Method for obtaining initial bandwidth configuration, terminal and network side device

By detecting and decoding CD-SSB to acquire an independently configured BWP within RedCap UE limits, the method addresses the issue of excessive BWP configuration, enhancing RedCap UE reception and reducing legacy terminal congestion.

JP7802906B2Active Publication Date: 2026-01-20VIVO MOBILE COMM CO LTD
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Patent Information

Application Number
JP2024500587
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2021-07-09
Filing Date
2022-07-05
Publication Date
2026-01-20
Estimated Expiration
2042-07-05

AI Technical Summary

Technical Problem

Conventional network side equipment configures initial bandwidth parts (BWPs) for RedCap UEs that exceed their maximum capability, leading to inferior reception performance and resource overhead, causing congestion for conventional terminals.

Method used

A method and device for a RedCap UE to detect a cell-defined synchronization signal block (CD-SSB) and decode target system information to acquire an initial BWP independently configured by the network side device, ensuring the BWP's bandwidth does not exceed the RedCap UE's capabilities, and a network side device to transmit configuration information for an initial BWP that fits within the RedCap UE's limits.

Benefits of technology

This approach allows for an independent BWP configuration that fits within the RedCap UE's capabilities, reducing load on legacy terminals and improving their transmission performance.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present application discloses a method for acquiring an initial bandwidth portion configuration, a terminal and a network side equipment, which belong to the field of wireless communication technology. The method for acquiring an initial bandwidth portion configuration in an embodiment of the present application includes: a first target terminal detects a cell-defined synchronization signal block CD-SSB and acquires target system information related to the CD-SSB; and the first target terminal decodes the target system information to acquire a first initial bandwidth portion BWP configured by a network side equipment, where the first initial BWP is an initial BWP independently configured by the network side equipment for the first target terminal, and the bandwidth of the first initial BWP does not exceed the maximum bandwidth capability supported by the first target terminal.
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Description

[Technical Field]

[0001] (CROSS-REFERENCE TO RELATED APPLICATIONS) This invention claims priority to a Chinese patent application submitted to the China Patent Office on July 9, 2021, bearing application number 202110780820.7 and titled "Method for obtaining initial bandwidth partial configuration, terminal and network side equipment," the entire contents of which are incorporated herein by reference.

[0002] The present application relates to the field of wireless communication technology, and particularly to a method for obtaining an initial bandwidth portion configuration, a terminal, and a network side device. [Background technology]

[0003] According to the demands of vertical industries, in the usage scenarios such as industrial wireless sensors, video monitoring and wearable devices, the terminal needs to reduce the complexity in terms of the number of receiving antennas, the number of emitting antennas, the supported bandwidth, the time and capacity of the terminal to process data and signals, etc., and such terminals are called low-performance terminals (Red uce In terms of bandwidth, a conventional terminal (or may be called an old terminal, normal terminal, conventional equipment, old equipment, normal equipment, etc.) must support 100 MHz on frequency range (FR) 1 and 200 MHz on FR2, while the maximum bandwidth capability that a redcap UE can support is 20 MHz on FR1 and 100 MHz on FR2.

[0004] When RedCap UE and conventional terminals coexist in a single network and the network side equipment configures the initial bandwidth part (initial BandWidth Part, initial BWP) for the RedCap UE according to the capabilities of the conventional terminal, the configured initial BWP bandwidth may exceed the maximum bandwidth capability that the RedCap terminal can support. Although the network side equipment configures the initial BWP bandwidth within the capabilities of the RedCap UE, due to the capability limitations of the RedCap UE, for example, the number of receiving antennas of the RedCap UE is smaller than that of a conventional UE, the receiving performance may be inferior to that of the transmitting UE, and the network may transmit to the RedCap UE using more overhead and resources, which may cause the load on this BWP to be too large and may cause congestion for conventional terminal transmissions. Summary of the Invention [Problem to be solved by the invention]

[0005] The embodiments of the present application provide a method for obtaining an initial bandwidth portion configuration, a terminal and a network side device, which can solve the problem of configuring an initial BWP for a terminal. [Means for solving the problem]

[0006] According to a first aspect, there is provided a method for acquiring an initial bandwidth portion configuration, the method for acquiring an initial bandwidth portion configuration including: a first target terminal detecting a cell-defined synchronization signal block (CD-SSB) and acquiring target system information related to the CD-SSB; and the first target terminal decoding the target system information to acquire a first initial bandwidth portion (BWP) configured by a network side device, wherein the first initial BWP is an initial BWP independently configured by the network side device for the first target terminal, and the bandwidth of the first initial BWP does not exceed a maximum bandwidth capability supported by the first target terminal.

[0007] According to a second aspect, there is provided an initial bandwidth portion configuration acquisition device for use in a first target terminal, the initial bandwidth portion configuration acquisition device including: a detection module for detecting a cell-defined synchronization signal block (CD-SSB) and acquiring target system information associated with the CD-SSB; and an acquisition module for decoding the target system information to acquire a first initial bandwidth portion (BWP) configured by a network side device, wherein the first initial BWP is an initial BWP independently configured by the network side device for the first target terminal, and the bandwidth of the first initial BWP does not exceed a maximum bandwidth capability supported by the first target terminal.

[0008] According to a third aspect, there is provided a method for configuring an initial bandwidth portion, the method including a network side device transmitting configuration information of a first initial BWP in target system information associated with CD-SSB, wherein the first initial BWP is an initial BWP independently configured by the network side device for a first target terminal, and the bandwidth of the first initial BWP does not exceed the maximum bandwidth capability supported by the first target terminal.

[0009] According to a fourth aspect, there is provided an initial bandwidth portion configuration device, the initial bandwidth portion configuration device including: a determination module for determining configuration information of a first initial BWP; and a transmission module for transmitting the configuration information of the first initial BWP in target system information associated with CD-SSB, wherein the first initial BWP is an initial BWP independently configured for a first target terminal, and the bandwidth of the first initial BWP does not exceed a maximum bandwidth capability supported by the first target terminal.

[0010] According to a fifth aspect, there is provided a terminal including a processor, a memory, and a program or instructions stored in the memory and operable to run on the processor, the program or instructions, when executed by the processor, implementing the steps of the method of the first aspect.

[0011] According to a sixth aspect, there is provided a terminal including a processor and a communication interface, wherein the processor is adapted to implement the steps of the method according to the first aspect, and the communication interface is adapted to communicate with a network side device.

[0012] According to a seventh aspect, there is provided a network side device, the network side device including a processor, a memory, and a program or instructions stored in the memory and operable to run on the processor, the program or instructions, when executed by the processor, implementing the steps of the method according to the third aspect.

[0013] According to an eighth aspect, there is provided a network side device including a processor and a communication interface, wherein the processor is adapted to implement the steps of the method according to the third aspect, and the communication interface is adapted to communicate with a terminal.

[0014] According to a ninth aspect, there is provided a readable storage medium having a program or instructions stored thereon, the program or instructions performing the steps of the method according to the first aspect or performing the steps of the method according to the third aspect when executed by a processor.

[0015] According to a tenth aspect, there is provided a chip, the chip including a processor and a communication interface, the communication interface being coupled to the processor, the processor running a program or instruction to perform steps of the method according to the first aspect or to perform steps of the method according to the third aspect.

[0016] According to an eleventh aspect, there is provided a computer program / program product, the computer program / program product being stored on a non-transitory storage medium, computerThe program / program product is executed by at least one processor to implement the steps of the method according to the first aspect or is used to implement the steps of the method according to the third aspect. [Effects of the Invention]

[0017] In an embodiment of the present application, a first target terminal detects a Cell Defining Synchronization Signal and PBCH block (CD-SSB) to obtain target system information related to the detected CD-SSB, and then decodes the target system information to obtain a first initial BWP configured by a network side device, where the first initial BWP is an initial BWP independently configured for the first target terminal by the network side device, and the bandwidth of the first initial BWP does not exceed the maximum bandwidth capability supported by the first target terminal. Therefore, when a low-capability terminal and a legacy terminal are in the same network, an independent or additional initial BWP can be configured for the first target terminal, whereby the bandwidth of the initial BWP is within the capability range of the first target terminal. By configuring an additional BWP for the first target terminal, the load on the legacy terminal's BWP (especially the initial uplink / downlink BWP) can be reduced, thereby improving the transmission performance of the legacy terminal. [Brief explanation of the drawings]

[0018] [Figure 1] 1 shows a schematic diagram of a wireless communication system to which embodiments of the present application can be applied; [Figure 2] 1 illustrates a flowchart of a method for obtaining an initial BWP configuration according to an embodiment of the present application. [Figure 3] 1 shows a schematic diagram of an initial BWP configuration in an embodiment of the present application. [Figure 4] 1 shows a flowchart of a method for configuring an initial BWP in an embodiment of the present application. [Figure 5] In the examples of the present application, a schematic diagram of another initial BWP configuration is shown. [Figure 6] 1 illustrates a structural schematic diagram of an acquisition device for an initial BWP configuration according to an embodiment of the present application; [Figure 7] 1 shows a structural schematic diagram of the component devices of the initial BWP in an embodiment of the present application. [Figure 8] 1 shows a structural schematic diagram of a communication device according to an embodiment of the present application; [Figure 9] 1 shows a hardware structure schematic diagram of a terminal according to an embodiment of the present application; [Figure 10] 1 shows a hardware structure schematic diagram of a network side device according to an embodiment of the present application; DETAILED DESCRIPTION OF THE INVENTION

[0019] The following clearly describes the technical solutions in the embodiments of the present application in conjunction with the drawings in the embodiments of the present application, and it is obvious that the described embodiments are only some of the embodiments of the present application, and not all of the embodiments. All other embodiments obtained by those skilled in the art based on the embodiments of the present application fall within the scope of protection of the present application.

[0020] The terms "first," "second," etc. in the specification and claims of this application are intended to distinguish between similar objects and are not intended to describe a particular order or sequence. It should be understood that terms used in this manner are interchangeable where appropriate, so that embodiments of this application may be performed in orders other than those illustrated or described herein, and that objects distinguished by "first" and "second" are generally of the same type and do not limit the number of objects; for example, a first object may be one or more. Furthermore, "and / or" in the specification and claims indicates at least one of the connected objects, and the character " / " generally indicates an "or" relationship between the related objects.

[0021] It should be noted that the techniques described in the embodiments of the present application are not limited to Long Term Evolution (LTE) / LTE-Advanced (LTE-A) systems, but can also be applied to other wireless communication systems, such as Code Division Multiple Access (CDMA), Time Division Multiple Access (TDMA), Frequency Division Multiple Access (FDMA), Orthogonal Frequency Division Multiple Access (OFDMA), Single-carrier Frequency-Division Multiple Access (SC-FDMA), and other systems. The terms "system" and "network" in the embodiments of the present application are always used interchangeably, and the described techniques may be used in the above-mentioned systems and radio technologies as well as other systems and radio technologies. Although the following description describes New Radio (NR) systems for illustrative purposes and uses NR terminology in most of the following description, these technologies may also be used in applications other than NR system applications, such as sixth generation (6G) systems. th This may be applied to 6G (6th Generation) communication systems.

[0022] 1 is a schematic diagram of a wireless communication system to which the embodiments of the present application can be applied. The wireless communication system includes a terminal 11 and a network side device 12. Here, the terminal 11 may be referred to as a terminal device or user equipment (UE), and may be a terminal side device such as a mobile phone, a tablet personal computer (PDA), a laptop computer (also called a notebook computer), a personal digital assistant (PDA), a palmtop computer, a netbook, an ultra-mobile personal computer (UMPC), a mobile internet device (MID), a wearable device, a vehicle-mounted equipment (VUE), a pedestrian-mounted equipment (PUE), etc., and wearable devices include a smart watch, a bracelet, an earphone, glasses, etc. It should be noted that the embodiments of the present application do not limit the specific type of the terminal 11. The network side equipment 12 may be a base station or a core network, where the base station may be called a Node B, an evolved Node B, an access point, a base transceiver station (BTS), a radio base station, a radio transceiver, a basic service set (BSS), an extended service set (ESS), a B node, an evolved B node (eNB), a home B node, a home evolved B node, a WLAN access point, a WiFi node, a transmitting receiving point (TRP), or any other suitable term in the art, as long as the same technical effect is achieved. The base station is not limited to a specific technical term. For illustrative purposes, the embodiments of this application only take base stations in an NR system as examples, but do not limit the specific type of base station.

[0023] The following describes in detail the method for obtaining the initial bandwidth portion configuration according to the embodiments of the present application through several embodiments and application scenarios thereof in conjunction with the drawings.

[0024] 2 shows a flowchart of a method for obtaining an initial bandwidth portion configuration in an embodiment of the present application, where the method 200 may be performed by a first target terminal. In other words, the method may be performed by software or hardware installed on the first target terminal. As shown in FIG. 2, the method may include the following steps:

[0025] At S210, the first target terminal detects CD-SSB and obtains target system information related to the CD-SSB.

[0026] In the related art, the initial uplink and downlink BWPs, i.e., the initial DL BWP and the initial UL BWP, may be configured in SIB1, and if the initial BWP is not configured, the size of the initial BWP is the size of CORESET#0 by default. The initial BWP is mainly used in the initial access process, such as receiving a system information block (SIB) 1, receiving a random access response (RAR) and message 4 (Msg4) in the random access process, and transmitting a preamble and message 3 (Msg3).

[0027] In the embodiment of the present application, the target system information may be SIB1 or other SIB information, and is not specifically limited in the embodiment of the present application.

[0028] In one possible implementation, the first target terminal can acquire the target system information during a cell search or initial access process. For example, the first target terminal receives CD-SSB, decodes a Master Information Block (MIB) carried on the PBCH in the CD-SSB, acquires Control Resource Set (CORESET) #0 information, monitors Downlink Control Information (DCI) scheduling SIB1 in CORESET #0, and demodulates SIB1 and other SIB information, where the first target terminal acquires the target system information through SIB1 and / or other SIB information.

[0029] In the embodiment of the present application, the first target terminal may be a low-capability terminal or a normal terminal (also called a conventional terminal). For example, if the network side device desires load balancing for each bandwidth, it may independently configure an initial BWP for the normal terminal.

[0030] At S212, the first target terminal obtains a first initial BWP configured by the network side equipment by decoding the target system information, where the first initial BWP is an initial BWP independently configured by the network side equipment for the first target terminal, and the bandwidth of the first initial BWP does not exceed the maximum bandwidth capability supported by the first target terminal.

[0031] In an embodiment of the present application, the network side equipment independently configures the first initial BWP for the first target terminal, that is, the first initial BWP configured by the network side equipment is configured for the first target terminal, not for other types of terminals under at least the same network.

[0032] For example, in Figure 3, the network side equipment configures a separate (or alternatively called a standalone, additional, new, etc.) initial BWP#0-1 (separate initial DL BWP#0-1) for low-capability terminals, and configures an initial BWP#0-0 (initial DL BWP#0-0) for conventional terminals.

[0033] In one possible implementation manner, if the network side device has not configured a first target search space set for the first initial BWP, the first target terminal detects and / or receives a first control channel for the first target search space set on a second initial BWP, where the second initial BWP is an initial BWP configured by the network side device for the second target terminal, and receives a first data channel scheduled by the first control channel based on the detected first control channel. That is, if the network side device has not configured a first target search space set for the first initial BWP, the first target terminal detects and / or receives a first control channel on a second initial BWP configured by the network side device for the second target terminal.

[0034] Optionally, the first target search space set includes, but is not limited to, at least one of the following search spaces:

[0035] (1) Type 0 Common Search Space (CSS), where Type 0 CSS may be used to schedule SIB1.

[0036] (2) Type 0A CSS.

[0037] Here, Type 0A CSS may be used to schedule other system information other than SIB1, and this other system information may be (a) other system information shared by the redcap UE and the normal and / or legacy UE; (b) specific system information introduced or defined for the redcap.

[0038] (3) Type 1 CSS. Type 1 CSS may be used to schedule a Random Access Response (RAR) and / or a Message B (MSGB).

[0039] (4) Type 2 CSS. Type 2 CSS may be used to schedule paging information.

[0040] (5) Type 3 CSS. Type 3 CSS may be used to schedule public information for a set of UEs.

[0041] (6) User-specific Search Space (UE-specific Search Space, USS), which may be used to schedule user-specific information.

[0042] In one possible implementation manner, receiving a first data channel scheduled by the first control channel based on the detected first control channel may include the first target terminal receiving the first data channel on the second initial BWP. That is, the first target terminal detects and / or receives the first control channel on the second initial BWP and also receives the first data channel scheduled by the first control channel on the second initial BWP. For example, the first target terminal detects and / or receives a physical downlink control channel (PDCCH) and a physical downlink shared channel (PDSCH) scheduled by the PDCCH on the second initial BWP.

[0043] In the above possible implementation manner, the first target terminal does not expect the frequency domain resources occupied by the first control channel and / or the frequency domain resources occupied by the first data channel to exceed the maximum bandwidth capability supported by the first target terminal. For example, the first target terminal does not expect the frequency domain resources occupied by the PDCCH and / or the PDSCH to exceed the maximum bandwidth capability supported by the first target terminal, so that when scheduling the PDCCH and / or the PDSCH, the network side device controls the frequency domain resources occupied by the PDCCH and / or the PDSCH to be equal to or less than the maximum bandwidth capability supported by the first target terminal. Alternatively, if the frequency domain resources occupied by the first control channel and / or the frequency domain resources occupied by the first data channel exceed the maximum bandwidth capability supported by the first target terminal, the network side device does not request the first target terminal to detect and / or receive the first control channel and / or the first data channel that exceed their bandwidth capabilities. For example, if the frequency domain resources occupied by the first control channel and / or the first data channel exceed the maximum bandwidth capability supported by the first target terminal, the protocol may specify or stipulate that the first target terminal may only detect and / or receive the first control channel and / or the first data channel that are equal to or less than the bandwidth capability.

[0044] In another possible implementation manner, receiving a first data channel scheduled by the first control channel based on the detected first control channel may include the first target terminal receiving the first data channel on the first initial BWP. That is, the first target terminal detects and / or receives the first control channel on a second initial BWP and receives the first data channel scheduled by the first control channel on the first initial BWP. For example, the first target terminal detects and / or receives a PDCCH on the second initial BWP and detects and / or receives a PDSCH scheduled by the PDCCH on the first initial BWP.

[0045] For example, in FIG. 3, the terminal receives the PDSCH on a separate initial DL BWP#0-1, that is, transmits the control channel on the initial DL BWP#0 and transmits the data channel on the separate initial DL BWP#0-1.

[0046] In yet another possible implementation manner, receiving a first data channel scheduled by the first control channel based on the detected first control channel may include:

[0047] If the first target terminal shares the same first Radio Network Temporary Identifier (RNTI) as the second target terminal, the first target terminal receives a first data channel scheduled by a first control channel scrambled by the first RNTI on the second initial BWP. Here, the first RNTI includes, but is not limited to, one of a System Information RNTI (SI-RNTI), a Paging RNTI (P-RNTI), a Random Access RNTI (RA-RNTI), a Message B RNTI (MsgB-RNTI), a Temporary Cell RNTI (TC-RNTI), a Slot Format Indication RNTI (SFI-RNTI), a Transmit Power Control RNTI (TPC-RNTI), a PUSCH-RNTI, and a TPC-PUCCH-RNTI; and / or If the first target terminal does not share a second RNTI with the second target terminal, the first target terminal receives a first control channel scrambled by the second RNTI and / or a first data channel scheduled by the first control channel scrambled by the second RNTI over the first initial BWP. For example, the RNTI that the redcap terminal does not share with the conventional terminal may be a UE- or UE group-specific RNTI, such as a P-RNTI, a Cell RNTI (C-RNTI), a Configured Scheduling RNTI (CS-RNTI), or a Modulation and coding scheme Cell RNTI (MCS-C-RNTI), and the redcap terminal receives a PDSCH scheduled by a PDCCH scrambled by the specific RNTI over the first initial BWP.

[0048] For example, in the configuration method shown in FIG. 3, the network side device performs separate DL initial BWP#0-1 as follows: (1) Type0 CSS and (2) Type 0A CSS and (3) Type 1 CSS and (4) Type 2 CSS and (5) Type 3 CSS and (6) If at least one search space set (search space SS) is not configured with a UE specific SS (USS), In DL initial BWP#0, the terminal detects and receives a control channel (e.g., PDCCH) for at least one of the above types of search space sets, and based on the detected PDCCH, performs the following operation of method 1, method 2, or method 3 for the PDSCH scheduled by this PDCCH.

[0049] Method 1: The terminal receives the corresponding PDSCH in DL initial BWP#0.

[0050] In this solution, the terminal does not expect that the frequency domain resources occupied by the PDSCH scheduled by the network will exceed the maximum bandwidth capability supported by the terminal; or If the frequency domain resources occupied by the PDSCH scheduled by the network exceed the maximum bandwidth capability supported by this terminal, this terminal is not required to detect and receive the PDCCH that exceeds the bandwidth capability.

[0051] Scheme 2: The terminal receives the PDSCH on a separate initial DL BWP#0-1, that is, transmits the control channel on the initial DL BWP#0 and transmits the data channel on the separate initial DL BWP#0-1.

[0052] Plan 3: Plan 1 + Plan 2 If the redcap terminal and the conventional terminal share the same RNTI (for example, SI-RNTI, P-RNTI, RA-RNTI, MsgB-RNTI, TC-RNTI, SFI-RNTI, TPC-PUSCH-RNTI or TPC-PUCCH-RNTI), the redcap terminal performs method 1 for the PDSCH scheduled by the PDCCH scrambled by the same shared RNTI; Otherwise, that is, if the redcap terminal and the conventional terminal do not share an RNTI, a UE or UE group specific RNTI, such as a P-RNTI, a C-RNTI, a CS-RNTI or an MCS-C-RNTI, the redcap terminal implements method 2 for a PDSCH scheduled by a PDCCH scrambled by the above specific RNTI.

[0053] In one possible implementation manner of the embodiments of the present application, the method may further include, when the network side device does not configure a second target search space set for the first initial BWP but configures at least a third target search space set for the first initial BWP, the first target terminal detecting and / or receiving a second control channel on the third target search space set on the first initial BWP, where the second target search space set includes a Type 0 CSS, the third target search space set includes a Type 2 CSS and / or a Type 0B CSS, and the second control channel is a control channel scrambled by a paging RNTI. That is, when a Type 0 CSS is not configured for the first initial BWP but at least a Type 2 CSS and / or a Type 0B CSS is configured, the first target terminal detects and / or receives the second control channel on the Type 2 CSS and / or Type 0B CSS on the first initial BWP.

[0054] Optionally, in the above possible implementation manner, the method may further include, when the downlink control information carried on the second control channel includes first target information, the first target terminal switching from the first initial BWP to a second initial BWP to receive updated system information, where the second initial BWP is an initial BWP configured for the second target terminal by the network side equipment.

[0055] Optionally, the first target information is: (1) first indication information indicating that a shot message is present in the downlink control information; (2) second indication information indicating that the system information has changed; and (3) third indication information indicating that the system information transmitted on the second initial BWP has changed; and (4) Fourth instruction information for indicating an Earthquake and Tsunami Warning System (ETWS) notification and / or a Commercial Mobile Alert Service (CAMS) notification, where the ETWS notification includes, but is not limited to, at least one of an ETWS primary notification and / or an ETWS secondary notification.

[0056] Optionally, in the above possible implementation manner, the method may further include, when the downlink control information carried on the second control channel includes second target information, the first target terminal continuing to receive a paging data channel on the first initial BWP and / or transmitting system information scheduled by a Type 0A CSS and / or a Type 0B CSS on the first initial BWP.

[0057] Optionally, the second target information is: (1) fifth indication information indicating that paging scheduling information is present in the downlink control information; (2) sixth indication information indicating that the system information transmitted on the first initial BWP has changed.

[0058] In one possible implementation manner, when the network side device has not configured a second target search space set for the first initial BWP but has configured a third target search space set for at least the first initial BWP, if a transmission paging early indicator (PEI) is not configured for the first target terminal on the second initial BWP, the method may further include determining a first time for the first target terminal to switch to the first initial BWP and perform a paging physical process based on its own configuration, where the second initial BWP is the initial BWP configured by the network side device for the second target terminal, the second target search space set includes a type 0 CSS, and the third target search space set includes a type 2 CSS and / or a type 0B CSS. That is, if a Type 0 CSS is not configured in the first initial BWP but at least a Type 2 CSS and / or a Type 0B CSS is configured, and if a transmission PEI is not configured for the first target terminal on the second initial BWP, the first time to switch to the first initial BWP and perform the paging physical process is determined by the implementation of the first target terminal.

[0059] In another possible implementation manner of an embodiment of the present application, the method may further include, if the network side device has not configured a second target search space set for the first initial BWP but has configured a third target search space set for at least the first initial BWP, configuring and transmitting a paging PEI for the first target terminal on the second initial BWP, and the first target terminal determining whether to switch to the first initial BWP to perform a paging physical process based on an indication of the paging PEI, wherein the second initial BWP is the initial BWP configured by the network side device for the second target terminal, the second target search space set includes a type 0 CSS, and the third target search space set includes a type 2 CSS and / or a type 0B CSS. In other words, if a Type 0 CSS is not configured in the first initial BWP but at least a Type 2 CSS and / or a Type 0B CSS is configured, if a paging PEI is configured and transmitted to the first target terminal on the second initial BWP, it is determined whether to switch to the first initial BWP and perform a paging physical process based on the instruction of the paging PEI.

[0060] In the above possible implementation manner, optionally, the first target terminal determines whether to switch to the first initial BWP and perform a paging physical process according to the indication of the paging PEI: If the paging PEI indicates that the first target terminal needs to detect a third control channel scrambled by a paging RNTI, the first target terminal switches to the first initial BWP at a second time to perform a paging physical process; and / or This may include the first target terminal not switching onto the first initial BWP if the paging PEI indicates that the first target terminal does not need to detect a third control channel scrambled by the paging RNTI.

[0061] In the above possible implementation manner, the second time may be n+delta symbols / slots, where n is the time when the first target terminal receives the PEI signaling, and this time may be the slot where the PEI signaling is located or the last symbol of all symbols occupied by this PEI signaling, and delta is a switching time requirement specified by the protocol, and this switching time requirement is at least: (1) The subcarrier spacing of the first initial BWP, (2) Sub-Carrier Spacing of the second initial BWP; (3) The switching capability of the first target terminal.

[0062] In the above possible implementation manner, the paging indicated by the paging PEI is: The type of device and and capabilities of the terminals to support paging of the group of terminals.

[0063] In each of the above possible implementation methods, performing the paging physical process includes at least one of detecting and / or receiving a control channel scrambled by a paging RNTI on a Type 2 CSS and receiving a paging data channel.

[0064] For example, in the configuration method shown in FIG. 3, if the separate DL initial BWP#0-1 does not include a Type 0 CSS but does include at least a Type 2 and / or Type 0B CSS, the following method 1 or 2 is implemented.

[0065] Scheme 1: A redcap terminal in RRC-IDLE and / or INACTIVE state preferably detects and receives a PDCCH scrambled by a P-RNTI on a Type 2 CSS using separate DL initial BWP#0-1.

[0066] Here, if the DCI carried on the PDCCH includes at least one of the following information, the terminal needs to switch from BWP#0-1 to BWP#0 and receive updated system information: (1) The Short Message Indicator field of the DCI indicates that a short message is / are present in this DCI.

[0067] (2) If the most significant bit in the 8-bit field of the Short Message has a value of 1, this indicates that the system information has changed.

[0068] (3) If the value of the 4th, 5th, 6th, 7th or 8th bit in the 8-bit field of the Short Message is 1, it indicates a change in the system information transmitted on BWP#0.

[0069] (4) If the value of the second bit in the 8-bit field of the Short Message is 1, it indicates an indication of an ETWS primary notification and / or an ETWS secondary notification and / or a CMAS notification.

[0070] Otherwise, the DCI carried on the PDCCH includes at least one of the following information, so the redcap terminal continues receiving the paging PDSCH on BWP #0-1 and / or changing the system information scheduled by Type 0B CSS and / or Type 0A CSS transmitted on BWP #0-1; (1) The Short Message Indictor field indicates that scheduling information for paging is / are present in this DCI.

[0071] (2) If the value of the 4th, 5th, 6th, 7th or 8th bit in the 8-bit field of the Short Message is 1, it indicates a change in the system information transmitted on BWP#0-1.

[0072] Plan 2: If the DL initial BWP #0 does not configure a transmission PEI for this redcap terminal, it is determined by the implementation of the redcap terminal, that is, the redcap terminal decides when to switch to the DL separate initial BWP #0-1 and perform the related paging physical process, including detection, reception, paging PDSCH reception, etc. for the PDCCH scrambled by the P-RNTI on the Type 2 CSS; When the PEI of this terminal is configured and transmitted on DL initial BWP#0, (1) When the PEI indicates that the terminal needs to detect a PDCCH scrambled by the P-RNTI, the terminal needs to switch to DL separate initial BWP#0-1 at a second time and perform an associated paging physical process including at least one of a paging PDCCH and a paging PDSCH.

[0073] Wherein, the second time is n+delta symbols / slot, where n is a first time at which the PEI signaling received by the terminal is located, and this first time may be the slot at which the PEI signaling is located or the last symbol of all symbols occupied by this PEI signaling, and delta is a switching time request specified by the protocol, and this switching time request is at least - DL and / or UL separate initial BWP # 0-1 subcarrier spacing Sub-Carrier Spacing, - DL and / or UL initial BWP # 0 subcarrier spacing Sub-Carrier Spacing, -The switching capacity of the equipment is determined by one of the following conditions: (2) If the PEI indicates that this terminal does not need to detect a PDCCH scrambled by the P-RNTI, the terminal does not request switching to separate initial BWP#0-1.

[0074] Here, the above PEI is a paging advance instruction that can support a UE subgroup based on the type of UE (e.g., normal UE, RedCap UE) and / or the capabilities of the UE (e.g., maximum bandwidth, maximum number of receive antennas, full duplex or half duplex).

[0075] In one possible implementation manner, the method may include, in the process of the first target terminal performing random access, if the center frequency of a third BWP where an uplink transmission is located is different from the center frequency of a fourth BWP where a downlink transmission corresponding to the uplink transmission is located, the first target terminal: The first target terminal transmits a preamble or a message A on the third BWP where a physical random access channel (PRACH) resource is located; the first target terminal switches its operating frequency to a frequency corresponding to the fourth BWP, opens a time window at a third time, and receives a fourth control channel and a random access response scheduled by the fourth control channel within the time window, where the fourth control channel is scrambled by a random access RNTI scramble or a message B RNTI; the first target terminal switching its operating frequency to a frequency corresponding to the third BWP, and transmitting an uplink data channel scheduled by the RAR in the uplink BWP at a fourth time; receiving, by the first target terminal, a downlink data channel scheduled by the fourth control channel; The method may further include performing an operation of feeding back the downlink data channel received by the first target terminal.

[0076] Optionally, in the above possible implementation manner, the first target terminal receiving a downlink data channel scheduled by the fourth control channel includes: The first target terminal switches its operating frequency to a frequency corresponding to the fourth BWP and begins detecting a downlink data channel scheduled by the fourth control channel at a time not later than a fifth time.

[0077] Optionally, in the above possible implementation manner, the first target terminal receiving a downlink data channel scheduled by the fourth control channel includes: When a network side device configures a downlink control channel search space set for the first target terminal on the third BWP of the downlink, the first target terminal receives a downlink data channel scheduled by the fourth control channel on the third BWP of the downlink; If the network side equipment has not configured a downlink control channel search space set for the first target terminal on the third BWP of the downlink, the first target terminal switches its operating frequency to a frequency corresponding to the fourth BWP and starts detecting a downlink data channel scheduled by the fourth control channel at a time not later than a fifth time.

[0078] Optionally, in the above possible implementation manner, the first target terminal feeding back the received downlink data channel may include: When the first target terminal receives the downlink data channel on the third BWP in downlink, the first target terminal transmits a second uplink physical control channel, on which feedback information of the downlink data channel is carried, on the third BWP in uplink; If the first target terminal receives the downlink data channel on the fourth BWP in the downlink, the first target terminal switches its operating frequency to a frequency corresponding to the third BWP and transmits a first uplink physical channel on which feedback information of the downlink data channel is carried; or if a network side device has configured an uplink control channel search space set for the first target terminal on the fourth BWP in the uplink, the first target terminal transmits second uplink physical information on the fourth BWP in the uplink, and if a network side device has not configured an uplink control channel search space set for the first target terminal on the fourth BWP in the uplink, the first target terminal switches its operating frequency to a frequency corresponding to the third BWP and transmits the first uplink physical channel.

[0079] Optionally, in the above possible implementation manner, the minimum time difference between the first symbol located in the first uplink physical channel and the last symbol located in the received downlink data channel is N T,1+0.5+Δ BWPSwitching / RFretuning milliseconds, where N T,1 is a predefined value, and Δ BWPSwitching / RFretuning is determined by the time required for the first target terminal to switch the operating frequency of its radio frequency device, and the minimum time difference between the first symbol located on the second uplink physical channel and the last symbol located on the received downlink data channel is N T,1 +0.5 milliseconds.

[0080] Optionally, in the above possible implementation, the third time is: (1) at least X slots after the slot in which the physical uplink data channel transmitting the preamble or message A is located, where X is a rational number equal to or greater than 1, and the value of X is determined by the time required for the first target terminal to switch the operating frequency of a radio frequency device; (2) at least X symbols after the symbols of the physical uplink data channel transmitting the preamble or message A; (3) The fourth BWP includes one of the first symbol of the earliest CORESET in which the fourth control channel is located and which is received from the Type 1 CSS configured in the fourth BWP.

[0081] Optionally, in the above possible implementation, the fourth time instant is n+k2+Δ+Δ BWPSwitching / RFretuning where n is the slot in which the RAR information received by the first target terminal is located, k2 and Δ are predefined values, and Δ BWPSwitching / RFretuning is determined by the time required for the first target terminal to switch the operating frequency of its radio frequency device.

[0082] For example, for a terminal performing a random access process, if the center frequencies of the UL BWP (assumed to be UL BWP#i) where the uplink transmission is located and the DL BWP (assumed to be DL BWP#j) where the downlink reception related to this uplink transmission is located are different, i.e., i≠j, and the bandwidths of the UL BWP#i and DL BWP#j do not exceed the maximum bandwidth capability that the terminal can support, the terminal performs the following operations: Step 1: The terminal transmits a preamble or MSGA on the UL BWP#i where the PRACH resource is located.

[0083] Step 2: The terminal switches the operating frequency of its radio frequency device to DL BWP#j, opens a time window at a third time, and receives, within this time window, a PDCCH scrambled by RA-RNTI and an RAR scheduled by this PDCCH, or a PDCCH scrambled by MsgB-RNTI and an MSGB scheduled by this PDCCH.

[0084] Here, the third definition of time is the first symbol of the earliest CORESET in which a PDCCH received from a configured Type 1 CSS is located, at least X slots or symbols after the slot in which a PUSCH transmitting a preamble / MSGA is located or the last symbol of a PUSCH transmitting a preamble / MSGA, where X=1 or X=1+Δ BWPSwitching / RFretuning and Δ BWPSwitching / RFretuning The value of is determined by the time required for the terminal to switch the operating frequency of its radio frequency device, and may be specifically defined by the protocol.

[0085] Step 3: The terminal switches the operating frequency of its radio frequency device to UL BWP#i, transmits the PUSCH scheduled by the RAR in the uplink BWP where the transmitted PRACH is located, and transmits the PUSCH at a fourth time.

[0086] Here, the fourth definition of time is slot n+k2+Δ+Δ BWPSwitching / RFretuning is.

[0087] where n is the slot in which the UE receives the RAR information, and k2 and Δ are defined by the protocol. BWPSwitching / RFretuning The value of Λ is determined by the time required for the terminal to switch the operating frequency of its radio frequency device and is defined by the protocol.

[0088] Step 4 may include the following step 4-1 or step 4-2.

[0089] Step 4-1: The terminal switches the operating frequency of its radio frequency device to DL BWP#j, and starts detecting the PDSCH scheduled by the PDCCH at a time not later than the fifth time, where the fifth time is defined as at least Y slots or symbols after the slot in which the PUSCH transmitted in step 3 is located or the last symbol of the PUSCH, and the value of Y is determined by the time required for the terminal to switch the operating frequency of its radio frequency device and is defined by the protocol.

[0090] Step 4-2: If the network side configures a PDCCH search space set (SS set) for this terminal on DL BWP#i, the terminal does not need to switch the operating frequency of its radio frequency device, and the terminal receives the PDSCH scheduled by the PDCCH in DL BWP#i; otherwise, the terminal switches the operating frequency of its radio frequency device and performs the operation of step 4-1.

[0091] Step 5: If the downlink reception in step 4 is performed on DL BWP#j, execute step 5-1 or step 5-2. If the downlink reception in step 4 is performed on DL BWP#i, the terminal does not need to switch the operating frequency of its radio frequency device, and the terminal transmits PUCCH on UL BWP#i, and the minimum time difference between the first symbol in which this PUCCH transmission is located and the last symbol in which the PDSCH received in step 4 is located is N T,1 +0.5 ms must be met.

[0092] Step 5-1: The terminal switches the operating frequency of its radio frequency device to UL BWP#i and needs to perform HARQ-ACK feedback for the PDSCH received in step 4. This HARQ-ACK feedback is carried on the PUCCH, and the minimum time difference between the first symbol in which this PUCCH transmission is located and the last symbol in which the PDSCH received in step 4 is located is N T,1 +0.5+Δ BWPSwitching / RFretuning milliseconds, where N T,1 is given by the conventional protocol, and Δ BWPSwitching / RFretuning The value of Λ is determined by the time required for the terminal to switch the operating frequency of its radio frequency device and is defined by the protocol.

[0093] Step 5-2: If the network side configures a PUCCH for this terminal on the UL BWP#j, the terminal does not need to switch the operating frequency of its radio frequency device, and the terminal transmits a PUCCH on the UL BWP#j. The minimum time difference between the first symbol of this PUCCH transmission and the last symbol of the PDSCH received in step 4 is N T,1 +0.5 ms must be met. If not, the terminal switches the operating frequency of its radio frequency device and performs the operation in step 5-1.

[0094] The above technical solution according to the embodiment of the present application supports terminals with relatively small bandwidth capabilities to operate in a system with large bandwidth, and reduces the impact on normal terminals. Furthermore, this method can effectively help the network to perform load balancing for terminals in the initial state, inactive state or connected state by configuring one or more initial BWPs regardless of the terminal capabilities and types, and can avoid congestion of the initial BWP used by conventional UEs.

[0095] The technical solution according to the embodiment of the present application will be described below by way of a specific embodiment.

[0096] To support RedCap UE in a standalone early DL BWP, the standalone early DL BWP must include public CORESET(s) and CSS(s). Based on the purpose of using the standalone early DL BWP and / or the message the network is trying to uninstall, there are generally four possible cases:

[0097] Case 1: A single initial DL BWP contains only one Type1-PDCCH CSS set.

[0098] Case 2: A single initial DL BWP contains only one Type2-PDCCH CSS set.

[0099] Case 3: A single initial DL BWP includes Type1- and Type2-PDCCH CSS sets.

[0100] Case 4: A single initial DL BWP includes Type0-, Type0A-, Type1- and Type2-PDCCH CSS sets.

[0101] Here, for Case 1, typically, an RRC-IDLE or INACTIVE RedCap UE stays in initial DL BW#0 and monitors the paging PDCCH in Type 2 CSS. If the paging PDCCH indicates that the system information (SI) has changed / updated, the RedCap UE receives the updated SI. Only when triggering random access, the RedCap UE needs to switch to a separate DL initial BWP, i.e., separate initial DL BWP#0-1, to receive MSG2 and MSG4. After establishing an RRC connection, a RedCap UE in the RRC-CONNECTED state does not need to monitor the paging PDCCH on initial DL BW#0, and updated system information and / or ETWS / CMAS information can be transmitted to the RRC-CONNECTED UE via dedicated RRC signaling. Therefore, Case 1 is advantageous for uninstalling messages required for random access, and can also be used to align the DL / UL center frequencies when a separate initial UL BWP is configured for the RedCap UE.

[0102] For Case 2, the Type 2-PDCCH CSS set for the paging PDCCH is configured in a single initial DL BWP, DL BWP#0-1. Therefore, typically, after receiving SIB1 and other SIBs in initial DL BWP#0, an RRC-IDLE / INACTIVE RedCap UE switches to DL BWP#0-1 to monitor the paging PDCCH. If the paging PDCCH indicates that the SI has changed / updated, the RedCap UE must switch to DL BWP#0. After obtaining the updated SI, the RRC-IDLE / INACTIVE RedCap UE must return to the single DL BWP#0-1 and continue monitoring the paging PDCCH. If an RRC-IDLE / INACTIVE RedCap UE needs to perform initial access, it must switch to DL BWP#0 to receive MSG2 / MSG4. As can be seen from the above, Case 2 is only advantageous for uninstalling the paging PDCCH and PDSCH on BWP#0. However, it requires the RRC-IDLE / INACTIVE RedCap UE to perform BWP switching based on dynamic signaling, which increases the complexity of the RedCap UE.

[0103] For Case 3, an RRC-IDLE / INACTIVE RedCap UE monitors the paging PDCCH in a single initial BWP, DL BWP#0-1, and receives MSG2 / MSG4 to perform initial access. Only when the paging PDCCH indicates that the SI has been updated does the RRC-IDLE / INACTIVE RedCap UE need to switch to the initial DL BWP, DL BWP#0. Compared to Case 1, Case 3 can uninstall the paging PDCCH and PDSCH in addition to MSG2 / MSG4. However, similar to Case 2, Case 3 requires the RedCap UE to perform BWP switching based on dynamic signaling.

[0104] For Case 4, when an RRC-IDLE / INACTIVE RedCap UE receives another SIB with SIB1 in the initial DL BWP#0, it switches to DL BWP#0-1 to monitor the paging PDCCH, obtain updated SI, and / or perform random access. That is, there is no need to switch to DL BWP#0. Case 4 has a relatively large network overhead, but the UE does not need to switch BWPs, and therefore has the lowest complexity for the UE.

[0105] 4 shows a flowchart of an initial bandwidth portion configuration method according to an embodiment of the present application, where the method 400 may be performed by a network side device. In other words, the method may be performed by software or hardware installed in the network side device. As shown in FIG. 4, the method may include the following steps:

[0106] In S410, the network side device transmits configuration information of the first initial BWP in target system information related to CD-SSB.

[0107] Here, the first initial BWP is an initial BWP independently configured by the network side device for the first target terminal, and the bandwidth of the first initial BWP does not exceed the maximum bandwidth capability supported by the first target terminal.

[0108] This method is an operation of a network-side device corresponding to method 200. Here, the first initial BWP is the same as the first initial BWP in method 200, and reference can be made to the relevant description of method 200 for details.

[0109] In an embodiment of the present application, the network side device configures a single initial BWP (i.e., a first initial BWP) for the first target terminal, which may be BWP#0-1, and may configure a second initial BWP for the second target terminal, for example, the network side device configures an initial BWP (which may be BWP#0 or BWP#0-0) for the conventional UE.

[0110] In an embodiment of the present application, the network side device can configure one or more independent initial BWPs. For example, the network side device configures multiple independent initial BWPs, or the network side device configures different independent initial BWPs for UEs with different capability characteristics. For example, the network configures BWP#0-1 for a RedCap UE with 1Rx or HD-FDD, and configures BWP#0-2 for a non-RedCap UE / normal terminal or a RedCap UE with 2Rx or full duplex FDD, where the frequency domain resources of BWP#0-1 and BWP#0-2 do not completely overlap.

[0111] In the embodiments of the present application, optionally, if the CORESET#0 used by the conventional UE is CORESET#0 or CORESET#0-0, and the entire frequency domain resources of this CORESET#0 are included in BWP#0, and the network equipment configures one public CORESET (common CORESET) in BWP#0-X (including BWP#0-1 and BWP#0-2), this common CORESET is CORESET#0-X.

[0112] In an embodiment of the present application, the network side device can configure different initial access detection SSBs for the first target terminal and the second target terminal. For example, as shown in Figure 5, the initial access detection SSB for a conventional UE can be a CD-SSB (Cell-Defining SSB) or the first SSB set, and the SSB transmitted on the independently configured BWP#0-1 can be the second SSB set.

[0113] Optionally, the first initial BWP includes an initial downlink BWP and / or an initial uplink BWP.

[0114] In one possible implementation, the configuration information comprises: (1) SSBs transmitted on the first initial BWP, i.e., a second SSB set; (2) CSS of type 0 for scheduling system information 1; (3) A type 0A CSS for scheduling at least one system information among system information other than the system information 1 shared by the first target terminal and the second target terminal and specific system information of the first target terminal; (4) a type 0B CSS for scheduling specific system information of the first target terminal; (5) A type 1A CSS for scheduling random access response information of a target type terminal, which is a terminal that performs small data transmission using the random access minimum data transmission (RA-SDT) method; (6) a type 2 CSS for scheduling paging messages; (7) a type 3 CSS for scheduling public information for a set of terminals; (8) At least one of the USS and the first initial BWP may be configured.

[0115] It should be noted that the execution body of the method for obtaining an initial bandwidth portion configuration according to the embodiment of the present application may be an apparatus for obtaining an initial bandwidth portion configuration, or a control module for executing the method for obtaining an initial bandwidth portion configuration in the apparatus for obtaining an initial bandwidth portion configuration. In the embodiment of the present application, the apparatus for obtaining an initial bandwidth portion configuration according to the embodiment of the present application will be described by taking the apparatus for obtaining an initial bandwidth portion configuration as an example that executes the method for obtaining an initial bandwidth portion configuration.

[0116] FIG. 6 shows a structural schematic diagram of an acquisition device for initial bandwidth portion configuration according to an embodiment of the present application. As shown in FIG. 6, the device mainly includes: a detection module 601 and an acquisition module 602 .

[0117] In an embodiment of the present application, the detection module 601 is used to detect a cell-defined synchronization signal block CD-SSB and acquire target system information related to the CD-SSB, and the acquisition module 602 is used to obtain a first initial bandwidth portion BWP configured by a network side device by decoding the target system information, where the first initial BWP is an initial BWP independently configured by the network side device for the first target terminal, and the bandwidth of the first initial BWP does not exceed the maximum bandwidth capability supported by the first target terminal.

[0118] In one possible implementation, the detection module 601 further comprises: When the network side device has not configured a first target search space set for the first initial BWP, detecting and / or receiving a first control channel for the first target search space set on a second initial BWP, wherein the second initial BWP is an initial BWP configured by the network side device for a second target terminal; and receiving, based on the detected first control channel, a first data channel scheduled by the first control channel.

[0119] In one possible implementation, the first target search space set includes: Type 0 common search space CSS, Type 0A CSS and Type 1 CSS and Type 2 CSS and Type 3 CSS and It includes at least one search space of a user-specific search space USS.

[0120] In one possible implementation manner, receiving a first data channel scheduled by the first control channel according to the first control channel detected by the detection module 601 includes: receiving the first data channel over the second initial BWP;

[0121] In one possible implementation manner, the first target terminal does not expect the frequency domain resources occupied by the first control channel and / or the frequency domain resources occupied by the first data channel to exceed the maximum bandwidth capability supported by the first target terminal, or If the frequency domain resources occupied by the first control channel exceed the maximum bandwidth capability supported by the first target terminal and / or the frequency domain resources occupied by the first data channel exceed the maximum bandwidth capability supported by the first target terminal, the first target terminal is not requested to detect and / or receive the first control channel and / or the first data channel that exceed their bandwidth capabilities.

[0122] In one possible implementation manner, receiving a first data channel scheduled by the first control channel according to the first control channel detected by the detection module 601 includes: receiving the first data channel over the first initial BWP;

[0123] In one possible implementation manner, receiving a first data channel scheduled by the first control channel according to the first control channel detected by the detection module 601 includes: receiving, on the second initial BWP, a first data channel scheduled by a first control channel scrambled by the first RNTI if the first target terminal shares the same first radio network temporary identifier (RNTI) as the second target terminal; and / or If the first target terminal does not share a second RNTI with the second target terminal, receiving a first data channel scheduled by a first control channel scrambled by the second RNTI on the first initial BWP.

[0124] In one possible implementation, the detection module 601 further comprises: When the network side device does not configure a second target search space set for the first initial BWP but configures a third target search space set for at least the first initial BWP, the second control channel on the third target search space set is used to detect and / or receive on the first initial BWP; wherein the second target search space set includes a CSS of type 0; the third target search space set includes a Type 2 CSS and / or a Type 0B CSS; The second control channel is a control channel scrambled by a paging RNTI.

[0125] In one possible implementation, the detection module 601 further comprises: If the downlink control information carried on the second control channel includes first target information, it is used to switch from the first initial BWP to a second initial BWP to receive updated system information, where the second initial BWP is the initial BWP configured by the network side device for the second target terminal.

[0126] In one possible implementation, the first target information is: First indication information indicating that a shot message is present in the downlink control information; second indication that the system information has changed; and Third indication information indicating that the system information transmitted on the second initial BWP has changed; and fourth indication information for indicating an Earthquake and Tsunami Warning System ETWS notification and / or a Commercial Mobile Alert Service CAMS notification.

[0127] In one possible implementation, the detection module 601 further comprises: If the downlink control information carried on the second control channel includes second target information, it is used to continue receiving a paging data channel on the first initial BWP and / or to transmit system information scheduled by a Type 0A CSS and / or a Type 0B CSS on the first initial BWP.

[0128] In one possible implementation, the second target information is: fifth indication information indicating that paging scheduling information is present in the downlink control information; and sixth indication information indicating that the system information transmitted on the first initial BWP has changed.

[0129] In one possible implementation, the detection module 601 further comprises: When the network side device does not configure a second target search space set for the first initial BWP but configures a third target search space set for the first initial BWP, if the network side device does not configure a transmission paging pre-indication signal PEI for the first target terminal on the second initial BWP, the second initial BWP is used to determine a first time to switch to the first initial BWP and perform a paging physical process according to the setting of the first target terminal, where the second initial BWP is the initial BWP configured by the network side device for the second target terminal; the second target search space set includes a CSS of type 0; The third target search space set includes a Type 2 CSS and / or a Type 0B CSS.

[0130] In one possible implementation, the detection module 601 further comprises: If the network side device does not configure a second target search space set for the first initial BWP but configures a third target search space set for the first initial BWP, and if a paging PEI of the first target terminal is configured and transmitted on the second initial BWP, the paging PEI is used to determine whether to switch to the first initial BWP and perform a paging physical process according to an indication of the paging PEI; Wherein, the second initial BWP is an initial BWP configured by the network side device for the second target terminal; the second target search space set includes a CSS of type 0; The third target search space set includes a Type 2 CSS and / or a Type 0B CSS.

[0131] In one possible implementation manner, the detecting module 601 determines whether to switch to the first initial BWP to perform a paging physical process according to the indication of the paging PEI, and further includes: If the paging PEI indicates that the first target terminal needs to detect a third control channel scrambled by a paging RNTI, switching to the first initial BWP at a second time and performing a paging physical process; and / or If the paging PEI indicates that the first target terminal does not need to detect a third control channel scrambled by a paging RNTI, not switching onto the first initial BWP.

[0132] In one possible implementation, performing the paging physical process includes at least one of detecting and / or receiving a control channel scrambled by a paging RNTI on a Type 2 CSS and receiving a paging data channel.

[0133] In one possible implementation, the detection module 601 further comprises: In the process of the first target terminal performing random access, if the center frequency of a third BWP where an uplink transmission is located is different from the center frequency of a fourth BWP where a downlink transmission corresponding to the uplink transmission is located, transmitting a preamble or a message A on the third BWP where a physical random access channel (PRACH) resource is located; an operation of switching the operating frequency of the first target terminal to a frequency corresponding to the fourth BWP, opening a time window at a third time, and receiving a fourth control channel and a random access response scheduled by the fourth control channel within the time window, wherein the fourth control channel is scrambled by a random access RNTI scramble or a message B RNTI; Switching the operating frequency of the first target terminal to a frequency corresponding to the third BWP, and transmitting an uplink data channel scheduled by the RAR in the uplink BWP at a fourth time; receiving a downlink data channel scheduled by the fourth control channel; and feeding back the received downlink data channel.

[0134] In one possible implementation manner, the detecting module 601 receiving the downlink data channel scheduled by the fourth control channel includes: The method includes switching the operating frequency of the first target terminal to a frequency corresponding to the fourth BWP, and starting to detect a downlink data channel scheduled by the fourth control channel at a time not later than a fifth time.

[0135] In one possible implementation manner, the detecting module 601 receiving the downlink data channel scheduled by the fourth control channel includes: When a network side device configures a downlink control channel search space set for the first target terminal on the third BWP of downlink, receiving a downlink data channel scheduled by the fourth control channel on the third BWP of downlink; If the network side equipment has not configured a downlink control channel search space set for the first target terminal on the third BWP of the downlink, switching the operating frequency of the first target terminal to a frequency corresponding to the fourth BWP, and starting to detect a downlink data channel scheduled by the fourth control channel at a time not later than a fifth time.

[0136] In one possible implementation manner, the detection module 601 feeding back the received downlink data channel includes: When the detection module 601 receives the downlink data channel on the third BWP of downlink, transmitting a second uplink physical control channel, on which feedback information of the downlink data channel is carried, on the third BWP of uplink; If the detection module 601 receives the downlink data channel on the fourth BWP in the downlink, switching the operating frequency of the first target terminal to a frequency corresponding to the third BWP and transmitting a first uplink physical channel carrying feedback information of the downlink data channel; or if the network side equipment configures an uplink control channel search space set for the first target terminal on the fourth BWP in the uplink, transmitting second uplink physical information on the fourth BWP in the uplink; if the network side equipment does not configure an uplink control channel search space set for the first target terminal on the fourth BWP in the uplink, switching the operating frequency of the first target terminal to a frequency corresponding to the third BWP and transmitting the first uplink physical channel.

[0137] In one possible implementation, the minimum time difference between the first symbol of the first uplink physical channel and the last symbol of the received downlink data channel is N T,1 +0.5+Δ BWPSwitching / RFretuning milliseconds, where N T,1 is a predefined value, and Δ BWPSwitching / RFretuning is determined by the time required for the first target terminal to switch the operating frequency of its radio frequency device; The minimum time difference between the first symbol of the second uplink physical channel and the last symbol of the received downlink data channel is N T,1 +0.5 milliseconds.

[0138] In one possible implementation, the third time is: at least X slots after the slot in which the physical uplink data channel transmitting the preamble or message A is located, where X is a rational number equal to or greater than 1, and the value of X is determined by the time required for the first target terminal to switch the operating frequency of a radio frequency device; at least X symbols after the symbols of the physical uplink data channel transmitting the preamble or message A; The fourth BWP includes one of the first symbol of the earliest CORESET in which the fourth control channel is located and received from the Type 1 CSS configured in the fourth BWP.

[0139] In one possible implementation, the fourth time instant is n+k2+Δ+Δ BWPSwitching / RFretuning where n is the slot in which the RAR information received by the first target terminal is located, k2 and Δ are predefined values, and Δ BWPSwitching / RFretuning is determined by the time required for the first target terminal to switch the operating frequency of its radio frequency device.

[0140] The initial bandwidth portion configuration acquisition device in the embodiment of the present application may be a device, or may be a component, integrated circuit, or chip in a terminal. This device may be a mobile terminal or a non-mobile terminal. Exemplarily, the mobile terminal may include, but is not limited to, the types of terminals 11 listed above. The non-mobile terminal may be, for example, a server, a network-attached storage (NAS), a personal computer (PC), a television (TV), a teller machine, a self-service machine, etc., and the embodiment of the present application is not specifically limited thereto.

[0141] The initial bandwidth portion configuration acquisition device in the embodiment of the present application may be a device having an operating system, which may be an Android operating system, an iOS operating system, or other possible operating systems, and the embodiment of the present application is not specifically limited.

[0142] The initial bandwidth portion configuration acquisition device according to the embodiment of the present application can realize each process implemented by the first target terminal in the method embodiments of Figures 2 to 5 and achieve the same technical effects, and will not be further described here to avoid repetition of description.

[0143] FIG. 7 shows a structural schematic diagram of an initial bandwidth portion configuration device according to an embodiment of the present application. As shown in FIG. 7, the device mainly includes: a determining module 701 and a transmitting module 702 .

[0144] In an embodiment of the present application, the determination module 701 is used to determine configuration information of a first initial BWP, and the transmission module 702 is used to transmit the configuration information of the first initial BWP in target system information associated with CD-SSB, where the first initial BWP is an initial BWP independently configured for a first target terminal, and the bandwidth of the first initial BWP does not exceed the maximum bandwidth capability supported by the first target terminal.

[0145] In one possible implementation manner, the first initial BWP includes an initial downlink BWP and / or an initial uplink BWP.

[0146] In one possible implementation, the configuration information includes, for the first initial BWP: SSBs transmitted on the first initial BWP; CSS of type 0 for scheduling system information 1; A type 0A CSS for scheduling at least one of system information other than the system information 1 shared by the first target terminal and the second target terminal and specific system information of the first target terminal; A type 0B CSS for scheduling specific system information of the first target terminal; A type 1A CSS for scheduling random access response information of a target type terminal, which is a terminal that performs small data transmission in a random access minimum data transmission (RA-SDT) method; Type 2 CSS for scheduling paging messages; a type 3 CSS for scheduling public information for a set of terminals; At least one of the user-specific SS is configured.

[0147] Optionally, as shown in Figure 8, an embodiment of the present application further provides a communication device 800, including a processor 801, a memory 802, and a program or instruction stored in the memory 802 and operable on the processor 801. For example, if the communication device 800 is a terminal, when the program or instruction is executed by the processor 801, it can realize each process of the embodiment of the method for obtaining an initial bandwidth portion configuration, and achieve the same technical effect. If the communication device 800 is a network-side device, when the program or instruction is executed by the processor 801, it can realize each process of the embodiment of the method for configuring an initial bandwidth portion, and achieve the same technical effect. In order to avoid repetition, no further description will be given here.

[0148] The embodiment of the present application further provides a terminal including a processor and a communication interface, the processor is used to realize the method for obtaining an initial bandwidth portion configuration according to the above method embodiment, and the communication interface is used to communicate with a network-side device. This terminal embodiment corresponds to the above terminal-side method embodiment, and the implementation processes and realization methods of the above method embodiment can all be applied to this terminal embodiment, and the same technical effects can be achieved. Specifically, Figure 9 is a schematic diagram of the hardware structure of the terminal of the embodiment of the present application.

[0149] The terminal 900 includes components such as, but not limited to, a radio frequency unit 901, a network module 902, an audio output unit 903, an input unit 904, a sensor 905, a display unit 906, a user input unit 907, an interface unit 908, a memory 909, and a processor 910.

[0150] As will be understood by those skilled in the art, the terminal 900 may further include a power source (e.g., a battery) for powering each component, and the power source may be logically connected to the processor 910 by a power management system, thereby enabling the power management system to realize functions such as charge / discharge management and power consumption management. The terminal structure shown in Figure 9 does not constitute a limitation on the terminal, and the terminal may include more or fewer components than those shown, or a combination of some components, or a different arrangement of components, which will not be further described here.

[0151] It should be understood that in the embodiment of the present application, the input unit 904 may include a graphics processing unit (GPU) 9041 and a microphone 9042, and the graphics processor 9041 processes image data of still or video images captured by an image capture device (e.g., a camera) in a video capture mode or an image capture mode. The display unit 906 may include a display panel 9061, which may be configured in the form of a liquid crystal display, an organic light-emitting diode, or the like. The user input unit 907 includes a touch panel 9071 and other input devices 9072. The touch panel 9071 is also called a touch screen. The touch panel 9071 may include two parts: a touch detection device and a touch controller. The other input devices 9072 may include, but are not limited to, a physical keyboard, function keys (e.g., volume control buttons, switch buttons, etc.), a trackball, a mouse, and a control lever, which will not be further described herein.

[0152] In the embodiment of the present application, the radio frequency unit 901 receives downlink data from the network side device, and then processes the data in the processor 910, and transmits uplink data to the network side device. Generally, the radio frequency unit 901 includes, but is not limited to, an antenna, at least one amplifier, a transceiver, a coupler, a low-noise amplifier, a duplexer, etc.

[0153] The memory 909 may be used to store software programs or instructions and various data. The memory 909 may primarily include a program or instruction storage area and a data storage area, where the program or instruction storage area can store an operating system, an application program or instructions required for at least one function (e.g., an audio playback function, an image playback function, etc.), etc. The memory 909 may include a high-speed random access memory and may further include a non-transitory memory, where the non-transitory memory may be a read-only memory (ROM), a programmable read-only memory (PROM), an erasable programmable read-only memory (EPROM), an electrically erasable programmable read-only memory (EEPROM), or a flash memory, such as at least one magnetic disk memory device, a flash memory device, or other non-transitory solid-state memory device.

[0154] The processor 910 may include one or more processing units. Optionally, the processor 910 may integrate an application processor and a modem processor. Here, the application processor mainly processes an operating system, a user interface, and application programs or instructions, and the modem processor mainly processes wireless communication, such as a baseband processor. As can be appreciated, the modem processor does not have to be integrated into the processor 910.

[0155] Here, processor 910: Detecting a cell-defined synchronization signal block (CD-SSB) and obtaining target system information associated with the CD-SSB; Decoding the target system information is used to obtain a first initial bandwidth portion BWP configured by the network side equipment, where the first initial BWP is an initial BWP independently configured by the network side equipment for the first target terminal, and the bandwidth of the first initial BWP does not exceed the maximum bandwidth capability supported by the first target terminal.

[0156] An embodiment of the present application further provides a network-side device, including a processor and a communication interface, where the processor is used to implement the method for configuring an initial bandwidth portion according to the above method embodiment, and the communication interface is used to communicate with a terminal. This embodiment of the network-side device corresponds to the above method embodiment of the network-side device, and the implementation processes and realization manners of the above method embodiment can be applied to this embodiment of the network-side device, and the same technical effects can be achieved.

[0157] Specifically, the embodiment of the present application further provides a network side device. As shown in FIG. 10, side The device 1000 includes an antenna 1001, a radio frequency device 1002, and a baseband device 1003. The antenna 1001 and the radio frequency device 1002 are connected. In the uplink direction, the radio frequency device 1002 receives information via the antenna 1001 and transmits the received information to the baseband device 1003 for processing. In the downlink direction, the baseband device 1003 processes the information to be transmitted and transmits it to the radio frequency device 1002, and the radio frequency device 1002 processes the received information and then transmits it via the antenna 1001.

[0158] The above frequency band processing device may be located in a baseband device 1003, and the method performed by the network side equipment in the above embodiments may be implemented in the baseband device 1003, which includes a processor 1004 and a memory 1005.

[0159] The baseband device 1003 may include, for example, at least one baseband board, on which multiple chips are installed, and as shown in FIG. 10, one of the chips is, for example, a processor 1004, which is connected to a memory 1005, and calls the program in the memory 1005 to perform the network equipment operations shown in the above method embodiments.

[0160] The baseband device 1003 may further include a network interface 1006, which is used to exchange information with the radio frequency device 1002, and this interface is, for example, a common public radio interface (abbreviated as CPRI).

[0161] Specifically, the network side device of the embodiment of the present invention further includes instructions or programs stored in memory 1005 and capable of running on processor 1004, and processor 1004 can call the instructions or programs in memory 1005 to execute the methods performed by each module shown in FIG. 7 and achieve the same technical effects, which will not be further described here to avoid repetition.

[0162] The embodiments of the present application further provide a readable storage medium, which stores a program or instruction, and when the program or instruction is executed by a processor, it can realize each process of the embodiment of the method for obtaining an initial bandwidth portion configuration, or realize each process of the embodiment of the method for configuring an initial bandwidth portion, and achieve the same technical effect. In order to avoid repetition, no further description will be given here.

[0163] The processor may be the processor in the terminal described in the above embodiment. The readable storage medium may include a computer-readable storage medium, such as a computer read-only memory (ROM), a random access memory (RAM), a magnetic disk, or an optical disk.

[0164] The embodiments of the present application further provide a chip, the chip including a processor and a communication interface, the communication interface is coupled to the processor, the processor runs a program or instruction, and realizes each process of the embodiment of the method for obtaining the initial bandwidth portion configuration or the embodiment of the method for configuring the initial bandwidth portion, and can achieve the same technical effect. In order to avoid repetition, no further description will be given here.

[0165] It should be understood that the chips referred to in the embodiments of this application may be referred to as system level chips, system chips, chip systems, or system-on-chips.

[0166] An embodiment of the present application further provides a computer program / program product, wherein the computer program / program product is stored in a non-transitory storage medium; computer The program / program product can be executed by at least one processor to realize each process of the embodiment of the method for obtaining the initial bandwidth portion configuration, or to realize each process of the embodiment of the method for configuring the initial bandwidth portion, and achieve the same technical effect. In order to avoid repetition of the description, no further description will be given here.

[0167] It should be noted that, in this specification, the terms "comprise," "include," "includes," or any other variations thereof are intended to cover the non-exclusive "comprise," whereby a process, method, article, or apparatus comprising a set of elements not only includes those elements but also other elements not expressly listed or inherent in such process, method, article, or apparatus. Absent further limitations, an element defined by the phrase "comprises one of" does not preclude the presence of other identical elements in the process, method, article, or apparatus comprising that element. It should be noted that the scope of the methods and apparatuses in the embodiments of this application is not limited to performing functions in the order shown or discussed, but may include performing functions in an essentially simultaneous manner or in the reverse order based on the functions involved. For example, the described method may be performed in a different order than described, and various steps may be added, omitted, or combined. Furthermore, features described with reference to some examples may be combined in other examples.

[0168] As will be apparent to those skilled in the art from the above description of the embodiments, the methods of the above embodiments can be realized in the form of software and a necessary general-purpose hardware platform. Of course, they can also be realized in hardware, but in many cases the former is a more preferred embodiment. Based on this understanding, the technical proposal of the present application, in substance or in part contributing to the prior art, may be embodied in the form of a computer software product, which is stored in a storage medium (e.g., ROM / RAM, magnetic disk, optical disk) and includes a number of instructions for causing a terminal (which may be a mobile phone, computer, server, air conditioner, network device, etc.) to execute the methods described in each embodiment of the present application.

[0169] Although the embodiments of the present application have been described above in conjunction with the drawings, the present application is not limited to the above specific embodiments. The above specific embodiments are merely illustrative and not limiting. Those skilled in the art can take the teachings of the present application into account and implement many forms without departing from the spirit and scope of the claims, all of which fall within the scope of protection of the present application. [Explanation of symbols]

[0170] 601 Detection Module 602 Acquisition Module 701 Decision Module 702 Transmission Module 800 Communication Equipment 801 processor 802 memory 901 Radio Frequency Unit 902 Network Module 903 Audio Output Unit 904 Input Unit 9041 graphics processor 9042 Microphone 905 Sensor 906 Display Unit 9061 Display Panel 907 User Input Unit 9071 Touch Panel 9072 Other input devices 908 Interface Unit 909 Memory 910 processor 1000 Network side equipment 1002 Radio frequency devices 1003 Baseband equipment 1004 processor 1005 memory 1006 Network Interface

Claims

1. A method for obtaining an initial bandwidth portion configuration, comprising: a first target terminal detecting a cell-defined synchronization signal block (CD-SSB) and obtaining target system information associated with the CD-SSB; The first target terminal decodes the target system information to obtain a first initial bandwidth portion BWP configured by a network side device, the first initial BWP being an initial BWP independently configured for the first target terminal by the network side device, and the bandwidth of the first initial BWP does not exceed a maximum bandwidth capability supported by the first target terminal; the first target terminal is a low-capability terminal; The method comprises: If the network side device has not configured a first target search space set for the first initial BWP, the first target terminal detects and / or receives a first control channel for the first target search space set on a second initial BWP, and the second initial BWP is the initial BWP configured by the network side device for the second target terminal; receiving a first data channel scheduled by the first control channel based on the detected first control channel; The first target search space set comprises: A type 1 common search space CSS; A method for obtaining an initial bandwidth portion configuration, the method including at least one search space of a type 2 CSS.

2. receiving the first data channel scheduled by the first control channel based on the detected first control channel; 2. The method of claim 1, further comprising: the first target terminal receiving the first data channel on the second initial BWP.

3. The first target terminal does not expect the frequency domain resources occupied by the first control channel and / or the frequency domain resources occupied by the first data channel to exceed the maximum bandwidth capability supported by the first target terminal, or 3. The method of claim 2, wherein, when frequency domain resources occupied by the first control channel exceed a maximum bandwidth capability supported by the first target terminal and / or frequency domain resources occupied by the first data channel exceed a maximum bandwidth capability supported by the first target terminal, the first target terminal is not requested to detect and / or receive the first control channel and / or the first data channel that exceed their bandwidth capabilities.

4. receiving the first data channel scheduled by the first control channel based on the detected first control channel; the first target terminal receiving the first data channel on the first initial BWP; Or, receiving the first data channel scheduled by the first control channel based on the detected first control channel; If the first target terminal shares the same first radio network temporary identifier (RNTI) with the second target terminal, the first target terminal receives, on the second initial BWP, the first data channel scheduled by the first control channel scrambled by the first RNTI; and / or 2. The method of claim 1, further comprising: if the first target terminal does not share a second RNTI with the second target terminal, the first target terminal receiving, on the first initial BWP, the first data channel scheduled by the first control channel scrambled by the second RNTI.

5. The method comprises: If the network side device does not configure a second target search space set for the first initial BWP but configures a third target search space set for the first initial BWP, the first target terminal further includes detecting and / or receiving a second control channel on the third target search space set on the first initial BWP; wherein the second target search space set includes a CSS of type 0; the third target search space set includes a Type 2 CSS and / or a Type 0B CSS; the second control channel is a control channel scrambled by a paging RNTI; The method comprises: If the downlink control information carried on the second control channel includes first target information, the first target terminal switches from the first initial BWP to the second initial BWP and receives updated system information; The first target information is First indication information indicating that a shot message is present in the downlink control information; second indication that the system information has changed; and Third indication information indicating that the system information transmitted on the second initial BWP has changed; and a fourth indication information for indicating an Earthquake and Tsunami Warning System ETWS notification and / or a Commercial Mobile Alert Service CAMS notification.

6. The method comprises: When the downlink control information carried on the second control channel includes second target information, the first target terminal continues receiving a paging data channel on the first initial BWP and / or transmits system information scheduled by a Type 0A CSS and / or a Type 0B CSS on the first initial BWP; The second target information is fifth indication information indicating that paging scheduling information is present in the downlink control information; and sixth indication information indicating that system information transmitted on the first initial BWP has changed.

7. The method comprises: If the network side device does not configure a second target search space set for the first initial BWP but configures a third target search space set for the first initial BWP, if the network side device does not configure a transmit paging pre-indicator (PEI) for the first target terminal on the second initial BWP, the method further includes: determining a first time for the first target terminal to switch to the first initial BWP and perform a paging physical process based on its own configuration; the second target search space set includes a CSS of type 0; the third target search space set includes a Type 2 CSS and / or a Type 0B CSS; Or, The method comprises: If the network side device does not configure a second target search space set for the first initial BWP but configures a third target search space set for the first initial BWP, and if a paging PEI of the first target terminal is configured and transmitted on the second initial BWP, the first target terminal may further determine whether to switch to the first initial BWP and perform a paging physical process according to an indication of the paging PEI; the second target search space set includes a CSS of type 0; the third target search space set includes a Type 2 CSS and / or a Type 0B CSS; Or, The method comprises: In the process of the first target terminal performing random access, if the center frequencies of the third BWP where the uplink transmission is located and the fourth BWP where the downlink transmission corresponding to the uplink transmission is located are different, the first target terminal: The first target terminal transmits a preamble or a message A on the third BWP where a physical random access channel (PRACH) resource is located; an operation of the first target terminal switching its operating frequency to a frequency corresponding to the fourth BWP, opening a time window at a third time, and receiving a fourth control channel and a random access response RAR scheduled by the fourth control channel within the time window, wherein the fourth control channel is scrambled by a random access RNTI scramble or a message B RNTI; The first target terminal switches its operating frequency to a frequency corresponding to the third BWP, and transmits an uplink data channel scheduled by the RAR in the third BWP at a fourth time; receiving, by the first target terminal, a downlink data channel scheduled by the fourth control channel; The method of claim 1 , further comprising: the first target terminal performing an operation of feeding back the received downlink data channel.

8. determining whether the first target terminal switches to the first initial BWP and performs a paging physical process based on an indication of the paging PEI; If the paging PEI indicates that the first target terminal needs to detect a third control channel scrambled by a paging RNTI, the first target terminal switches to the first initial BWP at a second time to perform a paging physical process; and / or 8. The method of claim 7, further comprising: if the paging PEI indicates that the first target terminal does not need to detect a third control channel scrambled by a paging RNTI, the first target terminal not switching onto the first initial BWP.

9. The paging indicated by the paging PEI is The type of device and 8. The method of claim 7, further comprising: grouping terminals based on at least one of: a) a capability of the terminal; and b) supporting paging of a group of terminals.

10. 8. The method of claim 7, wherein performing the paging physical process includes at least one of detecting and / or receiving a control channel scrambled by a paging RNTI on a Type 2 CSS and receiving a paging data channel.

11. 1. A method for configuring an initial bandwidth portion, comprising: The network side device transmits configuration information of the first initial BWP in target system information related to CD-SSB; Wherein, the first initial BWP is an initial BWP independently configured by the network side device for the first target terminal, and the bandwidth of the first initial BWP does not exceed the maximum bandwidth capability supported by the first target terminal; the first target terminal is a low-capability terminal; If the network side device has not configured a first target search space set for the first initial BWP, the network side device configures the first target search space set for a second initial BWP, the second initial BWP is an initial BWP configured by the network side device for a second target terminal, and the first target search space set is used to detect and / or receive a first control channel; The first target search space set comprises: A type 1 common search space CSS; A method for configuring an initial bandwidth portion, the method including at least one search space of a type 2 CSS.

12. The method described in claim 11, wherein the network side equipment transmits the first control channel and / or a first data channel scheduled by the first control channel, and the frequency domain resources occupied by the first control channel and / or the frequency domain resources occupied by the first data channel do not exceed the maximum bandwidth capability supported by the first target terminal.

13. The method described in claim 11, wherein the network side equipment is capable of configuring different initial access detection SSBs for the first target terminal and the second target terminal.

14. A terminal comprising a processor, a memory, and a program or instructions stored in the memory and operable to run on the processor, the program or instructions implementing the steps of the method for obtaining an initial bandwidth portion configuration according to any one of claims 1 to 10 when executed by the processor.

15. A network side device comprising a processor, a memory, and a program or instructions stored in the memory and operable to run on the processor, the network side device realizing the steps of the initial bandwidth portion configuration method according to any one of claims 11 to 13 when the program or instructions are executed by the processor.

Citation Information

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