Information processing method and apparatus, communication device, and storage medium

By having the UE report power consistency and phase continuity disruption events to network equipment or determine the actual TDW, the problem of limited channel coverage in non-terrestrial networks is solved, and the accuracy of uplink channel joint estimation and coverage improvement of communication systems are achieved.

CN116391343BActive Publication Date: 2026-02-06BEIJING XIAOMI MOBILE SOFTWARE CO LTD
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Patent Information

Application Number
CN202380007983.9
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2023-02-03
Publication Date
2026-02-06
Estimated Expiration
2043-02-03

AI Technical Summary

Technical Problem

In non-terrestrial networks, the long distance between satellites and ground user equipment and the large path loss result in limited coverage of the physical uplink shared channel. Existing technologies cannot guarantee power consistency and phase continuity, which affects the accuracy of joint channel estimation.

Method used

The user equipment (UE) informs the network device whether a power consistency and/or phase continuity violation event has occurred, or determines the actual TDW, so that the network device can accurately determine the actual TDW, thereby ensuring the accuracy of the uplink channel joint estimation.

Benefits of technology

Through real-time reports from the UE, network devices can accurately determine the actual TDW, ensuring the accuracy of uplink channel joint estimation and improving the coverage and performance of the wireless communication system.

✦ Generated by Eureka AI based on patent content.

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Abstract

Embodiments of the present disclosure provide an information processing method and apparatus, a communication device and a storage medium. An information processing method performed by a user equipment (UE) can include: sending first information to a network device, wherein the first information is used to determine whether a power consistency and / or phase continuity violation event occurs, or is used to determine an actual time domain window (TDW).
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Description

TECHNICAL FIELD

[0001] The present disclosure relates to the technical field of wireless communication, and more particularly to an information processing method and apparatus, a communication device, and a storage medium. BACKGROUND

[0002] In a new generation version of communication technology, joint channel estimation is proposed to enhance the coverage of a physical uplink shared channel (PUSCH). For joint channel estimation, a base station (for example, a gNB) and a terminal (User Equipment, UE) both need a time window, and the UE needs to maintain power consistency and phase continuity in the time window to cooperate with the base station (for example, a gNB) to perform joint channel estimation in the time window. SUMMARY

[0003] Embodiments of the present disclosure provide an information processing method and apparatus, a communication device, and a storage medium.

[0004] In a first aspect, an information processing method is provided, wherein the method is performed by a UE, and the method comprises:

[0005] sending first information to a network device, wherein the first information is used to determine whether a power consistency and / or phase continuity breaking event occurs, or is used to determine an actual TDW.

[0006] In a second aspect, an information processing method is provided, wherein the method is performed by a network device, and the method comprises:

[0007] receiving first information of a UE, wherein the first information is used to determine whether a power consistency and / or phase continuity breaking event occurs, or is used to determine an actual TDW.

[0008] In a third aspect, an information processing apparatus is provided, and the apparatus comprises:

[0009] a sending module configured to send first information to a network device, wherein the first information is used to determine whether a power consistency and / or phase continuity breaking event occurs, or is used to determine an actual TDW.

[0010] In a fourth aspect, an information processing apparatus is provided, and the apparatus comprises:

[0011] a receiving module configured to receive first information of a UE, wherein the first information is used to determine whether a power consistency and / or phase continuity breaking event occurs, or is used to determine an actual TDW.

[0012] A fifth aspect of the embodiments of the present disclosure provides a communication device, comprising a processor, a transceiver, a memory, and an executable program stored on the memory and capable of being executed by the processor, wherein the processor executes the executable program to perform the information processing method provided in the first aspect or the second aspect.

[0013] A sixth aspect of the embodiments of the present disclosure provides a computer storage medium, which stores an executable program; the executable program is executed by a processor to implement the information processing method provided in the first aspect or the second aspect.

[0014] The technical solution provided by the embodiments of the present disclosure, when the UE behavior causes the destruction of power consistency and / or phase continuity, the UE will report the destruction caused by its own behavior through the first information, or calculate the actual TDW according to the destruction caused by its own behavior, in this way, the network device will know whether there is a destruction of power consistency and / or phase continuity on the UE side, so as to accurately determine the actual TDW, thereby ensuring the accuracy of the uplink channel joint estimation based on the actual TDW.

[0015] It should be understood that the above general description and the following detailed description are only exemplary and explanatory, and cannot limit the embodiments of the present disclosure. BRIEF DESCRIPTION OF DRAWINGS

[0016] The accompanying drawings, which are incorporated into the specification and constitute a part of the specification, illustrate the embodiments consistent with the present disclosure, and together with the specification, serve to explain the principles of the embodiments of the present disclosure.

[0017] Figure 1 is a structural schematic diagram of a wireless communication system according to an exemplary embodiment;

[0018] Figure 2A is a flowchart of an information processing method according to an exemplary embodiment;

[0019] Figure 2B is a flowchart of an information processing method according to an exemplary embodiment;

[0020] Figure 2C is a flowchart of an information processing method according to an exemplary embodiment;

[0021] Figure 2D is a flowchart of an information processing method according to an exemplary embodiment;

[0022] Figure 2E is a flowchart of an information processing method according to an exemplary embodiment;

[0023] Figure 2F This is a flowchart illustrating an information processing method according to an exemplary embodiment;

[0024] Figure 3A This is a flowchart illustrating an information processing method according to an exemplary embodiment;

[0025] Figure 3B This is a flowchart illustrating an information processing method according to an exemplary embodiment;

[0026] Figure 3C This is a flowchart illustrating an information processing method according to an exemplary embodiment;

[0027] Figure 3D This is a flowchart illustrating an information processing method according to an exemplary embodiment;

[0028] Figure 3E This is a flowchart illustrating an information processing method according to an exemplary embodiment;

[0029] Figure 3F This is a flowchart illustrating an information processing method according to an exemplary embodiment;

[0030] Figure 3G This is a flowchart illustrating an information processing method according to an exemplary embodiment;

[0031] Figure 4 This is a schematic diagram of the structure of an information processing apparatus according to an exemplary embodiment;

[0032] Figure 5 This is a schematic diagram of the structure of an information processing apparatus according to an exemplary embodiment;

[0033] Figure 6 This is a schematic diagram of the structure of a UE according to an exemplary embodiment;

[0034] Figure 7 This is a schematic diagram of the structure of a network device according to an exemplary embodiment. Detailed Implementation

[0035] Exemplary embodiments will now be described in detail, examples of which are illustrated in the accompanying drawings. When the following description relates to the drawings, unless otherwise indicated, the same numbers in different drawings represent the same or similar elements. The embodiments described in the following exemplary embodiments do not represent all embodiments consistent with those of this disclosure. Rather, they are merely examples of apparatuses and methods consistent with some aspects of the embodiments of this disclosure.

[0036] The terminology used in the present disclosure is for the purpose of describing particular embodiments only and is not intended to be limiting of the present disclosure. As used in the present disclosure, the singular forms "a," "an" and "the" are intended to include the plural forms as well, unless the context clearly indicates otherwise. It will be further understood that the terms "comprises" and / or "comprising," when used in this specification, specify the presence of stated features, integers, steps, operations, elements, and / or components, but do not preclude the presence or addition of one or more other features, integers, steps, operations, elements, components, and / or groups thereof.

[0037] It should be understood that, although the terms first, second, third, etc. can be used herein to describe various information, the information should not be limited to these terms. These terms are only used to differentiate one piece of information from another. For example, a first information can also be termed a second information, and similarly, a second information can also be termed a first information without departing from the scope of the present disclosure. Depending on the context, the word "if" as used herein can be interpreted as meaning "when" or "if, when, or in response to determining."

[0038] In the related art, in a non-terrestrial network (NTN), due to the long distance and large path loss between a satellite or an aerial device and a ground user equipment (UE), the coverage of some channels is limited. For example, a physical uplink shared channel (PUSCH). Simulation results in the NTN show that demodulation reference signal (DMRS) bundling can improve the coverage of the physical uplink shared channel (PUSCH). For example, a DMRS bundling method has been introduced in a terrestrial network (TN) to improve uplink coverage. The DMRS bundling can be used for joint channel estimation of an uplink channel or an uplink signal by a base station.

[0039] For example, the DMRS bundling PUSCH configuration information element (DMRS-BundlingPUSCH-Config information element) and / or the DMRS bundling PUCCH configuration information element (DMRS-BundlingPUCCH-Config information element) carried by the radio resource control (RRC) signaling can be used to indicate the length of the nominal time domain window (TDW). In order to enable the joint channel estimation of the uplink channel or uplink signal by the base station, the UE needs to ensure the power consistency and phase continuity in a period of time, and the timing advance (TA) will destroy the power consistency and phase continuity.

[0040] Therefore, in the terrestrial network (TN), a plurality of events that destroy the nominal TDW are defined, which shorten the length of the nominal TDW, so that the base station only performs the joint channel estimation in the actual TDW. Since the events that destroy the nominal TDW are known to both the base station and the UE, the length or the starting time of the actual TDW is known to both the UE and the base station.

[0041] In the NTN, due to the continuous movement of the satellite, the distance between the UE and the satellite changes continuously, so the UE needs to continuously adjust the TA to adapt to the change. The UE calculates the open-loop TA according to the position of the UE and the uplink synchronization assistance information, wherein the UE determines the position of the UE by itself through a navigation satellite device such as a global navigation satellite system (GNSS).

[0042] Please refer to Figure 1 , which shows a structure schematic diagram of a wireless communication system provided by an embodiment of the present disclosure. As Figure 1 indicated, the wireless communication system is a communication system based on cellular mobile communication technology, and the wireless communication system can include a plurality of UEs 11 and a plurality of access devices 12. In some embodiments, the communication system can further include one or more core network devices, which are not shown in Figure 1 . The core network device includes but is not limited to a mobile management entity (MME) or an access management function (AMF), etc.

[0043] The UE 11 can be a device that provides voice and / or data connectivity to a user. The UE 11 can be a mobile device, a sensor device, a mobile phone (also known as a cellular telephone), and a computer with a mobile device, for example, that can be fixed, portable, pocketable, hand-held, computer-embedded, or car-mounted. The UE 11 can be a Station (STA), a subscriber unit, a subscriber station, a mobile station, a mobile, a remote station, an access point, a remote terminal, an access terminal, a user terminal, a user agent, a user device, or a user equipment (UE), for example. Alternatively, the UE 11 can be a device of an unmanned aerial vehicle. Alternatively, the UE 11 can be a vehicle-mounted device, for example, which can be an on-board computer with wireless communication function or a wireless communication device externally connected to the on-board computer. Alternatively, the UE 11 can be a roadside device, for example, which can be a street lamp, a signal lamp, or other roadside device with wireless communication function, or the UE 11 can be a relay device, for example, which can be a wireless communication device with relay function.

[0044] The access device 12 can be a network-side device in a wireless communication system. The wireless communication system can be a 4th generation mobile communication (4G) system, also known as a Long Term Evolution (LTE) system, or the wireless communication system can be a 5G system, also known as a new radio (NR) system or a 5G NR system. Alternatively, the wireless communication system can be a further next generation system of the 5G system. In the 5G system, the access network can be referred to as a new generation radio access network (NG-RAN). Alternatively, the wireless communication system can be an MTC system.

[0045] In an NTN network, the access device 12 can be a base station carried on an aerial device such as a satellite, or the access device 12 can be a base station on the ground that communicates with an aerial device such as a satellite through a ground station (for example, under a transparent payload network architecture).

[0046] The access device 12 can be an evolved NodeB (eNB) used in a 4G system. Alternatively, the access device 12 can also be a base station (gNB) using a centralized and distributed architecture in a 5G system. When the access device 12 uses a centralized and distributed architecture, it usually includes a central unit (CU) and at least two distributed units (DUs). The central unit is provided with a protocol stack of a packet data convergence protocol (PDCP) layer, a radio link control (RLC) layer, and a media access control (MAC) layer; and the distributed unit is provided with a physical (PHY) layer protocol stack. The specific implementation of the access device 12 is not limited in the embodiments of the present disclosure.

[0047] The access device 12 and the UE 11 can establish a wireless connection through a wireless air interface. In different embodiments, the wireless air interface is a wireless air interface based on a fourth generation mobile communication network technology (4G) standard; or the wireless air interface is a wireless air interface based on a fifth generation mobile communication network technology (5G) standard, such as a new air interface; or the wireless air interface can also be a wireless air interface based on a more next generation mobile communication network technology standard of 5G.

[0048] Exemplarily, in an NTN network, the distance between the UE and the access device is usually farther than the distance between the UE and the access device in a TN. The UE acquires uplink synchronization assistance information through a system information block (SIB-NTN) of the NTN. The uplink synchronization assistance information includes ephemeris information of a satellite and related information of a common timing advance (TA). The pre-compensation of the TA by the UE is inevitable, and the UE is not completely known when to update the open-loop TA by the base station. Therefore, the length or starting time of the actual TDW caused by the time of the pre-compensation of the TA by the UE is known by the UE but not known by the base station.

[0049] In view of this, as shown in Figure 2A The embodiments of the present disclosure provide an information processing method, wherein the method is performed by a UE, and the method comprises the following steps:

[0050] S1110: sending first information to a network device, wherein the first information is used to determine whether a power consistency and / or phase continuity breaking event occurs, or is used to determine an actual TDW.

[0051] The UE can be Figure 1 Exemplarily, the UE can be various types of communication devices, including but not limited to a mobile phone, a tablet computer, a wearable device, a vehicle-mounted device, a smart home device, a smart office device, and / or a flight device.

[0052] The network device can be an NTN network device. The NTN network device can include an NTN access device. The NTN access device can include but is not limited to an eNB of an NTN and / or a gNB of an NTN. The NTN access device can be located on a satellite or other aerial device, and the NTN access device can also be located on the ground, but the communication signal needs to be relayed or transparently transmitted through a satellite or other aerial device.

[0053] In this embodiment, the event of breaking the power consistency and / or phase continuity can also be referred to as an event of breaking the power consistency and / or phase continuity caused by UE behavior.

[0054] In one embodiment, the first information indicates that the event of breaking the power consistency and / or phase continuity is caused by UE behavior. Such UE behavior can be unknown to the base station. Since the UE adjusts the timing advance (TA) of uplink transmission according to the movement of the satellite and / or other aerial device and / or the UE itself, or suddenly adjusts the transmission power, etc., the phenomenon of inconsistent power or discontinuous phase can occur in different time units when performing joint estimation of the channel or signal. In the embodiment of the present disclosure, the UE sends the first information to the network device when detecting that the event of breaking the power consistency and / or phase continuity is performed, and / or the event of breaking the power consistency and / or phase continuity is about to be performed. The first information informs the network device that the above-mentioned breaking event occurs.

[0055] When the event of breaking the power consistency and / or phase continuity occurs, it means that the DMRS bundling cannot be used. The first indication information can be used to indicate whether the application condition of DMRS bundling is met.

[0056] When the application condition of DMRS bundling is met, the joint estimation of the uplink channel or uplink signal can be performed based on the transmission of the DMRS.

[0057] In another embodiment, the first information indicates the actual TDW determined by the UE according to whether the UE behavior causes the event of breaking the power consistency and / or phase continuity to occur.

[0058] The UE behavior causing the breaking event to occur herein includes but is not limited to at least one of the following:

[0059] The UE adjusts the TA;

[0060] The UE performs frequency pre-compensation.

[0061] Here, the UE adjusting the TA can include: movement of the UE and / or movement of a space device such as a satellite, so that the TA increases and / or decreases due to the change in the relative distance between the UE and the space device, for example, the relative distance between the UE and the NTN base station decreases, so that the TA decreases; or the relative distance between the UE and the NTN base station decreases, so that the TA increases.

[0062] In this way, the subsequent uplink of the UE occurs according to the adjusted TA, and the uplink information occurs in advance in the corresponding time unit, which can cause the phase continuity to be destroyed.

[0063] Here, the time pre-compensation can include TA-based time pre-compensation and / or pre-compensation based on other time quantities other than TA.

[0064] In some embodiments, the frequency domain pre-compensation of the UE also causes changes in phase continuity and / or changes in power consistency, and at this time, the UE performs frequency domain pre-compensation based on network configuration or pre-specification, which can be unknown to the network device, but the UE behavior causes the occurrence of the above-mentioned destruction event and destroys the nominal TDW, thereby adding at least one actual TDW.

[0065] Of course, the above is only the UE behavior that causes the occurrence of the power consistency and / or phase continuity destruction event, but the specific implementation is not limited to the above-mentioned UE behavior. In summary, after the network device receives the first information, the actual TDW can be determined according to the first information, which facilitates subsequent joint estimation of the uplink channel and / or uplink signal according to the actual TDW.

[0066] As shown in Figure 2B The present disclosure provides an information processing method, wherein the method is performed by a UE, and the method comprises:

[0067] S1210: In the process of multiple transmissions of one or more uplink channels, the first information is sent to the network device. The first information can be used by the base station and / or network device to determine whether the UE has caused a power consistency and / or phase continuity destruction event, or to determine the actual TDW.

[0068] The uplink channel can include but is not limited to PUSCH and / or PUCCH.

[0069] Here, the multiple transmissions can include: multiple repeated transmissions of one TB; or cross-slot or cross-symbol transmission of one TB. Both symbols and slots are a kind of time unit, and the multiple transmissions here can be repeated transmission and / or non-repeated transmission in multiple time units.

[0070] Exemplarily, the first information is transmitted to the network device in a repetition transmission process of a PUSCH, or in a cross-slot transmission process of a transmission block (TB) of a PUCCH or a PUSCH. The first information can be used by the network device such as a base station to determine whether a UE has a breaking event of power consistency and / or phase continuity, or to determine an actual TDW.

[0071] In some embodiments, the repetition herein can be a repetition of the same information content to improve gain through multiple repetitions, for example, multiple repetitions at different time units can improve time diversity gain.

[0072] In the repetition transmission process of the PUSCH, the first information is transmitted to the base station by the PUSCH, which facilitates the base station to jointly estimate the uplink channel and / or uplink signal. The uplink channel can include but is not limited to a physical uplink control channel (PUCCH) and / or a physical uplink shared channel (PUSCH).

[0073] In this way, the first information is transmitted in the repetition transmission process of the PUSCH, which facilitates the network device to know the first information in time and to determine the actual TDW.

[0074] The repetition transmission of the PUSCH herein can include repetition transmission of a Type A PUSCH and / or repetition transmission of a Type B PUSCH. Here, the repetition transmission of the Type A PUSCH can be cross-slot repetition transmission of the PUSCH. The repetition transmission of the Type B PUSCH TB can be intra-slot repetition transmission of the PUSCH.

[0075] The cross-slot transmission of the TB is that a TB needs to be transmitted in multiple slots, and does not involve repetition transmission of the TB.

[0076] As shown in Figure 2C The embodiments of the present disclosure provide an information processing method, wherein the method is performed by a UE, and the method comprises:

[0077] S1310: When the breaking event of the power consistency and / or the phase continuity occurs, a second information scrambled by a first scrambling manner is transmitted to the network device; wherein the second information scrambled by the first scrambling manner is one of the first information, and is used to indicate that a behavior of the UE which is not known by the network device causes the breaking event of the power consistency and / or the phase continuity to occur.

[0078] S1320: sending, to the network device, second information scrambled by a second scrambling manner, when the power consistency and / or phase continuity is not violated.

[0079] The second information scrambled by the first scrambling manner and the second scrambling manner is one of the first information in the foregoing embodiments.

[0080] When the UE behavior does not cause the power consistency and / or phase continuity to be violated, the UE sends, to the network device, the second information scrambled by the second scrambling manner, which indicates to the network device that the UE behavior does not cause the power consistency and / or phase continuity to be violated.

[0081] Exemplarily, the first scrambling manner and the second scrambling manner are different, and the difference can be embodied in at least one of the following aspects:

[0082] Different scrambling sequences are used;

[0083] Different scrambling manners are determined;

[0084] Different scrambling algorithms are used;

[0085] Different scrambling targets are used. For example, assuming that the uplink channel is PUSCH, the second information scrambled can be information carried by the PUSCH, such as data information and / or control information, the second information scrambled can also be a CRC of the PUSCH, and the second information scrambled can also be a DMRS in the PUSCH. Of course, the above is only an example of the difference between the first scrambling manner and the second scrambling manner.

[0086] If the second information is scrambled by different scrambling manners, it is equivalent to implicitly indicating to the network device whether the UE side has the power consistency and / or phase continuity violation event that is unknown to the network device.

[0087] Exemplarily, the second information includes at least one of the following aspects:

[0088] PUSCH information;

[0089] Cyclic redundancy check code (CRC) of the PUSCH;

[0090] DMRS of the PUSCH;

[0091] PUCCH information;

[0092] CRC of the PUCCH information;

[0093] DMRS of the PUSCH.

[0094] The PUSCH information can be any information transmitted on the PUSCH. The PUSCH information can include a Transmission Block (TB) and one or more check codes. The PUSCH information scrambled by the first scrambling manner and the second scrambling manner respectively can include a TB scrambled by the first scrambling manner and / or the second scrambling manner.

[0095] The PUCCH information can be any information transmitted on the PUCCH. The information transmitted on the PUCCH can include Uplink Control Information (UCI).

[0096] The check code can include, but is not limited to, a CRC. That is, the CRC can be a check code generated by performing cyclic redundancy check on part or all of the PUSCH information or the PUCCH information.

[0097] The CRC can include at least one of the following:

[0098] a TB-level CRC, which is a check code generated by performing cyclic redundancy check on a TB;

[0099] a Code Block (CB)-level CRC, which can be a check code generated by performing cyclic redundancy check on a CB;

[0100] a Code Block Group (CBG)-level CRC, which can be a check code generated by performing cyclic redundancy check on a CBG.

[0101] One TB can include one or more CBGs. One CBG can include one or more CBs.

[0102] When the DMRS of the PUSCH is scrambled by different scrambling manners, the network device can receive different DMRSs after scrambling, so as to know whether the UE behavior has caused a damage event that destroys power consistency and / or phase continuity according to the scrambling sequence and / or the descrambling algorithm that successfully descramble the DMRS.

[0103] In some embodiments, the method further includes:

[0104] When the first scrambling manner is used, a scrambling sequence is calculated using a preset parameter;

[0105] Alternatively,

[0106] When the second scrambling manner is used, the scrambling sequence is not calculated using the preset parameter.

[0107] The preset parameter can be a specific parameter for calculating the scrambling sequence. The preset parameter can determine an offset when indexing the scrambling sequence, a modulus value when performing modulo operation, or a weighting coefficient, etc. The parameters in different time units can determine the index of the scrambling sequence according to the index of the time unit, and further determine the scrambling sequence according to the index. The index of the scrambling sequence calculated according to the index of the time unit will be different if the preset parameter is introduced or not introduced. For example, the index of the scrambling sequence can be calculated according to the scheduling information of the TB in different TB transmissions. The index of the scrambling sequence scrambled according to the scheduling information will be different if the preset parameter is introduced or not introduced.

[0108] In this way, the introduction of the preset parameter will result in different scrambling sequences. In this way, different scrambling sequences can be calculated by using the same scrambling sequence calculation method but due to the introduction of the preset parameter. This is equivalent to using different scrambling methods to scramble the second information.

[0109] In some embodiments, the method further comprises:

[0110] When the first scrambling method is used, a first radio network temporary identifier (RNTI) is used as the scrambling sequence;

[0111] Alternatively,

[0112] When the second scrambling method is used, a second RNTI is used as the scrambling sequence.

[0113] The first RNTI and the second RNTI can both be RNTIs configured by the network device to the UE. In the embodiments of the present disclosure, at least two RNTIs can be configured, which are the first RNTI and the second RNTI, and are used as scrambling sequences of different scrambling methods respectively. When the RNTI is used for scrambling, there is no need to calculate the scrambling sequence. After receiving the second information, the network device can use the first RNTI and the second RNTI for descrambling respectively. The RNTI corresponding to the first scrambling method that succeeds in descrambling can be considered as the terminal behavior causing the foregoing damage event, i.e., the nominal TDW is damaged and the actual TDW is determined according to the first information. If the RNTI corresponding to the second scrambling method succeeds in descrambling, it can be considered that the foregoing damage event is not caused by the UE behavior or the current nominal TDW is not damaged.

[0114] In some embodiments, the method further comprises:

[0115] When the first scrambling method is used, a first parameter is used to determine the scrambling sequence;

[0116] Alternatively,

[0117] When the second scrambling method is used, a second parameter is used to determine the scrambling sequence.

[0118] The first parameter and the second parameter can be different parameter values of the same parameter, and in general, different parameter values can be mapped to different scrambling sequences in the scrambling sequence pool, so that the first scrambling manner and the second scrambling manner implement scrambling of the second information, thereby implementing transmission of the first information.

[0119] In one embodiment, the sending, to the network device, the second information scrambled by the first scrambling manner when the power consistency and / or phase continuity is destroyed, comprises:

[0120] The second information of the multiple transmissions is scrambled by the first scrambling manner when the power consistency and / or phase continuity is destroyed, and the scrambled second information is sent to the network device.

[0121] In this embodiment, if a destruction event caused by UE behavior occurs within the transmission time of the multiple transmissions, all the second information in the multiple transmissions is scrambled by the first scrambling manner, so that the second information received by the network device is scrambled by the first scrambling manner, otherwise all the second information of the multiple transmissions sent by the terminal is scrambled by the second scrambling manner.

[0122] In this way, the second information corresponding to the multiple transmissions of the first scrambling manner and the second scrambling manner will be used to indicate whether a destruction event occurs, and the time domain position of the specific destruction event can be indicated by other information. That is, the first scrambling manner can correspond to a special scrambling manner, and the second scrambling manner can correspond to any scrambling manner other than the special scrambling manner.

[0123] In another embodiment, the sending, to the network device, the second information scrambled by the first scrambling manner when the power consistency and / or phase continuity is destroyed, comprises:

[0124] When the power consistency and / or phase continuity is destroyed, the second information of part of the multiple transmissions is determined to be scrambled by the first scrambling manner according to the transmission number corresponding to the destruction event of the power consistency and / or phase continuity, and part of the second information scrambled by the first scrambling manner and part of the second information scrambled by the second scrambling manner are sent to the network device.

[0125] In the embodiments of the present disclosure, when a disruption event occurs, the second information corresponding to the multiple transmissions before and after the time unit in which the disruption event occurs is scrambled using different scrambling manners according to the time unit in which the disruption event occurs. This manner not only informs the network device that a disruption event has occurred, but also implicitly informs the time unit in which the disruption event occurs through the different time units corresponding to the different scrambling manners. At this time, the network device will determine the actual TDW according to the time unit in which the disruption event occurs.

[0126] In some embodiments, when each of the multiple transmissions occurs in a range of different time units, the second information corresponding to one of the multiple transmissions in which the disruption event occurs is scrambled using different scrambling manners. This manner not only informs the network device that a disruption event has occurred, but also implicitly informs the time domain position of the disruption event in the multiple transmissions through the certain transmission of the multiple transmissions corresponding to the different scrambling manners. The UE determines the actual TDW as certain continuous transmissions of the multiple transmissions in which the special scrambling is not used. At this time, the network device will determine the actual TDW according to the time domain position of the disruption event in the multiple transmissions. Exemplarily, each of the multiple transmissions can correspond to one or more time units, which can be a time slot, a mini-slot, or a symbol, etc.

[0127] The time unit can be a time slot, a mini-slot, or a symbol.

[0128] In this embodiment, in some cases, the first scrambling manner can be a special scrambling manner used to specifically indicate that a disruption event has occurred. In other cases, the first scrambling manner is not a special scrambling manner, but any scrambling manner different from the second scrambling manner, and the occurrence of the disruption event or the starting position of the different actual TDWs is indicated through the switching between the different scrambling manners of the multiple transmissions.

[0129] In some embodiments, the determining, according to the number of transmissions corresponding to the disruption event of the power consistency and / or phase continuity, that the second information of the partial repetition transmission is scrambled using the first scrambling manner, comprises:

[0130] When the disruption event of the power consistency and / or phase continuity occurs between the nth transmission and the n+1th transmission, the second information transmitted in the time unit range in which the second information transmitted in the n+yth transmission is scrambled using the first scrambling manner. The y can be a natural number, that is, y can be 0 or any positive integer less than or equal to s-n.

[0131] Assuming that the multiple transmissions include M transmissions, and are respectively the 0th transmission to the (M-1)th transmission, if the disruption event occurs between the nth transmission and the (n+1)th transmission, in the embodiment of the present disclosure, the second information of the (n+y)th transmission is scrambled using the first scrambling manner, and the second information corresponding to the transmission times at which no disruption event occurs is still scrambled using the second scrambling manner. In this way, the network device receives the transmission times that are successfully scrambled according to the descrambling manner corresponding to the first scrambling manner, knows that the disruption event has occurred, and can know the transmission time at which the disruption event occurs, and can determine the actual TDW according to the time unit bound (or corresponding) to each transmission time.

[0132] In some embodiments, the determining, according to the time domain position of the disruption event of the power consistency and / or phase continuity, that the second information of the partial repeated transmission is scrambled using the first scrambling manner includes:

[0133] Assuming that the total number of the multiple transmissions is M, when the disruption event of the power consistency and / or phase continuity occurs between the nth transmission and the (n+1)th transmission, the second information transmitted in the (n+y)th transmission is scrambled using the first scrambling manner.

[0134] In the embodiment of the present disclosure, the second information of the Nth transmission is scrambled using the first scrambling manner, and the second information of the M-1 transmissions at which no disruption event occurs is still scrambled using the second scrambling manner. In this way, the network device receives the transmission times that are successfully scrambled according to the descrambling manner corresponding to the first scrambling manner, knows that the disruption event has occurred, and can know the time domain position at which the disruption event occurs, and thus facilitates the network device to determine the actual TDW.

[0135] In some embodiments, the determining, according to the time unit of the disruption event of the power consistency and / or phase continuity, that the second information of the partial repeated transmission is scrambled using the first scrambling manner includes:

[0136] When the disruption event of the power consistency and / or phase continuity occurs between the nth transmission and the (n+1)th transmission, the second information transmitted in the (n+y)th transmission to the mth time unit is scrambled using the first scrambling manner. The y can be a natural number, and exemplarily, the y can be 1.

[0137] For example, since the foregoing breaking event is caused by the UE behavior, the UE can know in advance that its behavior will cause the breaking event to occur between the nth transmission and the n+1th transmission, at which time the first scrambling manner can be used in advance to scramble the n+yth transmission. At this time, the second information of the multiple transmissions before the n+y-1th transmission still uses the second scrambling manner, so that when the network device receives all the second information of the multiple transmissions, the network device can know that the breaking event has occurred and can know the time unit in which the breaking event occurred according to the switching time boundary of the first scrambling manner and the second scrambling manner, and then facilitate the network device to determine the actual TDW.

[0138] In this embodiment, in some cases, the first scrambling manner can be a special scrambling manner used to specifically indicate that a breaking event has occurred. In other cases, the first scrambling manner is not a special scrambling manner, but any scrambling manner different from the second scrambling manner, and the occurrence of a breaking event or the starting position of a different actual TDW is indicated by switching between the different scrambling manners of the multiple transmissions.

[0139] In some embodiments, the time unit in which the breaking event occurs according to the power consistency and / or phase continuity is used to determine that the second information of the partial repetition transmission is scrambled using the first scrambling manner, comprising:

[0140] When the breaking event of the power consistency and / or phase continuity occurs between the nth transmission and the n+1th transmission, the first scrambling manner is used to scramble the second information transmitted from the n+yth transmission to the sth transmission, where y is a natural number less than or equal to s-n. That is, the second information of the multiple transmissions before the n+y-1th transmission and the second information of the nth transmission still use the second scrambling manner, so that when the network device receives all the second information of the multiple transmissions, the network device can know that the breaking event has occurred and can know the time unit in which the breaking event occurred according to the switching time boundary of the first scrambling manner and the second scrambling manner, and then facilitate the network device to determine the actual TDW.

[0141] Here, the nth to sth transmissions are all transmissions in the foregoing multiple transmissions, and the nth transmission and the sth transmission are different transmissions in the foregoing multiple transmissions.

[0142] In one embodiment, the s can be any positive integer greater than n+1.

[0143] In another embodiment, the s-th transmission is the last transmission in the multiple transmissions, or the previous transmission before a destruction event of power consistency and / or phase continuity occurs again after the n-th transmission.

[0144] As shown in Figure 2D The embodiments of the present disclosure provide an information processing method, wherein the method is performed by a UE, and the method comprises:

[0145] S1410: determining an actual TDW according to a transmission number corresponding to a time when the destruction event of power consistency and / or phase continuity occurs when the destruction event of power consistency and / or phase continuity occurs.

[0146] S1420: transmitting second information scrambled by different scrambling manners in different actual TDWs.

[0147] The UE determines the actual TDW according to a time unit when the destruction event caused by the UE behavior occurs when the destruction event caused by the UE behavior occurs, and determines the actual TDW based on the actual TDW. The second information transmitted in different actual TDWs is scrambled by different scrambling manners. In this way, the network device can determine the actual TDW according to different scrambling manners. For example, the time domain starting position of an actual TDW can be determined according to a starting symbol of a transmission number corresponding to a time when the destruction event occurs.

[0148] It is worth noting that in this embodiment, in some cases, the first scrambling manner can be a special scrambling manner used to specifically indicate the occurrence of the destruction event. In other cases, the first scrambling manner is not a special scrambling manner, but an arbitrary scrambling manner different from the second scrambling manner. The occurrence of the destruction event or the start of a different actual TDW is indicated by switching between different scrambling manners of multiple transmissions.

[0149] Exemplarily, if the destruction event occurs for the first time at the n-th transmission, the 0-th transmission to the n-1-th transmission of the multiple transmissions are determined as an actual TDW, and the determination of the next actual TDW starts from the n+y-th transmission. Here, y can be any natural number agreed upon by the base station and the UE. Of course, y needs to be less than or equal to s-n. s can be the last transmission of the multiple transmissions or the previous transmission before the next destruction event occurs.

[0150] Of course, this is only an example of the restart of the calculation of different actual TDWs, and the specific implementation is not limited to this example. For example, the duration of the destruction event can be combined to determine the restart time domain position of the next actual TDW. For example, the duration of the destruction event is the duration corresponding to f times of transmission, and the calculation of the next actual TDW can be started from the start time domain position of the n+f th transmission. In the embodiment of the present disclosure, the UE will restart the calculation of a time TDW according to the destruction event, so that the second information is scrambled according to the actual TDW and in time using different scrambling modes. For example, the different scrambling modes can include a third scrambling mode and a fourth scrambling mode, and the scrambling sequences of the third scrambling mode and the fourth scrambling mode are different or the scrambling algorithms are different. The scrambling sequences of the third scrambling mode and the fourth scrambling mode can be determined in the same way as the scrambling sequences corresponding to the first scrambling mode and the second scrambling mode.

[0151] For example, the RNTI used by the third scrambling mode and the fourth scrambling mode is different, or the scrambling identifier is different, or whether a preset parameter is used to calculate the scrambling sequence, etc. At this time, neither the third scrambling mode nor the fourth scrambling mode is a fixed scrambling mode to represent whether the UE behavior causes the aforementioned destruction event, etc. Therefore, when the network device detects that the information scrambling transmission mode sent by the UE has two or more than two, it is considered that the UE behavior causes the aforementioned destruction event, and the switching boundary of the different scrambling modes can be used to determine the time unit of the occurrence of the destruction event.

[0152] In this embodiment, in some cases, the first scrambling mode can be a special scrambling mode used to specifically indicate the occurrence of a destruction event. In other cases, the first scrambling mode is not a special scrambling mode, but any scrambling mode different from the second scrambling mode, and the switching between different scrambling modes of multiple transmissions indicates the occurrence of a destruction event or the start of a different actual TDW. For example, the network device performs RRC configuration or DCI scheduling on the aforementioned multiple transmissions, and configures multiple scrambling modes at a time. None of the scrambling modes is specifically used to indicate the occurrence of a destruction event or the start of a TDW recalculation, but according to the scrambling mode used when the UE behavior does not cause a destruction event and the time unit of the destruction event, another scrambling mode is selected to scramble the second information transmitted in the subsequent actual TDW.

[0153] In some embodiments, the sending of the first information to the network device includes:

[0154] According to whether the destruction event of the power consistency and / or phase continuity occurs, the second information is transmitted using the corresponding transmission parameter.

[0155] For example, the transmission parameter includes at least one of the following:

[0156] a time domain position of the second information;

[0157] a frequency hopping parameter of the second information.

[0158] Exemplarily, a starting time domain position of the second information is different, or an ending time domain position of the second information is different, which can respectively indicate whether the destruction event occurs.

[0159] The transmission parameter can include a frequency domain position of the second information. The frequency domain position can include a resource block (RB) and / or a resource element (RE) or a RB cluster or a bandwidth part (BWP) when frequency hopping transmission is not performed. One RB cluster can include one or more RBs.

[0160] The frequency hopping parameter can be an indication parameter of a transmission mode. For example, the frequency hopping parameter can include a frequency hopping indication, which can indicate whether frequency hopping transmission is adopted. For example, frequency hopping transmission is adopted for a destruction event caused by UE behavior, and frequency hopping transmission is not adopted for a destruction event caused by no UE behavior. For another example, frequency hopping transmission is adopted for a destruction event caused by UE behavior, and frequency hopping transmission is not adopted for a destruction event caused by no UE behavior, and then the network device can determine whether the destruction event occurs according to whether frequency hopping transmission is adopted.

[0161] Further, a frequency hopping position of the frequency hopping transmission can be aligned with a time unit when the destruction event occurs. For example, a destruction event occurs between the nth transmission and the n+1th transmission, and frequency hopping is performed between the nth transmission and the n+1th transmission, so that the network device can determine the transmission number corresponding to the time when the destruction event occurs according to the transmission number corresponding to the frequency hopping transmission, and determine the actual TDW according to the time unit corresponding to each transmission number.

[0162] The frequency hopping parameter can further include an indication of a frequency hopping mode. The frequency hopping mode can include intra-slot frequency hopping and / or inter-slot frequency hopping.

[0163] In some embodiments, the first information includes at least one of the following:

[0164] an occurrence indication indicating whether a destruction event of power consistency and / or phase continuity occurs;

[0165] time domain position information indicating a time unit when the destruction event of power consistency and / or phase continuity occurs;

[0166] time domain window (TDW) information indicating a starting time domain position of an actual time domain window.

[0167] The first information can be information specifically indicating occurrence of a breaking event or information indicating generation of different actual TDWs, which is a kind of special explicit indication information.

[0168] The occurrence indication can include one or more bits, which can be used to indicate occurrence of a breaking event of power consistency and / or phase continuity.

[0169] As Figure 2E shown in the information processing method provided by the embodiments of the present disclosure, the method is performed by a UE and includes the following steps.

[0170] S1510: determining a time domain position of restarting actual TDW calculation according to a time unit of occurrence of a breaking event of power consistency and / or phase continuity.

[0171] Here, the breaking event can also be a breaking event caused by the UE behavior. When determining the actual TDW, the UE can refer to not only a breaking event caused by a network device such as a base station, but also a breaking event caused by the UE behavior to calculate the TDW, so as to ensure accuracy of the actual TDW calculation and accuracy of subsequent channel joint estimation based on the actual TDW.

[0172] Notably, Figure 2E The information processing method shown in the embodiments can be implemented alone or in combination with any of the preceding embodiments. For example, the Figure 2E The information processing method shown in the embodiments can be implemented in combination with any of the preceding Figure 2A to Figure 2D The information processing method shown in the embodiments can be implemented in combination.

[0173] In some embodiments, the method further includes:

[0174] When the breaking event of power consistency and / or phase continuity occurs between the nth transmission and the (n+1)th transmission, a time unit corresponding to the (n+m)th transmission is determined as the time domain position of restarting the actual TDW calculation according to interval configuration or a predefined rule, wherein the m is indicated by the interval configuration or the predefined rule, and the m is any natural number.

[0175] For example, the interval configuration can be indicated by a network device through network signaling, which can include RRC signaling, MAC layer signaling, DCI, or the like.

[0176] For another example, the predefined rule can include a communication protocol, or a pre-negotiation between a base station and a UE, or an operator policy of a communication operator, or the like.

[0177] Restarting the calculation of the actual TDW is equivalent to entering the calculation of the next TDW.

[0178] It is worth noting that y in the foregoing embodiment can be equal to m. For example, the foregoing y and m can be the same parameter. That is, y in the foregoing embodiment can also be determined by interval configuration or predefined specification.

[0179] In some embodiments, the time domain position at which the calculation of the actual time domain window (TDW) is restarted is determined according to a corresponding number of transmissions of a violation event of power consistency and / or phase continuity, including:

[0180] When the UE supports restarting the calculation of the actual TDW, the time domain position at which the calculation of the actual time domain window (TDW) is restarted is determined according to a corresponding number of transmissions of a violation event of power consistency and / or phase continuity.

[0181] In some embodiments, some UEs support restarting the calculation of the actual TDW, and some UEs do not support restarting the calculation of the actual TDW. Thus, only when the UE supports restarting the calculation of the actual TDW, the calculation of the actual TDW is performed, and then the foregoing first information and the like can be transmitted according to the actual TDW calculated by the UE.

[0182] As shown in Figure 2F The embodiment of the disclosure provides an information processing method, wherein the method is performed by a UE, and the method comprises the following steps:

[0183] S1610: transmitting third information to the network device, wherein the third information indicates at least one of the following:

[0184] indicating that the UE supports restarting the calculation of the actual TDW;

[0185] indicating whether the UE supports the reporting of the first information. The first information is used to determine whether a violation event of power consistency and / or phase continuity occurs, or is used to determine an actual time domain window (TDW).

[0186] The embodiment can be implemented alone or in combination with any of the foregoing embodiments, for example, the information processing method shown in Figure 2F The information processing method can be implemented alone or in combination with the information processing method shown in Figure 2A to Figure 2D The information processing method shown in

[0187] The third information can be UE capability information or UE assistance information.

[0188] By sending the third information to the network device, the network device can determine whether the UE supports actual TDW restart calculation. If the UE supports actual TDW restart calculation, the UE will start the calculation of actual TDW by itself when it determines that there is an event that destroys phase consistency or power consistency.

[0189] In some cases, whether the UE supports the reporting of the first information is also an embodiment of the UE capability. For example, some low-end UEs do not support the reporting of the first information, and the first information indicating that the UE behavior causes the occurrence of the event that destroys the power consistency and / or phase continuity cannot be reported. High-end UEs can indicate the reporting of the first information, and the high-end UEs can report the first information or start the reporting of the first information when the reporting function is enabled.

[0190] Exemplarily, the method comprises:

[0191] receiving an enabling indication sent by the network device;

[0192] determining whether to enable the reporting function of the first information of the UE according to the enabling indication;

[0193] The first indication information is reported after the reporting function.

[0194] For example, the UE indicates the reporting function, and whether to start the reporting of the first information can be configured by the network device. For example, the network device can send an enabling indication through RRC signaling, MAC signaling, or DCI.

[0195] Of course, in some embodiments, the reporting function can be determined whether to enable in advance.

[0196] Exemplarily, the enabling indication can be received after the UE reports the third information. For example, the enabling indication is used to indicate that the UE enables or disables the enabling function of the UE reporting the first information.

[0197] As Figure 3A The embodiment of the present disclosure provides an information processing method, wherein the method is performed by a network device, and the method comprises:

[0198] S2110: receiving first information of a UE, wherein the first information is used to determine whether an event that destroys power consistency and / or phase continuity occurs, or is used to determine actual TDW.

[0199] The network device can be an NTN network device. The NTN network device can comprise an NTN access device. The NTN access device can comprise, but is not limited to, an eNB of an NTN and / or a gNB of an NTN.

[0200] In this embodiment, events that disrupt power consistency and / or phase continuity can also be referred to as events that disrupt power consistency and / or phase continuity.

[0201] In one embodiment, the first information indicates that a power consistency and / or phase continuity disruption event has occurred due to UE behavior. This UE behavior may be unknown to the base station. Because the UE adjusts its own uplink transmission time advance (TA) based on the NTN access device and / or its own movement, or the UE suddenly adjusts its transmit power, power inconsistencies or phase discontinuities may occur in different time units during joint channel or signal estimation. In this embodiment, when the UE detects a power consistency and / or phase continuity disruption event, and / or an impending disruption event, it sends the first information to the network device. This first information informs the network device of the aforementioned disruption event.

[0202] In the event of an event that disrupts power consistency and / or phase continuity, DMRS bonding cannot be used. Therefore, the first indication information can be used to indicate whether the application conditions for DMRS bonding are met.

[0203] If the application conditions for DMRS binding are met, then joint estimation of the uplink channel or uplink signal can be performed based on the DMRS transmission.

[0204] In another embodiment, the first information indicates: information about the actual TDW determined by the UE based on whether there is an event that disrupts power consistency and / or phase continuity.

[0205] In summary, after receiving the first information, the network device can determine the actual TDW based on the first information, which facilitates the subsequent joint estimation of the uplink channel and / or uplink signal based on the actual TDW.

[0206] like Figure 3B As shown, this disclosure provides an information processing method, which is executed by a network device, and the method includes:

[0207] S2210: During multiple transmissions on at least one uplink channel, receive the first information sent by the UE.

[0208] The uplink channel may include, but is not limited to, PUSCH and / or PUCCH.

[0209] Multiple transmissions here can include: multiple repeated transmissions within a TB; or, a TB of transmission across time slots or symbols, etc. Symbols and time slots are both types of time units, and multiple transmissions here can be repeated transmissions and / or non-repeated transmissions within multiple time units.

[0210] For example, the first information is transmitted to the network device in a repetition transmission process of a PUSCH, or in a cross-slot transmission process of a transmission block (TB) of a PUCCH or a PUSCH. The first information can be used by the network device such as a base station to determine whether a UE has a breaking event of power consistency and / or phase continuity, or to determine an actual TDW.

[0211] In some embodiments, the repetition herein can be a repetition of the same information content, so as to improve gain through multiple repetitions, for example, multiple repetitions at different time units can improve time diversity gain.

[0212] In the repetition transmission process of the PUSCH, the first information is transmitted to the base station by the PUSCH, so as to facilitate the base station to jointly estimate an uplink channel and / or an uplink signal. The uplink channel can include but is not limited to a physical uplink control channel (PUCCH) and / or a physical uplink shared channel (PUSCH).

[0213] In this way, the first information is transmitted in the repetition transmission process of the PUSCH, so as to facilitate the network device to know the first information in time and determine the actual TDW.

[0214] The repetition transmission of the PUSCH herein can include repetition transmission of a Type A PUSCH and / or repetition transmission of a Type B PUSCH. Here, the repetition transmission of the Type A PUSCH can be cross-slot repetition transmission of the PUSCH. The repetition transmission of the Type B PUSCH can be intra-slot repetition transmission of the PUSCH.

[0215] The cross-slot transmission of the TB is that a TB needs to be transmitted in multiple slots, and does not involve repetition transmission of the TB.

[0216] As shown in FIG. 1, the embodiments of the present disclosure provide an information processing method, wherein the method is performed by a network device, and the method comprises: Figure 3C

[0217] S2310: receiving second information;

[0218] S2320: when the second information is successfully descrambled by using a first descrambling manner corresponding to a first scrambling manner, determining that a breaking event of power consistency and / or phase continuity occurs;

[0219] ​S2330: When the second information is successfully descrambled by the second descrambling mode corresponding to the second scrambling mode, it is determined that the damage event of the power consistency and / or the phase continuity does not occur.

[0220] In some embodiments, the first descrambling mode corresponds to the first scrambling mode, and the second descrambling mode corresponds to the second scrambling mode. In this embodiment, the first scrambling mode can be a specific scrambling mode, and the first descrambling mode can be a specific descrambling mode.

[0221] In some embodiments, the second information includes at least one of the following:

[0222] PUSCH information;

[0223] PUCCH information;

[0224] CRC of the PUSCH information;

[0225] CRC of the PUCCH information;

[0226] DMRS of the PUSCH;

[0227] DMRS of the PUCCH.

[0228] The PUSCH information here can be any information transmitted on the PUSCH. The PUSCH information can include: a transmission block (TB) and one or more check codes. The aforementioned PUSCH information scrambled by the first scrambling mode and the second scrambling mode respectively can include: scrambling the TB using the first scrambling mode and / or the second scrambling mode.

[0229] The PUCCH information here can be any information transmitted on the PUCCH. The information transmitted on the PUCCH can include: uplink control information (UCI).

[0230] The aforementioned check code can include but is not limited to CRC. That is, the CRC can be a check code generated by performing cyclic redundancy check on part or all of the contents of the PUSCH information or the PUCCH information.

[0231] The CRC can include at least one of the following:

[0232] TB-level CRC, which is a check code generated by performing cyclic redundancy check on the TB;

[0233] CB-level CRC, which can be a check code generated by performing cyclic redundancy check on the CB;

[0234] A code block group (CBG)-level CRC, which can be a cyclic redundancy check (CRC) on one CBG.

[0235] One TB can include one or more CBGs. One CBG can include one or more CBs.

[0236] When the DMRS of the PUSCH is scrambled by different scrambling manners, the network device receives different DMRSs after scrambling, and thus can know whether the UE behavior has caused a damage event that destroys the power consistency and / or the phase continuity according to the scrambling sequence and / or the descrambling algorithm that successfully descrambles the DMRS.

[0237] In some embodiments, the method further includes:

[0238] The scrambling sequence corresponding to the first descrambling manner is calculated using a preset parameter.

[0239] Alternatively,

[0240] The scrambling sequence corresponding to the second descrambling manner is not calculated using the preset parameter.

[0241] The preset parameter can be a specific parameter for calculating the scrambling sequence. The preset parameter can determine an offset when determining the index of the scrambling sequence, a modulus value when performing a modulo operation, or a weighting coefficient, etc. The parameters in different time units can determine the index of the scrambling sequence according to the index of the time unit, and further determine the scrambling sequence according to the index. If the preset parameter is introduced or not introduced, the index of the scrambling sequence calculated according to the index of the time unit will be different. For example, the index of the scrambling sequence can be calculated according to the scheduling information of the TB during different TB transmissions. If the preset parameter is introduced or not introduced, the index of the scrambling sequence scrambled according to the index of the scheduling information will be different.

[0242] In this way, by introducing the preset parameter, the scrambling sequence obtained will be different. In this way, the same scrambling sequence calculation method is used, but due to the introduction of the preset parameter, different scrambling sequences can be calculated. Therefore, different scrambling manners are used to scramble the second information.

[0243] Exemplarily, the scrambling sequence corresponding to the first descrambling manner is a first radio network temporary identifier (RNTI).

[0244] Alternatively,

[0245] The scrambling sequence corresponding to the second descrambling manner is a second RNTI.

[0246] The first RNTI and the second RNTI can be RNTIs configured for the UE by the network device. In the embodiments of the present disclosure, at least two RNTIs can be configured, which are the first RNTI and the second RNTI respectively, and are used as scrambling sequences of different scrambling modes respectively. When scrambling is performed by using the RNTI, there is no need to calculate the scrambling sequence. After receiving the second information, the network device can use the first RNTI and the second RNTI to descramble respectively. If the RNTI corresponding to the successful descrambling corresponds to the first scrambling mode, it can be considered that the terminal behavior causes the foregoing damage event, that is, the nominal TDW is damaged and the actual TDW is determined according to the first information. If the RNTI corresponding to the successful descrambling corresponds to the second scrambling mode, it can be considered that the UE behavior does not cause the foregoing damage event or the current nominal TDW is not damaged.

[0247] In some embodiments, the method further comprises:

[0248] The scrambling sequence corresponding to the first descrambling mode is determined according to a first parameter;

[0249] Or,

[0250] The scrambling identifier of the scrambling sequence corresponding to the first descrambling mode is determined according to a second parameter.

[0251] The first parameter and the second parameter can be different parameter values of the same parameter. In summary, different parameter values can be mapped to different scrambling sequences in the scrambling sequence pool, so that the first scrambling mode and the second scrambling mode achieve the scrambling of the second information, thereby achieving the sending of the first information.

[0252] As Figure 3D shown, the embodiments of the present disclosure provide an information processing method, wherein the method is performed by a network device, and the method comprises:

[0253] S2410: receiving first information;

[0254] S2420: determining, according to the first information, a time unit in which a damage event of power consistency and / or phase continuity occurs;

[0255] S2430: determining an actual TDW according to a transmission number corresponding to the occurrence of the damage event.

[0256] Since the time unit corresponding to each transmission is determined, if the transmission number corresponding to the occurrence of the damage event is determined, the time domain starting position of the actual TDW can be determined according to the binding relationship between the transmission number and the time unit, and the actual TDW can be calculated.

[0257] If the first information explicitly or implicitly indicates the number of transmissions corresponding to the occurrence of the power consistency and / or phase continuity destruction event, the network device can first determine the time unit of the occurrence of the power consistency and / or phase continuity destruction event according to the first information, and then determine the actual TDW in combination with the time unit of the occurrence of one or more destruction events.

[0258] As shown in Figure 3E The embodiments of the present disclosure provide an information processing method, wherein the method is performed by a network device, and the method comprises:

[0259] S2510: receiving first information;

[0260] S2520: determining an actual TDW according to the first information.

[0261] If the first information explicitly or implicitly indicates the actual TDW, at this time, it indicates that the UE has calculated the actual TDW according to whether the UE behavior leads to the destruction event, and then directly sends the first information for indicating the actual TDW. In this way, the network device can directly determine the actual TDW according to the first information.

[0262] Figure 3D And Figure 3E The actual TDW determined by the information processing method can be used for joint estimation of an uplink channel or application conditions satisfying DMRS binding.

[0263] If the UE uses the first scrambling mode to scramble the second information involved in multiple transmissions in the time unit in which the UE behavior leads to the occurrence of the power consistency and / or phase continuity destruction event, the network device can determine the time unit of the occurrence of the destruction event according to the time unit in which the second information scrambled by the first scrambling mode is successfully descrambled by the first descrambling mode. In one embodiment, the method further comprises:

[0264] For example, if the UE uses the first scrambling mode to scramble the second information transmitted in the time unit of the occurrence of the destruction event, at this time, when the second information corresponding to the nth+y transmission to the sth transmission is successfully descrambled by the second descrambling mode, it is determined that the power consistency and / or phase continuity destruction event occurs between the nth transmission and the nth+1 transmission; wherein y is 0 or any positive integer less than or equal to s-n.

[0265] Preferably, y can be equal to 1, so that even if the destruction event caused by the aforementioned UE behavior occurs temporarily, the UE has the opportunity to scramble the second information of the nth+1 transmission or the nth+1 transmission to the sth transmission in time according to the need using the first scrambling mode.

[0266] Thus, the network device can determine that the power consistency and / or phase continuity destruction event occurs between the nth transmission and the n+1th transmission when the second information corresponding to the nth transmission or the n+1th transmission is successfully descrambled by using the second descrambling mode.

[0267] In some other embodiments, if the UE uses the first scrambling mode from the time unit of the occurrence of the destruction event to the last time unit or the time unit of the occurrence of the next destruction event, the network device can determine that the power consistency and / or phase continuity destruction event occurs between the nth transmission and the n+1th transmission when the second information corresponding to the n+yth transmission to the sth transmission is successfully descrambled by using the second descrambling mode.

[0268] In some other embodiments, if the UE uses the first scrambling mode from the time unit of the occurrence of the destruction event to the last time unit or the time unit of the occurrence of the next destruction event, the network device can determine that the power consistency and / or phase continuity destruction event occurs between the nth transmission and the n+1th transmission when the second information corresponding to the n+yth transmission to the sth transmission is successfully descrambled by using the second descrambling mode, y being a natural number.

[0269] The specific use of the first scrambling mode and the second scrambling mode can be determined by network configuration of the network device and / or predefined rules. Thus, after the network device receives the second information and successfully descrambles the second information by using the first descrambling mode and / or the second descrambling mode, the network device can know the time unit of the occurrence of the destruction event according to the network configuration and / or the predefined rules.

[0270] In some embodiments, the method further comprises:

[0271] determining, according to the transmission parameter of the second information, whether the power consistency and / or phase continuity destruction event occurs;

[0272] and / or,

[0273] determining, according to the transmission parameter of the second information, whether the time unit of the power consistency and / or phase continuity destruction event occurs;

[0274] and / or,

[0275] determining, according to the scrambling mode of the second information, the actual time domain window TDW.

[0276] The transmission parameter of the second information can include: a time domain position, a frequency domain position, whether it is frequency hopping transmission, and / or a type of frequency hopping transmission mode, etc.

[0277] At this time, the network device can determine whether a power consistency and / or phase continuity destruction event occurs according to a transmission parameter of the second information, and / or determine a time unit of occurrence of the destruction event.

[0278] In some embodiments, different actual TDWs use different scrambling modes, and at least adjacent actual TDWs use different scrambling modes, for example. Different scrambling modes correspond to different descrambling modes, so that the second information successfully descrambled by the descrambling mode corresponds to the time unit, which can directly determine at least the actual TDW corresponding to the occurrence of the aforementioned destruction event caused by the UE behavior.

[0279] In some embodiments, the actual time domain window TDW is determined according to the transmission number corresponding to the occurrence of the power consistency and / or phase continuity destruction event, including:

[0280] When the power consistency and / or phase continuity destruction event occurs between the nth transmission and the (n+1)th transmission, the actual TDW includes the first TDW and the second TDW.

[0281] The first TDW is equal to the time unit corresponding to the 0th transmission to the (n-1)th transmission, and the second TDW is the time unit corresponding to the nth transmission to the st transmission.

[0282] The first TDW is equal to the time unit corresponding to the 0th transmission to the (n-1)th transmission, and the second TDW is the time unit corresponding to the nth transmission to the st transmission.

[0283] The first TDW is equal to the time unit corresponding to the 0th transmission to the (n-1)th transmission, and the second TDW is the time unit corresponding to the nth transmission to the st transmission.

[0284] The mth time unit here can be the last time unit in the multiple transmissions or the time unit before the occurrence of the next destruction event.

[0285] The time unit where the power consistency and / or phase continuity destruction event occurs, i.e., the time unit of occurrence of the power consistency and / or phase continuity destruction event. Thus, according to the network configuration and / or pre-defined regulations, the actual TDW obtained by destroying the nominal TDW caused by the UE behavior can be determined.

[0286] In some embodiments, the actual time domain window TDW is determined according to the transmission number corresponding to the occurrence of the power consistency and / or phase continuity destruction event, including:

[0287] According to the occurrence of the power consistency and / or phase continuity violation event at the nth transmission, and interval configuration or predefined rule, the time domain position of the actual time domain window TDW is determined as the time unit corresponding to the nth+m transmission, wherein the interval configuration or the predefined rule indicates the m; the m is any natural number.

[0288] Exemplarily, according to the nth transmission and interval configuration, the time domain position of the actual time domain window TDW is determined as the nth+m time unit, or, according to the nth transmission and predefined rule, the time domain position of the actual time domain window TDW is determined as the time unit corresponding to the nth+m transmission.

[0289] In summary, the m is a value defined by the interval configuration and the predefined rule, and the m is a natural number, which can be 0, 1, 2, 3, 5, etc.

[0290] In some embodiments, the first information includes at least one of:

[0291] occurrence indication, indicating whether the power consistency and / or phase continuity violation event occurs;

[0292] time domain position information, indicating the time unit at which the power consistency and / or phase continuity violation event occurs;

[0293] time domain window TDW information, indicating the starting time domain position of the actual time domain window.

[0294] The occurrence indication can be one or more indication bits, indicating two states of whether the power consistency and / or phase continuity violation event caused by the UE behavior occurs.

[0295] The time domain position information directly indicates the time unit at which the power consistency and / or phase continuity violation event caused by the UE behavior occurs, and if there is no power consistency and / or phase continuity violation event caused by the UE behavior, the first information can not contain the time domain position information. In summary, if the network device receives the time domain position information, it not only can determine that there is a power consistency and / or phase continuity violation event caused by the UE behavior, but also will know the time unit at which the power consistency and / or phase continuity violation event caused by the UE behavior occurs, thereby facilitating the network device to determine the actual TDW corresponding to the power consistency and / or phase continuity violation event caused by the UE behavior.

[0296] In some embodiments, the TDW information can not only indicate the starting time domain position of the actual TDW, but also indicate the starting and ending time domain positions of the actual TDW, etc.

[0297] As Figure 3FAs shown, this disclosure provides an information processing method, which is executed by a network device, and the method includes:

[0298] S2610: Receive third information sent by the UE; wherein the third information indicates at least one of the following: indicating that the UE supports restarting actual TDW calculation; indicating whether the UE supports reporting the first information.

[0299] The third information can indicate whether the UE supports actual TDW calculation and / or whether it supports the reporting of the first information, that is, whether the UE has performed actual TDW calculation and / or whether the UE supports the reporting of the first information.

[0300] The third piece of information may be UE capability information and / or UE auxiliary information. UE capability information indicates the UE's capabilities, which may include: the maximum transmit power supported by the UE and / or the maximum bandwidth supported, etc. Some UEs support the reporting of the first information, while others do not. The network device may, as needed, instruct UEs that support the reporting of the first information to report it or not to report it.

[0301] like Figure 3G As shown, this disclosure provides an information processing method, which is executed by a network device, and the method includes:

[0302] S2710: Send an enable indication, wherein the enable indication is used to enable the UE to report first information. This first information may determine whether a power consistency and / or phase continuity disruption event has occurred, or may be used to determine the actual TDW.

[0303] This enable instruction can be carried in DCI, MAC control element (CE), or RRC layer signaling.

[0304] The enable indication may indicate that the UE supporting the first information reporting enables the reporting function and reports the first information. At this time, the reported first information may indicate the occurrence and / or occurrence time unit of the power consistency and / or phase continuity disruption event; or, the first information may indicate the actual TDW.

[0305] If the UE supports actual TDW calculation and also supports the reporting of the first information, then the UE can be instructed to report the first information indicating the actual TDW.

[0306] If the UE does not support actual TDE calculation and the UE supports reporting of the first information, it can indicate the occurrence and / or occurrence time unit of the event that violates the UE's power consistency and / or phase continuity.

[0307] In some embodiments, Figure 3GThe information processing method shown can be implemented alone or in combination with any of the preceding embodiments. For example, after the network device receives the third information, the network device sends an enabling indication to the UE according to the third information, for example, sends an enabling indication to the UE that supports the first information reporting function. For another example, the first information is received after the network device sends an indication to enable the UE to report the function.

[0308] In some embodiments, the power consistency and / or phase continuity destruction event includes at least one of the following:

[0309] The UE adjusts a time advance TA;

[0310] The UE performs frequency pre-compensation.

[0311] Here, the UE adjusting the TA can include: the movement of the UE and / or the movement of the NTN base station, so that the relative distance between the UE and the NTN base station changes, resulting in an increase and / or decrease in the TA, for example, the relative distance between the UE and the NTN base station decreases, resulting in a decrease in the TA; or the relative distance between the UE and the NTN base station decreases, resulting in an increase in the TA.

[0312] In this way, the subsequent uplink of the UE occurs in advance in the corresponding time unit according to the adjusted TA, which can cause the phase continuity to be destroyed.

[0313] In some embodiments, the frequency domain pre-compensation of the UE can also cause changes in phase continuity and / or power consistency. At this time, the UE performs frequency domain pre-compensation based on network configuration or pre-specification, which can be unknown to the network device, but the UE behavior causes the occurrence of the above destruction event and destroys the nominal TDW, thereby adding at least one actual TDW.

[0314] Of course, the above is only an example of the UE behavior causing the occurrence of the power consistency and / or phase continuity destruction event, but the specific implementation is not limited to the above example of the UE behavior. Even if the base station configures the nominal TDW for the base station, it is determined that the TA pre-compensation of the UE is an event that can destroy the phase continuity. However, the base station does not know when the UE performs TA pre-compensation. Therefore, how to let the UE inform the base station whether the TA pre-compensation or the behavior of destroying the phase consistency has been performed in the repetition process is a problem to be solved.

[0315] Embodiments of the present disclosure provide an information processing method, in which the UE informs the base station whether the behavior of destroying the power consistency and / or phase continuity has been performed in the uplink channel repetition process. In another way, the UE can also inform the base station whether the uplink channel repetition meets the DMRS binding condition.

[0316] In one embodiment, the UE indicates whether the power consistency and / or phase continuity breaking behavior is performed by using a specific (dedicated) scrambling manner.

[0317] Manner 1: Scrambling PUSCH using a specific scrambling manner.

[0318] Manner 2: Scrambling the CRC added on PUSCH using a specific scrambling manner.

[0319] Manner 3: Scrambling the DMRS of PUSCH using a specific scrambling manner.

[0320] In one embodiment, the base station configures the UE with a specific scrambling parameter through RRC signaling.

[0321] Using the scrambling parameter to inform whether the power consistency and / or phase continuity breaking behavior occurs, at least one of the following manners can be used:

[0322] For manner 1: configuring a specific PUSCH scrambling parameter to change the scrambling sequence, such as n ID When the PUSCH repetition at this time cannot meet the DMRS bundling condition, the UE uses the specific n ID to calculate the scrambling sequence and scramble the UL-SCH. n ID The aforementioned preset parameter can be used.

[0323] For manner 2: configuring a specific Radio Network Temporary Identifier (RNTI), when the PUSCH repetition at this time cannot meet the DMRS bundling condition, the UE uses the specific RNTI to scramble the CRC added on the UL-SCH.

[0324] For manner 3: configuring a specific PUSCH DMRS scrambling parameter to change the PUSCH DMRS sequence, such as (scramblingID0) and (scramblingID1), when the PUSCH repetition at this time cannot meet the DMRS bundling condition, the UE uses the specific parameter to generate a scrambling sequence to scramble the DMRS in the PUSCH. Here, the (scramblingID0) and may correspond to the aforementioned first parameter; and (scramblingID0) and may be the aforementioned second parameter.

[0325] In some embodiments, whether a power consistency and / or phase continuity breaking event has occurred is indicated by a transmission parameter.

[0326] For example, the symbol position of DMRS in PUSCH and / or the frequency hopping parameter of PUSCH is used for indication. The frequency hopping transmission indicated by the frequency hopping parameter can include inter-slot frequency hopping and intra-slot frequency hopping.

[0327] In some embodiments, the scrambling manner described above and other PUSCH transmission parameters can be used to indicate more information than whether the repetition meets the DMRS bundling condition (e.g., 1-bit meet / not meet information), such as the following examples.

[0328] The following examples are all related to multiple transmissions, and are described by taking one transmission corresponding to one slot as an example. In actual implementation, one transmission can also correspond to one or more mini-slots or one or more symbols, etc.

[0329] Example 1:

[0330] Suppose that the base station configures the scrambling parameter #1 (not broken) and the scrambling parameter #2 (broken) for the PUSCH of the UE, the nominal TDW is 16, the repetition number of PUSCH information is 20, and the UE transmits the PUSCH information in slots #1 to #20.

[0331] If no base station-unaware DMRS bundling breaking event occurs during the entire repetition.

[0332] The first actual TDW is slots #1 to #16, and the second actual TDW is slots #17 to #20.

[0333] At this time, the PUSCH transmitted in all slots of this repetition is scrambled by the scrambling parameter #1.

[0334] Example 2:

[0335] Suppose that the base station configures the scrambling parameter #1 (not broken) and the scrambling parameter #2 (broken) for the PUSCH of the UE, the nominal TDW is 16, the repetition number of PUSCH is 20, and the UE transmits the PUSCH information in slots #1 to #20.

[0336] If a base station-unaware DMRS bundling breaking event occurs at slot #8.

[0337] At this time, the PUSCH transmitted in all slots of this repetition is scrambled by the scrambling parameter #2.

[0338] It is indicated that this repetition cannot use DMRS bundling.

[0339] Example 3:

[0340] Suppose the base station configures the UE with scrambling parameter #1 (not broken) and scrambling parameter #2 (broken) for PUSCH, nominal TDW = 16, PUSCH repetition number is 20, the UE transmits PUSCH information from slot #1 to slot #20.

[0341] If the UE has an event of breaking DMRS bundling which is unknown to the base station at slot #8.

[0342] At this time, the PUSCH transmitted on slot #8 of this repetition is scrambled with scrambling parameter #2, and the PUSCH transmitted on the rest of the slots is scrambled with scrambling parameter #1.

[0343] The first actual TDW is from slot #1 to slot #7; the second actual TDW is from slot #9 to slot #20.

[0344] Example 4:

[0345] Suppose the base station configures the UE with scrambling parameter #1 (not broken) and scrambling parameter #2 (broken) for PUSCH, nominal TDW = 16, PUSCH repetition number is 20, the UE transmits PUSCH information from slot #1 to slot #20.

[0346] If the UE has an event of breaking DMRS bundling which is unknown to the base station at slot #8.

[0347] At this time, the PUSCH transmitted on slot #8 of this repetition is scrambled with scrambling parameter #2, and the PUSCH transmitted on the rest of the slots is scrambled with scrambling parameter #1.

[0348] The first actual TDW is from slot #1 to slot #7; the second actual TDW is from slot #8 to slot #20.

[0349] It can be seen that the difference between Example 4 and Example 3 is that the time of restarting the actual TDW is different. Here, the restart time of the actual TDW can be predefined or configured by the base station.

[0350] For example, the predefined rule is that the UE uses special scrambling for PUSCH at slot #n, indicating that an event occurs between slot #n and slot #n-1, and the actual TDW restarts from slot #n+1.

[0351] For example, the base station configures a timing gap, assuming that the timing gap is equal to m slots, the UE uses special scrambling for PUSCH at slot #n, and the actual TDW restarts from slot #n+m.

[0352] In some embodiments, the UE's indication or notification to the base station whether it has performed actions that disrupt power consistency and / or phase continuity during uplink channel repetition is a UE capability that can be reported by the UE.

[0353] In some embodiments, the ability to restart TDW calculation after an event unknown to the base station is a UE capability that can be reported by the UE.

[0354] In some embodiments, the UE instructing or informing the base station whether it has performed actions that disrupt power consistency and / or phase continuity during uplink channel repetition is a function controlled by the base station to be enabled.

[0355] In some embodiments, base station-unknown behaviors that disrupt power consistency and / or phase continuity include at least the UE's pre-compensation for time and / or frequency.

[0356] The aforementioned uplink channels include at least PUSCH. PUSCH is the physical channel, and the corresponding transmission channel is the Uplink Shared Channel (UL-SCH), which is not distinguished here.

[0357] like Figure 4 As shown, this disclosure provides an information processing apparatus, wherein the apparatus includes:

[0358] The sending module 110 is configured to send first information to the network device, wherein the first information is used to determine whether a power consistency and / or phase continuity violation event has occurred, or to determine the actual time-domain window (TDW).

[0359] The information processing device can be a UE.

[0360] The transmitting module 110 can be a program module, a hardware-software hybrid module, or a pure hardware module. The program module, after being executed by the processor, can perform the aforementioned operations. The hardware-software hybrid module can include various programmable arrays, including but not limited to field-programmable arrays and / or complex programmable arrays. The pure hardware module includes, but is not limited to, application-specific integrated circuits (ASICs).

[0361] In some embodiments, the information processing apparatus may further include a storage module. The storage module may be connected to the sending module 110 and may be used to store at least the first information.

[0362] In some embodiments, the sending module 110 is configured to send the first information to the network device during multiple transmissions on at least one uplink channel.

[0363] The sending module 110 is configured to perform one of the following:

[0364] send, to the network device, second information scrambled by a first scrambling manner when the disruption event of the power consistency and / or the phase continuity occurs;

[0365] send, to the network device, second information scrambled by a second scrambling manner when the disruption event of the power consistency and / or the phase continuity does not occur.

[0366] In some embodiments, the second information comprises at least one of:

[0367] physical uplink shared channel (PUSCH) information;

[0368] physical uplink control channel (PUCCH) information;

[0369] a cyclic redundancy check (CRC) of the PUSCH information;

[0370] a cyclic redundancy check (CRC) of the PUCCH information;

[0371] a demodulation reference signal (DMRS) of the PUSCH;

[0372] a demodulation reference signal (DMRS) of the PUCCH.

[0373] In some embodiments, the apparatus further comprises:

[0374] a calculating module configured to calculate a scrambling sequence using a preset parameter when the first scrambling manner is used, or not to calculate the scrambling sequence using the preset parameter when the second scrambling manner is used.

[0375] In some embodiments, the apparatus further comprises:

[0376] a using module configured to use a first radio network temporary identifier (RNTI) as the scrambling sequence when the first scrambling manner is used;

[0377] or use a second RNTI as the scrambling sequence when the second scrambling manner is used.

[0378] In some embodiments, the apparatus further comprises:

[0379] a determining module configured to determine a scrambling sequence according to a first parameter when the first scrambling manner is used, or determine the scrambling sequence according to a second parameter when the second scrambling manner is used.

[0380] In some embodiments, the sending module 110 is configured to scramble the second information of the multiple transmissions by using the first scrambling manner when the power consistency and / or phase continuity breaking event occurs, and send the scrambled second information to the network device; or, when the power consistency and / or phase continuity breaking event occurs, determine to scramble part of the second information of the multiple transmissions by using the first scrambling manner according to the transmission number corresponding to the occurrence of the power consistency and / or phase continuity breaking event, and send part of the second information scrambled by using the first scrambling manner and part of the second information scrambled by using the second scrambling manner to the network device.

[0381] In some embodiments, the sending module 110 is further configured to scramble the second information transmitted within a time unit range of the nth+y transmission by using the first scrambling manner when the power consistency and / or phase continuity breaking event occurs between the nth transmission and the nth+1 transmission; or, scramble the second information transmitted within the nth+y transmission to the mth time unit range by using the first scrambling manner when the power consistency and / or phase continuity breaking event occurs between the nth transmission and the nth+1 transmission; wherein, the sth transmission is the last transmission in the multiple transmissions, or the transmission before the power consistency and / or phase continuity breaking event occurs again after the nth transmission; and the y is a natural number less than or equal to s-n.

[0382] In some embodiments, the sending module 110 is further configured to determine the actual TDW according to the transmission number corresponding to the occurrence of the power consistency and / or phase continuity breaking event when the power consistency and / or phase continuity breaking event occurs, and send the second information scrambled by using different manners at different actual TDWs.

[0383] In some embodiments, the sending module 110 is configured to send the second information by using corresponding transmission parameters according to whether the power consistency and / or phase continuity breaking event occurs.

[0384] In some embodiments, the transmission parameters include at least one of the following:

[0385] The time domain position of the second information;

[0386] The frequency hopping parameter of the second information.

[0387] In some embodiments, the first information includes at least one of the following:

[0388] An occurrence indication indicating whether the power consistency and / or phase continuity breaking event occurs.

[0389] time domain location information indicating a time unit in which the power consistency and / or phase continuity breaking event occurs;

[0390] time domain window (TDW) information indicating a starting time domain location of an actual time domain window.

[0391] In some embodiments, the apparatus further includes:

[0392] an actual TDW module configured to determine a time domain location for restarting actual time domain window (TDW) calculation according to a transmission number corresponding to occurrence of the power consistency and / or phase continuity breaking event.

[0393] In some embodiments, the actual TDW is configured to determine a time unit corresponding to an nth+m transmission as the time domain location for restarting the actual TDW calculation according to an interval configuration or a predefined rule when the power consistency and / or phase continuity breaking event occurs between the nth transmission and an (n+1)th transmission; wherein the m is indicated by the interval configuration or the predefined rule, and wherein the m is any natural number.

[0394] In some embodiments, the actual TDW module is configured to determine a time domain location for restarting actual time domain window (TDW) calculation according to a transmission number corresponding to occurrence of the power consistency and / or phase continuity breaking event when the UE supports restarting the actual TDW calculation.

[0395] In some embodiments, the apparatus further includes:

[0396] a sending module 110 configured to send third information to the network device, wherein the third information indicates at least one of:

[0397] indication that the UE supports restarting the actual TDW calculation;

[0398] indication of whether the UE supports reporting of the first information.

[0399] In some embodiments, the receiving module is configured to receive an enabling indication sent by the network device.

[0400] The apparatus further includes:

[0401] an enabling module configured to determine whether to enable the reporting function of the first information of the UE according to the enabling indication.

[0402] wherein the first indication information is reported after the reporting function.

[0403] As Figure 5As shown, the information processing apparatus provided by the embodiments of the present disclosure includes:

[0404] The receiving module 210 is configured to receive first information of a user equipment (UE), wherein the first information is used to determine whether a power consistency and / or phase continuity violation event occurs or is used to determine an actual time domain window (TDW).

[0405] The information processing apparatus can be a network device.

[0406] The receiving module 210 can be a program module, a software and hardware combined module, or a pure hardware module. The program module can implement the above operations after being executed by a processor. The software and hardware combined module can include various programmable arrays, such as field programmable arrays and / or complex programmable arrays. The pure hardware module includes, but is not limited to, an application specific integrated circuit.

[0407] In some embodiments, the information processing apparatus can further include a storage module. The storage module can be connected to the receiving module 210 and can be used to at least store the first information.

[0408] In some embodiments, the receiving module 210 is configured to receive the first information sent by the UE in a plurality of transmissions of at least one uplink channel.

[0409] In some embodiments, the apparatus includes:

[0410] The first determining module is configured to determine that the power consistency and / or phase continuity violation event occurs when the second information is successfully de-scrambled by using a first de-scrambling manner corresponding to a first scrambling manner; and / or determine that the power consistency and / or phase continuity violation event does not occur when the second information is successfully de-scrambled by using a second de-scrambling manner corresponding to a second scrambling manner.

[0411] In some embodiments, the second information includes at least one of the following:

[0412] PUSCH information;

[0413] PUCCH information;

[0414] CRC of the PUSCH information;

[0415] CRC of the PUCCH information;

[0416] DMRS of the PUSCH;

[0417] DMRS of the PUCCH.

[0418] In some embodiments, the scrambling sequence corresponding to the first de-scrambling manner is calculated by using a preset parameter.

[0419] or,

[0420] The scrambling sequence corresponding to the second descrambling mode is not calculated using a preset parameter.

[0421] In some embodiments, the scrambling sequence corresponding to the first descrambling mode is a first radio network temporary identifier (RNTI), or the scrambling sequence corresponding to the second descrambling mode is a second RNTI.

[0422] In some embodiments,

[0423] The scrambling sequence corresponding to the first descrambling mode is determined according to a first parameter.

[0424] or,

[0425] The scrambling identifier of the scrambling sequence corresponding to the first descrambling mode is determined according to a second parameter.

[0426] In some embodiments, the apparatus further comprises:

[0427] An actual TDW module configured to determine an actual time domain window (TDW) according to a number of transmissions corresponding to a power consistency and / or phase continuity disruption event.

[0428] In some embodiments, the apparatus further comprises:

[0429] A disruption event module configured to determine that a power consistency and / or phase continuity disruption event occurs between the nth transmission and the nth+1 transmission when the second information corresponding to the nth+y transmission to the sth transmission is successfully descrambled using the second descrambling mode.

[0430] When the second information corresponding to the nth transmission or the nth+1 transmission is successfully descrambled using the second descrambling mode, it is determined that a power consistency and / or phase continuity disruption event occurs between the nth transmission and the nth+1 transmission.

[0431] The y is a natural number less than or equal to s-n, i.e., y can be equal to 0 or a positive integer less than or equal to s-n.

[0432] In some embodiments, the apparatus further comprises a second determination module.

[0433] The second determination module is configured to determine whether a power consistency and / or phase continuity disruption event occurs according to a transmission parameter of the second information, and / or determine whether a time unit of a power consistency and / or phase continuity disruption event occurs according to the transmission parameter of the second information, and / or determine an actual time domain window (TDW) according to a scrambling mode of the second information.

[0434] In some embodiments, the second determining module is configured to determine that the actual TDW includes the first TDW and a second TDW when the power consistency and / or phase continuity destruction event occurs between the nth transmission and the (n+1)th transmission.

[0435] The first TDW is equal to the 0th transmission to the (n-1)th transmission corresponding time units; and the second TDW is the nth+yth transmission to the sth transmission corresponding time units, wherein the mth time unit is the transmission; the last time unit of the second information; or,

[0436] The sth transmission is the last transmission in the multiple transmissions, or the previous transmission in which the power consistency and / or phase continuity destruction event occurs again after the nth transmission. The y is a natural number less than or equal to s-n.

[0437] In some embodiments, the second determining module is configured to determine that the time domain position of the restarted actual time domain window TDW is the nth+mth time unit according to the nth transmission in which the power consistency and / or phase continuity destruction event occurs and an interval configuration or a predefined rule, wherein the interval configuration or the predefined rule indicates the m; and the m is any natural number.

[0438] In some embodiments, the first information includes at least one of:

[0439] An occurrence indication indicating whether the power consistency and / or phase continuity destruction event occurs;

[0440] Time domain position information indicating the time unit in which the power consistency and / or phase continuity destruction event occurs;

[0441] Time domain window TDW information indicating the starting time domain position of the actual time domain window.

[0442] In some embodiments, the receiving module 210 is further configured to receive third information sent by the UE; wherein the third information indicates at least one of:

[0443] Indicating that the UE supports restarting the actual TDW calculation;

[0444] Indicating whether the UE supports reporting of the first information.

[0445] In some embodiments, the sending module is further configured to send an enabling indication, wherein the enabling indication is used to enable the UE to report the reporting function of the first information.

[0446] In some embodiments, the power consistency and / or phase continuity breaking event includes at least one of:

[0447] The UE adjusts a time advance TA;

[0448] The UE performs time pre-compensation;

[0449] The UE performs frequency pre-compensation.

[0450] Embodiments of the present disclosure provide a communication device, comprising:

[0451] a memory for storing processor-executable instructions;

[0452] a processor, respectively connected with the memory;

[0453] The processor is configured to execute the information processing method provided in any of the preceding technical solutions.

[0454] The processor can include various types of storage media, which is a non-transitory computer storage medium, and can continue to store information on it after the communication device is powered off.

[0455] Here, the communication device includes: a UE or a network device.

[0456] The processor can be connected with the memory through a bus or the like, for reading the executable program stored on the memory, for example, as Figure 2A to Figure 2F or Figure 3A to Figure 3G at least one of the methods shown.

[0457] Figure 6 is a block diagram of a UE 800 according to an exemplary embodiment. For example, the UE 800 can be a mobile phone, a computer, a digital broadcast user device, a messaging device, a game console, a tablet device, a medical device, a fitness device, a personal digital assistant, etc.

[0458] Referring to Figure 6 , the UE 800 can include one or more of the following components: a processing component 802, a memory component 804, a power supply component 806, a multimedia component 808, an audio component 810, an input / output (I / O) interface 812, a sensor component 814, and a communication component 816.

[0459] The processing component 802 generally controls the overall operations of the UE 800, such as operations associated with display, telephony, data communication, camera, and recording operations. The processing component 802 can include one or more processors 820 to execute instructions to perform all or a subset of the steps of the methods described above. Furthermore, the processing component 802 can include one or more modules to facilitate interaction with other components. For example, the processing component 802 can include a multimedia module to facilitate the interaction between the multimedia component 808 and the processing component 802.

[0460] The memory 804 is configured to store various types of data to support operations of the UE 800. Examples of such data include instructions for any applications or methods operating on the UE 800, contact data, phonebook data, messages, pictures, videos, and so on. The memory 804 can be implemented by any type of volatile or non-volatile storage devices or a combination thereof, such as static random access memory (SRAM), electrically erasable programmable read-only memory (EEPROM), erasable programmable read-only memory (EPROM), programmable read-only memory (PROM), read-only memory (ROM), magnetic memory, flash memory, magnetic disks, or optical disks.

[0461] The power component 806 supplies power to the various components of the UE 800. The power component 806 can include a power supply management system, one or more power sources, and other components associated with generating, managing, and distributing power for the UE 800.

[0462] The multimedia component 808 includes a screen providing an output interface between the UE 800 and a user. In some embodiments, the screen can include a liquid crystal display (LCD) and a touch panel (TP). If the screen includes a touch panel, the screen can be implemented as a touch screen to receive an input signal from a user. The touch panel includes one or more touch sensors to sense a touch, a slide, and a gesture on the touch panel. The touch sensors can not only sense a boundary of a touching or sliding action, but also detect duration and pressure related to the touching or sliding action. In some embodiments, the multimedia component 808 includes a front-facing camera and / or a rear-facing camera. The front-facing camera and / or the rear-facing camera can receive external multimedia data when the UE 800 is in an operating mode, such as a shooting mode or a video mode. Each of the front-facing camera and the rear-facing camera can be a fixed optical lens system or have a focal length and optical zoom capability.

[0463] The audio component 810 is configured to output and / or input audio signals. For example, the audio component 810 includes a microphone (MIC) that is configured to receive an external audio signal when the UE 800 is in an operation mode, such as a call mode, a recording mode, and a voice recognition mode. The received audio signal can be further stored in the memory 804 or transmitted via the communication component 816. In some embodiments, the audio component 810 also includes a speaker for outputting an audio signal.

[0464] The I / O interface 812 provides an interface between the processing component 802 and peripheral interface modules, which can be a keypad, a click wheel, buttons, and so on. The buttons can include, but are not limited to, a home button, a volume button, a start button, and a lock button.

[0465] The sensor component 814 includes one or more sensors for providing various state assessments for the UE 800. For example, the sensor component 814 can detect an open / closed position of the device 800, relative positioning of components, such as a display and a keypad of the UE 800, a change of position of the UE 800 or a component of the UE 800, presence or absence of user contact with the UE 800, orientation or acceleration / deceleration / g-force and temperature of the UE 800. The sensor component 814 can include a proximity sensor configured to detect presence of a nearby object without any physical touch. The sensor component 814 can also include a light sensor, such as a CMOS or CCD image sensor, for use in imaging applications. In some embodiments, the sensor component 814 can also include an acceleration sensor, a gyroscope sensor, a magnetic sensor, a pressure sensor, or a temperature sensor.

[0466] The communication component 816 is configured to facilitate wired or wireless communication between the UE 800 and another device. The UE 800 can access a wireless network based on a communication standard, such as WiFi, 2G, or 3G, or a combination thereof. In an example embodiment, the communication component 816 receives broadcast signals or broadcast-related information from an external broadcast management system via a broadcast channel. In an example embodiment, the communication component 816 also includes a Near Field Communication (NFC) module to facilitate short-range communication. For example, the NFC module can be implemented based on Radio Frequency Identification (RFID) techniques, infrared data association (IrDA) techniques, ultra-wideband (UWB) techniques, Bluetooth (BT) techniques, and other techniques.

[0467] In exemplary embodiments, the UE 800 can be implemented with one or more application-specific integrated circuits (ASICs), digital signal processors (DSPs), digital signal processing devices (DSPDs), programmable logic devices (PLDs), field programmable gate arrays (FPGAs), controllers, micro-controllers, microprocessors, or other electronic components, for performing the above-described methods.

[0468] In exemplary embodiments, a non-transitory computer readable storage medium including instructions, such as the memory 804 including instructions, is also provided, which can be executed by the processor 820 of the UE 800 to generate the above-described methods. For example, the non-transitory computer readable storage medium can be a ROM, a random access memory (RAM), a CD-ROM, a magnetic tape, a floppy disc, and an optical data storage device, etc.

[0469] As shown in Figure 7 , an embodiment of the present disclosure shows a structure of a network device. Referring to Figure 7 , the network device 900 includes a processing component 922, which further includes one or more processors, and a memory resource represented by a memory 932, for storing instructions, such as application programs, executable by the processing component 922. The application programs stored in the memory 932 can include one or more than one module each corresponding to a set of instructions. In addition, the processing component 922 is configured to execute the instructions to perform any of the above-described methods of the aforementioned application in the access device, for example, at least one of the methods as shown in Figure 2A to Figure 2F or Figure 3A to Figure 3G .

[0470] The network device 900 can also include a power supply component 1926 configured to perform power management of the network device 900, a wired or wireless network interface 950 configured to connect the network device 900 to a network, and an input / output (I / O) interface 958. The network device 900 can operate based on an operating system stored in the memory 932, such as Windows ServerTM, Mac OS XTM, UnixTM, LinuxTM, FreeBSDTM, or the like.

[0471] Other embodiments of the present disclosure will be apparent to those skilled in the art from consideration of the specification and practice of the aspects disclosed herein. The present disclosure is intended to cover any variations, uses, or adaptations of the present disclosure following, in general, the principles of the present disclosure and including such

[0472] It should be understood that the embodiments of the present disclosure are not limited to the precise construction that has been described above and shown in the accompanying drawings and that various modifications and changes can be made by those of ordinary skill in the art without departing from the scope of this disclosure. The scope of the present disclosure is limited only by the appended claims.

Claims

1. An information processing method, wherein, Performed by a user equipment (UE), the method includes: Sending first information to network devices, wherein the first information is used to determine whether a power consistency and / or phase continuity disruption event has occurred, or to determine the actual time-domain window (TDW); wherein the first information includes second information; The method further includes: When the power consistency and / or phase continuity disruption event occurs, based on the number of transmissions corresponding to the occurrence of the power consistency and / or phase continuity disruption event, the second information that has been scrambled multiple times using the first scrambling method is determined, and the second information scrambled using the first scrambling method and the second information scrambled using the second scrambling method are sent to the network device. When the event that disrupts power consistency and / or phase continuity occurs between the nth transmission and the (n+1)th transmission, the second information transmitted in the (n+y)th transmission is scrambled using the first scrambling method; or, When the event that disrupts power consistency and / or phase continuity occurs between the nth transmission and the (n+1)th transmission, the second information transmitted between the (n+y)th transmission and the sth transmission is scrambled using a first scrambling method. Wherein, the s-th transmission refers to the last transmission in the multiple transmissions, or the transmission preceding the occurrence of a power consistency and / or phase continuity disruption event after the n-th transmission; and y is a natural number less than or equal to sn. The method further includes: When the power consistency and / or phase continuity violation event occurs, the actual time domain window (TDW) is determined based on the number of transmissions corresponding to the occurrence of the power consistency and / or phase continuity violation event; second information scrambled using different methods is transmitted in different actual time domain windows (TDW). When a power consistency and / or phase continuity disruption event occurs between the nth transmission and the (n+1)th transmission, the actual TDW is determined to include: the first TDW and the second TDW; Wherein, the first TDW is equal to the time unit corresponding to the 0th transmission to the (n-1)th transmission; the second TDW is the time unit corresponding to the (n+y)th transmission to the sth transmission. Wherein, the s-th transmission refers to the last transmission in the multiple transmissions, or the transmission preceding the occurrence of a power consistency and / or phase continuity disruption event after the n-th transmission; and y is a natural number less than or equal to sn.

2. The method according to claim 1, wherein, Sending the first information to the network device includes: The first information is sent to the network device during multiple transmissions on at least one uplink channel.

3. The method according to claim 1 or 2, wherein, Sending the first information to the network device includes one of the following: In the event of a disruption to power consistency and / or phase continuity, a second message scrambled using a first scrambling method is sent to the network device; In the absence of any event that disrupts power consistency and / or phase continuity, a second message scrambled using a second scrambling method is sent to the network device.

4. The method according to claim 3, wherein, The second information includes at least one of the following: Physical Uplink Shared Channel (PUSCH) information; Physical uplink control channel (PUCCH) information; Cyclic Redundancy Check (CRC) code for PUSCH information; Cyclic Redundancy Check (CRC) code for PUCCH information; The demodulation reference signal DMRS for PUSCH; The demodulation reference signal DMRS for PUCCH.

5. The method according to claim 3, wherein, The method further includes: When the first scrambling method is used, the scrambling sequence is calculated using preset parameters; or, When the second scrambling method is used, the preset parameters are not used to calculate the scrambling sequence.

6. The method according to claim 3, wherein, The method further includes: When the first scrambling method is used, the first radio network temporary identifier (RNTI) is used as the scrambling sequence; or, When the second scrambling method is used, the second RNTI is used as the scrambling sequence.

7. The method according to claim 3, wherein, The method further includes: When the first scrambling method is used, the scrambling sequence is determined according to the first parameter; or, When the second scrambling method is used, the scrambling sequence is determined according to the second parameter.

8. The method according to claim 1 or 2, wherein, Sending the first information to the network device includes: Depending on whether the aforementioned power consistency and / or phase continuity disruption event occurs, the second information is transmitted using the corresponding transmission parameters.

9. The method according to claim 8, wherein, The transmission parameters include at least one of the following: The temporal location of the second information; The frequency hopping parameters of the second information.

10. The method according to claim 1 or 2, wherein, The first information includes at least one of the following: An indication has been generated, indicating whether a power consistency and / or phase continuity disruption event has occurred; Time-domain location information, indicating the time unit in which a power consistency and / or phase continuity disruption event occurs; The Time Domain Window (TDW) information indicates the starting time domain position of the actual time domain window.

11. The method according to claim 1, wherein, The method further includes: The time-domain location for restarting the actual time-domain window TDW calculation is determined based on the number of transmissions corresponding to the occurrence of events that disrupt power consistency and / or phase continuity.

12. The method according to claim 11, wherein, The step of determining the time-domain location for restarting the actual time-domain window TDW calculation based on the number of transmissions corresponding to the occurrence of power consistency and / or phase continuity disruption events includes: When the event that disrupts power consistency and / or phase continuity occurs between the nth transmission and the (n+1)th transmission, the time unit corresponding to the (n+m)th transmission is determined as the time-domain position for restarting the actual TDW calculation, according to the interval configuration or predefined rules; wherein, m is indicated by the interval configuration or the predefined rules, and m is any natural number.

13. The method according to claim 11, wherein, The step of determining the time-domain location for restarting the actual time-domain window TDW calculation based on the number of transmissions corresponding to the occurrence of power consistency and / or phase continuity disruption events includes: When the UE supports restarting the actual TDW calculation, the time domain position for restarting the actual time domain window TDW calculation is determined based on the number of transmissions corresponding to the occurrence of power consistency and / or phase continuity disruption events.

14. The method according to claim 1, wherein, The method further includes: Send a third message to the network device, wherein the third message indicates at least one of the following: Instruct the UE to support restarting the actual TDW calculation; Indicate whether the UE supports reporting the first information.

15. The method according to claim 1, wherein, The method includes: Receive the enable instruction sent by the network device; Based on the enable instruction, determine whether to enable the UE's first information reporting function; The first indication information is reported after the reporting function.

16. An information processing method, wherein, Performed by a network device, the method includes: Receive first information from user equipment (UE), wherein the first information is used to determine whether a power consistency and / or phase continuity disruption event has occurred, or to determine the actual time-domain window (TDW); wherein the first information includes second information. The method further includes: When the power consistency and / or phase continuity disruption event occurs, based on the number of transmissions corresponding to the occurrence of the power consistency and / or phase continuity disruption event, the second information that has been transmitted multiple times is descrambled using the first descrambling method, and the second information is descrambled using the second descrambling method. When the second information corresponding to the (n+y)th transmission is successfully descrambled using the second descrambling method, it is determined that the event that disrupts power consistency and / or phase continuity occurs between the (n)th transmission and the (n+1)th transmission. or, When the second descrambling method is used to successfully descramble the second information corresponding to the (n+y)th transmission to the (s)th transmission, it is determined that the event that disrupts power consistency and / or phase continuity occurs between the nth transmission and the (n+1)th transmission. Wherein, the s-th transmission refers to the last transmission in the multiple transmissions, or the transmission preceding the occurrence of a power consistency and / or phase continuity disruption event after the n-th transmission; and y is a natural number less than or equal to sn. The method further includes: When the power consistency and / or phase continuity violation event occurs, the actual time domain window (TDW) is determined based on the number of transmissions corresponding to the occurrence of the power consistency and / or phase continuity violation event; and second information scrambled in different ways is used to descramble different actual time domain window (TDW) descrambles. When a power consistency and / or phase continuity disruption event occurs between the nth transmission and the (n+1)th transmission, the actual TDW is determined to include: the first TDW and the second TDW; Wherein, the first TDW is equal to the time unit corresponding to the 0th transmission to the (n-1)th transmission; the second TDW is the time unit corresponding to the (n+y)th transmission to the sth transmission. Wherein, the s-th transmission refers to the last transmission in the multiple transmissions, or the transmission preceding the occurrence of a power consistency and / or phase continuity disruption event after the n-th transmission; and y is a natural number less than or equal to sn.

17. The method according to claim 16, wherein, The first information received from the user equipment (UE) includes: During multiple transmissions on at least one uplink channel, the first information sent by the UE is received.

18. The method according to claim 16 or 17, wherein, The method includes one of the following: When the second information is successfully descrambled using the first descrambling method corresponding to the first scrambling method, it is determined that the power consistency and / or phase continuity disruption event has occurred. When the second information is successfully descrambled using the second descrambling method corresponding to the second scrambling method, it is determined that no event has occurred that would disrupt the power consistency and / or phase continuity.

19. The method according to claim 18, wherein, The second information includes at least one of the following: Physical Uplink Shared Channel (PUSCH) information; Physical uplink control channel (PUCCH) information; Cyclic Redundancy Check (CRC) code for PUSCH information; Cyclic Redundancy Check (CRC) code for PUCCH information; The demodulation reference signal DMRS for PUSCH; The demodulation reference signal DMRS for PUCCH.

20. The method according to claim 18, wherein, The scrambling sequence corresponding to the first descrambling method is calculated using preset parameters; or, The scrambling sequence corresponding to the second descrambling method is not calculated using preset parameters.

21. The method according to claim 18, wherein, The scrambling sequence corresponding to the first descrambling method is the first wireless network temporary identifier (RNTI). or, The scrambling sequence corresponding to the second descrambling method is the second RNTI.

22. The method according to claim 18, wherein, The scrambling sequence corresponding to the first descrambling method is determined based on the first parameter; or, The scrambling identifier of the scrambling sequence corresponding to the first descrambling method is determined according to the second parameter.

23. The method according to claim 16 or 17, wherein, The method further includes: Based on the transmission parameters of the second information, determine whether a power consistency and / or phase continuity disruption event has occurred. And / or, Based on the transmission parameters of the second information, determine the time unit in which power consistency and / or phase continuity occur; And / or, The actual time-domain window (TDW) is determined based on the scrambling method of the second information.

24. The method of claim 16, wherein, The determination of the actual time-domain window (TDW) based on the number of transmissions corresponding to the occurrence of events disrupting power consistency and / or phase continuity includes: Based on the fact that the power consistency and / or phase continuity disruption event occurs during the nth transmission, and the interval configuration or predefined rule, the time domain position of the actual time domain window TDW to be restarted is determined to be the time unit corresponding to the n+mth transmission, wherein the interval configuration or the predefined rule indicates m; and m is any natural number.

25. The method according to claim 16 or 17, wherein, The first information includes at least one of the following: An indication has been generated, indicating whether a power consistency and / or phase continuity disruption event has occurred; Time-domain location information, indicating the time unit in which a power consistency and / or phase continuity disruption event occurs; The Time Domain Window (TDW) information indicates the starting time domain position of the actual time domain window.

26. The method of claim 16, wherein, The method includes: Receive third information sent by the UE; wherein the third information indicates at least one of the following: Instruct the UE to support restarting the actual TDW calculation; Indicate whether the UE supports reporting the first information.

27. The method according to claim 16, wherein, The method further includes: Send an enable instruction, wherein the enable instruction is used to enable the UE to report the first information.

28. The method according to claim 16, wherein, The event that disrupts power consistency and / or phase continuity includes at least one of the following: The UE adjustment time advance amount TA; The UE performs frequency pre-compensation.

29. An information processing apparatus, wherein, The device includes: The sending module is configured to send first information to the network device, wherein the first information is used to determine whether a power consistency and / or phase continuity disruption event has occurred, or to determine the actual time-domain window (TDW); wherein the first information includes second information. The transmitting module is further configured to, when the power consistency and / or phase continuity disruption event occurs, determine, based on the number of transmissions corresponding to the occurrence of the power consistency and / or phase continuity disruption event, a portion of the second information that has been transmitted multiple times using a first scrambling method, and transmit to the network device a portion of the second information scrambled using the first scrambling method and a portion of the second information scrambled using the second scrambling method. The transmitting module is further configured to, when the power consistency and / or phase continuity disruption event occurs between the nth transmission and the (n+1)th transmission, scramble the second information transmitted in the (n+y)th transmission using a first scrambling method; or, when the power consistency and / or phase continuity disruption event occurs between the nth transmission and the (n+1)th transmission, scramble the second information transmitted between the (n+y)th transmission and the sth transmission using the first scrambling method; wherein the sth transmission is: the last transmission in the multiple transmissions, or the transmission preceding the power consistency and / or phase continuity disruption event that occurs again after the nth transmission; and y is a natural number less than or equal to sn. The transmitting module is further configured to, when the power consistency and / or phase continuity violation event occurs, determine the actual time domain window (TDW) based on the number of transmissions corresponding to the occurrence of the power consistency and / or phase continuity violation event; and transmit second information scrambled in different ways in different actual time domain windows (TDW). The transmitting module is further configured to, when a power consistency and / or phase continuity disruption event occurs between the nth transmission and the (n+1)th transmission, determine the actual TDW as including: a first TDW and a second TDW; wherein the first TDW is equal to the time unit corresponding to the 0th transmission to the (n-1)th transmission; the second TDW is the time unit corresponding to the (n+y)th transmission to the sth transmission; wherein the sth transmission is the last transmission in the multiple transmissions, or the transmission preceding the occurrence of another power consistency and / or phase continuity disruption event after the nth transmission; and y is a natural number less than or equal to sn.

30. An information processing apparatus, wherein, The device includes: The receiving module is configured to receive first information from the user equipment (UE), wherein the first information is used to determine whether a power consistency and / or phase continuity disruption event has occurred, or to determine the actual time-domain window (TDW); wherein the first information includes second information. The receiving module is further configured to, when the power consistency and / or phase continuity disruption event occurs, determine, based on the number of transmissions corresponding to the occurrence of the power consistency and / or phase continuity disruption event, to descramble a portion of the second information transmitted multiple times using a first descrambling method, and to descramble a portion of the second information using a second descrambling method; The disruption event module is configured to determine that, when the second information corresponding to the (n+y)th transmission is successfully descrambled using the second descrambling method, a disruption event of power consistency and / or phase continuity occurs between the nth transmission and the (n+1)th transmission; or, when the second information corresponding to the (n+y)th transmission is successfully descrambled using the second descrambling method from the n+yth transmission to the sth transmission, a disruption event of power consistency and / or phase continuity occurs between the nth transmission and the (n+1)th transmission; wherein, the sth transmission is: the last transmission in the multiple transmissions, or the transmission preceding the occurrence of another disruption event of power consistency and / or phase continuity after the nth transmission; and y is a natural number less than or equal to sn. The receiving module is further configured to, when the power consistency and / or phase continuity violation event occurs, determine the actual time domain window (TDW) based on the number of transmissions corresponding to the occurrence of the power consistency and / or phase continuity violation event; and use second information scrambled in different ways for descrambling different actual time domain window (TDW). The second determining module is configured to determine the actual Time Difference Warp (TDW) when a power consistency and / or phase continuity disruption event occurs between the nth transmission and the (n+1)th transmission, including: a first TDW and a second TDW; wherein the first TDW is equal to the time unit corresponding to the 0th transmission to the (n-1)th transmission; the second TDW is the time unit corresponding to the (n+y)th transmission to the sth transmission; wherein the sth transmission is the last transmission in the multiple transmissions, or the transmission preceding the power consistency and / or phase continuity disruption event that occurs again after the nth transmission; and y is a natural number less than or equal to sn.

31. A communication device, comprising a processor, a transceiver, a memory, and an executable program stored in the memory and executable by the processor, wherein, When the processor runs the executable program, it performs the method provided as claimed in any one of claims 1 to 15 or 16 to 28.

32. A computer storage medium storing an executable program; the executable program, when executed by a processor, is capable of implementing the method provided in any one of claims 1 to 15 or 16 to 28.

Citation Information

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