Method and system for uplink cell and SCell activation

The method addresses the inefficiency of configuring UL-centric UEs in NR systems by using a second cell to transmit DL signals and SCell activation commands, improving spectral efficiency and power savings.

JP7761774B2Active Publication Date: 2025-10-28ZTE CORP
View PDF 4 Cites 0 Cited by

Patent Information

Application Number
JP2024551576
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2022-04-18
Publication Date
2025-10-28
Estimated Expiration
2042-04-18

AI Technical Summary

Technical Problem

Existing NR systems struggle with configuring cells for UEs with only UL-centric mobile services, as they lack DL carriers, leading to inefficiencies and unnecessary resource allocation.

Method used

A method for wireless communication that enables UL cell activation without a DL carrier by using a second cell to transmit DL signals, including control channel information, synchronization signals, and reference signals, and a base station command for SCell activation and measurement.

Benefits of technology

This approach optimizes resource allocation by eliminating unnecessary DL carriers, enhancing spectral efficiency and UE power savings while ensuring effective communication.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure 0007761774000008
    Figure 0007761774000008
  • Figure 0007761774000009
    Figure 0007761774000009
  • Figure 0007761774000010
    Figure 0007761774000010
Patent Text Reader

Abstract

The present disclosure is directed to UL cell and SCell activation, including sending, by a base station to a wireless communication device, a secondary cell (SCell) activation command that triggers at least SCell activation and measurement signals for at least one SCell, and receiving, by the base station from the wireless communication device, a measurement signal in response to the SCell activation command, wherein the wireless communication device activates the at least one SCell in response to the SCell activation command.
Need to check novelty before this filing date? Find Prior Art

Description

[Technical Field]

[0001] Technical Field The present disclosure relates generally to wireless communications, and more particularly to a system, method, and non-transitory computer-readable medium for uplink (UL) cell and SCell activation. [Background technology]

[0002] background A cell in a New Radio (NR) system has one of three configurations. The first configuration includes one downlink (DL) carrier. The second configuration includes one DL carrier and one UL carrier. The third configuration includes one DL carrier and two UL carriers, one of which is an additional uplink (SUL) carrier. A base station (BS) and a user equipment (UE) communicate with each other by using the time-frequency resources of each carrier. When a base station configures a UE with one cell for communication, the base station must configure one DL carrier in this cell. In existing NR systems, if a UE only has UL-centric mobile services, the base station must configure multiple cells for the UE, each containing multiple DL carriers and multiple UL carriers. However, the DL carrier does not know about UEs with only UL-centric mobile services, which have less DL traffic. Summary of the Invention [Means for solving the problem]

[0003] overview The wireless communication method may include receiving, by a first cell, an uplink transmission from a wireless communication device using an uplink carrier of the first cell, where the first cell lacks any downlink carrier; and transmitting, by a second cell, a downlink transmission of the first cell to the wireless communication device using a downlink carrier of the second cell, where the downlink transmission of the first cell includes at least one of control channel information of the first cell, a synchronization signal of the first cell, or a reference signal of the first cell.

[0004] The wireless communication method may include: sending, by a wireless communication device, an uplink transmission to a first cell using an uplink carrier of the first cell, the first cell lacking any downlink carrier; and receiving, by the wireless communication device, a downlink transmission of the first cell from a second cell using a downlink carrier of the second cell, the downlink transmission of the first cell including at least one of control channel information of the first cell, a synchronization signal of the first cell, or a reference signal of the first cell.

[0005] The wireless communication method may include: sending, by a base station to a wireless communication device, a secondary cell (SCell) activation command that triggers at least an SCell activation and measurement signal for at least one SCell; and receiving, by the base station from the wireless communication device, a measurement signal in response to the SCell activation command, wherein the wireless communication device activates the at least one SCell in response to the SCell activation command.

[0006] The wireless communication method may include receiving, by a wireless communication device from a base station, a secondary cell (SCell) activation command that triggers at least an SCell activation and measurement signal for at least one SCell; in response to receiving the SCell activation command, transmitting, by the wireless communication device, a measurement signal to the base station; and activating, by the wireless communication device, the at least one SCell.

[0007] The wireless communications device can include at least one processor and a memory, where the at least one processor is configured to read code from the memory and perform methods according to the present implementations.

[0008] The computer program product may include computer-readable program medium code stored on the product that, when executed by at least one processor, causes the at least one processor to perform a method according to the present implementation. These and other aspects and configurations are described in more detail in the drawings, this specification, and the claims. The present invention provides, for example, the following items. (Item 1) A wireless communication method, the wireless communication method comprising: receiving, by a first cell, an uplink transmission from a wireless communication device using an uplink carrier of the first cell, the first cell lacking any downlink carrier; transmitting, by a second cell, a downlink transmission of the first cell to the wireless communication device using a downlink carrier of the second cell, wherein the downlink transmission of the first cell includes at least one of control channel information of the first cell, a synchronization signal of the first cell, or a reference signal of the first cell; A method comprising: (Item 2) The control channel information of the first cell is a physical downlink control channel (PDCCH) used to schedule the uplink transmissions of the first cell; a PDCCH used to activate a configuration grant for the uplink transmission of the first cell; a PDCCH used to trigger an aperiodic sounding reference signal (SRS) of the first cell; a PDCCH used to schedule system information blocks (SIBs) of the first cell; or PDCCH used to schedule the above uplink transmissions during the random access procedure Item 1. The method according to item 1, comprising at least one of the following: (Item 3) Item 1, wherein the synchronization signal of the first cell includes at least one of a primary synchronization signal (PSS) of the first cell, a secondary synchronization signal (SSS) of the first cell, or a physical broadcast channel (PBCH) of the first cell. (Item 4) A wireless communication method, the wireless communication method comprising: Sending, by a wireless communication device, an uplink transmission to a first cell using an uplink carrier of the first cell, the first cell lacking any downlink carrier; receiving, by the wireless communication device, a downlink transmission of the first cell from the second cell using a downlink carrier of the second cell, the downlink transmission of the first cell including at least one of control channel information of the first cell, a synchronization signal of the first cell, or a reference signal of the first cell; A method comprising: (Item 5) A wireless communication method, the wireless communication method comprising: sending, by a base station to a wireless communication device, a secondary cell (SCell) activation command that triggers at least an SCell activation and measurement signal for at least one SCell; receiving, by the base station, from the wireless communication device, the measurement signal in response to the SCell activation command, wherein the wireless communication device activates the at least one SCell in response to the SCell activation command; A method comprising: (Item 6) The SCell activation command further triggers an aperiodic channel state information reference signal (CSI-RS); The method further includes transmitting, by the base station to the wireless communication device, the aperiodic CSI-RS for the at least one SCell on one or more of the at least one SCell; the wireless communication device transmits the measurement signal after receiving the aperiodic CSI-RS; The method according to item 5. (Item 7) After the wireless communication device transmits the measurement signal for the SCell activation, the base station transmits to the wireless communication device: Time Alignment (TA) adjustment command, Transmit Power Control (TPC) commands, Uplink spatial relationship indication command, a physical downlink control channel (PDCCH) on said at least one SCell; or PDCCH for the at least one SCell Item 6. The method of item 5, further comprising transmitting at least one of: (Item 8) the measurement signal includes a number of bursts; The number is an integer greater than 0, the number is indicated by the base station or is a default number; The above burst is a first number of sounding reference signal (SRS) resources in one slot, the first number being an integer greater than 0; a second number of SRS resources in each of a third number of slots, wherein the second number and the third number are each integers greater than 1; or One SRS resource set Item 6. The method according to item 5, wherein the method is at least one of the following: (Item 9) a time gap between two consecutive bursts is configured by the base station or indicated to the wireless communication device, the time gap being a non-negative integer, the time gap being defined by a number of time domain resources, and the wireless communication device transmitting a subsequent one of the two consecutive bursts after the time gap from the end of a previous one of the two consecutive bursts; or The base station does not indicate the time gap, and the time gap is 0. The method according to item 8. (Item 10) the measurement signal includes a number of bursts; The number of bursts is a time gap between two consecutive bursts being indicated by the base station to the wireless communication device; There is no indication of said number by said base station, or The base station configures or indicates that the number is 1 On the other hand, Item 9. The method according to item 8, wherein the ratio is 2 depending on the (Item 11) Item 6. The method according to item 5, wherein in the case of the SCell activation, the measurement signal triggered by the SCell activation command is an aperiodic sounding reference signal (SRS). (Item 12) 6. The method according to item 5, wherein in the case of the SCell activation, the use of the measurement triggered by the SCell activation command is configured as beam management, and the base station performs uplink beam management during the SCell activation. (Item 13) 6. The method of claim 5, further comprising: indicating, by the base station to the wireless communication device, a slot offset of the SCell, the slot offset being a non-negative integer, and the earliest slot of a first SRS burst starting at a slot after the slot offset from a latest SCell slot that coincides with a reference slot of a cell. (Item 14) indicating, by the base station to the wireless communication device, a number of bursts of the measurement signal in an SCell of the at least one SCell, wherein the number is greater than one; receiving, by the base station from the wireless communication device, a subsequent burst on the SCell for the SCell activation, wherein an earliest slot of the subsequent burst starts at a slot after a time gap from an end of a preceding burst, the time gap being indicated by the base station; Item 6. The method of item 5, further comprising: (Item 15) the measurement signal includes a number of sounding reference signal (SRS) bursts; the earliest slot of the preceding burst of the SRS burst starts several time domain resources after the latest SCell uplink slot that coincides with the latest downlink slot of the last channel state information reference signal (CSI-RS) burst; The method according to item 5. (Item 16) the SCell activation command is carried in a Medium Access Control (MAC) control element (CE), a Downlink Control Information (DCI), or a Radio Resource Control signaling; The above SCell activation command is which of said at least one SCell should be activated; A Sounding Reference Signal (SRS) ID indicating the resource index or SRS resource set index used for the SCell activation; the number of SRS bursts in the measured signal; the time gap between each two consecutive SRS bursts of the above measurement signal; a slot offset used to determine the earliest slot of the earliest SRS burst of said measured signal; Quasi-colocation (QCL) information of the above measured signals, or The slot offset between the latest channel state information reference signal (CSI-RS) burst and the earliest SRS burst. Item 6. The method according to item 5, wherein the method further comprises at least one of the following: (Item 17) the measurement signal includes a random access channel (RACH) preamble for the at least one SCell; the SCell activation command is carried on a Medium Access Control (MAC) Control Element (CE); The above SCell activation command is which of said at least one SCell should be activated; Random Access Preamble Index, an uplink / additional uplink indicator indicating which uplink carrier from the uplink carriers in the cell and at least one additional uplink carrier is used to transmit a physical random access channel (PRACH); a synchronization signal (SS) / physical broadcast channel (PBCH) index indicating the SS / PBCH used to determine the RACH opportunity for transmitting the PRACH; a PRACH mask index indicating the RACH opportunity associated with the SS / PBCH indicated by the SS / PBCH index for the transmission of the PRACH; Item 6. The method according to item 5, wherein the method further comprises at least one of the following: (Item 18) A wireless communication device comprising at least one processor and a memory, wherein the at least one processor is configured to read code from the memory and to implement the method described in item 5. (Item 19) 6. A computer program product, the computer program product including computer-readable program medium code stored thereon, the code, when executed by at least one processor, causing the at least one processor to perform the method described in item 5. (Item 20) A wireless communication method, the wireless communication method comprising: receiving, by the wireless communication device from a base station, a secondary cell (SCell) activation command that triggers at least an SCell activation and measurement signal for at least one SCell; In response to receiving the SCell activation command, transmitting the measurement signal by a wireless communication device to the base station; activating, by the wireless communication device, the at least one SCell; A method comprising: (Item 21) The SCell activation command further triggers an aperiodic channel state information reference signal (CSI-RS); The method further includes transmitting, by the wireless communication device from the base station, the aperiodic CSI-RS for the at least one SCell on one or more of the at least one SCell; the wireless communication device transmits the measurement signal after receiving the aperiodic CSI-RS; Item 20. The method according to item 20. (Item 22) After the wireless communication device transmits the measurement signal for the SCell activation, the wireless communication device transmits the measurement signal from the base station. Time Alignment (TA) adjustment command, Transmit Power Control (TPC) commands, Uplink spatial relationship indication command, a physical downlink control channel (PDCCH) on said at least one SCell; or PDCCH for the at least one SCell wherein the wireless communication device completes the SCell activation after receiving the at least one of the commands. 21. The method of claim 20, further comprising: (Item 23) the measurement signal includes a number of bursts; The number is an integer greater than 0, the number is indicated by the base station or is a default number; The above burst is a first number of sounding reference signal (SRS) resources in one slot, the first number being an integer greater than 0; a second number of SRS resources in each of a third number of slots, wherein the second number and the third number are each integers greater than 1; or One SRS resource set 21. The method according to item 20, wherein the method is at least one of the following: (Item 24) a time gap between two consecutive bursts is configured by the base station or indicated to the wireless communication device, the time gap being a non-negative integer, the time gap being defined by a number of time domain resources, and the wireless communication device transmitting a subsequent one of the two consecutive bursts after the time gap from the end of a previous one of the two consecutive bursts; or The time gap is not configured or indicated by the base station and the time gap is 0; Item 21. The method according to item 21. (Item 25) the measurement signal includes a number of bursts; The number of bursts is a time gap between two consecutive bursts configured by the base station or indicated to the wireless communication device; and There is no configuration or indication of the number by the base station, or Whether the base station configures or indicates that the number is 1 Being one of 23. The method according to item 22, wherein the ratio is 2 depending on the (Item 26) 21. The method according to item 20, wherein in the case of the SCell activation, the measurement signal triggered by the SCell activation command is an aperiodic sounding reference signal (SRS). (Item 27) Item 21. The method according to item 20, wherein in the case of the SCell activation, the use of the measurement triggered by the SCell activation command is configured as beam management, and the base station performs uplink beam management during the SCell activation. (Item 28) receiving, by the wireless communication device from the base station, a slot offset for the SCell, the slot offset being a non-negative integer, and an earliest slot of a first SRS burst starting at a slot after the slot offset from a latest SCell slot that coincides with a reference slot of a cell; 21. The method of claim 20, further comprising: (Item 29) receiving, by a wireless communication device from the base station, a number of bursts of the measurement signal on an SCell of the at least one SCell, the number being greater than one; transmitting, by the wireless communication device to the base station, a subsequent burst on the SCell for the SCell activation, wherein an earliest slot of the subsequent burst starts at a slot after a time gap from the end of a previous burst, the time gap being indicated by the base station; 21. The method of claim 20, further comprising: (Item 30) the measurement signal includes a number of sounding reference signal (SRS) bursts; the earliest slot of the preceding burst of the SRS burst starts several time domain resources after the latest SCell uplink slot that coincides with the latest downlink slot of the last channel state information reference signal (CSI-RS) burst; Item 20. The method according to item 20. (Item 31) the SCell activation command is carried in a Medium Access Control (MAC) control element (CE), a Downlink Control Information (DCI), or a Radio Resource Control signaling; The above SCell activation command is which of said at least one SCell should be activated; A Sounding Reference Signal (SRS) ID indicating the resource index or SRS resource set index used for the SCell activation; the number of SRS bursts in the measured signal; the time gap between each two consecutive SRS bursts of the above measurement signal; a slot offset used to determine the earliest slot of the earliest SRS burst of said measured signal; Quasi-colocation (QCL) information of the above measured signals, or The slot offset between the latest channel state information reference signal (CSI-RS) burst and the earliest SRS burst. 21. The method according to item 20, wherein the method further comprises at least one of the following: (Item 32) the measurement signal includes a random access channel (RACH) preamble for the at least one SCell; the SCell activation command is carried on a Medium Access Control (MAC) Control Element (CE); The above SCell activation command is which of said at least one SCell should be activated; Random Access Preamble Index, an uplink / additional uplink indicator indicating which uplink carrier from the uplink carriers in the cell and at least one additional uplink carrier is used to transmit a physical random access channel (PRACH); a synchronization signal (SS) / physical broadcast channel (PBCH) index indicating the SS / PBCH used to determine the RACH opportunity for transmitting the PRACH; a PRACH mask index indicating the RACH opportunity associated with the SS / PBCH indicated by the SS / PBCH index for the transmission of the PRACH; and 21. The method of claim 20, wherein the wireless communication device completes the SCell activation after successfully completing the RACH procedure. (Item 33) 21. A wireless communication device comprising at least one processor and a memory, wherein the at least one processor is configured to read code from the memory and to implement the method described in claim 20. (Item 34) 21. A computer program product, the computer program product including computer-readable program medium code stored thereon, the code, when executed by at least one processor, causing the at least one processor to perform the method described in item 20. [Brief explanation of the drawings]

[0009] BRIEF DESCRIPTION OF THE DRAWINGS Various exemplary configurations of the present solution are described in detail below with reference to the following figures or drawings. The drawings are provided for illustrative purposes only and merely depict exemplary configurations of the present solution to facilitate the reader's understanding of the present solution. Therefore, the drawings should not be considered as limiting the breadth, scope, or applicability of the present solution. It should be noted that for clarity and ease of illustration, the drawings are not necessarily drawn to scale.

[0010] [Figure 1] FIG. 1 illustrates an example wireless communication network and / or system in which the techniques disclosed herein may be implemented, according to some configurations.

[0011] [Figure 2] FIG. 2 illustrates a block diagram of an exemplary wireless communication system for transmitting and receiving wireless communication signals, according to some configurations.

[0012] [Figure 3] FIG. 3 is a diagram illustrating SRS resource configurations for uplink (UL) cell and SCell activation according to various configurations.

[0013] [Figure 4] FIG. 4 is a diagram illustrating medium access control (MAC) control element (CE) configurations for uplink (UL) cell and SCell activation according to various configurations.

[0014] [Figure 5] FIG. 5 is a diagram illustrating a first example method for uplink (UL) cell and SCell activation according to various configurations.

[0015] [Figure 6] FIG. 6 is a diagram illustrating a second example method for uplink (UL) cell and SCell activation according to various configurations. DETAILED DESCRIPTION OF THE INVENTION

[0016] Detailed Description To enable those skilled in the art to make and use the present solution, various exemplary configurations of the present solution are described below with reference to the accompanying figures. As will be apparent to those skilled in the art, after reading this disclosure, various changes or modifications can be made to the examples described herein without departing from the scope of the present solution. Thus, the present solution is not limited to the exemplary configurations and applications described and illustrated herein. Furthermore, any specific order or hierarchy of steps in the methods disclosed herein is merely an example approach. The specific order or hierarchy of steps in any disclosed method or process can be rearranged based on design preferences while remaining within the scope of the present solution. Thus, those skilled in the art will appreciate that the methods and techniques disclosed herein present various steps or operations in a sample order, and the present solution is not limited to the specific order or hierarchy presented, unless otherwise specified.

[0017] FIG. 1 illustrates an exemplary wireless communication network and / or system 100 in which the techniques disclosed herein may be implemented, according to one configuration of the present disclosure. In the following description, the wireless communication network 100 may be any wireless network, such as a cellular network or a narrowband Internet of Things (NB-IoT) network, and is referred to herein as “network 100.” Such exemplary network 100 includes a base station 102 (also referred to as a wireless communication node) and a UE device 104 (hereinafter “UE 104,” also referred to as a wireless communication device) that can communicate with each other via a communication link 110 (e.g., a wireless communication channel), and a cluster of cells 126, 130, 132, 134, 136, 138, and 140 that overlap a geographic region 101. In FIG. 1, the base station 102 and the UE 104 are contained within the respective geographic boundaries of the cell 126. Each of the other cells 130, 132, 134, 136, 138, and 140 may include at least one base station operating in its assigned bandwidth to provide adequate radio coverage to its intended users.

[0018] For example, the base station 102 may operate in an allocated channel transmission bandwidth to provide adequate coverage to the UE 104. The base station 102 and the UE 104 may communicate via a downlink radio frame 118 and an uplink radio frame 124, respectively. Each radio frame 118 / 124 may be further divided into subframes 120 / 127, which may include data symbols 122 / 128. In this disclosure, the base station 102 and the UE 104 are generally described herein as non-limiting examples of “communication nodes” capable of implementing the methods disclosed herein. Such communication nodes may be capable of wireless and / or wired communication in accordance with various configurations of the present solution.

[0019] 2 illustrates a block diagram of an example wireless communication system 200 for transmitting and receiving wireless communication signals (e.g., OFDM / OFDMA signals) in accordance with some configurations of the present disclosure. System 200 may include components and elements configured to support known or conventional operational features that need not be described in detail herein. In one example configuration, system 200 can be used to communicate (e.g., transmit and receive) data symbols in a wireless communication environment, such as wireless communication environment 100 of FIG. 1, as described above.

[0020] The system 200 generally includes a base station 202 (hereinafter “BS 202”) and a user equipment device 204 (hereinafter “UE 204”). The BS 202 includes a BS (base station) transceiver module 210, a BS antenna 212, a BS processor module 214, a BS memory module 216, and a network communication module 218, each of which is coupled and interconnected as needed via a data communication bus 220. The UE 204 includes a UE (user equipment) transceiver module 230, a UE antenna 232, a UE memory module 234, and a UE processor module 236, each of which is coupled and interconnected as needed via a data communication bus 240. The BS 202 communicates with the UE 204 over a communication channel 250, which may be any wireless channel or other medium suitable for the transmission of data as described herein.

[0021] As will be appreciated by those skilled in the art, system 200 may further include any number of modules other than those shown in FIG. 2 . Those skilled in the art will appreciate that the various exemplary blocks, modules, circuits, and processing logic described in connection with the configurations disclosed herein may be implemented in hardware, computer-readable software, firmware, or any practical combination thereof. To clearly illustrate this compatibility and adaptability of hardware, firmware, and software, the various exemplary components, blocks, modules, circuits, and steps are described generally in terms of their functionality. Whether such functionality is implemented as hardware, firmware, or software may depend on the particular application and design constraints imposed on the overall system. Those familiar with the concepts described herein may implement such functionality in a manner suitable for each particular application, but such implementation decisions should not be construed as limiting the scope of the present disclosure.

[0022] According to some configurations, the UE transceiver 230 may also be referred to herein as an “uplink” transceiver 230 that includes a radio frequency (RF) transmitter and an RF receiver, each with circuitry coupled to an antenna 232. Alternatively, a duplexing switch (not shown) may couple the uplink transmitter or receiver to the uplink antenna in a time-duplexed manner. Similarly, according to some configurations, the BS transceiver 210 may also be referred to herein as a “downlink” transceiver 210 that includes an RF transmitter and an RF receiver, each with circuitry coupled to an antenna 212. Alternatively, a downlink duplexing switch may couple the downlink transmitter or receiver to the downlink antenna 212 in a time-duplexed manner. The operation of the two transceiver modules 210 and 230 may be coordinated in time such that the downlink transmitter is coupled to the downlink antenna 212 while the uplink receiver circuitry is coupled to the uplink antenna 232 for receiving transmissions over the wireless transmission link 250. Conversely, the operation of the two transceivers 210 and 230 may be coordinated in time such that the uplink transmitter is coupled to the uplink antenna 232 at the same time that the downlink receiver is coupled to the downlink antenna 212 for receiving transmissions over the wireless transmission link 250. In some configurations, there is strict time synchronization with a minimum guard time between changes in duplex direction.

[0023] The UE transceiver 230 and the base station transceiver 210 are configured to communicate via a wireless data communication link 250 and cooperate with an appropriately configured RF antenna arrangement 212 / 232 capable of supporting a particular wireless communication protocol and modulation scheme. In some exemplary configurations, the UE transceiver 210 and the base station transceiver 210 are configured to support industry standards such as Long Term Evolution (LTE) and the emerging 5G standard. However, it will be understood that the present disclosure is not necessarily limited in application to a particular standard and associated protocol. Rather, the UE transceiver 230 and the base station transceiver 210 may be configured to support alternative or additional wireless data communication protocols, including future standards or variants thereof.

[0024] According to various configurations, the BS 202 may be, for example, an evolved node B (eNB), a gNB, a serving eNB, a target eNB, a femto station, or a pico station. In some configurations, the UE 204 may be embodied in various types of user devices, such as a mobile phone, a smartphone, a personal digital assistant (PDA), a tablet, a laptop computer, a wearable computing device, etc. The processor modules 214 and 236 may be implemented or realized using a general-purpose processor, an associative memory, a digital signal processor, an application-specific integrated circuit, a field-programmable gate array, any suitable programmable logic device, discrete gate or transistor logic, discrete hardware components, or any combination thereof designed to perform the functions described herein. As such, a processor may be realized as a microprocessor, a controller, a microcontroller, a state machine, etc. A processor may also be implemented as a combination of computing devices, such as a combination of a digital signal processor and a microprocessor, multiple microprocessors, one or more microprocessors in conjunction with a digital signal processor core, or any other such configuration.

[0025] Furthermore, the steps of a method or algorithm described in connection with the configurations disclosed herein may be embodied directly in hardware, in firmware, in a software module executed by processor modules 214 and 236, respectively, or in any practical combination thereof. Memory modules 216 and 234 may be realized as RAM memory, flash memory, ROM memory, EPROM memory, EEPROM memory, registers, a hard disk, a removable disk, a CD-ROM, or any other form of storage medium known in the art. In this regard, memory modules 216 and 234 may be coupled to processor modules 210 and 230, respectively, such that processor modules 210 and 230 can read information from and write information to memory modules 216 and 234, respectively. Memory modules 216 and 234 may also be integrated into the respective processor modules 210 and 230. In some configurations, memory modules 216 and 234 may each include a cache memory for storing temporary variables or other intermediate information during execution of instructions executed by processor modules 210 and 230, respectively. Memory modules 216 and 234 may also each include non-volatile memory for storing instructions executed by processor modules 210 and 230, respectively.

[0026] The network communications module 218 generally represents the hardware, software, firmware, processing logic, and / or other components of the base station 202 that enable bidirectional communications between the base station transceiver 210 and other network components and communications nodes configured to communicate with the base station 202. For example, the network communications module 218 may be configured to support Internet or WiMAX traffic. In a typical deployment, without limitation, the network communications module 218 provides an 802.3 Ethernet interface to enable the base station transceiver 210 to communicate with conventional Ethernet-based computer networks. As such, the network communications module 218 may include a physical interface for connecting to a computer network (e.g., a mobile switching center (MSC)). As used herein with respect to a specified operation or function, the terms “configured for,” “configured to,” and conjugations thereof refer to a device, component, circuit, structure, machine, signal, etc. that is physically constructed, programmed, formatted, and / or configured to perform the specified operation or function.

[0027] This implementation may include one cell (cell A) including one UL carrier without a DL carrier. A corresponding DL signal or channel for cell A is transmitted on the DL carrier of another cell (cell B). The corresponding DL signal or channel for cell A may include at least one of various signaling configurations. The signaling configuration may include a PDCCH to schedule a physical uplink shared channel (PUSCH) on cell A. The signaling configuration may include a PDCCH used to activate a configuration grant (PUSCH CG-PUSCH) on cell A. The signaling configuration may include a PDCCH to trigger an aperiodic sounding reference signal (SRS) on cell A. The signaling configuration may include a PDCCH to schedule a system information block (SIB) for cell A. The signaling configuration may include a PDCCH to schedule a PUSCH or a PDSCH during a random access procedure. The signaling configuration may include a primary synchronization signal (PSS), a secondary synchronization signal (SSS), and a physical broadcast channel (PBCH) for cell A. The signaling configuration may include a DMRS for the PDCCH, PDSCH, or PBCH of cell A.

[0028] This implementation may address cross-carrier scheduling and PDCCH configurations. If one cell (cell A) includes one UL carrier but no DL carrier, the base station configures another cell (cell B) as the scheduling cell for cell A. The base station then transmits the corresponding DL signal or channel of cell A on cell B. Cell B can schedule the signal or channel of cell B and can also schedule the signal or channel of cell A. The base station may configure separate CORESET and search space configurations for scheduling the signal or channel of cell A and the signal or channel of cell B. The base station may configure the same CORESET and search space configurations for scheduling the signal or channel of cell A and the signal or channel of cell B. The base station may configure a different carrier indicator value for cell B. Based on this carrier indicator, the UE determines whether the PDCCH transmitted on cell B is for scheduling the signal or channel on cell B or the signal or channel on cell A.

[0029] This implementation can demonstrate various advantages. For UEs with UL-centric mobile services, the base station can advantageously configure a cell with only UL carriers for the UE. This can increase spectral efficiency because unnecessary DL carriers are not configured for the UE. Furthermore, this can also help with UE power savings because the UE does not need to monitor DL ​​signals or channels on these unnecessary DL carriers.

[0030] The wireless communication method may include receiving, by a first cell, an uplink transmission from a wireless communication device using an uplink carrier of the first cell, where the first cell lacks any downlink carrier; and transmitting, by a second cell, a downlink transmission of the first cell to the wireless communication device using a downlink carrier of the second cell, where the downlink transmission of the first cell includes at least one of control channel information of the first cell, a synchronization signal of the first cell, or a reference signal of the first cell.

[0031] In some aspects, the control channel information of the first cell includes at least one of a physical downlink control channel (PDCCH) used to schedule uplink transmissions of the first cell, a PDCCH used to activate a configuration grant for uplink transmissions of the first cell, a PDCCH used to trigger an aperiodic sounding reference signal (SRS) of the first cell, a PDCCH used to schedule a system information block (SIB) of the first cell, or a PDCCH used to schedule uplink transmissions during a random access procedure.

[0032] In some aspects, the synchronization signal of the first cell includes at least one of a primary synchronization signal (PSS) of the first cell, a secondary synchronization signal (SSS) of the first cell, or a physical broadcast channel (PBCH) of the first cell.

[0033] The wireless communication method may include: sending, by a wireless communication device, an uplink transmission to a first cell using an uplink carrier of the first cell, the first cell lacking any downlink carrier; and receiving, by the wireless communication device, a downlink transmission of the first cell from a second cell using a downlink carrier of the second cell, the downlink transmission of the first cell including at least one of control channel information of the first cell, a synchronization signal of the first cell, or a reference signal of the first cell.

[0034] This implementation may include an SCell activation command that triggers both SCell activation and SRS. The SCell activation procedure can be triggered by Medium Access Control Element (MAC CE) or Radio Resource Control (RRC) signaling. During the SCell activation procedure, the UE receives the SCell activation command and can transmit Hybrid Automatic Repeat Request-Acknowledgement (HARQ-ACK) feedback, if necessary. The SCell activation command may include MAC CE or RRC signaling. The UE then receives a synchronization signal or physical broadcast channel (SS / PBCH) or a channel state information reference signal (CSI-RS) to perform automatic gain control (AGC) adjustment and time or frequency synchronization for the downlink. After this, the UE can measure the CSI-RS and transmit a valid CSI report.

[0035] Because the UE does not need to perform AGC adjustment and time or frequency synchronization for the downlink, the existing SCell activation procedure may be exempted from application to a cell that includes one UL carrier without a DL carrier. Instead, the UE can, for example, adjust its UL timing advance (TA), adjust transmit power, and transmit a reference signal for the base station for UL channel measurements. One SCell activation command can trigger both SCell activation and SRS for one or more SCells. When a UE receives this SCell activation command to activate a SCell, the UE transmits an SRS on the SCell to the gNB. Before transmitting the SRS, the UE may require some time to prepare and adjust its radio frequency (RF) chain. The SCell activation command that triggers both SCell activation and SRS is not limited to SCells that include a UL carrier without a DL carrier. The SCell activation command can also be applied to SCells that have both a DL carrier and a UL carrier. For example, even if a DL carrier is configured on an SCell, the SCell can be used for UL transmission and cross-carrier scheduling configured on this SCell.

[0036] The wireless communication method may include: sending, by a base station to a wireless communication device, a secondary cell (SCell) activation command that triggers at least an SCell activation and measurement signal for at least one SCell; and receiving, by the base station from the wireless communication device, a measurement signal in response to the SCell activation command, wherein the wireless communication device activates the at least one SCell in response to the SCell activation command.

[0037] In some aspects, the SCell activation command further triggers an aperiodic channel state information reference signal (CSI-RS), and the method further includes transmitting, by the base station to the wireless communication device, the aperiodic CSI-RS for the at least one SCell on one or more of the at least one SCell, and the wireless communication device transmitting a measurement signal after receiving the aperiodic CSI-RS.

[0038] The wireless communication method may include receiving, by a wireless communication device from a base station, a secondary cell (SCell) activation command that triggers at least an SCell activation and measurement signal for at least one SCell; in response to receiving the SCell activation command, transmitting, by the wireless communication device, a measurement signal to the base station; and activating, by the wireless communication device, the at least one SCell.

[0039] This implementation may include an SCell activation command that triggers SCell activation, CSI-RS, and SRS. One SCell activation command may trigger SCell activation and aperiodic CSI-RS and SRS for one or more SCells. As an example, a base station transmits an SCell activation command to a UE. If the SCell activation command indicates that one specific SCell is to be activated, the base station transmits aperiodic CSI-RS on the SCell. The CSI-RS on the SCell may serve the purpose of time or frequency synchronization. The UE transmits SRS on the SCell after the CSI-RS. The aperiodic CSI-RS may include one or two CSI-RS bursts. A CSI-RS burst may be defined as four CSI-RS resources in two consecutive slots.

[0040] In some aspects, the SCell activation command further triggers an aperiodic channel state information reference signal (CSI-RS), and the method further includes transmitting, by the wireless communication device from the base station, the aperiodic CSI-RS for the at least one SCell on one or more of the at least one SCell, and the wireless communication device transmitting a measurement signal after receiving the aperiodic CSI-RS.

[0041] This implementation may include TA / TPC / UL spatial commands. After the UE transmits an SRS for SCell activation, the base station transmits at least one of the following commands to the UE. When the UE receives at least one of the various commands or channels, the UE can complete the SCell activation procedure. The various commands may include a TA adjustment command. The various commands may include a transmit power control (TPC) command. The various commands may include a UL spatial relationship indication command. The various commands may include a physical downlink control channel (PDCCH) on the SCell or a PDCCH for the SCell. The TA adjustment command may adjust the uplink transmission timing advance, and the TA adjustment command may be carried by a MAC CE. A "timing advance command MAC CE" and an "absolute timing advance command MAC CE" are typical MAC CEs for the UE to adjust the uplink transmission timing advance. The base station measures the SRS transmitted by the UE and sends a TA adjustment command based on the SRS measurement.

[0042] The method may include transmitting, by the base station to the wireless communication device after the wireless communication device transmits a measurement signal for SCell activation, at least one of a time alignment (TA) adjustment command, a transmit power control (TPC) command, an uplink spatial relationship indication command, a physical downlink control channel (PDCCH) on the at least one SCell, or a PDCCH for the at least one SCell.

[0043] In some aspects, the measurement signal includes a number of bursts, the number being an integer greater than 0, the number being indicated by the base station or a default number, and the burst being at least one of: a first number of sounding reference signal (SRS) resources in one slot, the first number being an integer greater than 0; a second number of SRS resources in each of a third number of slots, the second number and the third number each being integers greater than 1; or an SRS resource set.

[0044] In some configurations, a time gap between two consecutive bursts is configured by the base station or indicated to the wireless communication device, the time gap being a non-negative integer, the time gap being defined by a number of time domain resources, and the wireless communication device transmitting a subsequent one of the two consecutive bursts after the time gap from the end of a preceding one of the two consecutive bursts, or there is no time gap indication by the base station and the time gap is 0.

[0045] In some configurations, the measurement signal includes a number of bursts, and the number of bursts is two depending on whether the time gap between two consecutive bursts is indicated by the base station to the wireless communication device, and whether there is no indication of the number by the base station or the base station configures or indicates the number to be one.

[0046] The method may further include receiving, by the wireless communication device from the base station after the wireless communication device transmits the measurement signal for SCell activation, at least one of commands including a time alignment (TA) adjustment command, a transmit power control (TPC) command, an uplink spatial relationship indication command, a physical downlink control channel (PDCCH) on the at least one SCell, or a PDCCH of the at least one SCell, wherein the wireless communication device completes the SCell activation after receiving the at least one of the commands.

[0047] In some aspects, the measurement signal includes a number of bursts, the number being an integer greater than 0, the number being indicated by the base station or a default number, and the burst being at least one of: a first number of sounding reference signal (SRS) resources in one slot, the first number being an integer greater than 0; a second number of SRS resources in each of a third number of slots, the second number and the third number each being integers greater than 1; or an SRS resource set.

[0048] In some aspects, the time gap between two consecutive bursts is configured by the base station or indicated to the wireless communication device, the time gap is a non-negative integer, the time gap is defined by a number of time domain resources, and the wireless communication device transmits a subsequent one of the two consecutive bursts after the time gap from the end of a previous one of the two consecutive bursts, or there is no time gap configured or indicated by the base station and the time gap is 0.

[0049] In some aspects, the measurement signal includes a number of bursts, and the number of bursts is two depending on whether the time gap between two consecutive bursts is configured by the base station or indicated to the wireless communication device, and whether there is no configuration or indication of the number by the base station, or whether the base station configures or indicates the number to be one.

[0050] The TPC command can adjust the uplink transmission power. The TPC command can be carried by the DCI. The "TPC command for scheduled PUSCH" field in DCI formats 0_0, 0_1, and 0_2 can be used to adjust the PUSCH transmission power. The "TPC command for scheduled PUCCH" field in DCI formats 1_0, 1_1, and 1_2 can adjust the PUCCH transmission power. The TPC command in DCI format 2_2 can adjust the PUCCH transmission power and the PUSCH transmission power for a group of UEs. The TPC command in DCI format 2_3 can adjust the transmission power for the SRS of a group of UEs. The base station measures the SRS transmitted by the UE and sends TPC commands based on the SRS measurement.

[0051] The UL spatial relationship indication command can activate or update the UL spatial relationship of an UL signal or channel. The UL spatial relationship indication command can be carried by the MAC CE. The "Extended PUCCH Spatial Relationship Activation / Deactivation MAC CE" can update the spatial relationship for PUCCH transmission. The "Extended SP / AP SRS Spatial Relationship Indication MAC CE" can update the spatial relationship for SRS transmission. The "Serving Cell Set-Based SRS Spatial Relationship Indication MAC CE" can update the spatial relationship for SRS transmission of a serving cell set. The base station measures the SRS transmitted by the UE and sends the UL spatial relationship indication command based on the SRS measurement. When the UE receives a PDCCH on an SCell, it can indicate that the base station is ready to transmit a signal or channel for the UE on this SCell. In other words, the SCell activation procedure is completed. Similarly, when the UE receives a PDCCH for an SCell, it can indicate that the base station is ready to transmit a signal or channel for the UE on this SCell. In this case, the PDCCH for the SCell can be transmitted on another cell. The PDCCH may be used to schedule a PDSCH / PUSCH for a UE on an SCell or to trigger a reference signal (eg, SRS, CSI-RS, etc.) on an SCell.

[0052] 3 is a diagram illustrating SRS resource configurations for uplink (UL) cell and SCell activation according to various configurations. As illustrated by way of example in FIG. 3, the exemplary configuration 300 may include a plurality of symbols 310 including a plurality of first SRS resource symbols 320 and a plurality of second SRS resource symbols 330. The configuration 300 may include a first SRS burst 302 that encompasses one or more of the first SRS resource symbols 320 and the second SRS resource symbols 330. The configuration 300 may include a second SRS burst 304 that encompasses one or more of the first SRS resource symbols 320 and the second SRS resource symbols 330. The configuration 300 may include a gap 306 that includes one or more of the symbols 310 between the first SRS burst 302 and the second SRS burst 304. The configuration 300 may include a slot 308 that includes one or more of the symbol 310 , the first SRS resource symbol 320 , the second SRS resource symbol 330 , and the second SRS burst 304 .

[0053] This implementation may include SRS bursts. As an example, one SCell activation command triggers SCell activation and SRS for one specific SCell. The SRS for an SCell includes M SRS bursts, where M is an integer greater than 0. If the base station does not configure / indicate M, the SRS for each SCell includes one burst by default. The SRS burst may be defined as one of various configurations. A configuration may include N SRS resources in one slot, where N is an integer greater than 0. A configuration may include P SRS resources in each of Q slots, where P and Q are integers greater than 1. A configuration may include one SRS resource set. An SRS burst may be defined as two SRS resources in one slot, where each SRS resource occupies two adjacent OFDM symbols. As another example, an SRS burst may be defined as two SRS resources in each of two consecutive slots, where each SRS resource occupies two adjacent OFDM symbols. If M is equal to 1, the UE can transmit an SRS burst only once. If M is greater than 1, the UE can transmit an SRS burst M times in consecutive UL slots. All M SRS bursts have the same antenna port configuration, the same OFDM symbol allocation within the slot, and the same PRB allocation position.

[0054] A time gap of T between each two consecutive SRS bursts can be configured / indicated to the UE, where T is a non-negative integer and T is in units of symbols / slots / subframes. The UE transmits an SRS burst T symbols / slots / subframes after the end of the preceding SRS burst. If the base station does not configure / indicate a gap, the gap defaults to 0. As an example, if the base station does not configure / indicate M or if the base station configures / indicates M as 1, the SRS includes two SRS bursts if the gap is configured by the base station. As an example, the base station configures / indicates an SRS burst as two SRS resources. The first SRS resource and the second SRS resource each occupy two symbols. The base station configures / indicates two SRS bursts to the UE, with a gap of one slot between them. Therefore, overall, M is equal to 2, N is equal to 2, and the gap is equal to one slot, as shown in FIG. 3.

[0055] This implementation may include other configurations of the SRS. In an NR system, the base station may configure / indicate the SRS as periodic, semi-persistent, and aperiodic. For periodic SRS, the UE transmits the SRS periodically in a time pattern. For semi-persistent SRS, the UE transmits the SRS periodically in a time pattern when activated by an activation command. However, when semi-persistent SRS is deactivated, the UE stops transmitting the SRS. For aperiodic SRS, the UE transmits the SRS once upon receiving a trigger command from the base station.

[0056] In an NR system, a base station can configure / indicate the use of the SRS as "beamManagement," "codebook," "nonCodebook," or "antennaSwitching." If the use of the SRS is configured as "beamManagement," the SRS can perform uplink beam management. If the use of the SRS is configured as "codebook," the SRS can determine the UL channel conditions for codebook-based UL transmissions. If the use of the SRS is configured as "nonCodebook," the SRS can determine the UL channel conditions for non-codebook-based UL transmissions. If the use of the SRS is configured as "antennaSwitching," the SRS can determine DL CSI (Channel State Information).

[0057] The SRS triggered by the SCell activation command may be an aperiodic SRS. The use of the SRS triggered by the SCell activation command may be configured as "beamManagement". This allows the gNB to perform UL beam management during the SCell activation procedure and may facilitate the SCell activation procedure.

[0058] In some aspects, in the case of SCell activation, the measurement signal triggered by the SCell activation command is an aperiodic sounding reference signal (SRS).

[0059] This implementation may include timeline requirements for SRS. If the SCell activation command is a MAC CE or DCI, the following timeline may apply: Upon receiving an SCell activation command in slot n, the UE cannot transmit SRS for the activated SCell earlier than slot n+k=n+m+p*N_slot^(subframe,u)+1, where slot n+m is the slot indicated for PDSCH reception with MAC-CE or PUCCH transmission with HARQ-ACK information for PDCCH with DCI. N_slot^(subframe,u) is the number of slots per subframe for SCS configuration u for PUCCH transmission. p is a non-negative integer. For SCell activation commands carried by MAC CE, p is typically equal to 3. For SCell activation commands carried by DCI, p may be other values, such as 1 or 2.

[0060] Upon receiving an SCell activation command in slot n, the UE may transmit SRS for the activated SCell by slot n+k=n+(T1+T2+T3) / slotlength, where T1 (in ms) is the timing between PDSCH reception with MAC-CE and the corresponding PUCCH transmission with HARQ-ACK information, or between PDCCH reception with DCI and the corresponding PUCCH transmission with HARQ-ACK information. T2 (in ms) may be a period for the UE to prepare and adjust its RF chain. T3 (in ms) is the period for the UE to transmit SRS. slotlength is the slot length of the slot of the activated SCell.

[0061] If the SCell activation command is RRC signaling, the following timeline may apply: Upon receiving the SCell activation command in slot n, the UE cannot transmit SRS for the activated SCell earlier than slot n+k=n+m+T0+1, where slot n+m is the slot indicated for PUCCH transmission with HARQ-ACK information for PDSCH reception containing the SCell activation command. T0 is the period for processing RRC signaling, including the period for the potential transmission of an RRCConnectionReconfigurationComplete message.

[0062] Upon receiving an SCell activation command in slot n, the UE may transmit SRS for the activated SCell by slot n+k=n+(T0+T1+T2+T3) / slotlength, where T1 (in ms) is the period between the PDSCH reception containing the SCell activation command and the corresponding PUCCH transmission with HARQ-ACK information. T2 (in ms) is the period for the UE to prepare and adjust its RF chain. T3 (in ms) is the period for the UE to transmit the SRS. slotlength is the slot length of the slot for the activated SCell. T0 is the period for processing RRC signaling, including the period for the potential transmission of the RRCConnectionReconfigurationComplete message.

[0063] The method may further include indicating, by the base station to the wireless communication device, a slot offset of the SCell, wherein the slot offset is a non-negative integer and the earliest slot of the first SRS burst starts at a slot that is a slot offset after the latest SCell slot that coincides with a reference slot of the cell.

[0064] This implementation may include an SRS timeline requirement. The UE may receive an SCell activation command that triggers one or more SRS bursts for one or more deactivated SCells for SCell activation. As an example, if the SCell activation command indicates that an SRS for SCell activation exists on the SCell, the UE transmits the SRS on the SCell. If the base station configures / indicates a slot offset Soffset for the SCell, the first slot of the first SRS burst starts at a slot Soffset after the last SCell slot that coincides with reference slot n+k of the cell in which the corresponding PUCCH transmission with HARQ-ACK information was transmitted or of the cell in which the SCell activation command was received. Soffset may be a non-negative integer. As another example, if the base station configures / indicates that there are M (M>1) SRS bursts on the SCell, the UE transmits a second SRS burst on the SCell for SCell activation. The first slot of the second SRS burst starts T SCell slots after the end of the first SRS burst, where T is the time gap between each two SRS bursts configured / indicated by the base station. If the time gap is configured / indicated in symbols / subframes, it can be converted to slots. Similarly, the UE transmits the next SRS burst with a gap between this SRS burst and the previous one.

[0065] The method may further include receiving, by the wireless communication device from the base station, a slot offset for the SCell, wherein the slot offset is a non-negative integer and the earliest slot of the first SRS burst starts at a slot after the slot offset from the latest SCell slot that coincides with a reference slot for the cell.

[0066] The method may further include receiving, by the wireless communication device from the base station, a number of bursts of measurement signals on an SCell of the at least one SCell, wherein the number is greater than one; and transmitting, by the wireless communication device to the base station, a subsequent burst on the SCell for SCell activation, wherein an earliest slot of the subsequent burst starts at a slot after a time gap from the end of the preceding burst, the time gap being indicated by the base station.

[0067] In some aspects, the measurement signal includes a number of sounding reference signal (SRS) bursts, the earliest slot of a preceding burst of the SRS burst starting several time domain resources after the latest SCell uplink slot that coincides with the latest downlink slot of the last channel state information reference signal (CSI-RS) burst.

[0068] The method may further include indicating, by the base station to the wireless communication device, a number of bursts of measurement signals on an SCell of the at least one SCell, the number being greater than one; and receiving, by the base station, from the wireless communication device, a subsequent burst on the SCell for SCell activation, the earliest slot of the subsequent burst starting at a slot after a time gap from the end of the preceding burst, the time gap being indicated by the base station.

[0069] This implementation may include timeline requirements for SRS and CSI-RS. In one embodiment, one SCell activation command triggers SCell activation, aperiodic CSI-RS, and SRS for one or more SCells. A base station transmits an SCell activation command to a UE, and if the SCell activation command indicates to activate one specific SCell, the base station transmits aperiodic CSI-RS on the SCell. CSI-RS on the SCell may serve the purpose of time / frequency synchronization. A UE may transmit SRS on the SCell after CSI-RS. As an example, an aperiodic CSI-RS includes one or two CSI-RS bursts. A CSI-RS burst may be defined as four CSI-RS resources in two consecutive slots. As described with respect to SRS bursts, an exemplary SRS includes one or more SRS bursts. The first slot of the first SRS burst starts X slots after the last SCell slot, which coincides with the last slot of the last CSI-RS burst. X is the slot offset configured / indicated by the base station. X can be a non-negative integer.

[0070] FIG. 4 illustrates various medium access control (MAC) control element (CE) configurations for uplink (UL) cell and SCell activation. As illustrated in FIG. 4, the exemplary configuration 400 may include octet 410, octet 420, and octet 430. It should be understood that the present implementation is not limited to the number of octets illustrated herein. Octet 410 may include seven C fields and one R field. Octet 420 may include a first SRS ID 422, a first SRS burst 424, a first gap 426, a first offset 428, and a first QCL 440. Octet 430 may include a first SRS ID 432, a first SRS burst 434, a first gap 436, a first offset 438, and a first QCL 442.

[0071] In some aspects, the measurement signal includes a number of sounding reference signal (SRS) bursts, the earliest slot of a preceding burst of the SRS burst starting several time domain resources after the latest SCell uplink slot that coincides with the latest downlink slot of the last channel state information reference signal (CSI-RS) burst.

[0072] This implementation may include an SCell activation command.

[0073] The SCell activation command may be MAC CE, downlink control information (DCI), or RRC signaling. The SCell activation command may indicate which SCell should be activated and may also indicate various information. The information may include an SRS ID. The SRS ID may indicate a resource index or an SRS resource set index used for SCell activation. If the SRS ID is configured to 0 for an SCell, it indicates that TRS is not used for the corresponding SCell. The information may include the number of SRS bursts. The information may include a time gap between every two consecutive SRS bursts. The information may include a slot offset for determining the first slot of the first SRS burst. The information may include quasi-co-location (QCL) information of the SRS.

[0074] If SCell activation also triggers aperiodic CSI-RS for SCell activation, it may also include various second information. The second information may include a CSI-RS resource set. The second information may include the number of CSI-RS bursts. The second information may include the gap between CSI-RS bursts. The second information may include the slot offset between the last CSI-RS burst and the first SRS burst.

[0075] As an example of Figure 2, a MAC CE can be used to indicate SCell activation for up to seven SCells. The MAC CE has a variable size and can include seven C fields and one R field. The MAC CE can also include several SRS ID fields, SRS burst fields, gap fields, offset fields, and QCL fields. i For , if there is an SCell configured for the MAC entity with SCellIndex i, this field indicates the activation / deactivation status of the SCell with SCellIndex i; otherwise, the MAC entity i The field shall be ignored. i The fields indicate that the SCell with SCellIndex i should be activated and the SRS ID for the SCell. j Set to 1 to indicate that the field is included. C i The field is set to 0 to indicate that the SCell with SCellIndex i should be deactivated and that the SRS ID field is not included for this SCell.

[0076] SRS ID j Regarding SRS ID j is C i That is, SRS ID1 corresponds to the j-th SCell that should be activated according to its C i1 corresponds to the activated SCell with the lowest sCellIndex value i1, which is configured to 1, and SRS ID2 is its C i2 corresponds to the activated SCell with the lowest SellIndex value i2>i1, which is configured to 1, and its C iN The highest sCellIndex value i is configured to be 1 N and so on until the activation SCell has the SRS ID jIf SRS ID is configured to a non-zero value, this field provides the scellActivationRS-ConfigId that identifies the SCellActivationRS-Config as configured in the scellActivationRS-ConfigToAddModList of the corresponding SCell. j If is configured to 0, SRS is not used for the corresponding SCell.

[0077] SRS burst j Regarding SRS burst j is C i The number of SRS bursts for the jth SCell that should be activated according to the Gap j About Gap j is C i The offset may indicate the time gap between every two consecutive SRS bursts of the jth SCell that should be activated according to j Regarding Offset j is C i The QCL may indicate a slot offset for determining the first slot of the first SRS burst of the jth SCell that should be activated according to QCL. j Regarding QCL j is C i With respect to R, R may include a reserved bit set to 0.

[0078] In some aspects, the SCell activation command is carried in a medium access control (MAC) control element (CE), downlink control information (DCI), or radio resource control signaling, and the SCell activation command indicates at least one of which of the at least one SCell should be activated, a sounding reference signal (SRS) resource index or SRS resource set index used for the SCell activation, the number of SRS bursts of the measurement signal, the time gap between every two consecutive SRS bursts of the measurement signal, a slot offset used to determine the earliest slot of the earliest SRS burst of the measurement signal, quasi-co-location (QCL) information of the measurement signal, or a slot offset between the latest channel state information reference signal (CSI-RS) burst and the earliest SRS burst.

[0079] In some aspects, the SCell activation command is carried in a medium access control (MAC) control element (CE), downlink control information (DCI), or radio resource control signaling, and the SCell activation command indicates at least one of which of the at least one SCell should be activated, a sounding reference signal (SRS) resource index or SRS resource set index used for the SCell activation, the number of SRS bursts of the measurement signal, the time gap between every two consecutive SRS bursts of the measurement signal, a slot offset used to determine the earliest slot of the earliest SRS burst of the measurement signal, quasi-co-location (QCL) information of the measurement signal, or a slot offset between the latest channel state information reference signal (CSI-RS) burst and the earliest SRS burst.

[0080] This embodiment may include an SCell activation command and a random access (RACH) preamble that triggers SCell activation. The RACH preamble is a signal during the RACH procedure and may be the first signal in the RACH procedure. In other words, the SCell activation command triggers SCell activation and the RACH procedure. As an example, one SCell activation command triggers both SCell activation and the RACH procedure for one or more SCells. When a UE receives this SCell activation command to activate an SCell, the UE initiates the RACH procedure for the SCell. The initiated RACH procedure may be a four-step RACH procedure or a two-step RACH process. As an example, the SCell activation command may be carried by a MAC CE. The MAC CE indicates which SCell should be activated. In addition, the MAC CE also indicates at least various information. The information may include a random access preamble index. The information may include an UL / SUL indicator indicating which UL carrier between an UL carrier in a cell and its additional UL carriers transmits the PRACH. The information may include an SS / PBCH index indicating the SS / PBCH that should be used to determine the RACH opportunity for the PRACH transmission. The information may include a PRACH mask index indicating the RACH opportunity associated with the SS / PBCH indicated by the "SS / PBCH index" for the PRACH transmission.

[0081] Upon receiving an SCell activation command in slot n, at least one of the following timelines may apply: [ka] The RACH preamble can be transmitted by [ka] is a non-negative integer. [ka] The duration between is used by the UE to prepare for the subsequent RACH procedure. [ka] The base station can transmit a PDSCH together with the UE contention resolution identity information by [ka] The base station can transmit a PDCCH that schedules a PDSCH together with the UE contention resolution identity information by the [ka] The base station can transmit the PDSCH together with the MSGB information by [ka] A PDCCH can be transmitted to schedule a PDSCH with MSGB information until the UE completes the RACH procedure. Once the UE has successfully completed the RACH procedure, the UE completes the SCell activation procedure.

[0082] In some aspects, the measurement signal includes a random access channel (RACH) preamble for at least one SCell, and the SCell activation command is carried on a medium access control (MAC) control element (CE), the SCell activation command indicating which of the at least one SCell is to be activated, a random access preamble index, an uplink / additional uplink indicator indicating which uplink carrier from the uplink carriers in the cell and the at least one additional uplink carrier is to be used to transmit a physical random access channel (PRACH), a synchronization signal (SS) / physical broadcast channel (PBCH) index indicating an SS / PBCH used to determine a RACH opportunity for transmitting the PRACH, and a PRACH mask index indicating a RACH opportunity associated with the SS / PBCH indicated by the SS / PBCH index for transmitting the PRACH, and the wireless communication device completes the SCell activation after successfully completing the RACH procedure.

[0083] 5 is a diagram illustrating a first exemplary method for uplink (UL) cell and SCell activation according to various configurations. At least one of the system 100, the system 200, the BS 102, and the UE 104 may perform the method 500 according to this implementation. The method 500 may start at 510. At 510, the method may transmit, by the second cell, a DL transmission for the first cell to the UE using the second cell's DL carrier, the DL transmission including control channel information, a synchronization signal for the first cell, or a reference signal for the first cell. 510 may include at least one of steps 512 and 514. At 512, the method may transmit control channel information including a PDCCH for scheduling the first cell's UL transmission, a PDCCH for activating a configuration grant for the first cell's UL transmission, a PaDCCH for triggering the first cell's aperiodic SRS, a PDCCH for scheduling the first cell's SIB, or a PDCCH for scheduling the UL transmission during a random access procedure. At 514, the method may transmit a synchronization signal including the first cell's PSS, the first cell's SSS, or the first cell's PBCH. Method 500 may then proceed to 520. At 520, the method may receive a DL transmission for the first cell from the second cell using a DL carrier of the second cell. Method 500 may then proceed to 530. At 530, the method may send a UL transmission to the first cell using a UL carrier of the first cell that lacks a DL carrier. Method 500 may then proceed to 540. At 540, the method may receive a UL transmission from the UE using a UL carrier of the first cell that lacks a DL carrier. Method 500 may end at 540.

[0084] 6 illustrates a second exemplary method for uplink (UL) cell and SCell activation according to various configurations. At least one of the system 100, the system 200, the BS 102, and the UE 104 may perform the method 600 according to this implementation. The method 600 may start at 610.

[0085] At 610, the method may send an SCell activation command from the BS that triggers SCell activation and measurement signals for the SCell. The method 600 may then proceed to 612 and 620. At 612, the method may receive an SCell activation command from the BS that triggers SCell activation and measurement signals for the SCell. The method 600 may then proceed to 630.

[0086] At 620, the method may trigger aperiodic CSI-RS in response to the activation command. The method 600 may then proceed to 630 and 640. At 630, the method may activate the SCell in response to the activation command. The method 600 may then proceed to 642.

[0087] At 640, the method may transmit aperiodic CSI-RS for the SCell on the SCell to the UE in response to the activation command. The method 600 may then proceed to 642 and 652. At 642, the method may receive aperiodic CSI-RS for the SCell on the SCell from the BS in response to the activation command. The method 600 may then proceed to 650.

[0088] At 650, the method may indicate to the UE the number of bursts of the measurement signal on the SCell. The method 600 may then proceed to 652 and 656. At 652, the method may receive an indication of the number of bursts of the measurement signal on the SCell from the BS. The method 600 may then proceed to 654. At 654, the method may transmit the measurement signal to the BS. The method 600 may then proceed to 656 and 660. At 656, the method may receive the measurement signal from the UE. The method 600 may then proceed to 662.

[0089] At 660, the method may send a subsequent burst on the SCell for SCell activation to the BS. The method 600 may then proceed to 662 and 672. At 662, the method may receive a subsequent burst on the SCell for SCell activation from the UE. The method 600 may then proceed to 670.

[0090] At 670, the method may transmit a TA adjustment command, a UL spatial relationship indication command, or a PDCCH to the UE. The method 600 may then proceed to 672. At 672, the method may receive a TA adjustment command, a UL spatial relationship indication command, or a PDCCH from the BS. The method 600 may end at 672.

[0091] It is also understood that any reference herein to an element using a designation such as "first," "second," etc., does not generally limit the quantity or order of those elements. Rather, these designations may be used herein as a convenient means of distinguishing between two or more elements or instances of an element. Thus, reference to a first element and a second element does not imply that only two elements can be used or that the first element must precede the second element in any way.

[0092] Additionally, those skilled in the art will understand that information and signals may be represented using any of a variety of different technologies and techniques. For example, the data, instructions, commands, information, signals, bits, and symbols that may be referred to in the above description may be represented by voltages, currents, electromagnetic waves, magnetic fields or particles, optical fields or particles, or any combination thereof.

[0093] Those skilled in the art will further appreciate that any of the various illustrative logical blocks, modules, processors, means, circuits, methods, and functions described in connection with the aspects disclosed herein can be implemented by electronic hardware (e.g., digital implementations, analog implementations, or a combination of the two), firmware, various forms of programs (e.g., computer program products) or design code incorporating instructions (which may be referred to herein for convenience as “software” or “software modules”), or any combination of these technologies. To clearly illustrate this interchangeability of hardware, firmware, and software, the various illustrative components, blocks, modules, circuits, and steps have been described above generally in terms of their functionality. Whether such functionality is implemented as hardware, firmware, or software, or a combination of these technologies, depends on the particular application and design constraints imposed on the overall system. Those skilled in the art may implement the described functionality in various ways for each particular application, but such implementation decisions do not cause a departure from the scope of the present disclosure.

[0094] Furthermore, those skilled in the art will understand that the various example logic blocks, modules, devices, components, and circuits described herein can be implemented in or by an integrated circuit (IC), which can include a general-purpose processor, a digital signal processor (DSP), an application-specific integrated circuit (ASIC), a field-programmable gate array (FPGA) or other programmable logic device, or any combination thereof. The logic blocks, modules, and circuits can further include an antenna and / or transceiver for communicating with various components within a network or device. A general-purpose processor can be a microprocessor, but alternatively, the processor can be any conventional processor, controller, or state machine. A processor can also be implemented as a combination of computing devices, such as a combination of a DSP and a microprocessor, multiple microprocessors, one or more microprocessors in conjunction with a DSP core, or any other suitable configuration for performing the functions described herein.

[0095] If implemented in software, the functions can be stored as one or more instructions or code on a computer-readable medium. Thus, the steps of a method or algorithm disclosed herein can be implemented as software stored on a computer-readable medium. Computer-readable media includes both computer storage media and communication media, including any medium that can enable transfer of a computer program or code from one place to another. A storage medium can be any available medium that can be accessed by a computer. By way of example, and not limitation, such computer-readable media can include RAM, ROM, EEPROM, CD-ROM or other optical disk storage, magnetic disk storage or other magnetic storage devices, or any other medium that can be used to store desired program code in the form of instructions or data structures and that can be accessed by a computer.

[0096] As used herein, the term "module" refers to software, firmware, hardware, and any combination of these elements for performing the related functions described herein. Additionally, for purposes of explanation, various modules are described as individual modules, however, one skilled in the art will recognize that two or more modules may be combined to form a single module that performs related functions according to the configuration of the present solution.

[0097] Additionally, memory or other storage, as well as communication components, may be used in the implementation of the solution. It will be appreciated that, for clarity, the above description describes the implementation of the solution with reference to different functional units and processors. However, it will be apparent that any suitable distribution of functionality between different functional units, processing logic elements, or domains may be used without detracting from the solution. For example, functionality illustrated as being performed by separate processing logic elements or controllers may be performed by the same processing logic element or controller. Thus, references to specific functional units do not indicate a strict logical or physical structure or organization, but merely to suitable means for providing the described functionality.

[0098] Various modifications to the configurations described in this disclosure will be readily apparent to those skilled in the art, and the generic principles defined herein may be applied to other embodiments without departing from the scope of the present disclosure. Thus, the present disclosure is not intended to be limited to the configurations shown herein but is to be accorded the widest scope consistent with the novel features and principles disclosed herein, as set forth in the following claims.

Claims

1. A wireless communication method, the wireless communication method comprising: transmitting, by a base station to a wireless communication device, a secondary cell (SCell) activation command to trigger SCell activation and measurement signals for at least one SCell, wherein the measurement signals include a sounding reference signal (SRS) or a random access channel (RACH) preamble; receiving, by the base station, from the wireless communication device, the measurement signal in response to the SCell activation command, wherein the wireless communication device activates the at least one SCell in response to the SCell activation command; A method comprising:

2. The SCell activation command further triggers an aperiodic channel state information reference signal (CSI-RS); The method further includes transmitting, by the base station to the wireless communication device, the aperiodic CSI-RS for the at least one SCell in one or more of the at least one SCell; the wireless communication device transmits the measurement signal after receiving the aperiodic CSI-RS; The method of claim 1.

3. After the wireless communication device transmits the measurement signal for the SCell activation, the base station Time Alignment (TA) adjustment command, Transmit Power Control (TPC) commands, Uplink spatial relationship indication command, a Physical Downlink Control Channel (PDCCH) on the at least one SCell; or a PDCCH for the at least one SCell; The method of claim 1 , further comprising transmitting at least one of:

4. the measurement signal includes a number of bursts; the number of bursts is an integer greater than 0; the number of bursts is indicated by the base station or is pre-configured as a default number; The burst comprises: a first number of sounding reference signal (SRS) resources in a slot, the first number being an integer greater than 0; a second number of SRS resources in each of a third number of slots, wherein the second number and the third number are each integers greater than one; or One SRS resource set The method of claim 1 , wherein the at least one of

5. a time gap between two consecutive bursts is configured by the base station or indicated to the wireless communication device, the time gap being a non-negative integer, the time gap being defined by a number of time domain resources, and the wireless communication device transmitting a subsequent one of the two consecutive bursts after the time gap from the end of a previous one of the two consecutive bursts; or The time gap is not indicated by the base station and the time gap is 0. The method of claim 4.

6. the measurement signal includes a number of bursts; The number of bursts is a time gap between two consecutive bursts being indicated by the base station to the wireless communication device; There is no indication of the number of bursts by the base station, or The base station configures or indicates that the number of bursts is 1. On the other hand, 5. The method of claim 4, wherein the value of

7. The method of claim 1 , wherein in the case of the SCell activation, the measurement signal triggered by the SCell activation command is an aperiodic sounding reference signal (SRS).

8. 2. The method of claim 1, wherein in the case of the SCell activation, the use of the measurements triggered by the SCell activation command is configured as beam management, and the base station performs uplink beam management during the SCell activation.

9. 2. The method of claim 1, further comprising: indicating, by the base station to the wireless communication device, a slot offset for the SCell, the slot offset being a non-negative integer, and an earliest slot of a first SRS burst starting at a slot after the slot offset from a latest SCell slot that coincides with a reference slot for a cell.

10. indicating, by the base station to the wireless communication device, a number of bursts of the measurement signal in an SCell of the at least one SCell, the number being greater than one; receiving, by the base station from the wireless communication device, a subsequent burst on the SCell for the SCell activation, wherein an earliest slot of the subsequent burst starts at a slot after a time gap from an end of a preceding burst, the time gap being indicated by the base station; The method of claim 1 further comprising:

11. the measurement signal includes a number of sounding reference signal (SRS) bursts; the earliest slot of the preceding burst of the SRS burst starts several time domain resources after the latest SCell uplink slot that coincides with the latest downlink slot of the last channel state information reference signal (CSI-RS) burst; The method of claim 1.

12. the SCell activation command is carried in a Medium Access Control (MAC) control element (CE), a Downlink Control Information (DCI), or a Radio Resource Control signaling; The SCell Activation Command: which of the at least one SCell should be activated; an SRSID indicating a resource index or sounding reference signal (SRS) resource set index used for the SCell activation; the number of SRS bursts in the measurement signal; the time gap between each two consecutive SRS bursts of the measurement signal; a slot offset used to determine the earliest slot of the earliest SRS burst of the measurement signal; Quasi-collocation (QCL) information of the measurement signals; or slot offset between the latest channel state information reference signal (CSI-RS) burst and the earliest SRS burst The method of claim 1 , wherein the at least one of

13. the measurement signal includes a random access channel (RACH) preamble for the at least one SCell; the SCell activation command is carried on a Medium Access Control (MAC) Control Element (CE); The SCell Activation Command: which of the at least one SCell should be activated; Random Access Preamble Index, an uplink / additional uplink indicator indicating which uplink carrier from the uplink carriers in the cell and at least one additional uplink carrier is used to transmit a Physical Random Access Channel (PRACH); a Synchronization Signal (SS) / Physical Broadcast Channel (PBCH) index indicating a Synchronization Signal (SS) / Physical Broadcast Channel (PBCH) used to determine a RACH opportunity for transmitting the PRACH; a PRACH mask index indicating the RACH opportunity associated with the SS / PBCH indicated by the SS / PBCH index for the transmission of the PRACH; The method of claim 1 , wherein the at least one of

14. A wireless communication method, the wireless communication method comprising: receiving, by the wireless communication device from a base station, a secondary cell (SCell) activation command that triggers SCell activation and measurement signals for at least one SCell; In response to receiving the SCell activation command, transmitting the measurement signal by the wireless communication device to the base station, the measurement signal including a sounding reference signal (SRS) or a random access channel (RACH) preamble; activating, by the wireless communication device, the at least one SCell; A method comprising:

15. The SCell activation command further triggers an aperiodic channel state information reference signal (CSI-RS); The method further includes transmitting, by the wireless communication device from the base station, the aperiodic CSI-RS for the at least one SCell in one or more of the at least one SCell; the wireless communication device transmits the measurement signal after receiving the aperiodic CSI-RS; 15. The method of claim 14.

16. After the wireless communication device transmits the measurement signal for the SCell activation, the wireless communication device receives from the base station: Time Alignment (TA) adjustment command, Transmit Power Control (TPC) commands, Uplink spatial relationship indication command, a Physical Downlink Control Channel (PDCCH) on the at least one SCell; or a PDCCH for the at least one SCell; wherein the wireless communication device completes the SCell activation after receiving the at least one of the commands.

15. The method of claim 14, further comprising:

17. the measurement signal includes a number of bursts; the number is an integer greater than 0, the number is indicated by the base station or is a default number; The burst comprises: a first number of sounding reference signal (SRS) resources in a slot, the first number being an integer greater than 0; a second number of SRS resources in each of a third number of slots, wherein each of the second number and the third number is an integer greater than 1; or One SRS resource set 15. The method of claim 14, wherein the at least one of

18. a time gap between two consecutive bursts is configured by the base station or indicated to the wireless communication device, the time gap being a non-negative integer, the time gap being defined by a number of time domain resources, and the wireless communication device transmitting a subsequent one of the two consecutive bursts after the time gap from the end of a previous one of the two consecutive bursts; or The time gap is not configured or indicated by the base station and the time gap is 0.

16. The method of claim 15.

19. A base station, the base station comprising: At least one processor wherein the at least one processor transmitting a secondary cell (SCell) activation command to a wireless communication device via a transceiver to trigger SCell activation and measurement signals for at least one SCell, the measurement signals including a sounding reference signal (SRS) or a random access channel (RACH) preamble; receiving the measurement signal from the wireless communication device via the transceiver in response to the SCell activation command, the wireless communication device activating the at least one SCell in response to the SCell activation command; A base station configured to:

20. 1. A wireless communication device, comprising: At least one processor wherein the at least one processor receiving a secondary cell (SCell) activation command from a base station via a transceiver, the SCell activation command triggering SCell activation and measurement signals for at least one SCell; In response to receiving the SCell activation command, transmitting the measurement signal to the base station via the transceiver, the measurement signal including a sounding reference signal (SRS) or a random access channel (RACH) preamble; activating the at least one SCell; 12. A wireless communication device configured to:

Citation Information

Patent Citations

  • Base station device, terminal device, communication method, and integrated circuit

    JP2019198015A

  • Systems and methods for SRS switching, transmission and enhancement

    JP2019514268A

  • User terminal and wireless communication method

    WO2020166081A1

  • Apparatus and methods for secondary cell (SCELL) enhancements in wireless communications

    WO2021258089A2