System and method for enhancing channel status information reporting

Enhanced CSI reporting methods, including CQI mapping and Type II codebook improvements, address the issue of outdated CSI in MU-MIMO systems, ensuring reliable communication despite device movement.

JP7838097B2Active Publication Date: 2026-03-31ZTE CORP
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2023-01-20
Publication Date
2026-03-31

AI Technical Summary

Technical Problem

In multi-user multi-input multi-output (MU-MIMO) wireless communication systems, particularly in fifth-generation mobile networks, channel status information (CSI) reports become outdated due to high or medium-speed movements of wireless devices, leading to performance loss.

Method used

Enhancements to CSI reporting through improved CQI mapping rules, non-zero coefficient quantities, priority formulations, Doppler domain indicators, and coefficient grouping positions, along with Type II codebook improvements for high to medium speeds, are implemented to maintain accurate CSI reporting.

Benefits of technology

The enhancements ensure more reliable and timely CSI reporting, reducing performance loss in MU-MIMO scenarios by maintaining accurate channel status information even with device movement.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The configurations relate to a system, method, and non-transitory computer-readable medium for reporting a channel state information (CSI) report, where the CSI report includes CSI Part 1 and CSI Part 2, and communicating by a wireless communication device to a network based on the CSI report. In some configurations, a plurality of reference signals and configuration parameters are received. The wireless communication device can determine a channel state information (CSI) report based on the plurality of reference signals and the configuration parameters, where the CSI report includes CSI Part 1 and CSI Part 2. The wireless communication device can report the CSI report to the network.
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Description

[Technical Field]

[0001] This disclosure relates in general to wireless communication, and more specifically to multi-user (MU) multi-input multi-output (MU-MIMO) wireless communication. [Background technology]

[0002] background In fifth-generation mobile network systems (5GC), MIMO is a key technology in new radio (NR) systems. MIMO functionality can be available for both frequency division duplexing (FDD) and time division duplexing (TDD). [Overview of the Initiative] [Means for solving the problem]

[0003] overview The configuration examples disclosed herein are directed toward solving problems relating to one or more problems presented in the prior art and providing further features which will become readily apparent by referring to the following detailed description when interpreted in conjunction with the accompanying drawings. Examples of systems, methods, devices, and computer program products according to various configurations are disclosed herein. However, it should be understood that these configurations are presented as examples and are not limiting, and it will be apparent to a person skilled in the art who has read this disclosure that various modifications to the disclosed configurations can be made while remaining within the scope of this disclosure.

[0004] In some configurations, multiple reference signals and configuration parameters are received. A wireless communication device can determine a Channel Status Information (CSI) report based on these multiple reference signals and configuration parameters, and the CSI report includes CSI Part 1 and CSI Part 2. The wireless communication device can report the CSI report to the network.

[0005] In some configurations, a plurality of reference signals and configuration parameters are transmitted. The network can receive a channel state information (CSI) report from a wireless communication device, and the CSI report includes CSI part 1 and CSI part 2.

[0006] The above and other aspects and their embodiments are described in more detail in the drawings, the specification, and the claims. The present invention provides, for example, the following items: (Item 1) A wireless communication method, A wireless communication device receives multiple reference signals and configuration parameters from the network, The process involves determining a Channel Status Information (CSI) report based on the above-mentioned multiple reference signals and configuration parameters, wherein the CSI report includes CSI Part 1 and CSI Part 2. The above wireless communication device reports the above CSI report to the above network. Methods that include... (Item 2) The method according to item 1, wherein the CSI report described above includes a set of multiple channel quality indicators (CQIs), each of which includes a broadband CQI and at least one subband differential CQI associated with the broadband CQI. (Item 3) The above CSI report includes multiple Channel Quality Indicator (CQI) sets. The first set of the above multiple CQI sets includes a broadband CQI and at least one first subband differential CQI associated with the broadband CQI, Each of the one or more second CQI sets of the above-mentioned multiple CQI sets includes at least one second subband differential CQI associated with the broadband CQI in the first CQI set. The method described in item 1. (Item 4) The method according to item 2, wherein the CQI mapping sequence for mapping to CSI Part 1 in the above CSI report is the broadband CQI for the first set of the plurality of CQI sets, the at least one subband differential CQI for the first set of CQI sets, the broadband CQI for the second set of CQI sets, and the at least one subband differential CQI for the second set of CQI sets, in this order. (Item 5) The CQI mapping sequence for mapping to CSI Part 1 in the above CSI report is the method described in item 2, which includes the broadband CQI for each of the above multiple CQI sets and the at least one subband differential CQI for each of the above multiple CQI sets. (Item 6) The method according to item 3, wherein the CQI mapping sequence for mapping to CSI Part 1 in the above CSI report is the sequence comprising the broadband CQI for the first set of CQIs, the at least one first subband differential CQI for the first set of CQIs, and the at least one second subband differential CQI for each of the one or more second sets of CQIs. (Item 7) The CQI mapping order in the above CSI report is: To map to the above CSI Part 1, the above broadband CQI for the first set of the above multiple CQI sets and the above at least one subband differential CQI for the first set of CQI sets are included in this order, To map to the above CSI Part 2, the broadband CQI for the second set of the multiple CQI sets, the at least one subband differential CQI for the second set of CQI sets, the broadband CQI for the third set of CQI sets, and the at least one subband differential CQI for the third set of CQI sets are included in this order. The method described in item 2. (Item 8) The CQI mapping order in the above CSI report is: To map to the above CSI Part 1, the above broadband CQI for the first set of the above multiple CQI sets and the above broadband CQI for the second set of the above multiple CQI sets are included in this order, To map to the above CSI Part 2, the at least one subband differential CQI for the first set of CQIs and the at least one subband differential CQI for the second set of CQIs are included in this order. The method described in item 2. (Item 9) The CQI mapping order in the above CSI report is: To map to the above CSI Part 1, the above broadband CQI for the above first CQI set is included, To map to the above CSI Part 2, the above at least one subband differential CQI for the above first set of CQIs and the above at least one subband differential CQI for each of the above one or more sets of second CQIs, in this order, The method described in item 3. (Item 10) The above configuration parameters are configured to enable two or more channel quality indicators (CQIs) in the above CSI report. The above reference signal must be non-periodic or semi-permanent, or The CSI window length, Doppler domain base unit size, offset between two CSI-RS resources, and length of the Doppler domain base vector must each be greater than or equal to a threshold. Further including at least one of the following: The method described in item 1. (Item 11) The method according to item 1, further comprising the wireless communication device transmitting a user equipment (UE) capability report to the network, indicating that the wireless communication device supports a number of channel quality indicator (CQI) reports, wherein the number is a positive integer. (Item 12) The method according to item 1, wherein the above CSI report includes an indicator for the total number of non-zero coefficients summed across multiple layers and across multiple Doppler domain basis numbers, the non-zero coefficients being associated with at least one precoding matrix indicator (PMI). (Item 13) The maximum allowable rank is 1, the total number of non-zero coefficients is a certain value, and The maximum acceptable rank is a number other than 1, and the total number of non-zero coefficients is twice the above value. The method described in item 12. (Item 14) The maximum allowable rank is 1, and the above total number of non-zero coefficients is the value multiplied by the above Doppler domain basis number, and The maximum acceptable rank is a number other than 1, and the total number of non-zero coefficients is twice the product of the above value and the above Doppler domain basis number. The method described in item 12. (Item 15) The maximum allowable rank is 1, the total number of non-zero coefficients is a certain value, and The maximum acceptable rank is a number other than 1, the total number of non-zero coefficients is twice the value, and the value is determined based on the Doppler domain basis number. The method described in item 12. (Item 16) The above CSI report is the method described in item 1, which includes an indicator for the total number of non-zero coefficients summed across multiple layers for each of the multiple Doppler domain basis numbers, for the above CSI Part 1. (Item 17) The maximum acceptable rank is 1, the total number of non-zero coefficients is a certain value for the number of Doppler domains, and The maximum acceptable rank is a number other than 1, and the total number of non-zero coefficients is twice the value for the multiple Doppler domain basis numbers. The method described in item 16. (Item 18) The maximum acceptable rank is 1, and the total number of non-zero coefficients is the respective value for each of the multiple Doppler domain basis numbers, and The maximum acceptable rank is a number other than 1, and the total number of non-zero coefficients is twice the respective value for each of the multiple Doppler domain basis numbers. The method described in item 16. (Item 19) The above CSI report is, For the above CSI Part 1, a first indicator for a first total number of non-zero coefficients summed across multiple layers for a first Doppler domain basis number, and For the above CSI Part 2, a second indicator is provided for a second total number of non-zero coefficients that are summed across multiple layers for a second Doppler domain basis number, The method described in item 1. (Item 20) Regarding the above CSI Part 1, The maximum allowable rank is 1, and the first total number above is a certain value, and The maximum permissible rank mentioned above is a number other than 1, and the total number mentioned above is twice the value mentioned above, and Regarding the above CSI Part 2, The maximum allowable rank is 1, and the second total number for each of the second Doppler domain basis numbers is the above value, and The maximum allowable rank is a number other than 1, and the total number of the second Doppler domain base numbers for each of the second Doppler domain base numbers is twice the value above. The method described in item 19. (Item 21) Regarding the above CSI Part 1, The maximum allowable rank is 1, the first total number above is the first value, and The maximum permissible rank mentioned above is a number other than 1, and the total number mentioned above is twice the value mentioned above. Regarding the above CSI Part 2, The maximum allowable rank is 1, and the second total for each of the second Doppler domain basis numbers is the respective second value, and The maximum allowable rank is a number other than 1, and the total number of the second Doppler domain base numbers is twice the respective second value. The method described in item 19. (Item 22) The above CSI report includes coefficient information, which includes at least one coefficient associated with at least one precoding matrix indicator (PMI), and each of the above at least one coefficient is associated with a priority value. The above priority values, The first priority value for the layer is greater than the second priority value of the spatial domain base, the second priority value of the spatial domain base is greater than the third priority value of the frequency domain base, and the third priority value of the frequency domain base is greater than the fourth priority value of the Doppler domain base, or The first priority value for the above layer is greater than the second priority value for the above spatial domain base, the second priority value for the above spatial domain base is greater than the fourth priority value for the above Doppler domain base, and the fourth priority value for the above Doppler domain base is greater than the third priority value for the above frequency domain base. The method described in item 1, obtained in accordance with the method described in item 1. (Item 23) The above CSI report includes a representation of the above Doppler domain basis numbers associated with at least one precoding matrix indicator (PMI), The above Doppler domain basis number can be expressed using the bit width determined based on the above Doppler domain basis number, and The above Doppler domain basis numbers are mapped to group 0 of CSI Part 2, or The above Doppler domain base numbers are mapped to group 1 of CSI Part 2, or The above Doppler domain base numbers are mapped to Group 2 of CSI Part 2. One of them is the method described in item 1. (Item 24) The above CSI report includes the strongest coefficient indicator (SCI) across multiple spatial domain bases, frequency domain bases, and Doppler domain bases, and the above SCI is associated with at least one precoding matrix indicator (PMI). The location of the above SCI is mapped to group 0 of the above CSI part 2, and The bit width of the above SCI is, For rank 1, the bit width is determined based on the total number of non-zero coefficients summed across multiple layers and multiple Doppler domain basis numbers, and for ranks 2, 3, and 4, the bit width is determined based on a certain value, or For ranks 1, 2, 3, and 4, the bit width is determined based on the above value. The method described in item 1, including the method described in item 1. (Item 25) The above CSI report includes, for each layer and each Doppler domain basis, the strongest coefficient indicator (SCI) across multiple spatial domain basis and frequency domain basis, and the above SCI is associated with at least one precoding matrix indicator (PMI). The location of the above SCI is mapped to group 0 of the above CSI part 2, and The bit width of the above SCI is, For rank 1, the bit width is determined based on the total number of non-zero coefficients summed across multiple layers and multiple Doppler domain basis numbers, and for ranks 2, 3, and 4, the bit width is determined based on a certain value, or For ranks 1, 2, 3, and 4, the bit width is determined based on the above value. The method described in item 1, including the method described in item 1. (Item 26) The above CSI report includes, for each layer and each Doppler domain basis, the strongest coefficient indicator (SCI) across multiple spatial domain basis and frequency domain basis, and the above SCI is associated with at least one precoding matrix indicator (PMI). The position of the above SCI is mapped to group 0 of the above CSI part 2 relative to the first Doppler domain base. The above position of the above SCI maps to group 1 of the above CSI part 2 relative to the second Doppler domain base, and The bit width of the above SCI is, For rank 1, the bit width is determined based on the total number of non-zero coefficients summed across multiple layers and multiple Doppler domain basis numbers, and for ranks 2, 3, and 4, the bit width is determined based on a certain value, or For ranks 1, 2, 3, and 4, the bit width is determined based on the above value. The method described in item 1, including the method described in item 1. (Item 27) The above values ​​are determined according to the above spatial domain basis number, as described in item 24. (Item 28) The method according to item 1, wherein the above CSI report includes the highest priority bit of the position of the coefficient determined based on a priority function, the above position of the coefficient is mapped in descending order to the group of CSI Part 2, and the above position of the coefficient is associated with at least one precoding matrix indicator (PMI). (Item 29) The priority function described above is determined according to the method in item 28, based on the DD basis, FD basis, SD basis, and layer index indices. (Item 30) The highest priority bit mentioned above is determined based on the Doppler domain basis number mentioned above. The highest priority bit, determined based on the above priority function, is mapped in descending order to group 1 of CSI part 2, and The above CSI report includes a minimum priority bit determined based on the above priority function, and the above minimum priority bit is mapped in descending order to group 2 of the above CSI part 2. The method described in item 28. (Item 31) The highest priority bit mentioned above is determined for each of the above Doppler domain basis numbers, The highest priority bit, determined based on the above priority function, is mapped in descending order to group 1 of CSI part 2, and The above CSI report includes a minimum priority bit determined based on the above priority function, and the above minimum priority bit is mapped in descending order to group 2 of the above CSI part 2. The method described in item 28. (Item 32) The highest priority bit mentioned above is determined for each of the above Doppler domain basis numbers, The above group in CSI Part 2 includes multiple groups, The highest priority bit for each of the above Doppler domain basis numbers is mapped in descending order to one of the above multiple groups of the above CSI Part 2, and The above CSI report includes a minimum priority bit determined based on the above priority function, and the above minimum priority bit is mapped in descending order to the above multiple groups of CSI Part 2. The method described in item 28. (Item 33) The highest priority bit mentioned above is determined for each of the above Doppler domain basis numbers, For the first Doppler domain basis number described above, The highest priority bit for each of the above Doppler domain basis numbers is mapped in descending order to group 1 of the above CSI part 2, and The above CSI report includes a minimum priority bit determined based on the above priority function, and the above minimum priority bit is mapped in descending order to group 2 of the above CSI part 2. For the second Doppler domain basis number mentioned above, The highest priority bit for each of the above Doppler domain basis numbers is mapped in descending order to group 3 of the above CSI part 2, and The above CSI report includes a minimum priority bit determined based on the above priority function, and the above minimum priority bit is mapped in descending order to group 4 of the above CSI part 2. The method described in item 28. (Item 34) A wireless communication device comprising at least one processor and memory, wherein the at least one processor is configured to read code from the memory and perform the method described in item 1. (Item 35) A computer program product comprising computer-readable program media code stored thereon, wherein the code, when executed by at least one processor, causes the at least one processor to perform the method described in item 1. (Item 36) A wireless communication method, The network transmits multiple reference signals and configuration parameters to wireless communication devices. The above network receives channel status information (CSI) from the above wireless communication device, and the above CSI report includes CSI Part 1 and CSI Part 2. Wireless communication methods, including those mentioned above. (Item 37) A wireless communication device comprising at least one processor and memory, wherein the at least one processor is configured to read code from the memory and perform the method described in item 36. (Item 38) A computer program product comprising computer-readable program medium code stored thereon, wherein the code, when executed by at least one processor, causes the at least one processor to perform the method described in item 36. [Brief explanation of the drawing]

[0007] Various configuration examples of this solution are described in detail below with reference to the following figures or drawings. The drawings are provided for illustrative purposes only and depict only configuration examples of this solution to facilitate the reader's understanding of it. Therefore, the drawings should not be considered to limit the scope, range, or applicability of this solution. It should be noted that these drawings are not necessarily drawn to actual size in order to make the illustrations clear and easy to understand.

[0008] [Figure 1] An example of a cellular communication system involving several configurations is shown.

[0009] [Figure 2] The following are block diagrams of an example of a base station and an example of a user equipment device, relating to several configurations.

[0010] [Figure 3] This figure shows an example of channel quality information (CQI) mapping for channel status information (CSI) part 1 related to various configurations.

[0011] [Figure 4] This figure shows an example of CQI mapping to CSI Part 1 for various configurations.

[0012] [Figure 5] This figure shows an example of CQI mapping to CSI Part 1 for various configurations.

[0013] [Figure 6] This figure shows an example of CQI mapping to CSI Part 1 for various configurations.

[0014] [Figure 7] This figure shows an example of CQI mapping to CSI Part 1 and CSI Part 2 for various configurations.

[0015] [Figure 8] This figure shows an example of CQI mapping to CSI Part 1 and CSI Part 2 for various configurations.

[0016] [Figure 9] This figure shows an example of CQI mapping to CSI Part 1 and CSI Part 2 for various configurations.

[0017] [Figure 10] This figure shows an example of an indicator of the total amount of non-zero coefficients (NZCs) summed across all layers for CSI Part 1, related to various configurations.

[0018] [Figure 11]This figure shows an example of an indicator of the total amount of NZC summed across all layers and across all Qs for CSI Part 1, relating to several configurations.

[0019] [Figure 12] This figure shows an example of an indicator of the total amount of NZC, totaled across all layers and per Q for CSI Part 1, related to various configurations.

[0020] [Figure 13] This figure shows an example of an indicator of the total amount of NZC that is summed across all layers related to various configurations and associated with one or more DD bases for CSI Part 1 and / or CSI Part 2.

[0021] [Figure 14A] This flowchart illustrates an example of a method for strengthening CSI reporting across various configurations. [Figure 14B] This flowchart illustrates an example of a method for strengthening CSI reporting across various configurations.

[0022] [Figure 15] This flowchart illustrates an example of a method for strengthening CSI reporting across various configurations.

[0023] [Figure 16] This flowchart illustrates an example of a method for strengthening CSI reporting across various configurations.

[0024] [Figure 17] This flowchart illustrates an example of a method for strengthening CSI reporting across various configurations. [Modes for carrying out the invention]

[0025] Detailed explanation To enable those skilled in the art to fabricate and use the present solution, various exemplary configurations of the solution are described below with reference to the accompanying drawings. As will be apparent to those skilled in the art, after reading this disclosure, various changes or modifications to the examples described herein can be made without departing from the scope of the solution. Therefore, the solution is not limited to the exemplary configurations and uses described and illustrated herein. Furthermore, the particular order or hierarchy of steps in the methods disclosed herein is merely illustrative. The particular order or hierarchy of steps in the disclosed methods or processes can be rearranged on a design preference while remaining within the scope of the solution. Therefore, those skilled in the art will understand that the methods and techniques disclosed herein present various steps or operations in a sample order, and the solution is not limited to the specific order or hierarchy presented unless otherwise specified.

[0026] In wireless communication systems, wireless devices can communicate with a network. As part of the communication process, wireless devices may report channel status information (CSI). In some cases, wireless devices may move at high or medium speeds (e.g., changing from one physical location to another). Due to the higher speed, the data contained in the CSI may become outdated, causing performance loss in communication between the wireless device and the network. In some examples, performance loss may be present, particularly in multi-user (MU) multi-input multi-output (MU-MIMO) scenarios. Configurations disclosed herein provide, for example, channel quality indicator (CQI) mapping rules, quantities (e.g., number) of non-zero coefficients (NZCs), priority formulation enhancements, Doppler domain (DD) base indicators, strongest coefficient indicators, coefficient grouping positions, and enhancements to CSI measurement and reporting (e.g., additions, updates, modifications) for higher-layer parameters. To do so, wireless communication systems may utilize the design of mapping sequences for CSI Part 1 and CSI Part 2 related to Type II codebook improvements for high to medium speeds.

[0027] Figure 1 shows an example of a wireless communication system 100 in which the technologies disclosed herein may be implemented, according to embodiments of the present disclosure. In the following description, the wireless communication system 100 may implement any wireless network, such as a cellular network or a narrowband Internet of Things (NB-IoT) network, and will be referred to herein as system 100. Such system 100 includes BS 102 and UE 104 that can communicate with each other via a communication link 110 (e.g., a wireless communication channel), and clusters of cells 126, 130, 132, 134, 136, 138, and 140 that overlap geographic area 101. In Figure 1, BS 102 and UE 104 are contained within the respective geographic boundaries of cell 126. Each of the other cells 130, 132, 134, 136, 138, and 140 may include at least one BS operating in its allocated bandwidth to provide adequate wireless coverage to its intended users.

[0028] For example, BS102 may operate within its allocated channel transmission bandwidth to provide adequate coverage to UE104. BS102 and UE104 may communicate via downlink radio frames 118 and uplink radio frames 124, respectively. Each radio frame 118 / 124 may be further divided into subframes 120 / 127, which may contain data symbols 122 / 128. In this disclosure, BS102 and UE104 are described herein as non-limiting examples of “communication nodes” that can generally implement the methods disclosed herein. Such communication nodes may be capable of wireless and / or wired communication according to various embodiments of this solution.

[0029] In some embodiments, the wireless communication system 100 may support MIMO communication. For example, MIMO is an important technology in newer radio (NR) systems. MIMO can function in both frequency division duplex (FDD) and time division duplex (TDD) systems, among other things. MIMO technology may utilize reporting mechanisms such as CSI to support communication. CSI reporting may include various types, parts, groups, and fields. The technologies described herein may provide enhancements to various aspects of CSI reporting and reporting processes. For example, a wireless communication device may receive multiple reference signals and configuration parameters from a network by the wireless communication device. The wireless communication device may determine a CSI report based on the multiple reference signals and configuration parameters, where the CSI report includes CSI Part 1 and CSI Part 2. The wireless communication device may report the CSI report to the network. In some cases, the reporting process may include one or more of the following: In other words, the configuration parameters may be configured to enable two or more CQIs in a CSI report, the reference signal may be aperiodic or semi-persistent, and each of the CSI window length, DD base unit size, offset between two CSI reference signal (CSI-RS) resources, and DD base vector length may be greater than or equal to a threshold. In addition to or instead of this, the radio communication device may send a user equipment (UE) capability report to the network indicating that the radio communication device supports a certain number of CQI reports, in which case the number is a positive integer. Among a variety of other applications, the radio communication system may implement a codebook to further support CSI reporting.

[0030] Figure 2 shows a block diagram of an example of a wireless communication system 200 for transmitting and receiving wireless communication signals, such as OFDM / OFDMA signals, according to several embodiments of the present solution. The system 200 may include components and elements configured to support known or conventional operating features that do not need to be described in detail herein. In one exemplary embodiment, the system 200 may be used to communicate (e.g., transmit and receive) data symbols in a wireless communication environment such as the wireless communication environment 100 in Figure 1, as described above.

[0031] System 200 generally includes BS202 and UE204. BS202 includes a base station (BS) transceiver module 210, a BS antenna 212, a BS processor module 214, a BS memory module 216, and a network communication module 218, each module being coupled and interconnected to one another as needed via a data communication bus 220. UE204 includes a UE transceiver module 230, a UE antenna 232, a UE memory module 234, and a UE processor module 236, each module being coupled and interconnected to one another as needed via a data communication bus 240. BS202 communicates with UE204 via a communication channel 250, which can be any radio channel or other medium suitable for transmitting data as described herein.

[0032] System 200 may further include any number of modules other than those shown in Figure 2. Those skilled in the art will understand that various exemplary blocks, modules, circuits, and processing logic described in relation to the embodiments disclosed herein may be implemented in hardware, computer-readable software, firmware, or any practical combination thereof. To clearly demonstrate this compatibility and compatibility of hardware, firmware, and software, various exemplary components, blocks, modules, circuits, and steps are generally described in relation to their function. Whether such function is implemented as hardware, firmware, or software may depend on the specific application and the design constraints imposed on the overall system. Those familiar with the concepts described herein may implement such function in a manner suitable for each specific application, but such implementation decisions should not be construed as limiting the scope of this disclosure.

[0033] According to some embodiments, the UE transceiver 230 may be referred herein to as an uplink transceiver 230, which includes a radio frequency (RF) transmitter and an RF receiver, each of which is coupled to an antenna 232. Alternatively, a duplex switch (not shown) may couple the uplink transmitter or receiver to the uplink antenna in a time-duplex manner. Similarly, according to some embodiments, the BS transceiver 210 may be referred herein to as a “downlink” transceiver 210, which includes an RF transmitter and an RF receiver, each of which is coupled to an antenna 212. Alternatively, a downlink duplex switch may couple the downlink transmitter or receiver to the downlink antenna 212 in a time-duplex manner. The operation of the two transceiver modules 210 and 230 may be time-coordinated so that the downlink transmitter is coupled to the downlink antenna 212 and at the same time the uplink receiving circuit is coupled to the uplink antenna 232 to receive transmissions over the radio transmission link 250. In some embodiments, there is close-time synchronization with a minimum guard time between changes in duplex direction.

[0034] The UE transceiver 230 and BS transceiver 210 are configured to communicate via a radio data communication link 250 and to work with a appropriately configured RF antenna configuration 212 / 232 that can support specific radio communication protocols and modulation schemes. In some exemplary embodiments, the UE transceiver 210 and BS transceiver 210 are configured to support industry standards such as Long-Term Evolution (LTE), emerging 5G and 6G standards. However, it should be understood that this disclosure is not necessarily limited to specific standards and associated protocols in its application. Rather, the UE transceiver 230 and BS transceiver 210 may be configured to support alternative or additional radio data communication protocols, including future standards or variations thereof.

[0035] According to various embodiments, BS202 may be, for example, an evolved node B (eNB), a serving eNB, a target eNB, a femtostation, or a picostation. In some embodiments, UE204 may be various types of user devices such as mobile phones, smartphones, personal digital assistants (PDAs), tablets, laptop computers, and wearable computing devices. Processor modules 214 and 236 may be implemented or realized using general-purpose processors, associative memory, digital signal processors, application-specific integrated circuits, field-programmable gate arrays, any suitable programmable logic devices, discrete gate or transistor logic, discrete hardware components, or any combination thereof designed to perform the functions described herein. Thus, the processor may be realized as a microprocessor, controller, microcontroller, state machine, etc. The processor may also be implemented as a combination of computing devices, for example, a combination of a digital signal processor and a microprocessor, multiple microprocessors, one or more microprocessors combined with a digital signal processor core, or any other such configuration.

[0036] Furthermore, the methods described in relation to the embodiments disclosed herein may be implemented directly in hardware, firmware, software modules executed by processor modules 214 and 236, respectively, or any practical combination thereof. Memory modules 216 and 234 may be implemented as RAM memory, flash memory, ROM memory, EPROM memory, EEPROM memory, registers, hard disks, removable disks, CD-ROMs, 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, so 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 incorporated into their respective processor modules 210 and 230. In some embodiments, memory modules 216 and 234 may each include cache memory for storing temporary variables or other intermediate information during the execution of instructions to be executed by processor modules 210 and 230, respectively. Furthermore, memory modules 216 and 234 may each include non-volatile memory for storing instructions to be executed by processor modules 210 and 230, respectively.

[0037] The network communication module 218 generally corresponds to the hardware, software, firmware, processing logic, and / or other components of BS202 that enable bidirectional communication between BS transceiver 210 and other network components and communication nodes configured to communicate with BS202. For example, the network communication module 218 may be configured to support Internet or WiMAX traffic. In a typical deployment, but not limited to, the network communication module 218 provides an 802.3 Ethernet® interface so that BS transceiver 210 can communicate with conventional Ethernet®-based computer networks. Thus, the network communication 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 their inflections refer to a device, component, circuit, structure, machine, signal, etc., that is physically configured, programmed, formatted, and / or arranged to perform a specified operation or function.

[0038] Figure 3 shows exemplary mappings 300 for CSI Part 1 related to various configurations. Mapping 300 may outline the CQI mapping sequence in one exemplary embodiment of a CSI report for CSI Part 1. In some cases, a CSI report may include various indicators among other data. For example, a CSI report may consist of a rank indicator (RI), a precoding matrix indicator (PMI), and CQIs. In some cases, a CQI may be a type of CSI (e.g., a type).

[0039] In some embodiments, CQI can be made for various granularities. CQI can be associated with broadband or subband. For example, a higher-layer configuration (e.g., RRC, MAC-CE, DCI) may indicate a mapping in CQI. In some cases, a first CQI can be associated with broadband frequencies and a second CQI can be associated with subband frequencies (e.g., segments of the frequency band). Some radio communication systems have a CSI reporting window (W) in the slot. CSI ) may support one CQI and one CSI reporting instance in one subband. For example, one CSI reporting instance may include broadband CQI302 and subband differential CQI304 (in ascending order of subband number) and may be mapped to CSI Part 1 (for example, as in the case of mapping 300).

[0040] Between high-speed and medium-speed communications, Type II codebook improvements may include time-domain (TD) correlation information and / or DD information. For example, a radio communication system (including, e.g., BS102 and UE104) may support the use of domain information during the CSI reporting window in a slot for Type II codebook improvements from high-speed to medium-speed. The CSI reporting window may be divided into a first quantity part (e.g., X parts) associated with the same quantity of CQIs (e.g., X CQIs) so that the radio communication system may support X CQIs in one subband and one CSI reporting instance during the CSI reporting window.

[0041] Figure 4 shows exemplary CQI mappings 400 for CSI Part 1 in various configurations. Mapping 400 may outline the CQI mapping sequence in one exemplary embodiment of a CSI report for CSI Part 1. In some cases, a CSI report may include multiple sets of CQIs. Each set of CQIs may include a broadband CQI and at least one subband differential CQI associated with the broadband CQI.

[0042] In some cases, the mapping 400 may be configured according to a CQI mapping sequence. For example, a network (e.g., BS102) may have UE104 configured according to a CQI mapping sequence for mapping to CSI Part 1 in a CSI report, the network may be pre-configured according to a CQI mapping sequence, UE104 may be pre-configured according to a CQI mapping sequence, or any combination thereof. The mapping sequence may include, in this order, a broadband CQI 402 for a first set of CQIs, at least one subband differential CQI 404 for a first set of CQIs, a broadband CQI 406 for a second set of CQIs, and at least one subband differential CQI 408 for a second set of CQIs. In some embodiments, the first CQI set may include a broadband CQI402 and a subband differential CQI404, and the second CQI set may include a broadband CQI406 and a subband differential CQI408.

[0043] In some embodiments, the CQI mapping order may include a certain number of CQI sets. For example, the quantity may be represented by X, in which case the first CQI set is in the first order, the second CQI set is in the second order, and the Xth CQI set is in the last order. The Xth CQI set may include broadband CQI 410 and subband differential CQI 412. Any integer quantity of CQI sets may be between the second CQI set and the Xth CQI set. In some cases, one of the CQI sets may not be reported.

[0044] Figure 5 shows exemplary CQI mappings 500 for CSI Part 1 in various configurations. Mapping 500 may outline the CQI mapping sequence in one exemplary embodiment of a CSI report for CSI Part 1. In some cases, a CSI report may include multiple sets of CQIs. Each set of CQIs may include a broadband CQI and at least one subband differential CQI associated with the broadband CQI.

[0045] In some cases, the mapping 500 may be configured according to a CQI mapping sequence. For example, a network (e.g., BS102) may have UE104 configured according to a CQI mapping sequence for mapping to CSI Part 1 in a CSI report, the network may be pre-configured according to a CQI mapping sequence, UE104 may be pre-configured according to a CQI mapping sequence, or any combination thereof. The mapping sequence may include a broadband CQI for each set of CQIs and at least one subband differential CQI for each set of CQIs. The mapping 500 may include a broadband CQI 502 for a first set of CQIs, a broadband CQI 504 for a second set of CQIs, at least one subband differential CQI 508 for a first set of CQIs, and at least one subband differential CQI 510 for a second set of CQIs in this order. In some embodiments, the first CQI set may include a broadband CQI 502 and a subband differential CQI 508, and the second CQI set may include a broadband CQI 504 and a subband differential CQI 510.

[0046] In some embodiments, the CQI mapping order may include a certain number of CQI sets. For example, the quantity may be represented by X, where the first CQI set includes the first broadband CQI and subband CQI in order relative to other broadband CQIs and subband CQIs, respectively; the second CQI set includes the second broadband CQI and subband CQI in order relative to other broadband CQIs and subband CQIs, respectively; and the Xth CQI set includes the last broadband CQI and subband CQI in order relative to other broadband CQIs and subband CQIs, respectively. The Xth CQI set may include broadband CQI 506 and subband differential CQI 512. Any integer quantity of CQI sets may be between the second CQI set and the Xth CQI set. In some cases, one of the CQI sets may not be reported.

[0047] Figure 6 shows an example of CQI mapping to CSI Part 1 for various configurations. Mapping 600 may outline the CQI mapping sequence in one exemplary embodiment of a CSI report for CSI Part 1. In some cases, a CSI report may include multiple sets of CQIs. A first set of CQIs may include a broadband CQI 602 and at least one subband differential CQI 604 associated with the broadband CQI 602. Each of one or more second sets of CQIs may include at least one second subband differential CQI 606 associated with the broadband CQI 602. Thus, each set of subband differential CQIs may be associated with a broadband CQI 602 (e.g., a first set of broadband CQIs).

[0048] In some cases, the mapping 600 may be configured according to a CQI mapping sequence. For example, a network (e.g., BS102) may have UE104 configured according to a CQI mapping sequence for mapping to CSI Part 1 in a CSI report, the network may be pre-configured according to a CQI mapping sequence, UE104 may be pre-configured according to a CQI mapping sequence, or any combination thereof. The mapping 600 may include, in this order according to the mapping sequence, a broadband CQI 602 for a first set of CQIs, at least one first subband differential CQI 604 for the first set of CQIs, and at least one second subband differential CQI 606 for each of one or more second sets of CQIs.

[0049] In some embodiments, the CQI mapping order may include a certain number of CQI sets. For example, the quantity may be represented by X, in which case broadband CQI 602 is associated with each CQI set of the quantity of CQI sets. The Xth CQI set may include broadband CQI 602 and subband differential CQI 608 at the end of the mapping order 600. Any integer quantity of CQI sets may be between the second CQI set and the Xth CQI set. In some cases, one of the CQI sets may not be reported.

[0050] Figure 7 shows exemplary CQI mappings 700 for CSI Part 1 and CSI Part 2 in various configurations. Mapping 700 may outline the CQI mapping sequence in one exemplary embodiment of a CSI report for CSI Part 1 and CSI Part 2. In some cases, a CSI report may include multiple sets of CQIs. Each set of CQIs may include a broadband CQI and at least one subband differential CQI associated with the broadband CQI.

[0051] In some cases, the mapping 700 may be configured according to a CQI mapping sequence. For example, a network (e.g., BS102) may have UE104 configured according to a CQI mapping sequence for mapping to CSI Part 1 and CSI Part 2 in a CSI report, the network may be pre-configured according to a CQI mapping sequence, UE104 may be pre-configured according to a CQI mapping sequence, or any combination thereof. The mapping sequence may include a first part and a second part. The first part 702 is associated with CSI Part 1 and may include, in this order, a broadband CQI 706 for the first set of CQIs and at least one subband differential CQI 708 for the first set of CQIs. The second part 704 is associated with CSI Part 2 and may include, in this order, a broadband CQI 710 for the second CQI set, at least one subband differential CQI 712 for the second CQI set, a broadband CQI 714 for the third CQI set, and at least one subband differential CQI 716 for the third CQI set. In some embodiments, the first CQI set may include a broadband CQI 706 and a subband differential CQI 708, the second CQI set may include a broadband CQI 710 and a subband differential CQI 712, and the third CQI set may include a broadband CQI 714 and a subband differential CQI 716.

[0052] In some embodiments, the CQI mapping order may include a certain number of CQI sets. For example, the quantity may be represented by X, in which case the first CQI set is in the first order, the second CQI set is in the second order, and the Xth CQI set is in the last order (for example, the third CQI set in this example). Any integer quantity of a CQI set may be between the second CQI set and the Xth CQI set. In some cases, one of the CQI sets may not be reported.

[0053] Figure 8 shows exemplary CQI mappings 800 for CSI Part 1 and CSI Part 2 for various configurations. Mapping 800 may outline the CQI mapping sequence in one exemplary embodiment of a CSI report for CSI Part 1 and CSI Part 2. In some cases, a CSI report may include multiple sets of CQIs. Each set of CQIs may include a broadband CQI and at least one subband differential CQI associated with the broadband CQI.

[0054] In some cases, the mapping 800 may be configured according to a CQI mapping sequence. For example, a network (e.g., BS102) may have UE104 configured according to a CQI mapping sequence for mapping to CSI Part 1 in a CSI report, the network may be pre-configured according to a CQI mapping sequence, UE104 may be pre-configured according to a CQI mapping sequence, or any combination thereof. The mapping sequence may include a first part and a second part. The first part 802 is associated with CSI Part 1 and may include broadband CQIs for each of the CQI sets. For example, the first part may include broadband CQI 806 for the first CQI set and broadband CQI 808 for the second CQI set in this order. The second part 804 is associated with CSI Part 2 and may include at least one subband differential CQI for each of the CQI sets. For example, the second part may include, in this order, at least one subband differential CQI 812 for the first CQI set and at least one subband differential CQI 814 for the second CQI set. In some embodiments, the first CQI set may include a broadband CQI 806 and a subband differential CQI 812, and the second CQI set may include a broadband CQI 808 and a subband differential CQI 814.

[0055] In some embodiments, the CQI mapping order may include a certain number of CQI sets. For example, the quantity may be represented by X, where the first CQI set includes the first broadband CQI and subband CQI in order relative to other broadband CQIs and subband CQIs, respectively; the second CQI set includes the second broadband CQI and subband CQI in order relative to other broadband CQIs and subband CQIs, respectively; and the Xth CQI set includes the last broadband CQI and subband CQI in order relative to other broadband CQIs and subband CQIs, respectively. The Xth CQI set may include broadband CQI 810 and subband differential CQI 816. Any integer quantity of CQI sets may be between the second CQI set and the Xth CQI set. In some cases, one of the CQI sets may not be reported.

[0056] Figure 9 shows exemplary CQI mappings 900 for CSI Part 1 and CSI Part 2 relating to various configurations. Mappings 900 may outline the CQI mapping sequence in one exemplary embodiment of a CSI report for CSI Part 1 and CSI Part 2. In some cases, a CSI report may include multiple sets of CQIs. A first set of CQIs may include a broadband CQI 906 and at least one first subband differential CQI 908 associated with the broadband CQI 906. Each of one or more second sets of CQIs may include at least one second subband differential CQI 910 associated with the broadband CQI 906 in the first set of CQIs. Thus, each set of subband differential CQIs may be associated with a broadband CQI 906 (e.g., a first set of broadband CQIs).

[0057] In some cases, the mapping 900 may be configured according to a CQI mapping sequence. For example, a network (e.g., BS102) may have UE104 configured according to a CQI mapping sequence for mapping to CSI Part 1 in a CSI report, the network may be pre-configured according to a CQI mapping sequence, UE104 may be pre-configured according to a CQI mapping sequence, or any combination thereof. The mapping sequence may include a first part and a second part. The first part 902 is associated with CSI Part 1 and may include broadband CQI 906 for a first set of CQIs. The second part 904 is associated with CSI Part 2 and may include, according to the mapping sequence, at least one first subband differential CQI 908 for the first set of CQIs and at least one second subband differential CQI 910 for each of one or more second sets of CQIs.

[0058] In some embodiments, the CQI mapping order may include a certain number of CQI sets. For example, the quantity may be represented by X, in which case broadband CQI 906 is associated with each CQI set of the quantity. The Xth CQI set may include broadband CQI 906 and subband differential CQI 912 at the end of the mapping order 900. Any integer quantity of CQI sets may be between the second CQI set and the Xth CQI set. In some cases, one of the CQI sets may not be reported.

[0059] Figure 10 shows an example of indicator 1000 for the total amount of NZC totaled across all layers of CSI Part 1, relating to various configurations. In some cases, one CSI reporting instance for CSI Part 1 may also include indicator 1002 for NZC across all layers. Indicator 1002 represents the total amount (e.g., number) of NZC combined (e.g., totaled) across all layers (K NZ ) may be shown. In some embodiments, K NZThe value of can depend on the rank. For example, if the total (e.g., maximum) allowed rank is 1, then K NZ =K0, and if not, and the total acceptable rank is not 1, then K NZ = 2K0. In some embodiments, K0 can be calculated according to the following formula. [ka] Here, L represents the antenna port, p1 represents the antenna port number, N3 represents the precoding matrix, R represents the amount of the precoding matrix indicator (PMI) subband for each CQI subband, and β represents the amplitude scaling.

[0060] Figure 11 shows an example of indicator 1100 of the total amount of NZC summed across all layers and across all Qs for CSI Part 1, relating to several configurations. During high-speed to medium-speed communications, Type II codebook improvements may include additional parameters. For example, parameter Q may be used for time compression. In some cases, parameter Q may represent the amount of DD basis.

[0061] In some embodiments, indicator 1102 may represent the total amount of NZC in a single CSI report for CSI Part 1. For example, a wireless device (e.g., UE104) may combine (e.g., sum) the total amounts of NZC across all layers and all Qs and report indicator 1102 in CSI Part 1 for a single CSI report instance. Thus, a CSI report may include an indicator for CSI Part 1 for the total amount of NZC summed across multiple layers and multiple DD basis numbers, where NZC is associated with at least one PMI.

[0062] In a first exemplary embodiment, a wireless device (or another wireless node of a wireless communication system) can generate an indicator 1102 according to Equation 1, as described herein in connection with FIG. 10, where when the total (e.g., maximum) allowable rank is 1, the total number of NZCs is a value (e.g., K NZ =K0), and otherwise, when the total allowable rank is a number other than 1, the total number of NZCs is twice that value (e.g., K NZ =2K0). In a second exemplary embodiment, a wireless device can generate an indicator 1102 according to Equation 1, where when the total (e.g., maximum) allowable rank is 1, the total number of NZCs is a value multiplied by the DD radix (e.g., K NZ =K0*Q), and otherwise, when the total allowable rank is a number other than 1, the total number of NZCs is twice the number obtained by multiplying that value by the DD radix (e.g., K NZ =2K0*Q). In a third exemplary embodiment, a wireless device can generate an indicator 1102 according to the following equation.

Chemical Formula

[0063] FIG. 12 is a diagram illustrating an example of an indicator 1200 of the total amount of NZCs summed over all layers for CSI part 1 and for each Q for various configurations. During high to medium speed communication, type II codebook improvements may include additional parameters. For example, the parameter Q may be used for time compression. In some cases, the parameter Q may indicate an amount of the DD basis.

[0064] In some embodiments, indicator 1200 may include multiple displays. For example, a wireless device (e.g., UE104) may combine (e.g., sum) the total amount of NZC across all layers and per Q and report indicator 1200 in CSI Part 1 for one CSI reporting instance. Thus, the CSI report may include an indicator for CSI Part 1 of the total amount of NZC summed across multiple layers for each of the multiple DD basis numbers.

[0065] In a first exemplary embodiment, a wireless device (or other wireless node of a wireless communication system) can generate an indicator 1200 according to formula 1, as described herein in relation to Figure 10, where the total number of NZCs is a value for a plurality of DD basis numbers (e.g., K) when the total (e.g., maximum) allowable rank is 1. NZ If the total acceptable rank is not 1, the total number of NZCs is twice that value for multiple DD basis numbers (e.g., K NZ (=2K0). For example, indicator 1200 may contain one representation for each q. In some cases, the value q can start from an initial value (e.g., 0) and increase (e.g., increment) by an integer value (e.g., 1) for each value Q (e.g., for each DD basis). Referring to Figure 12, indicator 1200 may contain a first representation 1202 for the total number of NZCs summed across all layers for the first Q (e.g., q=0), a second representation 1204 for the total number of NZCs summed across all layers for the second Q (e.g., q=1), and a third representation 1206 for the total number of NZCs summed across all layers for the last Q (e.g., q=Q-1). Indicator 1200 may contain a number of representations equal to the amount of Q.

[0066] In a second exemplary embodiment, the wireless device can generate an indicator 1200 according to formula 1, where the total number of NZCs is the sum (for example, if the maximum allowable rank is 1), and the respective values ​​(for example, K) for each of the multiple DD basis numbers. (i) ) and [ka] Instead, if the total acceptable rank is a number other than 1, the total number of NZCs is twice the value for each of the multiple DD basis numbers. [ka] For example, indicator 1200 can include a representation for each q. In some cases, the value q can start from an initial value (e.g., 0) and increase (e.g., increment) by an integer value (e.g., 1) for each value Q (e.g., for each DD basis). Referring to Figure 12, indicator 1200 can include a first representation 1202 for the total number of NZCs summed across all layers for the first Q (e.g., q=0), a second representation 1204 for the total number of NZCs summed across all layers for the second Q (e.g., q=1), and a third representation 1206 for the total number of NZCs summed across all layers for the last Q (e.g., q=Q-1). Indicator 1200 can include a number of representations equal to the number of Qs.

[0067] Figure 13 shows an example of indicator 1300, which represents the total amount of NZC associated with one or more DD bases, summed across all layers for CSI Part 1 and / or CSI Part 2, for various configurations. During high-speed to medium-speed communications, Type II codebook improvements may include additional parameters. For example, parameter Q may be used for time compression. In some cases, parameter Q may indicate the amount of DD bases.

[0068] In some embodiments, indicator 1300 may include multiple displays. For example, a wireless device (e.g., UE104) may combine (e.g., sum) the total amount of NZC across all layers for a first part of Q and report indicator 1302 in CSI Part 1 (e.g., the first part of indicator 1300 associated with CSI Part 1) for one CSI reporting instance. Furthermore, the wireless device may combine the total amount of NZC across all layers for a second part of Q and report indicator 1304 in CSI Part 2 (e.g., the second part of indicator 1300 associated with CSI Part 2) for one CSI reporting instance. Thus, a CSI report may include, for CSI Part 1, a first indicator for the first total amount of NZC summed across multiple layers for a first DD basis number, and for CSI Part 2, a second indicator for the second total amount of NZC summed across multiple layers for a second DD basis number.

[0069] In a first exemplary embodiment, a wireless device (or other wireless node of a wireless communication system) can generate an indicator 1302 according to formula 1, as described herein in relation to Figure 10, where the first total number of NZCs is a value (e.g., K) if the total (e.g., maximum) allowable rank is 1. NZ =K0), and if not, the total acceptable rank is a number other than 1, then the first total number of NZC is twice that value (for example, K NZ The wireless device can generate indicator 1304 according to equation 1, where the second total number of NZC for each of the second DD basis numbers is its value (e.g., K NZ If not, and the total allowable rank is a number other than 1, then the second total number of NZC for each of the second DD base numbers is twice that value (for example, K NZ =2K0)

[0070] In some examples, indicator 1300 may contain one representation for each q. In some cases, the value q may start from an initial value (e.g., 0) and increase (e.g., increment) by an integer value (e.g., 1) for each value Q (e.g., for each DD basis). Referring to Figure 13, indicator 1302 may contain a first representation 1306 for the first total number of NZCs summed across all layers for the first Q (e.g., q=0). Indicator 1304 may contain a first representation 1308 for the second total number of NZCs summed across all layers for the second Q (e.g., q=1), and a third representation 1310 for the third total number of NZCs summed across all layers for the last Q (e.g., q=Q-1). Indicator 1304 may contain a representation equal to the amount of Q minus 1 (e.g., for representation 1306 contained in indicator 1302).

[0071] In a second exemplary embodiment, a wireless device (or another wireless node in a wireless communication system) can generate indicator 1302 according to the following formula: [ka] Here, β i It is constructed by higher-level layer parameters (e.g., i={0,1,…,Q-1}) and has a range of 0<β i <1. If the total (e.g., maximum) allowed rank is 1, then the total number of NZCs in the first place is the first value. [ka] And if not, and the total acceptable rank is a number other than 1, then the total number of NZC's first is twice the value of that first. [ka] The wireless device can generate indicator 1304 according to Equation 1, where the total (e.g., maximum) allowable rank is 1, the second total number of NZC for each of the second DD basis numbers is the respective second value [ka] If not, and the total allowable rank is a number other than 1, then the second total number of NZC for each of the second DD base numbers is twice the second value of each of them. [ka] That is the case.

[0072] In some examples, indicator 1300 can include a representation for each q. In some cases, the value q can start from an initial value (e.g., 0) and increase (e.g., increment) by an integer value (e.g., 1) for each value Q (e.g., for each DD basis). Referring to Figure 13, indicator 1302 can include a first representation 1306 for the first total number of NZCs summed across all layers for the first Q (e.g., q=0). Indicator 1304 can include a first representation 1308 for the second total number of NZCs summed across all layers for each second Q (e.g., q=1), and a third representation 1310 for the third total number of NZCs summed across all layers for each last Q (e.g., q=Q-1). Indicator 1304 can include a representation equal to the amount of Q minus 1 (e.g., for representation 1306 contained in indicator 1302).

[0073] FIG. 14A and FIG. 14B are flowchart diagrams illustrating examples of methods 1400-a and 1400-b for CSI report enhancement according to various configurations. In some cases, for priority formulation in an extended type II report for a given CSI report n, a plurality of reported elements may be associated with priority values. For example, the reported elements can include sub-band amplitudes, sub-band phases, and the positions of coefficients indexed by l, i, and f such that the priority value is represented as Pri(l,i,f). In some examples, the element having the (e.g., relatively) highest priority has the lowest associated priority value. For example, a frequency domain (FD) basis (e.g., priority value: FD-basis > SD-basis > layer) having a higher priority value than a spatial domain (SD) basis priority value higher than a layer priority value may have a lower priority than the SD basis and the layer (e.g., priority: FD-basis < SD-basis < layer).

[0074] In some examples, the priority value can be calculated by the following formula.

Chemical formula

[0075] At 1402, a wireless communication device may receive a plurality of reference signals and configuration parameters from a network. In some implementations, the reference signal may be one or more CSI-RSs. In some cases, the configuration parameter may be a configuration for enabling two or more CQIs in a CSI report. For example, the network may transmit the configuration parameter via a radio resource control (RRC) message, a media access control control element (MAC-CE) message, a downlink control information (DCI) message, or any combination thereof, among other control messages and / or configuration messages. At 1404, the wireless communication device can determine a CSI report based on the plurality of reference signals and configuration parameters, where the CSI report includes a CSI part 1 and a CSI part 2.

[0076] At 1406, the CSI report may include coefficient information including at least one coefficient associated with at least one PMI, and each of the at least one coefficient is associated with a priority value. For example, in a first exemplary embodiment, at 1408-a, the priority value is obtained according to a first priority value of a layer that is greater than a second priority value of an SD base, which is greater than a third priority value of an FD base, which is greater than a fourth priority value of a DD base (e.g., DD-base > FD-base > SD-base > layer). Thus, the priority of the DD base may be lower than that in the order of the FD base, the SD base, and the layer (e.g., DD-base < FD-base < SD-base < layer). In some examples, the priority value can be calculated (e.g., obtained) by the following formula.

Chemical formula

[0077] In a second exemplary embodiment, at 1408-b, a priority value is obtained according to a first priority value of a layer that is greater than a second priority value of an SD base that is greater than a fourth priority value of a DD base that is greater than a third priority value of an FD base (e.g., FD-base > DD-base > SD-base > layer). Thus, the priority of the FD base may be lower in that order than the DD base, the SD base, and the layer (e.g., (e.g., FD-base < DD-base < SD-base < layer). In some examples, the priority value can be calculated (e.g., obtained) by the following equations [Chemical Formula] and Equation 7. At 1410, the wireless communication device may report a CSI report including coefficient information to the network.

[0078] FIG. 15 is a flowchart diagram showing an example of a method 1500 for CSI report enhancement according to various configurations. In some cases, in the case of the DD base, the QDD base selected for the DD base set may be indicated by a combination coefficient.

[0079] At 1502, the wireless communication device may receive a plurality of reference signals and configuration parameters from the network. In some implementations, the reference signal may be one or more CSI-RSs. In some cases, the configuration parameter may be a configuration for enabling two or more CQIs in the CSI report. For example, the network can transmit the configuration parameter via an RRC message, a MAC-CE message, a DCI message, or any combination thereof, among other control messages and / or configuration messages. At 1504, the wireless communication device can determine a CSI report based on the plurality of reference signals and configuration parameters, where the CSI report includes CSI part 1 and CSI part 2.

[0080] In 1506, the CSI report may include a representation of the number of DD bases associated with at least one PMI. In 1508, the number of DD bases may be represented using bit widths determined based on the number of DD bases. For example, the bit width of a selected QDD base is the first number [ka] or the second number [ka] This is possible. In some cases, the number of DD bases (e.g., selected QDD bases) (e.g., information) is mapped to Group 0 of CSI Part 2, Group 1 of CSI Part 2, or Group 2 of CSI Part 2 for a single reporting instance. In some embodiments, a first DD base can be selected (e.g., by default). In 1510, a wireless communication device may report a CSI report to the network that includes the number of DD bases.

[0081] Figure 16 is a flowchart illustrating an example of Method 1600 for enhancing CSI reporting, relating to various configurations. In some cases, Method 1600 may include a configuration to ensure that the CSI report includes the strongest coefficient indicator (SCI). For example, for each layer, each Q, or both, the SCI may span a selected SD basis, FD basis, DD basis, or any combination thereof.

[0082] In 1602, a wireless communication device may receive multiple reference signals and configuration parameters from a network. In some implementations, the reference signals may be one or more CSI-RS signals. In some cases, the configuration parameters may be configurations for enabling two or more CQIs in a CSI report. For example, the network may transmit the configuration parameters via RRC messages, MAC-CE messages, DCI messages, or any combination thereof, among other control messages and / or configuration messages. In 1604, a wireless communication device may determine a CSI report based on multiple reference signals and configuration parameters, where the CSI report includes CSI Part 1 and CSI Part 2.

[0083] In 1606, a CSI report may include an SCI associated with at least one PMI. In some embodiments, the location of an SCI may be mapped for a single CSI report instance to group 0 of CSI Part 2, group 0 of CSI Part 2 for a first DD basis, group 1 of CSI Part 2 for a second DD basis, or any combination thereof. The bit width of an SCI may be determined for rank 1 based on the total number of NZCs summed across multiple layers and multiple DD basis numbers, and for ranks 2, 3, and 4 based on a certain value, or for ranks 1, 2, 3, and 4 based on that value. In some embodiments, the value is determined according to the SD basis number. For example, for a rank equal to 1, the bit width of the location occupied by the SCI is [ka] It may be a bit, and for ranks equal to 2, 3, or 4, the bit width of the position occupied by the SCI is [ka] It may be a bit. In some cases, for ranks equal to 1, 2, 3, or 4, the bit width of the position occupied by SCI is [ka] It may also be bits. In 1608, a wireless communication device may report a CSI report, including SCI, to the network.

[0084] Figure 17 is a flowchart illustrating an example of Method 1700 for enhancing CSI reporting, relating to various configurations. In some cases, Method 1700 may include a configuration for CSI reporting that includes the highest priority bit for the position of a coefficient associated with at least one PMI.

[0085] In 1702, a wireless communication device may receive multiple reference signals and configuration parameters from a network. In some implementations, the reference signals may be one or more CSI-RS signals. In some cases, the configuration parameters may be configurations for enabling two or more CQIs in a CSI report. For example, the network may transmit the configuration parameters via RRC messages, MAC-CE messages, DCI messages, or any combination thereof, among other control messages and / or configuration messages. In 1704, a wireless communication device may determine a CSI report based on multiple reference signals and configuration parameters, where the CSI report includes CSI Part 1 and CSI Part 2.

[0086] In 1706, the highest priority bit of a coefficient position is determined based on a priority function and can be mapped in descending order to the CSI Part 2 group. In some embodiments, the priority function may be determined according to the index of the DD basis, FD basis, SD basis, and / or layer index. In the first exemplary embodiment, the highest priority bit of a coefficient position is [ka] It may also be given by, where {i} is given in descending order of priority based on the function Pri(l,i,f). 1,7,l ;l=1,…,v}.

[0087] In a second exemplary embodiment, the highest priority bit may be further determined based on the DD basis number and mapped in descending order to group 1 of CSI Part 2. The CSI report may further include the lowest priority bit, which is determined based on a priority function and mapped in descending order to group 2 of CSI Part 2. For example, the highest priority bit of the coefficient position may, for one CSI report instance, be in descending order of priority based on the function Pri(l,i,f,q) [ka] The lowest priority bit of the coefficient position is given by and can be mapped to Group 1 of CSI Part 2. For a single CSI reporting instance, in descending order of priority based on the function Pri(l,i,f,q) [ka] This is given by and can be mapped to Group 2 of CSI Part 2. In some embodiments, referring back to Equation 2 in Figure 11, if the total (e.g., maximum) allowable rank is 1, then the total number of NZCs is a certain value (e.g., K NZ If the total acceptable rank is not 1, the total number of NZCs is twice that value (for example, K NZ =2K0)

[0088] In a third exemplary embodiment, the highest priority bit may be further determined for each DD basis and mapped in descending order to group 1 of CSI Part 2. The CSI report may further include a lowest priority bit, which is determined based on a priority function and mapped in descending order to group 2 of CSI Part 2. For example, the highest priority bit of a coefficient position may, for a single CSI report instance, be in descending order of priority based on the function Pri(l,i,f,q) [ka] The lowest priority bit of the coefficient position is given by and can be mapped to Group 1 of CSI Part 2. For a single CSI reporting instance, in descending order of priority based on the function Pri(l,i,f,q) [ka] This is given by and can be mapped to Group 2 of CSI Part 2. In some embodiments, referring back to Equation 3 in Figure 13, where q=i and q={0,1,…,Q-1}, and the total number of NZCs is a certain value if the total (e.g., maximum) allowable rank is 1. [ka] If not, and the total acceptable rank is a number other than 1, the total number of NZCs is twice that value. [ka] That is the case.

[0089] In a fourth exemplary embodiment, if CSI Part 2 includes multiple groups (e.g., more groups in CSI Part 2 for a single CSI reporting instance), the highest priority bit may be further determined for each DD basis number and mapped in descending order to one of the multiple groups in CSI Part 2. The CSI report may further include a lowest priority bit, which is determined based on a priority function and mapped in descending order to the multiple groups in CSI Part 2. For example, the highest priority bit of the coefficient position for a single CSI reporting instance may be, in descending order of priority based on the function Pri(l,i,f,q) [ka] The lowest priority bit of the coefficient position is given by and can be mapped to the group (q+1)*2-1 of CSI Part 2. [ka] This is given by and can be mapped to the group (q+1)*2 of CSI Part 2. In some embodiments, referring back to Equation 3 in Figure 13, where q=i and q={0,1,…,Q-1}, and the total (e.g., maximum) allowed rank is 1, the total number of NZCs is a certain value [ka] If not, and the total acceptable rank is a number other than 1, the total number of NZCs is twice that value. [ka] That is the case.

[0090] In some embodiments, the CSI report may be configured such that there are two additional groups in CSI Part 2 for one CSI report instance, such that there are five groups in CSI Part 2 for one CSI report instance. For example, in a fifth exemplary embodiment, the highest priority bit may be further determined for each DD basis number. For the first DD basis number, the highest priority bit for each DD basis number may be mapped in descending order to Group 1 of CSI Part 2. The CSI report may further include a lowest priority bit determined based on a priority function and mapped in descending order to Group 2 of CSI Part 2. For the second DD basis number, the highest priority bit for each DD basis number may be mapped in descending order to Group 3 of CSI Part 2. The CSI report may further include a lowest priority bit determined based on a priority function and mapped in descending order to Group 4 of CSI Part 2. For example, for q=0, the highest priority bit of the coefficient position may be, for one CSI report instance, in descending order of priority based on the function Pri(l,i,f,q) [ka] The lowest priority bit of the NZC position is given by and can be mapped to Group 1 of CSI Part 2. For a single CSI reporting instance, the lowest priority bit is given by the function Pri(l,i,f,q) in descending order of priority. [ka] This is given by and can be mapped to Group 2 of CSI Part 2. For q > 0, the highest priority bit of the coefficient position is, for a single CSI reporting instance, in descending order of priority based on the function Pri(l,i,f,q) [ka] The lowest priority bit of the coefficient position is given by and can be mapped to group 3 of CSI Part 2. For a single CSI reporting instance, in descending order of priority based on the function Pri(l,i,f,q) [ka] This is given by and can be mapped to Group 4 of CSI Part 2. In some embodiments, referring back to Equation 3 in Figure 13, where q=i and q={0,1,…,Q-1}, and the total number of NZCs is a certain value if the sum (e.g., maximum) allowable rank is 1. [ka] If not, and the total acceptable rank is a number other than 1, the total number of NZCs is twice that value. [ka] Therefore, in 1708, a wireless communication device may report a CSI report to the network that includes the highest priority bit.

[0091] While various configurations of this solution have been described above, it should be understood that these are presented only as examples and not as limitations. Similarly, various figures may depict exemplary architectures or configurations provided to enable those skilled in the art to understand the exemplary features and functions of this solution. However, as such those skilled in the art will see, the solution is not limited to the exemplary architectures or configurations shown and can be implemented using various alternative architectures and configurations. Furthermore, as will be understood by those skilled in the art, one or more features of some configurations can be combined with one or more features of other configurations described herein. Therefore, the breadth and scope of this disclosure should not be limited by any of the exemplary configurations described above.

[0092] Furthermore, it should be understood that any reference to elements in this specification using designations such as "first," "second," etc., does not generally limit the quantity or order of those elements. Rather, these designations can be used in this specification as a convenient means of distinguishing two or more elements or examples of elements. Thus, references to first and second elements do not mean that only two elements can be used, or that the first element must precede the second element in any way.

[0093] Furthermore, those skilled in the art will understand that information and signals can be represented using any of the various different techniques and methods. For example, the data, instructions, commands, information, signals, bits, and symbols that may be mentioned in the above description can be represented by voltage, electric current, electromagnetic waves, magnetic fields or magnetic particles, optical fields or optical particles, or any combination thereof.

[0094] Furthermore, as will be apparent to those skilled in the art, any of the various exemplary logic blocks, modules, processors, means, circuits, methods, and functions described in relation to the embodiments disclosed herein can be implemented by electronic hardware (e.g., digital implementation, analog implementation, or a combination of both), firmware, various forms of programs or design code incorporating instructions (which may be referred to herein as “software” or “software modules” for convenience), or any combination of these technologies. To clearly demonstrate this compatibility of hardware, firmware, and software, various exemplary components, blocks, modules, circuits, and steps have been generally described in relation to their functions. Whether such functionality is implemented as hardware, firmware, or software, or as a combination of these technologies, depends on the specific application and the design constraints imposed on the overall system. Those skilled in the art can implement the described functions in various ways for their respective specific applications, but such implementation decisions do not deviate from the scope of this disclosure.

[0095] Furthermore, those skilled in the art will understand that the various exemplary logic blocks, modules, devices, components, and circuits described herein may be implemented in or performed within an integrated circuit (IC) which may 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 may further include antennas and / or transceivers for communicating with various components within a network or device. The general-purpose processor may be a microprocessor, but alternatively, the processor may be any conventional processor, controller, or state machine. The processor may also be implemented as a combination of computing devices, e.g., a combination of a DSP and a microprocessor, multiple microprocessors, one or more microprocessors combined with a DSP core, or any other suitable configuration for performing the functions described herein.

[0096] When implemented in software, the functionality can be stored as one or more instructions or code on a computer-readable medium. Thus, steps of the methods or algorithms disclosed herein can be implemented as software stored on a computer-readable medium. The computer-readable medium includes both computer storage media and communication media, including any medium that can enable the transfer of computer programs or code from one location to another. The storage medium can be any available medium that can be accessed by a computer. Such computer-readable media, but not limited to examples, may 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 can be accessed by a computer.

[0097] As used herein, the term “module” refers to software, firmware, hardware, and any combination thereof for performing the relevant functions described herein. Furthermore, for illustrative purposes, various modules are described as individual modules. However, as will be apparent to those skilled in the art, two or more modules may be combined to form a single module that performs the relevant functions relating to the configuration of this solution.

[0098] Furthermore, the configuration of this solution may utilize memory or other storage devices, as well as communication components. For clarity, it can be understood that the above description has described the configuration of this solution with reference to different functional units and processors. However, it is clear that any appropriate allocation of functions between different functional units, processing logic elements, or domains may be used without impairing the solution. For example, functionality exemplified as being performed by separate processing logic elements or controllers may be performed by the same processing logic element or controller. Therefore, references to specific functional units are not intended to indicate a strict logical or physical structure or organization, but merely to refer to appropriate means for providing the described functionality.

[0099] Various modifications to the embodiments described herein will be readily apparent to those skilled in the art, and the general principles set forth herein are applicable to other embodiments without departing from the scope of this disclosure. Therefore, this disclosure is not intended to be limited to the embodiments described herein, but should be given the broadest scope consistent with the novel features and principles disclosed herein, as described in the following claims.

Claims

1. A method of wireless communication, A wireless communication device receives multiple reference signals and configuration parameters from the network, Determining a Channel State Information (CSI) report based on the plurality of reference signals and the configuration parameters, wherein the CSI report comprises CSI Part 1 and CSI Part 2, the CSI report comprises a plurality of Channel Quality Indicator (CQI) sets, each of the plurality of CQI sets comprises a broadband CQI and at least one subband differential CQI associated with the broadband CQI, the CSI report comprises, for CSI Part 1, an indicator for the total number of non-zero coefficients summed across a plurality of layers and a plurality of Doppler domain basis numbers, the non-zero coefficients associated with at least one precoding matrix indicator (PMI), The wireless communication device reports the CSI report to the network. Methods that include...

2. The CQI mapping order in the aforementioned CSI report is: To map to the CSI part 1, the broadband CQI for the first set of the plurality of CQI sets and the at least one subband differential CQI for the first set of CQI sets are included in this order. The method according to claim 1, comprising, in order, the broadband CQI for a second set of the plurality of CQI sets and the at least one subband differential CQI for the second set of CQI sets, for mapping to the CSI Part 2.

3. The configuration parameter is configured to enable two or more channel quality indicators (CQIs) in the CSI report, or The aforementioned multiple reference signals are aperiodic or semi-permanent. The method according to claim 1, wherein at least one of the following:

4. A method of wireless communication, A wireless communication device receives multiple reference signals and configuration parameters from the network, Determining a channel status information (CSI) report based on the plurality of reference signals and the configuration parameters, wherein the CSI report includes CSI Part 1 and CSI Part 2. The wireless communication device reports the CSI report to the network, The wireless communication device transmits a user equipment (UE) capability report to the network indicating that the wireless communication device supports a number of channel quality indicator (CQI) reports, wherein the number is a positive integer. Methods that include...

5. When the maximum allowable rank is 1, the total number of non-zero coefficients is a certain value. The method according to claim 1, wherein when the maximum allowable rank is a number other than 1, the total number of non-zero coefficients is twice the value.

6. When the maximum allowable rank is 1, the total number of non-zero coefficients is a certain value. The method according to claim 1, wherein when the maximum allowable rank is a number other than 1, the total number of non-zero coefficients is twice the value, and the value is determined based on the Doppler domain basis number.

7. The CSI report includes the strongest coefficient indicator (SCI) across multiple spatial domain bases, frequency domain bases, and Doppler domain bases, and the SCI is associated with at least one precoding matrix indicator (PMI). The location of the SCI is mapped to group 0 of the CSI part 2, The bit width of the aforementioned SCI is For rank 1, the bit width is determined based on the total number of non-zero coefficients summed across multiple layers and multiple Doppler domain basis numbers; and for ranks 2, 3, and 4, the bit width is determined based on a certain value. The method according to claim 1, including the method described in claim 1.

8. The method according to claim 7, wherein the value is determined according to the spatial domain basis number.

9. The method according to claim 1, wherein the CSI report includes a highest priority bit for the position of a coefficient determined based on a priority function, the highest priority bit is mapped in descending order to groups of the CSI Part 2, and the position of the coefficient is associated with at least one precoding matrix indicator (PMI).

10. The method according to claim 9, wherein the priority function is determined according to the indices and layer indices of the DD base, FD base, and SD base.

11. The highest priority bit is determined based on the Doppler domain basis number, The highest priority bit, determined based on the priority function, is mapped in descending order to group 1 of CSI part 2. The method according to claim 9, wherein the CSI report includes a lowest priority bit determined based on the priority function, the lowest priority bit is mapped in descending order to group 2 of the CSI part 2.

12. A method of wireless communication, The network transmits multiple reference signals and configuration parameters to wireless communication devices. The network receives channel status information (CSI) from the wireless communication device, the CSI report comprises CSI Part 1 and CSI Part 2, the CSI report comprises a set of multiple channel quality indicators (CQI), each of the multiple CQI sets comprises a broadband CQI and at least one subband differential CQI associated with the broadband CQI, the CSI report comprises, for CSI Part 1, an indicator for the total number of non-zero coefficients summed across multiple layers and multiple Doppler domain basis numbers, the non-zero coefficients associated with at least one precoding matrix indicator (PMI). Methods that include...

13. Network node, The network node comprises at least one processor, The aforementioned at least one processor is Transmitting multiple reference signals and configuration parameters to a wireless communication device via a transceiver, Receiving channel status information (CSI) from the wireless communication device via the transceiver, wherein the CSI report includes CSI Part 1 and CSI Part 2, the CSI report includes a set of multiple channel quality indicators (CQI), each of the multiple CQI sets includes a broadband CQI and at least one subband differential CQI associated with the broadband CQI, the CSI report includes, for CSI Part 1, an indicator for the total number of non-zero coefficients summed across multiple layers and multiple Doppler domain basis numbers, the non-zero coefficients associated with at least one precoding matrix indicator (PMI). A network node configured to perform this task.

14. A wireless communication device, The wireless communication device comprises at least one processor, The aforementioned at least one processor is Receiving multiple reference signals and configuration parameters from the network via a transceiver, Determining a Channel State Information (CSI) report based on the plurality of reference signals and the configuration parameters, wherein the CSI report comprises CSI Part 1 and CSI Part 2, the CSI report comprises a plurality of Channel Quality Indicator (CQI) sets, each of the plurality of CQI sets comprises a broadband CQI and at least one subband differential CQI associated with the broadband CQI, the CSI report comprises, for CSI Part 1, an indicator for the total number of non-zero coefficients summed across a plurality of layers and a plurality of Doppler domain basis numbers, the non-zero coefficients associated with at least one precoding matrix indicator (PMI), The CSI report is reported to the network via the transceiver. A wireless communication device configured to perform the following actions.

15. The CQI mapping order in the aforementioned CSI report is: To map to the CSI part 1, the broadband CQI for the first set of the plurality of CQI sets and the at least one subband differential CQI for the first set of CQI sets are included in this order. The wireless communication device according to claim 14, comprising, in this order, the broadband CQI for a second set of the plurality of CQI sets and the at least one subband differential CQI for the second set of CQI sets, for mapping to the CSI Part 2.

16. The configuration parameter is configured to enable two or more channel quality indicators (CQIs) in the CSI report, or The aforementioned multiple reference signals are aperiodic or semi-permanent. The wireless communication device according to claim 14, which is at least one of the following.

17. A wireless communication device, The wireless communication device comprises at least one processor, The aforementioned at least one processor is Receiving multiple reference signals and configuration parameters from the network via a transceiver, Determining a channel status information (CSI) report based on the plurality of reference signals and the configuration parameters, wherein the CSI report includes CSI Part 1 and CSI Part 2. The CSI report is reported to the network via the transceiver, Transmitting a User Equipment (UE) capability report to the network via the transmitter, indicating that the wireless communication device supports a number of Channel Quality Indicator (CQI) reports, wherein the number is a positive integer. A wireless communication device configured to perform the following actions.

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