starting receiving time domain resource position and the time offset parameter and / or resource time domain duration in the configuration information.
[0701] In some embodiments, the processor is configured to read the computer program in the memory and perform at least one of the following operations:
[0702] determine the SFN in which one receiving opportunity of the first signal is located based on a first time offset in the time offset parameter, and determine the starting receiving OFDM symbol resource position of the N×K monitoring opportunities or at least one monitoring opportunity under one receiving opportunity of the first signal based on a second time offset in the time offset parameter;
[0703] determine the starting receiving OFDM symbol resource position corresponding to the N×K monitoring opportunities or at least one monitoring opportunity under one receiving opportunity of the first signal based on at least one third time offset in the time offset parameter.
[0704] In some embodiments, the first time offset is the time domain offset of the SFN or the first SFN in which at least one receiving opportunity or at least one monitoring opportunity of the first signal is located from the target PF.
[0705] In some embodiments, the processor is configured to read the computer program in the memory and perform at least one of the following operations:
[0706] if multiple candidate first time offsets are included in the configuration information, determine the used first time offset according to at least one of the following: terminal identifier, terminal group set identifier, terminal group identifier, PO index, PF index, and number of terminal groups associated with the resource position.
[0707] In some embodiments, the processor is configured to read the computer program in the memory and perform at least one of the following operations:
[0708] determine the starting receiving OFDM symbol resource position of the N×K monitoring opportunities or at least one monitoring opportunity under one receiving opportunity of the first signal according to the second time offset and the resource time domain duration, with the first SFN in which the first signal is located as the reference point;
[0709] The second time offset includes at least one configuration value, and a first SFN in which the first signal is located is taken as a reference point, and the N×K monitoring opportunities or the starting receiving OFDM symbol resource position of the at least one monitoring opportunity of the first signal is determined according to the second time offset.
[0710] In some embodiments, the processor is configured to read the computer program in the memory and perform at least one of the following operations:
[0711] According to the first information, the index of the first monitoring opportunity of the target monitoring opportunity in the next beam direction is determined, the indexes of the other monitoring opportunities except the first monitoring opportunity in the target monitoring opportunity are sequentially determined based on N and / or K, the resource position corresponding to the index is determined as the target resource position, and the first information includes at least one of the following: one resource position, the number of terminal groups associated with the first signal, a terminal group set index, a terminal group index, the number of monitoring opportunities in which different wake-up information is transmitted in one beam, and the number of monitoring opportunities in which the same wake-up information is transmitted in one beam.
[0712] According to the second information, the index of the first monitoring opportunity in the target monitoring opportunity is determined, the indexes of the other monitoring opportunities except the first monitoring opportunity in the target monitoring opportunity are sequentially determined based on the beam index, the terminal group set index, the terminal group index, and N, and the resource position corresponding to the index is determined as the target resource position, and the second information includes at least one of the following: one resource position and the number of terminal groups associated with the first signal.
[0713] According to the third information, the index of the target monitoring opportunity in different beam directions of the first signal is determined, and the resource position corresponding to the index is determined as the target resource position, and the third information includes at least one of the following: a terminal group index, a terminal group set index, one resource position, the number of terminal groups associated with the first signal, the number of terminal groups associated with one monitoring opportunity, the number of terminal groups associated with one receiving opportunity, N, K, and the number of monitoring opportunities in which the same wake-up information is transmitted in one beam.
[0714] In some embodiments, in the case that one first signal is associated with multiple first objects in at least one receiving opportunity, the processor is configured to read the computer program in the memory and perform at least one of the following operations:
[0715] If one receiving opportunity and / or monitoring opportunity of a first signal is associated with X5 first objects, all the monitoring opportunities in at least one receiving opportunity of the first signal are target monitoring opportunities for receiving the first signal, and X5 is an integer greater than or equal to 2.
[0716] If one receiving opportunity and / or monitoring opportunity of a first signal is associated with X5 first objects, if one monitoring opportunity of a first signal, according to at least one of PO index, terminal identifier, terminal group index, terminal group set index, and number of POs associated with the first signal, the target monitoring opportunity of receiving the first signal is determined, X6 is an integer greater than or equal to 2, X6 is less than X5;
[0717] If one receiving opportunity and / or monitoring opportunity of a first signal is associated with X5 first objects, one monitoring opportunity is associated with X7 terminal groups, according to at least one of PO index, terminal identifier, terminal group index, number of POs associated with the monitoring opportunity of the first signal, number of terminal groups associated with the monitoring opportunity of the first signal, number of POs associated with the receiving opportunity of the first signal, and number of terminal groups associated with the receiving opportunity of the first signal, the target monitoring opportunity of receiving the first signal is determined, X7 is an integer greater than or equal to 2, X7 is less than X5 or X7 is less than the product of X5 and number of terminal groups under one PO.
[0718] In some embodiments, in the case that at least one receiving opportunity of a first signal is associated with multiple first objects, the index of the first object associated with the target resource position of the terminal receiving the first signal is determined by at least one of terminal index, terminal group index, number of PFs under one paging cycle, number of POs under one PF, value of the index of PO under PF, number of POs associated with the monitoring opportunity of the first signal, number of terminal groups associated with the monitoring opportunity of the first signal, number of POs associated with the receiving opportunity of the first signal, and number of terminal groups associated with the receiving opportunity of the first signal.
[0719] In some embodiments, the processor is configured to read the computer program in the memory and perform the following operations:
[0720] According to the sequence receiving information corresponding to the first signal, the first signal is decoded to obtain the wake-up information of the terminal;
[0721] The sequence receiving information includes at least one of the following:
[0722] Information carried by the wake-up sequence;
[0723] Structure information of the sequence;
[0724] Generation information of the sequence;
[0725] Waveform information.
[0726] In some embodiments, the information carried by the wake-up sequence is related to one or more of terminal group index, binding terminal group index, terminal identifier, PO index, PF index, and cell identifier; and the information carried by the wake-up sequence satisfies at least one of the following:
[0727] Terminal group-specific sequence;
[0728] Terminal group set-specific sequence;
[0729] Terminal group-common sequence.
[0730] In some embodiments, the structure information of the sequence comprises at least one of the following:
[0731] Single-level sequence;
[0732] Multi-level sequence.
[0733] In some embodiments, the multi-level sequence comprises at least one of the following:
[0734] Each level sequence is an independent sequence, and carries part of the wake-up information of the first signal;
[0735] The first level sequence carries wake-up information of at least one terminal group set, and the terminal group set comprises at least one terminal group; and the second level sequence carries terminal group information of the terminal group;
[0736] The first level sequence carries number information of the terminal groups to be woken up, and the remaining at least one level sequence carries terminal group information of the terminal groups to be woken up;
[0737] The first level sequence carries number information of the terminal group sets to be woken up, and the remaining at least one level sequence carries terminal group set information of the terminal group sets to be woken up;
[0738] The first level sequence carries at least one of the following: wake-up information of one terminal group, wake-up information of the terminal group-common, and next level sequence detection information; and the second level sequence carries wake-up information of at least two terminal groups or wake-up information of the terminal group set.
[0739] It should be noted that the terminal provided by the embodiments of the present disclosure can implement all the method steps achieved by the method embodiments, and achieve the same technical effects. Therefore, the same parts and beneficial effects of the method embodiments will not be described in detail.
[0740] The embodiments of the present disclosure further provide a computer readable storage medium having a computer program stored thereon, wherein the computer program, when executed by a processor, implements the steps of the wake-up information acquisition method applied to a terminal. The processor readable storage medium can be any available medium or data storage device that the processor can access, including but not limited to a magnetic storage (such as a floppy disk, a hard disk, a magnetic tape, a magneto optical disk (MO), etc.), an optical storage (such as a compact disc (CD), a digital video disc (DVD), a Blu-ray disc (BD), a high-definition versatile disc (HVD), etc.), and a semiconductor memory (such as a ROM, an erasable programmable read-only memory (EPROM), an electrically erasable programmable read-only memory (EEPROM), a non-volatile memory (NAND FLASH), a solid state disk (SSD), etc.), etc.
[0741] As shown in FIG. 8, the embodiments of the present disclosure provide a wake-up information transmission apparatus 800 applied to a network device, comprising:
[0742] A first sending unit 801 is configured to send a first signal to a terminal at a target resource position in a resource position of at least one first signal associated with a first object, wherein the first signal carries wake-up information of the terminal.
[0743] The wake-up information is used to trigger the terminal to receive a second object, and the second object comprises at least one of the following: a paging early indication (PEI), a paging physical downlink control channel (PDCCH), a physical downlink shared channel (PDSCH), a paging PDSCH, a physical downlink control channel (PDCCH), a system information block (SIB), and a synchronization signal block (SSB).
[0744] The first signal is a signal generated by a first waveform and / or a second waveform, the first waveform comprises an on-off keying (OOK) waveform and / or a frequency shift keying (FSK) waveform, and the second waveform comprises an orthogonal frequency division multiplexing (OFDM) waveform.
[0745] The first object comprises at least one of the following: a paging opportunity (PO), a paging frame (PF), at least one terminal, and a discontinuous reception (DRX).
[0746] In some embodiments, the apparatus further comprises at least one of:
[0747] a third determining unit configured to determine, in at least one listening opportunity under at least one receiving opportunity of the first signal associated with the first object, a resource position corresponding to the target listening opportunity for receiving the first signal as the target resource position.
[0748] a fourth determining unit configured to determine, in a plurality of candidate listening opportunities of the first signal associated with the first object, a resource position corresponding to the target listening opportunity for receiving the first signal as the target resource position.
[0749] In some embodiments, the receiving opportunity of the first signal comprises resource positions corresponding to N×K listening opportunities, a resource position corresponding to one listening opportunity is associated with at least one terminal or terminal group, N is the number of beams, and K is the number of listening opportunities in one beam direction.
[0750] In some embodiments, in the case of a plurality of receiving opportunities of the first signal associated with the first object, the specific implementation of determining the resource position corresponding to the target listening opportunity for receiving the first signal as the target resource position comprises at least one of:
[0751] determining an index of a target receiving opportunity in the plurality of receiving opportunities, determining a resource position of the target receiving opportunity according to the index of the target receiving opportunity, and determining, in at least one listening opportunity under the resource position of the target receiving opportunity of the first signal associated with the first object, a resource position corresponding to the target listening opportunity for receiving the first signal as the target resource position;
[0752] determining an index of a time domain offset of a target receiving opportunity in the plurality of receiving opportunities and a first object, determining a resource position of the target receiving opportunity according to the index of the time domain offset of the target receiving opportunity and the first object, and determining, in at least one listening opportunity under the resource position of the target receiving opportunity of the first signal associated with the first object, a resource position corresponding to the target listening opportunity for receiving the first signal as the target resource position.
[0753] In some embodiments, the specific implementation of determining the index of the target receiving opportunity in the plurality of receiving opportunities comprises:
[0754] determining the index of the target receiving opportunity based on a first formula;
[0755] The first formula is related to at least one of the following: a terminal group index, a number of monitoring opportunities associated with different terminal groups or a terminal group set, a terminal index, a terminal group set index, a number of reception opportunities of a first signal associated with a first object, a number of first objects associated with a reception opportunity of the first signal, a number of first objects associated with a monitoring opportunity of the first signal, beam information, and a reception opportunity index.
[0756] In some embodiments, the specific implementation of determining the index of the time domain offset of the target reception opportunity from the first object in the plurality of reception opportunities includes:
[0757] determining the index of the time domain offset of the target reception opportunity from the first object based on a second formula.
[0758] The second formula is related to at least one of the following: a terminal group index, a number of monitoring opportunities associated with different terminal groups or a terminal group set, a terminal index, a terminal group set index, a number of reception opportunities of a first signal associated with a first object, a number of first objects associated with a reception opportunity of the first signal, a number of first objects associated with a monitoring opportunity of the first signal, beam information, and a reception opportunity index.
[0759] In some embodiments, the first formula or the second formula includes at least one of the following:
[0760] A1 mod X3;
[0761] A1 mod X3+1;
[0762] A2 / X31;
[0763] A2 / X31-1;
[0764] A2 / X31+1;
[0765] wherein A1 represents a terminal group index, a terminal group set index, or a terminal index, X3 represents a number of monitoring opportunities associated with different terminal groups or a terminal group set, a number of reception opportunities of a first signal associated with a first object, a number of first objects associated with a reception opportunity of the first signal, or a number of first objects associated with a monitoring opportunity of the first signal, A2 represents a reception opportunity index, and X31 represents a number of reception opportunities of a first signal associated with a first object.
[0766] In some embodiments, the specific implementation of determining the target resource location corresponding to the target monitoring opportunity for receiving the first signal includes:
[0767] determining, based on the configuration information, an N×K number of monitoring opportunities or a resource location corresponding to at least one monitoring opportunity in a first signal, N being a number of beams and K being a number of monitoring opportunities in a beam direction.
[0768] In the resource position corresponding to the N×K monitoring opportunities or at least one monitoring opportunity, the target resource position corresponding to the target monitoring opportunity of receiving the first signal is determined;
[0769] The configuration information includes at least one of the following: a time offset parameter, a resource time domain duration, a frequency domain resource position, a waveform parameter of the first signal.
[0770] The time offset parameter is a time domain offset of the starting time domain position of at least one monitoring opportunity and / or at least one receiving opportunity of the first signal from a target position, and the target position includes at least one of the following: the SFN or the first SFN where the monitoring opportunity and / or the receiving opportunity of the first signal is located, the SFN where the target PO is located, the time slot where the target PO is located, the starting OFDM symbol in the time slot where the target PO is located, the SFN where the target PF is located.
[0771] The target PF includes at least one of the following:
[0772] The SFN of the PF where the target PO associated with the first signal is located.
[0773] The SFN of the PF where the first PO associated with the first signal is located.
[0774] The target PO includes at least one of the following: the PO associated with one receiving opportunity of the first signal, at least one PO in the multiple POs associated with one receiving opportunity of the first signal.
[0775] In some embodiments, the at least one PO in the multiple POs associated with one receiving opportunity of the first signal includes the first PO in the multiple POs associated with one receiving opportunity of the first signal.
[0776] In some embodiments, the specific implementation of determining the resource position corresponding to the N×K monitoring opportunities or at least one monitoring opportunity of the first signal based on the configuration information includes:
[0777] Determining the starting receiving time domain resource position of the N×K monitoring opportunities or at least one monitoring opportunity of the first signal based on the time offset parameter in the configuration information.
[0778] According to the starting receiving time domain resource position and the time offset parameter and / or the resource time domain duration in the configuration information, the resource position corresponding to the N×K monitoring opportunities or at least one monitoring opportunity of the first signal is determined.
[0779] In some embodiments, the specific implementation of determining the starting receiving time domain resource position of the N×K monitoring opportunities or at least one monitoring opportunity under one receiving opportunity of the first signal based on the time offset parameter in the configuration information comprises at least one of the following:
[0780] determining the SFN in which one receiving opportunity of the first signal is located based on a first time offset in the time offset parameter, and determining the starting receiving OFDM symbol resource position of the N×K monitoring opportunities or at least one monitoring opportunity under one receiving opportunity of the first signal based on a second time offset in the time offset parameter;
[0781] determining the starting receiving OFDM symbol resource position corresponding to the N×K monitoring opportunities or at least one monitoring opportunity under one receiving opportunity of the first signal based on at least one third time offset in the time offset parameter.
[0782] In some embodiments, the first time offset is the time domain offset of the SFN or the first SFN in which at least one receiving opportunity or at least one monitoring opportunity of the first signal is located from the target PF.
[0783] In some embodiments, the apparatus further comprises:
[0784] The fifth determining unit is configured to, if a plurality of candidate first time offsets are included in the configuration information, determine the used first time offset according to at least one of the following: the terminal identifier, the terminal group set identifier, the terminal group identifier, the PO index, the PF index, and the number of terminal groups associated with the resource position.
[0785] In some embodiments, the specific implementation of determining the starting receiving OFDM symbol resource position of the N×K monitoring opportunities or at least one monitoring opportunity under one receiving opportunity of the first signal based on the second time offset in the time offset parameter comprises at least one of the following:
[0786] determining the starting receiving OFDM symbol resource position of the N×K monitoring opportunities or at least one monitoring opportunity under one receiving opportunity of the first signal based on the second time offset according to the first SFN in which the first signal is located as the reference point;
[0787] The second time offset comprises at least one configuration value, and the starting receiving OFDM symbol resource position of the N×K monitoring opportunities or at least one monitoring opportunity of the first signal is determined based on the second time offset according to the first SFN in which the first signal is located as the reference point.
[0788] In some embodiments, the specific implementation of determining the resource position corresponding to the target monitoring opportunity for receiving the first signal from the resource positions corresponding to the N×K monitoring opportunities or at least one monitoring opportunity includes at least one of the following:
[0789] According to the first information, the index of the first monitoring opportunity of the target monitoring opportunity in the next beam direction is determined, the indexes of the other monitoring opportunities of the target monitoring opportunity except the first monitoring opportunity are sequentially determined based on N and / or K, and the resource position corresponding to the index is determined as the target resource position. The first information includes at least one of the following: a resource position, a number of terminal groups associated with the first signal, a terminal group set index, a terminal group index, a number of monitoring opportunities for transmitting different wake-up information in one beam, and a number of monitoring opportunities for transmitting the same wake-up information in one beam.
[0790] According to the second information, the index of the first monitoring opportunity in the target monitoring opportunity is determined, the indexes of the other monitoring opportunities in the target monitoring opportunity except the first monitoring opportunity are sequentially determined based on the beam index, the terminal group set index, the terminal group index, and N, and the resource position corresponding to the index is determined as the target resource position. The second information includes at least one of the following: a resource position, and a number of terminal groups associated with the first signal.
[0791] According to the third information, the index of the target monitoring opportunity of different beam directions for the first signal is determined, and the resource position corresponding to the index is determined as the target resource position. The third information includes at least one of the following: a terminal group index, a terminal group set index, a resource position, a number of terminal groups associated with the first signal, a number of terminal groups associated with one monitoring opportunity, a number of terminal groups associated with one receiving opportunity, N, K, a number of monitoring opportunities for transmitting the same wake-up information in one beam.
[0792] In some embodiments, in the case that at least one receiving opportunity of a first signal is associated with multiple first objects, the specific implementation of determining the target monitoring opportunity for receiving the first signal includes at least one of the following:
[0793] If the receiving opportunity and / or the monitoring opportunity of a first signal is associated with X5 first objects, all the monitoring opportunities in at least one receiving opportunity of the first signal are the target monitoring opportunities for receiving the first signal, and X5 is an integer greater than or equal to 2.
[0794] If the receiving opportunity and / or the monitoring opportunity of a first signal is associated with X5 first objects, if a first signal monitoring opportunity, the target monitoring opportunity for receiving the first signal is determined according to at least one of the following: a PO index, a terminal identifier, a terminal group index, a terminal group set index, and a number of POs associated with the first signal, X6 is an integer greater than or equal to 2, and X6 is less than X5.
[0795] If one receiving opportunity and / or one listening opportunity of a first signal is associated with X5 first objects, one listening opportunity is associated with X7 terminal groups, the target listening opportunity of receiving the first signal is determined according to at least one of the following: PO index, terminal identity, terminal group index, the number of POs associated with the listening opportunity of the first signal, the number of terminal groups associated with the listening opportunity of the first signal, the number of POs associated with the receiving opportunity of the first signal, and the number of terminal groups associated with the receiving opportunity of the first signal, X7 is an integer greater than or equal to 2, X7 is less than X5 or X7 is less than the product of X5 and the number of terminal groups under one PO.
[0796] In some embodiments, in the case that at least one receiving opportunity of a first signal is associated with multiple first objects, the index of the first object associated with the target resource position of the terminal receiving the first signal is determined according to at least one of the following: terminal index, terminal group index, the number of PFs under one paging cycle, the number of POs under one PF, the value of the index of the PO under the PF, the number of POs associated with the listening opportunity of the first signal, the number of terminal groups associated with the listening opportunity of the first signal, the number of POs associated with the receiving opportunity of the first signal, and the number of terminal groups associated with the receiving opportunity of the first signal.
[0797] In some embodiments, the apparatus further comprises:
[0798] a second sending unit, configured to send sequence receiving information corresponding to the first signal to the terminal;
[0799] The sequence receiving information comprises at least one of the following:
[0800] information carried by a wake-up sequence;
[0801] structure information of the sequence;
[0802] generation information of the sequence;
[0803] waveform information.
[0804] In some embodiments, the information carried by the wake-up sequence is related to one or more of the following: terminal group index, binding terminal group index, terminal identity, PO index, PF index, and cell identity; and the information carried by the wake-up sequence satisfies at least one of the following:
[0805] terminal group-specific sequence;
[0806] terminal group set-specific sequence;
[0807] terminal group-common sequence.
[0808] In some embodiments, the structure information of the sequence comprises at least one of the following:
[0809] Single-stage sequence
[0810] Multi-stage sequence
[0811] In some embodiments, the multi-stage sequence comprises at least one of the following manners:
[0812] Each stage sequence is an independent sequence, and carries part of the wake-up information of the first signal;
[0813] The first stage sequence carries wake-up information of at least one terminal group set, and the terminal group set contains at least one terminal group, and the second stage sequence carries terminal group information of the terminal group;
[0814] The first stage sequence carries the number information of the terminal group, and the remaining at least one stage sequence carries the terminal group information of the terminal group;
[0815] The first stage sequence carries the number information of the terminal group set, and the remaining at least one stage sequence carries the terminal group set information of the terminal group set;
[0816] The first stage sequence carries at least one of the wake-up information of the terminal group, the wake-up information of the terminal group, and the next stage sequence detection information, and the second stage sequence carries the wake-up information of at least two terminal groups or the wake-up information of the terminal group set.
[0817] It should be noted that the device embodiment is one-to-one corresponding to the above-mentioned method embodiment, and all implementation manners in the above-mentioned method embodiment are applicable to the device embodiment, and the same technical effects can be achieved.
[0818] It should be noted that the division of units in the embodiments of the present disclosure is illustrative, and is only a logical function division. In actual implementation, another division manner can be used. In addition, each functional unit in each embodiment of the present disclosure can be integrated in one processing unit, or each unit can be physically present alone, or two or more units can be integrated in one unit. The integrated unit can be realized in the form of hardware or in the form of a software functional unit.
[0819] The integrated unit, if implemented in the form of a software function unit and sold or used as an independent product, can be stored in a processor-readable storage medium. Based on such an understanding, the technical solutions of the disclosure, essentially or the part that contributes to the related art, or the whole or part of the technical solutions can be embodied in the form of a software product. The computer software product is stored in a storage medium, and includes a plurality of instructions for causing a computer device (which can be a personal computer, a server, or a network device, etc.) or a processor to perform all or part of the steps of the methods described in the various embodiments of the disclosure. The aforementioned storage medium includes: a U disk, a mobile hard disk, a read-only memory (ROM), a random access memory (RAM), a magnetic disk or an optical disk, and various media that can store program codes.
[0820] As shown in FIG. 9, the embodiment of the disclosure further provides a network device, including a processor 900, a transceiver 910, a memory 920, and a program stored in the memory 920 and executable on the processor 900; wherein the transceiver 910 is connected with the processor 900 and the memory 920 through a bus interface, wherein the processor 900 is used to read the program in the memory and execute the following process: wherein the processor is used to read the computer program in the memory to execute the following operations:
[0821] sending the first signal to the terminal at a target resource position in the resource position of the at least one first signal associated with the first object, the first signal carrying the wake-up information of the terminal;
[0822] The wake-up information is used to trigger the terminal to receive a second object, and the second object includes at least one of the following: paging early indication (PEI), paging physical downlink control channel (PDCCH), physical downlink shared channel (PDSCH), paging PDSCH, physical downlink control channel (PDCCH), system information block (SIB), and synchronization signal block (SSB).
[0823] The first signal is a signal generated by a first waveform and / or a second waveform, the first waveform includes on-off keying (OOK) waveform and / or frequency shift keying (FSK) waveform, and the second waveform includes orthogonal frequency division multiplexing (OFDM) waveform.
[0824] The first object includes at least one of the following: paging opportunity (PO), paging frame (PF), at least one terminal, and discontinuous reception (DRX).
[0825] The transceiver 910 is used to receive and send data under the control of the processor 900.
[0826] In Figure 9, the bus architecture can include any number of interconnected buses and bridges, specifically, various circuitry of the one or more processors represented by the processor 900 and the memory represented by the memory 920 are linked together. The bus architecture can also link various other circuitry such as peripheral devices, voltage regulators, and power management circuitry, which are well known in the art, and thus, are not further described herein. The bus interface provides an interface. The transceiver 910 can be a plurality of elements, i.e., including a transmitter and a receiver, providing a means for communicating with various other apparatuses over transmission media, including wireless channels, wired channels, optical cables, etc. The user interface 930 can also be an interface capable of coupling to various other devices, including but not limited to a keypad, a display, a speaker, a microphone, a joystick, etc., for a user of the user equipment.
[0827] The processor 900 is responsible for managing the bus architecture and general processing, and the memory 920 can store data used by the processor 900 in performing operations.
[0828] In some embodiments, the processor 900 can be a central processing unit (CPU), an application specific integrated circuit (ASIC), a field programmable gate array (FPGA) or a complex programmable logic device (CPLD), and the processor can also adopt a multi-core architecture.
[0829] The processor executes any of the methods provided by the embodiments of the present disclosure by invoking computer program stored in the memory. The processor and the memory can also be physically arranged separately.
[0830] In some embodiments, the processor, for reading the computer program in the memory, further performs at least one of the following operations:
[0831] In at least one listening opportunity of at least one receiving opportunity of a first signal associated with a first object, determine a target resource location corresponding to a target listening opportunity of receiving the first signal.
[0832] In a plurality of candidate listening opportunities of a first signal associated with a first object, determine a target resource location corresponding to a target listening opportunity of receiving the first signal.
[0833] In some embodiments, the receiving opportunities of the first signal include resource positions corresponding to N×K listening opportunities, one resource position corresponding to one listening opportunity is associated with at least one terminal or terminal group, N is the number of beams, and K is the number of listening opportunities in one beam direction.
[0834] In some embodiments, in the case that the first object is associated with multiple receiving opportunities of the first signal, the processor is configured to read the computer program in the memory and perform at least one of the following operations:
[0835] determining an index of a target receiving opportunity in the multiple receiving opportunities, determining a resource position of the target receiving opportunity according to the index of the target receiving opportunity, and determining a target resource position corresponding to a target listening opportunity receiving the first signal in at least one listening opportunity at the resource position of the target receiving opportunity of the first signal associated with the first object.
[0836] determining an index of a target receiving opportunity and a time domain offset of the first object, determining a resource position of the target receiving opportunity according to the index of the target receiving opportunity and the time domain offset of the first object, and determining a target resource position corresponding to a target listening opportunity receiving the first signal in at least one listening opportunity at the resource position of the target receiving opportunity of the first signal associated with the first object.
[0837] In some embodiments, the processor is configured to read the computer program in the memory and perform the following operations:
[0838] determining the index of the target receiving opportunity based on a first formula.
[0839] The first formula is related to at least one of a terminal group index, a number of listening opportunities associated with different terminal groups or a terminal group set, a terminal index, a terminal group set index, a number of receiving opportunities of the first signal associated with the first object, a number of first objects associated with the receiving opportunities of the first signal, a number of first objects associated with the listening opportunities of the first signal, beam information, and a receiving opportunity index.
[0840] In some embodiments, the processor is configured to read the computer program in the memory and perform the following operations:
[0841] determining the index of the target receiving opportunity and the time domain offset of the first object based on a second formula.
[0842] The second formula is related to at least one of the following: a terminal group index, a number of monitoring opportunities associated with different terminal groups or a terminal group set, a terminal index, a terminal group set index, a number of receiving opportunities of a first signal associated with a first object, a number of first objects associated with a receiving opportunity of the first signal, a number of first objects associated with a monitoring opportunity of the first signal, beam information, and a receiving opportunity index.
[0843] In some embodiments, the first formula or the second formula includes at least one of the following:
[0844] A1 mod X3;
[0845] A1 mod X3+1;
[0846] A2 / X31;
[0847] A2 / X31-1;
[0848] A2 / X31+1;
[0849] wherein A1 represents a terminal group index, a terminal group set index, or a terminal index, X3 represents a number of monitoring opportunities associated with different terminal groups or a terminal group set, a number of receiving opportunities of a first signal associated with a first object, a number of first objects associated with a receiving opportunity of the first signal, or a number of first objects associated with a monitoring opportunity of the first signal, A2 represents a receiving opportunity index, and X31 represents a number of receiving opportunities of a first signal associated with a first object.
[0850] In some embodiments, the processor is configured to read a computer program in the memory and perform the following operations:
[0851] determine, based on configuration information, a resource location corresponding to a target monitoring opportunity for receiving the first signal from a number of N×K monitoring opportunities or at least one monitoring opportunity under at least one receiving opportunity of the first signal, N being a number of beams and K being a number of monitoring opportunities in one beam direction;
[0852] determine, from the resource location corresponding to the target monitoring opportunity among the number of N×K monitoring opportunities or at least one monitoring opportunity, a target resource location corresponding to the target monitoring opportunity for receiving the first signal;
[0853] wherein the configuration information includes at least one of the following: a time offset parameter, a resource time domain duration, a frequency domain resource location, and a waveform parameter of the first signal.
[0854] The time offset parameter is a time domain offset of a starting time domain position of at least one listening opportunity and / or at least one receiving opportunity of the first signal from a target position, and the target position comprises at least one of: an SFN or a first SFN in which the listening opportunity and / or the receiving opportunity of the first signal is located, an SFN in which the target PO is located, a time slot in which the target PO is located, a starting OFDM symbol in the time slot in which the target PO is located, an SFN in which the target PF is located;
[0855] The target PF comprises at least one of:
[0856] an SFN of a PF in which a target PO associated with the first signal is located;
[0857] an SFN of a PF in which a first PO associated with the first signal is located;
[0858] The target PO comprises one of: a PO associated with one receiving opportunity of the first signal, and at least one PO in a plurality of POs associated with one receiving opportunity of the first signal.
[0859] In some embodiments, the at least one PO in the plurality of POs associated with one receiving opportunity of the first signal comprises: a first PO in the plurality of POs associated with one receiving opportunity of the first signal.
[0860] In some embodiments, the processor is configured to read the computer program in the memory and perform the following operations:
[0861] determine, based on the time offset parameter in the configuration information, a starting receiving time domain resource position of N×K listening opportunities or at least one listening opportunity under one receiving opportunity of the first signal;
[0862] determine, according to the starting receiving time domain resource position and the time offset parameter and / or resource time domain duration in the configuration information, a resource position corresponding to the N×K listening opportunities or the at least one listening opportunity of the first signal.
[0863] In some embodiments, the processor is configured to read the computer program in the memory and perform at least one of the following operations:
[0864] determine, based on a first time offset in the time offset parameter, an SFN in which one receiving opportunity of the first signal is located, and determine, based on a second time offset in the time offset parameter, a starting receiving OFDM symbol resource position of N×K listening opportunities or at least one listening opportunity under one receiving opportunity of the first signal;
[0865] determine, based on at least one third time offset in the time offset parameter, a starting receiving OFDM symbol resource position corresponding to the N×K listening opportunities or the at least one listening opportunity under one receiving opportunity of the first signal.
[0866] In some embodiments, the first time offset is a time domain offset of a SFN or a first SFN where at least one receiving opportunity or at least one listening opportunity of the first signal is located from the target PF.
[0867] In some embodiments, the processor, configured to read the computer program in the memory, further performs the following operations:
[0868] If multiple candidate first time offsets are included in the configuration information, the used first time offset is determined according to at least one of the following: terminal identity, terminal group set identity, terminal group identity, PO index, PF index, and number of terminal groups associated with resource location.
[0869] In some embodiments, the processor, configured to read the computer program in the memory, further performs at least one of the following operations:
[0870] Based on the first SFN where the first signal is located as a reference point, the starting receiving OFDM symbol resource location of the N×K listening opportunities or at least one listening opportunity under one receiving opportunity of the first signal is determined according to the second time offset and resource time domain duration.
[0871] The second time offset includes at least one configuration value, and based on the first SFN where the first signal is located as a reference point, the starting receiving OFDM symbol resource location of the N×K listening opportunities or at least one listening opportunity of the first signal is determined according to the second time offset.
[0872] In some embodiments, the processor, configured to read the computer program in the memory, further performs at least one of the following operations:
[0873] According to the first information, the index of the first listening opportunity of one beam direction under the target listening opportunity is determined, the indexes of the other listening opportunities except the first listening opportunity in the target listening opportunity are determined in sequence based on N and / or K, the resource location corresponding to the index is determined as the target resource location, and the first information includes at least one of the following: one resource location, number of terminal groups associated with the first signal, terminal group set index, terminal group index, number of listening opportunities of different wake-up information transmitted under one beam, and number of listening opportunities of same wake-up information transmitted under one beam.
[0874] According to the second information, an index of a first listening opportunity in the target listening opportunity is determined, indexes of other listening opportunities in the target listening opportunity except the first listening opportunity are determined in turn based on the beam index, the terminal group set index, the terminal group index and N, a resource position corresponding to the index is determined as the target resource position, and the second information includes at least one of the following: one resource position, the number of terminal groups associated with the first signal, and the terminal group index;
[0875] According to the third information, an index of a target listening opportunity in different beam directions under the first signal is determined, and a resource position corresponding to the index is determined as the target resource position. The third information includes at least one of the following: the terminal group index, the terminal group set index, one resource position, the number of terminal groups associated with the first signal, the number of terminal groups associated with one listening opportunity, the number of terminal groups associated with one receiving opportunity, N, K, and the number of listening opportunities under one beam for transmitting the same wake-up information.
[0876] In some embodiments, in the case that one receiving opportunity of a first signal is associated with multiple first objects, the processor is configured to read the computer program in the memory and perform at least one of the following operations:
[0877] If one receiving opportunity and / or one listening opportunity of a first signal is associated with X5 first objects, all listening opportunities in at least one receiving opportunity of the first signal are target listening opportunities for receiving the first signal, and X5 is an integer greater than or equal to 2;
[0878] If one receiving opportunity and / or one listening opportunity of a first signal is associated with X5 first objects, one listening opportunity of the first signal is associated with X6 POs, and a target listening opportunity for receiving the first signal is determined according to at least one of the following: the PO index, the terminal identifier, the terminal group index, the terminal group set index, and the number of POs associated with the first signal, X6 is an integer greater than or equal to 2, and X6 is less than X5;
[0879] If one receiving opportunity and / or one listening opportunity of a first signal is associated with X5 first objects, one listening opportunity is associated with X7 terminal groups, and a target listening opportunity for receiving the first signal is determined according to at least one of the following: the PO index, the terminal identifier, the terminal group index, the number of POs associated with the listening opportunity of the first signal, the number of terminal groups associated with the listening opportunity of the first signal, the number of POs associated with the receiving opportunity of the first signal, and the number of terminal groups associated with the receiving opportunity of the first signal, X7 is an integer greater than or equal to 2, and X7 is less than X5 or X7 is less than the product of X5 and the number of terminal groups under one PO.
[0880] In some embodiments, in the case that a plurality of first objects are associated with at least one receiving opportunity of a first signal, an index of a first object associated with a target resource position of the first signal received by the terminal is determined by at least one of a terminal index, a terminal group index, a number of PFs in a paging cycle, a number of POs in a PF, a value of a PF index, a number of POs associated with a monitoring opportunity of the first signal, a number of terminal groups associated with a monitoring opportunity of the first signal, a number of POs associated with a receiving opportunity of the first signal, and a number of terminal groups associated with a receiving opportunity of the first signal.
[0881] In some embodiments, the processor configured to read the computer program in the memory is further configured to perform the following operations:
[0882] send sequence receiving information corresponding to the first signal to the terminal;
[0883] The sequence receiving information includes at least one of the following:
[0884] information carried by a wake-up sequence;
[0885] structure information of the sequence;
[0886] generation information of the sequence;
[0887] waveform information.
[0888] In some embodiments, the information carried by the wake-up sequence is related to one or more of a terminal group index, a bound terminal group index, a terminal identifier, a PO index, a PF index, and a cell identifier; and the information carried by the wake-up sequence satisfies at least one of the following:
[0889] a terminal group-specific sequence;
[0890] a terminal group set-specific sequence;
[0891] a terminal group-common specific sequence.
[0892] In some embodiments, the structure information of the sequence includes at least one of the following:
[0893] a single-level sequence;
[0894] a multi-level sequence.
[0895] In some embodiments, the multi-level sequence includes at least one of the following:
[0896] each level sequence is an independent sequence carrying part of the wake-up information of the first signal;
[0897] a first level sequence carries wake-up information of at least one terminal group set, and a second level sequence carries terminal group information for waking up a terminal group within the terminal group set.
[0898] The first sequence carries the number information of the terminal group to be woken up, and the rest of the at least one sequence carries the terminal group information to be woken up.
[0899] The first sequence carries the number information of the terminal group set to be woken up, and the rest of the at least one sequence carries the terminal group set information to be woken up.
[0900] The first sequence carries at least one of the wake-up information of a terminal group, the wake-up information common to terminal groups, and the next sequence detection information, and the second sequence carries the wake-up information of at least two terminal groups or the wake-up information of a terminal group set.
[0901] It should be noted that the network device provided by the embodiments of the present disclosure can realize all the method steps achieved by the method embodiments and achieve the same technical effects. Therefore, the same parts and beneficial effects of the method embodiments will not be described in detail.
[0902] The embodiments of the present disclosure also provide a computer readable storage medium having a computer program stored thereon, wherein the computer program is executed by a processor to implement the steps of the wake-up information transmission method applied to a network device. The processor readable storage medium can be any available medium or data storage device that the processor can access, including but not limited to a magnetic memory (such as a floppy disk, a hard disk, a magnetic tape, a magneto-optical disk (MO), etc.), an optical memory (such as a CD, a DVD, a BD, a HVD, etc.), and a semiconductor memory (such as a ROM, an EPROM, an EEPROM, a non-volatile memory (NAND FLASH), a solid state disk (SSD), etc.).
[0903] The embodiments of the present disclosure also provide a computer program product including computer instructions, which, when executed by a processor, implement the various processes in the above method embodiments and achieve the same technical effects. To avoid repetition, details will not be described here.
[0904] Those skilled in the art should understand that the embodiments of the present disclosure can be provided as a method, a system, or a computer program product. Therefore, the present disclosure can take the form of an entirely hardware embodiment, an entirely software embodiment, or an embodiment combining software and hardware aspects. Moreover, the present disclosure can take the form of a computer program product implemented on one or more computer usable storage media (including but not limited to magnetic disk storage and optical storage, etc.) containing computer usable program code.
[0905] The computer executable instructions can also be loaded onto a computer or other programmable data processing apparatus to cause a series of operations steps to be performed on the computer or other programmable apparatus to produce a computer implemented process such that the instructions which execute on the computer or other programmable apparatus provide steps for implementing the functions specified in the flowchart block or blocks.
[0906] These processor-executable instructions can also be stored in a processor-readable memory that can direct the computer or other programmable data processing apparatus to function in a particular manner, such that the instructions stored in the processor-readable memory produce an article of manufacture including instructions which implement the function specified in the flowchart block or blocks.
[0907] These processor-executable instructions can also be loaded onto a computer or other programmable data processing apparatus to cause a series of operations steps to be performed on the computer or other programmable apparatus to produce a computer implemented process such that the instructions which execute on the computer or other programmable apparatus provide steps for implementing the functions specified in the flowchart block or blocks.
[0908] Further, it is indicated that in the apparatus and method of the present disclosure, it is obvious that each component or each step can be decomposed and / or recombined. These decompositions and / or recombinations should be considered as equivalent solutions of the present disclosure. Moreover, the steps of performing the above series of processes can naturally be executed in time sequence according to the order of description, but it is not necessary to be executed in time sequence, and certain steps can be executed in parallel or independently of each other. It can be understood by those skilled in the art that all or any steps or components of the method and apparatus of the present disclosure can be implemented in hardware, firmware, software or a combination thereof in any computing device (including processors, storage media, etc.) or network of computing devices, which can be realized by those skilled in the art with their basic programming skills after reading the description of the present disclosure.
[0909] It should be noted that the division of the above modules is only a logical functional division, and all or part of them can be integrated into a physical entity or physically separated in actual implementation. These modules can all be implemented in the form of software called by a processing element; all can be implemented in the form of hardware; or some modules can be implemented in the form of software called by a processing element, and some modules can be implemented in the form of hardware. For example, a certain module can be a separately established processing element, or can be integrated into a certain chip of the above device, in addition, it can also be stored in the form of program code in the memory of the above device, and the function of the above determination module is called and executed by a certain processing element of the above device. The implementation of other modules is similar. In addition, all or part of these modules can be integrated together or independently implemented. The processing element described herein can be an integrated circuit with signal processing capability. In the implementation process, each step of the above method or each module can be completed by the integrated logic circuit of the hardware in the processor element or the instruction in the form of software.
[0910] For example, each module, unit, sub-unit or sub-module can be one or more integrated circuits configured to implement the above method, such as one or more application specific integrated circuits (ASICs), or one or more digital signal processors (DSPs), or one or more field programmable gate arrays (FPGAs), etc. For another example, when a certain module above is implemented in the form of program code called by a processing element, the processing element can be a general purpose processor, such as a central processing unit (CPU) or other processor that can call program code. For another example, these modules can be integrated together to implement in the form of system on a chip (SOC).
[0911] The terms “first,” “second,” etc., used in this disclosure and in the claims are used to distinguish similar objects and are not necessarily used to describe a specific order or sequence. It should be understood that such data can be interchanged where appropriate so that embodiments of this disclosure described herein may be implemented in orders other than those illustrated or described herein. Furthermore, the terms “comprising” and “having,” and any variations thereof, are intended to cover non-exclusive inclusion; for example, a process, method, system, product, or apparatus that comprises a series of steps or units is not necessarily limited to those steps or units explicitly listed, but may include other steps or units not explicitly listed or inherent to such processes, methods, products, or apparatus. Additionally, the use of “and / or” in the specification and claims indicates at least one of the connected objects, such as A and / or B and / or C, indicating seven possibilities: A alone, B alone, C alone, and both A and B, both B and C, both A and C, and A, B, and C. Similarly, the use of “at least one of A and B” in this specification and claims should be understood as “A alone, B alone, or both A and B.”
[0912] Obviously, those skilled in the art can make various modifications and variations to this disclosure without departing from its spirit and scope. Therefore, if such modifications and variations fall within the scope of the claims of this disclosure and their equivalents, this disclosure is also intended to include such modifications and variations.
Claims
A method for obtaining wake-up information, applied to a terminal, the method comprising: determining a target resource position in at least one resource position of a first signal associated with a first object; receiving the first signal at the target resource position; obtaining wake-up information of the terminal according to the received first signal; wherein the wake-up information is used to trigger the terminal to receive a second object, the second object comprising at least one of the following: paging early indication (PEI), paging physical downlink control channel (PDCCH), physical downlink shared channel (PDSCH), paging PDSCH, physical downlink control channel (PDCCH), system information block (SIB), synchronization signal block (SSB); the first signal is a signal generated by a first waveform and / or a second waveform, the first waveform comprising on-off keying (OOK) waveform and / or frequency shift keying (FSK) waveform, and the second waveform comprising orthogonal frequency division multiplexing (OFDM) waveform; the first object comprises at least one of the following: paging opportunity (PO), paging frame (PF), at least one terminal, discontinuous reception (DRX). The method of claim 1, wherein, The determination of the target resource position in at least one resource position of the first signal associated with the first object comprises at least one of the following: determining, in at least one listening opportunity under at least one receiving opportunity of the first signal associated with the first object, a resource position corresponding to a target listening opportunity for receiving the first signal as the target resource position; determining, in a plurality of candidate listening opportunities of the first signal associated with the first object, a resource position corresponding to a target listening opportunity for receiving the first signal as the target resource position. The method of claim 2, wherein, The receiving opportunity of the first signal comprises resource positions corresponding to N×K listening opportunities, and a resource position corresponding to one listening opportunity is associated with at least one terminal or terminal group, N is the number of beams, and K is the number of listening opportunities in one beam direction. The method of claim 2, wherein, In the case of a plurality of receiving opportunities of the first signal associated with the first object, the determination of the resource position corresponding to the target listening opportunity for receiving the first signal as the target resource position comprises at least one of the following: determining an index of a target receiving opportunity in the plurality of receiving opportunities, determining a resource position of the target receiving opportunity according to the index of the target receiving opportunity, and determining a resource position corresponding to a target listening opportunity for receiving the first signal as the target resource position in at least one listening opportunity under the target resource position of the first signal associated with the first object; determining an index of a time domain offset between a target receiving opportunity in the plurality of receiving opportunities and the first object, determining a resource position of the target receiving opportunity according to the index of the time domain offset between the target receiving opportunity and the first object, and determining a resource position corresponding to a target listening opportunity for receiving the first signal as the target resource position in at least one listening opportunity under the target resource position of the first signal associated with the first object. The method of claim 4, wherein, The determination of the index of the target receiving opportunity in the plurality of receiving opportunities comprises: determining the index of the target receiving opportunity based on a first formula; wherein the first formula is related to a terminal group index, a number of listening opportunities associated with different terminal groups or a terminal group set, a terminal index, at least one of the following: a terminal group set index, a number of reception opportunities of the first signal associated with the first object, a number of first objects associated with the reception opportunities of the first signal, at least one of the following: a number of first objects associated with the monitoring opportunities of the first signal, beam information, and a reception opportunity index. The method of claim 4, wherein, The index of the time domain offset of the target reception opportunity in the plurality of reception opportunities and the first object is determined based on a second formula. The index of the time domain offset of the target reception opportunity in the plurality of reception opportunities and the first object is determined based on a second formula. The second formula is related to at least one of the following: a terminal group index, a number of monitoring opportunities associated with different terminal groups or terminal group sets, a terminal index, a terminal group set index, a number of reception opportunities of the first signal associated with the first object, a number of first objects associated with the reception opportunities of the first signal, a number of first objects associated with the monitoring opportunities of the first signal, beam information, and a reception opportunity index. The method according to claim 5 or 6, wherein The first formula or the second formula includes at least one of the following: A1 mod X3; A1 mod X3+1; A2 / X31; A2 / X31-1; A2 / X31+1; wherein A1 represents a terminal group index, a terminal group set index, or a terminal index, X3 represents a number of monitoring opportunities associated with different terminal groups or terminal group sets, a number of reception opportunities of the first signal associated with the first object, a number of first objects associated with the reception opportunities of the first signal, or a number of first objects associated with the monitoring opportunities of the first signal, A2 represents a reception opportunity index, and X31 represents a number of reception opportunities of the first signal associated with the first object. The method according to any one of claims 2-7, wherein, The resource location corresponding to the target monitoring opportunity for receiving the first signal is determined as the target resource location. The resource location corresponding to the target monitoring opportunity for receiving the first signal is determined as the target resource location. The configuration information includes at least one of the following: a time offset parameter, a resource time domain duration, a frequency domain resource location, and a waveform parameter of the first signal. The time offset parameter is a time domain offset of a starting time domain location of at least one monitoring opportunity and / or at least one reception opportunity of the first signal from a target location, and the target location includes at least one of the following: an SFN or a first SFN at which the monitoring opportunity and / or the reception opportunity of the first signal is located, an SFN at which a target PO is located, a time slot at which the target PO is located, a starting OFDM symbol in the time slot at which the target PO is located, and an SFN at which a target PF is located. The target PF includes at least one of the following: an SFN of a PF at which a target PO associated with the first signal is located; an SFN of a PF at which a first PO associated with the first signal is located; The target PO includes at least one of the following: a PO associated with one reception opportunity of the first signal, and at least one PO in a plurality of POs associated with one reception opportunity of the first signal. The method of claim 8, wherein, The at least one PO in the plurality of POs associated with one receiving opportunity of the first signal comprises a first PO in the plurality of POs associated with one receiving opportunity of the first signal. The method of claim 8, wherein, The determining, based on the configuration information, of resource positions corresponding to the N×K monitoring opportunities or the at least one monitoring opportunity in one receiving opportunity of the first signal comprises: The determining, based on the time offset parameter in the configuration information, of a starting receiving time domain resource position of the N×K monitoring opportunities or the at least one monitoring opportunity in one receiving opportunity of the first signal comprises at least one of: The determining, based on the time offset parameter in the configuration information, of a starting receiving time domain resource position of the N×K monitoring opportunities or the at least one monitoring opportunity in one receiving opportunity of the first signal comprises at least one of: The method of claim 10, wherein, The determining, based on the time offset parameter in the configuration information, of a starting receiving time domain resource position of the N×K monitoring opportunities or the at least one monitoring opportunity in one receiving opportunity of the first signal comprises at least one of: The determining, based on the time offset parameter in the configuration information, of a starting receiving time domain resource position of the N×K monitoring opportunities or the at least one monitoring opportunity in one receiving opportunity of the first signal comprises at least one of: The method of claim 11, further comprising: The method of claim 11, wherein, If a plurality of candidate first time offsets are included in the configuration information, determining the used first time offset according to at least one of a terminal identifier, a terminal group set identifier, a terminal group identifier, a PO index, a PF index, and a number of terminal groups associated with a resource position. The determining, based on the second time offset in the time offset parameter, of a starting receiving OFDM symbol resource position of the N×K monitoring opportunities or the at least one monitoring opportunity in one receiving opportunity of the first signal comprises at least one of: The determining, based on the second time offset in the time offset parameter, of a starting receiving OFDM symbol resource position of the N×K monitoring opportunities or the at least one monitoring opportunity in one receiving opportunity of the first signal comprises at least one of: The method of claim 11, wherein, The determining, based on the second time offset in the time offset parameter, of a starting receiving OFDM symbol resource position of the N×K monitoring opportunities or the at least one monitoring opportunity in one receiving opportunity of the first signal comprises at least one of: The determining, based on the second time offset in the time offset parameter, of a starting receiving OFDM symbol resource position of the N×K monitoring opportunities or the at least one monitoring opportunity in one receiving opportunity of the first signal comprises at least one of: The determining, based on the second time offset in the time offset parameter, of a starting receiving OFDM symbol resource position of the N×K monitoring opportunities or the at least one monitoring opportunity in one receiving opportunity of the first signal comprises at least one of: The method of claim 8, wherein, According to the first information, the index of the first listening opportunity of the target listening opportunity in the next beam direction is determined, the indexes of the other listening opportunities in the target listening opportunity except the first listening opportunity are determined in sequence based on N and / or K, the resource position corresponding to the index is determined as the target resource position, and the first information includes at least one of the following: one resource position or the number of terminal groups associated with the first signal, terminal group set index, terminal group index, the number of listening opportunities for transmitting different wake-up information in one beam, and the number of listening opportunities for transmitting the same wake-up information in one beam. According to the second information, the index of the first listening opportunity in the target listening opportunity is determined, the indexes of the other listening opportunities in the target listening opportunity except the first listening opportunity are determined in sequence based on the beam index, the terminal group set index, the terminal group index, and N, and the resource position corresponding to the index is determined as the target resource position. The second information includes at least one of the following: one resource position or the number of terminal groups associated with the first signal, and terminal group index. According to the third information, the index of the target listening opportunity in different beam directions of the first signal is determined, and the resource position corresponding to the index is determined as the target resource position. The third information includes at least one of the following: terminal group index, terminal group set index, one resource position or the number of terminal groups associated with the first signal, the number of terminal groups associated with one listening opportunity, the number of terminal groups associated with one receiving opportunity, N, K, and the number of listening opportunities for transmitting the same wake-up information in one beam. The method of claim 2, wherein, In the case that at least one receiving opportunity of a first signal is associated with multiple first objects, the target listening opportunity for receiving the first signal is determined, including at least one of the following: If the receiving opportunity and / or the listening opportunity of one first signal is associated with X5 first objects, all the listening opportunities in at least one receiving opportunity of the first signal are the target listening opportunities for receiving the first signal, X5 is an integer greater than or equal to 2; If the receiving opportunity and / or the listening opportunity of one first signal is associated with X5 first objects, if one first signal listening opportunity, the target listening opportunity for receiving the first signal is determined according to at least one of the following: PO index, terminal identifier, terminal group index, terminal group set index, and the number of POs associated with the first signal, X6 is an integer greater than or equal to 2, and X6 is less than X5; If the receiving opportunity and / or the listening opportunity of one first signal is associated with X5 first objects, one listening opportunity is associated with X7 terminal groups, and the target listening opportunity for receiving the first signal is determined according to at least one of the following: PO index, terminal identifier, terminal group index, the number of POs associated with the first signal listening opportunity, the number of terminal groups associated with the first signal listening opportunity, the number of POs associated with the first signal receiving opportunity, and the number of terminal groups associated with the first signal receiving opportunity, X7 is an integer greater than or equal to 2, X7 is less than X5, or X7 is less than the product of X5 and the number of terminal groups in one PO. The method of claim 2, wherein, In a case that a plurality of first objects are associated with at least one receiving opportunity of a first signal, an index of a first object associated with a target resource position of a first signal received by a terminal is determined by at least one of a terminal index, a terminal group index, a number of PFs in a paging cycle, a number of POs in a PF, a value of an index of a PO in a PF, a number of POs associated with a monitoring opportunity of a first signal, a number of terminal groups associated with a monitoring opportunity of a first signal, a number of POs associated with a receiving opportunity of a first signal, and a number of terminal groups associated with a receiving opportunity of a first signal. The method of claim 1, wherein, The method further includes: obtaining, according to the first signal, wake-up information of the terminal. The method further includes: decoding the first signal according to sequence receiving information corresponding to the first signal to obtain the wake-up information of the terminal. The sequence receiving information includes at least one of: wake-up sequence information, sequence structure information, sequence generation information, and waveform information. The wake-up sequence information is related to one or more of a terminal group index, a binding terminal group index, a terminal identifier, a PO index, a PF index, and a cell identifier. The wake-up sequence information satisfies at least one of: a terminal group-specific sequence, a terminal group set-specific sequence, and a terminal group-common sequence. The sequence structure information includes at least one of: a single-level sequence and a multi-level sequence. The multi-level sequence includes at least one of: a first-level sequence carrying part of the wake-up information of the first signal, a first-level sequence carrying wake-up information of at least one terminal group set, a second-level sequence carrying wake-up information of a terminal group in the terminal group set, a first-level sequence carrying a number of terminal groups to be woken up, a remaining at least one sequence carrying wake-up information of the terminal groups, a first-level sequence carrying a number of terminal group sets to be woken up, a remaining at least one sequence carrying wake-up information of the terminal group sets, a first-level sequence carrying at least one of wake-up information of a terminal group, wake-up information common to the terminal group, and detection information of a next-level sequence, and a second-level sequence carrying wake-up information of at least two terminal groups or wake-up information of a terminal group set. The method of claim 18, wherein, A method for transmitting wake-up information, applied to a network device, includes: sending, to a terminal, a first signal at a target resource position in at least one resource position of a first object associated with the first signal, the first signal carrying wake-up information of the terminal; The wake-up information is used to trigger the terminal to receive a second object, and the second object includes at least one of: a paging early indication (PEI), a paging physical downlink control channel (PDCCH), a physical downlink shared channel (PDSCH), a paging PDSCH, a physical downlink control channel (PDCCH), a system information block (SIB), and a synchronization signal block (SSB). The first signal is a signal generated by a first waveform and / or a second waveform, the first waveform includes an on-off keying (OOK) waveform and / or a frequency shift keying (FSK) waveform, and the second waveform includes an orthogonal frequency division multiplexing (OFDM) waveform. The method of claim 18, wherein, The method of claim 20, wherein, The first object comprises at least one of the following: a paging opportunity (PO), a paging frame (PF), at least one terminal, and discontinuous reception (DRX). The method of claim 22, further comprising at least one of the following: In at least one monitoring opportunity under a first signal receiving opportunity associated with a first object, determining a target resource position corresponding to a target monitoring opportunity for receiving the first signal as the target resource position; In a plurality of candidate monitoring opportunities of a first signal associated with a first object, determining a target resource position corresponding to a target monitoring opportunity for receiving the first signal as the target resource position. The method of claim 23, wherein, The receiving opportunity of the first signal comprises resource positions corresponding to N×K monitoring opportunities, a resource position corresponding to a monitoring opportunity is associated with at least one terminal or terminal group, N is the number of beams, and K is the number of monitoring opportunities in a beam direction. The method of claim 23, wherein, In the case where the first signal associated with the first object has a plurality of receiving opportunities, the determination of the target resource position corresponding to the target monitoring opportunity for receiving the first signal as the target resource position comprises at least one of the following: determining the index of the target receiving opportunity in the plurality of receiving opportunities, determining the resource position of the target receiving opportunity according to the index of the target receiving opportunity, and determining the target resource position corresponding to the target monitoring opportunity for receiving the first signal as the target resource position in at least one monitoring opportunity under the target resource position of the first signal associated with the first object; determining the index of the time domain offset of the target receiving opportunity in the plurality of receiving opportunities and the first object, determining the resource position of the target receiving opportunity according to the index of the time domain offset of the target receiving opportunity and the first object, and determining the target resource position corresponding to the target monitoring opportunity for receiving the first signal as the target resource position in at least one monitoring opportunity under the target resource position of the first signal associated with the first object. The method of claim 25, wherein, The determination of the index of the target receiving opportunity in the plurality of receiving opportunities comprises: determining the index of the target receiving opportunity based on a first formula; wherein the first formula is related to at least one of the following: a terminal group index, the number of monitoring opportunities associated with different terminal groups or a terminal group set, a terminal index, a terminal group set index, the number of receiving opportunities of the first signal associated with the first object, the number of first objects associated with the receiving opportunities of the first signal, the number of first objects associated with the monitoring opportunities of the first signal, beam information, and a receiving opportunity index. The determination of the index of the time domain offset of the target receiving opportunity in the plurality of receiving opportunities and the first object comprises: determining the index of the time domain offset of the target receiving opportunity and the first object based on a second formula; The method of claim 25, wherein, wherein the second formula is related to at least one of the following: a terminal group index, the number of monitoring opportunities associated with different terminal groups or a terminal group set, a terminal index, a terminal group set index, the number of receiving opportunities of the first signal associated with the first object, the number of first objects associated with the receiving opportunities of the first signal, the number of first objects associated with the monitoring opportunities of the first signal, beam information, and a receiving opportunity index. The first formula or the second formula comprises at least one of the following: A1 mod X3; The method of claim 26 or 27, wherein, A2 / X31; A2 / X31-1; A1 mod X3+1; A2 / X31+1; A1, X3, A2, X31, A3, X32, A4, X33, A5, X34, A6, X35, A7, X36, A8, X37, A9, X38, A10, X39, A11, X3 1, A12, X3 2, A13, X3 3, A14, X3 4, A15, X3 5, A16, X3 6, A17, X3 7, A18, X3 8, A19, X3 9, A20, X3 10, A21, X3 1 1, A22, X3 1 2, A23, X3 1 3, A24, X3 1 4, A25, X3 1 5, A26, X3 1 6, A27, X3 1 7, A28, X3 1 8, A29, X3 1 9, A30, X3 20, A31, X3 21, A32, X3 22, A33, X3 23, A34, X3 24, A35, X3 25, A36, X3 26, A37, X3 27, A38, X3 28, A39, X3 29, A40, X3 30, A41, X3 31, A42, X3 32, A43, X3 33, A44, X3 34, A45, X3 35, A46, X3 36, A47, X3 37, A48, X3 38, A49, X3 39, A50, X3 40, A51, X3 41, A52, X3 42, A53, X3 43, A54, X3 44, A55, X3 45, A56, X3 46, A57, X3 47, A58, X3 48, A59, X3 49, A60, X3 50, A61, X3 51, A62, X3 52, A63, X3 53, A64, X3 54, A65, X3 55, A66, X3 56, A67, X3 57, A68, X3 58, A69, X3 59, A70, X3 60, A71, X3 61, A72, X3 62, A73, X3 63, A74, X3 64, A75, X3 65, A76, X3 66, A77, X3 67, A78, X3 68, A79, X3 69, A80, X3 70, A81, X3 71, A82, X3 72, A83, X3 73, A84, X3 74, A85, X3 75, A86, X3 76, A87, X3 77, A88, X3 78, A89, X3 79, A90, X3 80, A91, X3 81, A92, X3 82, A93, X3 83, A94, X3 84, A95, X3 85, A96, X3 86, A97, X3 87, A98, X3 88, A99, X3 89, A100, X3 90, A101, X3 91, A102, X3 92, A103, X3 93, A104, X3 94, A105, X3 95, A106, X3 96, A107, X3 97, A108, X3 98, A109, X3 99, A110, X3 100, A111, X3 101, A112, X3 102, A113, X3 103, A114, X3 104, A115, X3 105, A116, X3 106, A117, X3 107, A118, X3 108, A119, X3 109, A120, X3 110, A121, X3 111, A122, X3 112, A123, X3 113, A124, X3 114, A125, X3 115, A126, X3 116, A127, X3 117, A128, X3 118, A129, X3 119, A130, X3 120, A131, X3 121, A132, X3 122, A133, X3 123, A134, X3 124, A135, X3 125, A136, X3 126, A137, X3 127, A138, X3 128, A139, X3 129, A140, X3 130, A141, X3 131, A142, X3 132, A143, X3 133, A144, X3 134, A145, X3 135, A146, X3 136, A147, X3 137, A148, X3 138, A149, X3 139, A150, X3 140, A151, X3 141, A152, X3 142, A153, X3 143, A154, X3 144, A155, X3 145, A156, X3 146, A157, X3 147, A158, X3 148, A159, X3 149, A160, X3 150, A161, X3 151, A162, X3 152, A163, X3 153, A164, X3 154, A165, X3 155, A166, X3 156, A167, X3 157, A168, X3 158, A169, X3 159, A170, X3 160, A171, X3 161, A172, X3 162, A173, X3 163, A174, X3 164, A175, X3 165, A176, X3 166, A177, X3 167, A178, X3 168, A179, X3 169, A180, X3 170, A181, X3 171, A182, X3 172, A183, X3 173, A184, X3 174, A185, X3 175, A186, X3 176, A187, X3 177, A188, X3 178, A189, X3 179, A190, X3 180, A191, X3 181, A192, X3 182, A193, X3 183, A194, X3 184, A195, X3 185, A196, X3 186, A197, X3 187, A198, X3 188, A199, X3 189, A200, X3 190, A201, X3 191, A202, X3 192, A203, X3 193, A204, X3 194, A205, X3 195, A206, X3 196, A207, X3 197, A208, X3 198, A209, X3 199, A210, X3 200, A211, X3 201, A212, X3 202, A213, X3 203, A214, X3 204, A215, X3 205, A216, X3 206, A217, X3 207, A218, X3 208, A219, X3 209, A220, X3 210, A221, X3 211, A222, X3 212, A223, X3 213, A224, X3 214, A225, X3 215, A226, X3 216, A227, X3 217, A228, X3 218, A229, X3 219, A230, X3 220, A231, X3 221, A232, X3 222, A233, X3 223, A234, X3 224, A235, X3 225, A236, X3 226, A237, X3 227, A238, X3 228, A239, X3 229, A240, X3 230, A241, X3 231, A242, X3 232, A243, X3 233, A244, X3 234, A245, X3 235, A246, X3 236, A247, X3 237, A248, X3 238, A249, X3 239, A250, X3 240, A251, X3 241, A252, X3 242, A253, X3 243, A254, X3 244, A255, X3 245, A256, X3 246, A257 The method of any one of claims 23-28, wherein, The method of claim 29, wherein, The method of claim 29, wherein, The method of claim 31, wherein, determining, based on a first time offset in the time offset parameter, a SFN in which one receiving opportunity of the first signal is located, and determining, based on a second time offset in the time offset parameter, a starting receiving OFDM symbol resource position of N×K monitoring opportunities or at least one monitoring opportunity in one receiving opportunity of the first signal; determining, based on at least one third time offset in the time offset parameter, a starting receiving OFDM symbol resource position corresponding to the N×K monitoring opportunities or at least one monitoring opportunity in one receiving opportunity of the first signal. The method of claim 32, wherein, The first time offset is a time domain offset of a SFN or a first SFN in which at least one receiving opportunity or at least one monitoring opportunity of the first signal is located from a target PF. The method of claim 32, further comprising: if a plurality of candidate first time offsets are included in the configuration information, determining the used first time offset according to at least one of a terminal identifier, a terminal group set identifier, a terminal group identifier, a PO index, a PF index, and a number of terminal groups associated with a resource position. The method of claim 32, wherein, determining, based on a second time offset in the time offset parameter, a starting receiving OFDM symbol resource position of N×K monitoring opportunities or at least one monitoring opportunity in one receiving opportunity of the first signal, including at least one of: based on a first SFN in which the first signal is located as a reference point, sequentially determining, according to the second time offset and a resource time domain duration, the starting receiving OFDM symbol resource position of the N×K monitoring opportunities or at least one monitoring opportunity in one receiving opportunity of the first signal; the second time offset includes at least one configuration value, and based on a first SFN in which the first signal is located as a reference point, the starting receiving OFDM symbol resource position of the N×K monitoring opportunities or at least one monitoring opportunity of the first signal is determined according to the second time offset. The method of claim 29, wherein, The determining, in the resource position corresponding to the N×K monitoring opportunities or at least one monitoring opportunity, of a target resource position corresponding to a target monitoring opportunity in which the first signal is received, includes at least one of: determining, according to first information, an index of a first monitoring opportunity in one beam direction under the target monitoring opportunity, sequentially determining, based on N and / or K, indices of other monitoring opportunities in the target monitoring opportunity except the first monitoring opportunity, and determining, as the target resource position, a resource position corresponding to the index, the first information including at least one of: a number of terminal groups associated with the first signal, a terminal group set index, a terminal group index, a number of monitoring opportunities in which different wake-up information is transmitted under one beam, and a number of monitoring opportunities in which same wake-up information is transmitted under one beam; determining, according to second information, an index of the first monitoring opportunity in the target monitoring opportunity, sequentially determining, based on a beam index, a terminal group set index, a terminal group index, and N, indices of other monitoring opportunities in the target monitoring opportunity except the first monitoring opportunity, and determining, as the target resource position, a resource position corresponding to the index, the second information including at least one of: a number of terminal groups associated with the first signal and a terminal group index. According to the third information, an index of a target monitoring opportunity of the target in different beam directions of the first signal is determined, a resource position corresponding to the index is determined as a target resource position, and the third information includes at least one of the following: a terminal group index, a terminal group set index, a number of terminal groups associated with one resource position, a number of terminal groups associated with one monitoring opportunity, a number of terminal groups associated with one receiving opportunity, N, K, a number of monitoring opportunities of one beam transmitting the same wake-up information. The method of claim 23, wherein, In the case that a plurality of first objects are associated with at least one receiving opportunity of a first signal, a target monitoring opportunity for receiving the first signal is determined, including at least one of the following: If X5 first objects are associated with a receiving opportunity and / or a monitoring opportunity of one first signal, all monitoring opportunities in at least one receiving opportunity of the first signal are target monitoring opportunities for receiving the first signal, and X5 is an integer greater than or equal to 2; If X5 first objects are associated with a receiving opportunity and / or a monitoring opportunity of one first signal, if one first signal monitoring opportunity, a target monitoring opportunity for receiving the first signal is determined according to at least one of the following: a PO index, a terminal identifier, a terminal group index, a terminal group set index, and a number of POs associated with the first signal, X6 is an integer greater than or equal to 2, and X6 is less than X5; If X5 first objects are associated with a receiving opportunity and / or a monitoring opportunity of one first signal, X7 terminal groups are associated with one monitoring opportunity, and a target monitoring opportunity for receiving the first signal is determined according to at least one of the following: a PO index, a terminal identifier, a terminal group index, a number of POs associated with the first signal monitoring opportunity, a number of terminal groups associated with the first signal monitoring opportunity, a number of POs associated with the first signal receiving opportunity, and a number of terminal groups associated with the first signal receiving opportunity, X7 is an integer greater than or equal to 2, X7 is less than X5, or X7 is less than the product of X5 and a number of terminal groups under one PO. The method of claim 23, wherein, In the case that a plurality of first objects are associated with at least one receiving opportunity of a first signal, an index of a first object associated with a target resource position of the terminal receiving the first signal is determined according to at least one of the following: a terminal index, a terminal group index, a number of PFs under one paging cycle, a number of POs under one PF, a value of an index of a PO under a PF, a number of POs associated with a first signal monitoring opportunity, a number of terminal groups associated with a first signal monitoring opportunity, a number of POs associated with a first signal receiving opportunity, and a number of terminal groups associated with a first signal receiving opportunity. The method of claim 22, further comprising: sending sequence reception information corresponding to the first signal to the terminal; wherein the sequence reception information includes at least one of the following: information carried by a wake-up sequence; structure information of a sequence; generation information of a sequence; waveform information. The method of claim 39, wherein, The information carried by the wake-up sequence is related to one or more of the following: a terminal group index, a binding terminal group index, a terminal identifier, a PO index, a PF index, and a cell identifier; and the information carried by the wake-up sequence satisfies at least one of the following: a terminal group-specific sequence; a terminal group set-specific sequence; a terminal group-common sequence. The method of claim 39, wherein, Structure information of the sequence, including at least one of the following: Single-stage sequence; Multi-stage sequence. The method of claim 41, wherein, The multi-stage sequence includes at least one of the following: Each stage sequence is an independent sequence, and carries part of the wake-up information of the first signal; The first stage sequence carries wake-up information of at least one terminal group set, and the terminal group set includes at least one terminal group; the second stage sequence carries terminal group information for waking up the terminal group within the set; The first stage sequence carries the number information of the terminal group to be woken up, and the remaining at least one stage sequence carries the terminal group information to be woken up; The first stage sequence carries the number information of the terminal group set to be woken up, and the remaining at least one stage sequence carries the terminal group set information to be woken up; The first stage sequence carries at least one of the wake-up information of a terminal group, the wake-up information common to the terminal group, and the next stage sequence detection information; the second stage sequence carries the wake-up information of at least two terminal groups or the wake-up information of a terminal group set. A terminal includes a memory, a transceiver, and a processor: a memory for storing the computer program; The transceiver is used to transceive data under the control of the processor; The processor is used to read a computer program in the memory and perform the following operations: Determine a target resource position in at least one resource position of a first signal associated with a first object; Perform reception of the first signal at the target resource position; According to the received first signal, obtain wake-up information of the terminal; Wherein, the wake-up information is used to trigger the terminal to receive a second object, and the second object includes at least one of the following: paging early indication PEI, paging physical downlink control channel PDCCH, physical downlink shared channel PDSCH, paging PDSCH, physical downlink control channel PDCCH, system information block SIB, and synchronization signal block SSB; The first signal is a signal generated by a first waveform and / or a second waveform, the first waveform includes: on-off keying OOK waveform and / or frequency shift keying FSK waveform, and the second waveform includes: orthogonal frequency division multiplexing OFDM waveform; The first object includes at least one of the following: paging opportunity PO, paging frame PF, at least one terminal, and discontinuous reception DRX. A network device includes a memory, a transceiver, and a processor: a memory for storing the computer program; The transceiver is used to transceive data under the control of the processor; the processor is used to read a computer program in the memory and perform the following operations: Send a first signal to a terminal at a target resource position in at least one resource position of the first signal associated with a first object, and the first signal carries wake-up information of the terminal; Wherein, The wake-up information is used to trigger the terminal to receive a second object, and the second object includes at least one of the following: paging early indication PEI, paging physical downlink control channel PDCCH, physical downlink shared channel PDSCH, paging PDSCH, physical downlink control channel PDCCH, system information block SIB, and synchronization signal block SSB; The first signal is a signal generated by a first waveform and / or a second waveform, the first waveform includes: on-off keying OOK waveform and / or frequency shift keying FSK waveform, and the second waveform includes: orthogonal frequency division multiplexing OFDM waveform; The first object includes at least one of the following: a paging opportunity PO, a paging frame PF, at least one terminal, and discontinuous reception DRX. An apparatus for acquiring wake-up information, applied to a terminal, the apparatus comprising: a first determining unit configured to determine a target resource position in at least one resource position of a first signal associated with a first object; a receiving unit configured to receive the first signal at the target resource position; an acquiring unit configured to acquire wake-up information of the terminal according to the received first signal; wherein the wake-up information is used to trigger the terminal to receive a second object, and the second object includes at least one of the following: paging early indication PEI, paging physical downlink control channel PDCCH, physical downlink shared channel PDSCH, paging PDSCH, physical downlink control channel PDCCH, system information block SIB, and synchronization signal block SSB; the first signal is a signal generated by a first waveform and / or a second waveform, the first waveform includes on-off keying OOK waveform and / or frequency shift keying FSK waveform, and the second waveform includes orthogonal frequency division multiplexing OFDM waveform; the first object includes at least one of the following: a paging opportunity PO, a paging frame PF, at least one terminal, and discontinuous reception DRX. An apparatus for transmitting wake-up information, applied to a network device, the apparatus comprising: a first sending unit configured to send a first signal to a terminal at a target resource position in at least one resource position of the first signal associated with a first object, and the first signal carries wake-up information of the terminal; wherein the wake-up information is used to trigger the terminal to receive a second object, and the second object includes at least one of the following: paging early indication PEI, paging physical downlink control channel PDCCH, physical downlink shared channel PDSCH, paging PDSCH, physical downlink control channel PDCCH, system information block SIB, and synchronization signal block SSB; the first signal is a signal generated by a first waveform and / or a second waveform, the first waveform includes on-off keying OOK waveform and / or frequency shift keying FSK waveform, and the second waveform includes orthogonal frequency division multiplexing OFDM waveform; the first object includes at least one of the following: a paging opportunity PO, a paging frame PF, at least one terminal, and discontinuous reception DRX.
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