Method and apparatus for saving network energy by turning off transmit chains - Patents.com

By classifying UEs and applying coverage extension techniques, the method optimizes energy savings in MIMO systems by dynamically managing transmit chains, addressing the issue of suboptimal energy savings and UE performance in conventional methods.

JP7828479B2Active Publication Date: 2026-03-11RAKUTEN MOBILE INC +1
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2022-11-23
Publication Date
2026-03-11

AI Technical Summary

Technical Problem

Conventional methods of turning off transmit chains in MIMO systems for energy savings lack coordination with user equipment (UE), leading to suboptimal energy savings and significant impact on UE performance, particularly affecting UEs most likely to experience power loss.

Method used

A method involving a base station that transmits probing messages to UEs to collect CSI reports, classifies UEs into groups based on their performance with reduced transmit chains, and applies coverage extension techniques to maintain acceptable communication, allowing dynamic on-off switching of transmit chains.

Benefits of technology

Enhances energy savings in communication networks by optimizing UE performance through targeted chain deactivation, ensuring minimal disruption and maintaining communication quality for affected UEs.

✦ Generated by Eureka AI based on patent content.

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Abstract

The method includes transmitting to the UE a first set of one or more probing messages, the first set of one or more probing messages including a set of reference signals. The method includes receiving from a group of UEs a first CSI report including first channel state information (CSI) derived from measurements of the set of reference signals in response to the first one or more probing messages. The method includes transmitting to the UE a second set of one or more probing messages, the second set of one or more probing messages including a subset of the reference signals. The method further includes receiving a second CSI report including a second CSI derived from measurements of the subset of reference signals in response to the second set of one or more probing messages.
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Description

[Technical Field]

[0001] CROSS-REFERENCE TO RELATED APPLICATIONS This application is based on and claims priority to U.S. Patent Application No. 63 / 396,457, filed August 9, 2022, the disclosure of which is incorporated herein by reference in its entirety.

[0002] The present disclosure relates generally to communication systems, and more particularly to a method and apparatus for saving energy in a network by turning off transmit chains. [Background technology]

[0003] In a conventional multiple-input multiple-output (MIMO) system, multiple ports (e.g., channel state information reference signal (CSI-RS) ports) or data streams may be mapped to multiple transmit radio distribution units (TXRUs). This operation may be called port virtualization and may be considered digital precoding. The output of the TXRU may then be mapped to an antenna unit in the analog domain via TXRU virtualization. The output of the TXRU may be mapped to a set of co-polarized antenna elements via an analog phase shifter or variable gain amplifier. The terms transmit chain and TXRU may be used interchangeably. The TXRU may include power amplifiers, filters, digital-to-analog converters, etc. These components consume a large portion of the power in a gNB, so turning off the TXRU can be used to save energy in the network.

[0004] Turning off transmit antenna chains or antenna elements may be implemented by gNB or network implementations, and turning off transmit chains reduces the transmission energy from the base station. However, because turning off transmit chains is performed without coordination with the UE, energy savings may be limited or the impact on UE performance may be significant. In particular, the lack of coordination with the UE makes it impossible to ensure that UEs most likely to be affected by received power loss can maintain acceptable communication performance. Additionally, the inability to dynamically turn base station components on and off (connect / disconnect) results in suboptimal energy savings relative to performance loss.

[0005] Improvements are presented herein that may also be applicable to other multi-access technologies and telecommunications standards that use these technologies. Summary of the Invention [Problem to be solved by the invention]

[0006] The following presents a simplified summary of one or more embodiments of the present disclosure in order to provide a basic understanding of such embodiments. This summary is not an extensive overview of all possible embodiments, and is not intended to identify key or critical elements of all embodiments or to delineate the scope of any or all embodiments. Its sole purpose is to present some concepts of one or more embodiments of the present disclosure in a simplified form as a prelude to the more detailed description that is presented later.

[0007] SUMMARY OF THE INVENTION A method, apparatus, and non-transitory computer-readable medium for saving energy in a network by turning off transmit chains is disclosed by the present disclosure. [Means for solving the problem]

[0008] According to an example embodiment, a method executed by at least one processor of a base station includes, in a first state, transmitting a first set of one or more probing messages to a UE, where the first set of one or more probing messages includes a set of reference signals. 、1 more than one probing message The first set of In response to the first CSI report, the first CSI report includes first channel state information (CSI) derived from measurements of the set of reference signals. The method further includes, in a second state, transmitting a second set of one or more probing messages to the UE, where the second set of one or more probing messages includes the subset of reference signals. The method further includes receiving a second CSI report in response to the second set of one or more probing messages, the second CSI report including second CSI derived from measurements of the subset of reference signals.

[0009] According to an example embodiment, an apparatus comprises at least one memory configured to store computer program code and at least one processor configured to access the at least one memory and operate as instructed by the computer program code, the computer program code including first transmission code configured to cause at least one of the at least one processor to, in a first state, transmit a first set of one or more probing messages to a UE, where the first set of one or more probing messages includes a set of reference signals. 、1 more than one probing message The first set ofThe computer program code includes first receiving code configured to cause at least one of the at least one processor to receive, in a second state, a first channel state information (CSI) report from the UE including first CSI derived from measurements of the set of reference signals. The computer program code includes second transmitting code configured to cause at least one of the at least one processor to transmit, in a second state, a second set of one or more probing messages to the UE, where the second set of one or more probing messages includes a subset of the reference signals. The computer program code includes second receiving code configured to cause at least one of the at least one processor to second receive, in response to the second set of one or more probing messages, a second CSI report including second CSI derived from measurements of the subset of the reference signals.

[0010] According to an example embodiment, a non-transitory computer-readable medium storing instructions that, when executed by a processor in a base station, cause the processor to perform a method, the method including, in a first state, transmitting a first set of one or more probing messages to a UE, wherein the first set of one or more probing messages includes a set of reference signals. 、1 more than one probing message The first set of receiving a first channel state information (CSI) report from the UE in response to the first CSI report, where the first CSI report includes first CSI derived from measurements of a set of reference signals. The method further includes transmitting a second set of one or more probing messages to the UE in a second state, where the second set of one or more probing messages includes a subset of the reference signals. The method further includes receiving a second CSI report in response to the second set of one or more probing messages, where the second CSI report includes second CSI derived from measurements of the subset of reference signals.

[0011] Additional embodiments are set forth in the description that follows, and in part will be apparent from the description and / or may be learned by practice of presented embodiments of the present disclosure.

[0012] These and other aspects, features, and modes of embodiments of the present disclosure will become apparent from the following description taken in conjunction with the accompanying drawings. [Brief explanation of the drawings]

[0013] [Figure 1] FIG. 1 is a diagram of an exemplary network device according to various embodiments of the present disclosure.

[0014] [Figure 2] 1 is a schematic diagram of an exemplary wireless communication system in accordance with various embodiments of the present disclosure.

[0015] [Figure 3] FIG. 10 is an exemplary timeline diagram illustrating a normal state and a time skip window, according to various embodiments of the present disclosure.

[0016] [Figure 4] 1 is an exemplary timeline diagram illustrating a time skip window in accordance with various embodiments of the present disclosure.

[0017] [Figure 5] 10A-10C are exemplary timeline diagrams illustrating non-periodic activation of energy saving states in accordance with various embodiments of the present disclosure.

[0018] [Figure 6] 1 is an exemplary flow chart of one embodiment of a process for performing energy conservation in a network by turning off transmit chains.

[0019] [Figure 7] 10 is an exemplary flowchart of one embodiment of a process for probing UEs. DETAILED DESCRIPTION OF THE INVENTION

[0020] The following detailed description of the exemplary embodiments refers to the accompanying drawings, in which the same reference numbers in different drawings may identify the same or similar elements.

[0021] The foregoing disclosure provides illustration and description, but is not intended to be exhaustive or to limit implementations to the precise form disclosed. Modifications and variations are possible in light of the above disclosure or may be acquired from practicing implementations. Furthermore, one or more features or components of one embodiment may be incorporated into or combined with another embodiment (or one or more features of another embodiment). Additionally, in the flowcharts and descriptions of operations provided below, it is understood that one or more operations may be omitted, one or more operations may be added, one or more operations may be performed (at least partially) concurrently, and the order of one or more operations may be permuted.

[0022] It will be apparent that the systems and / or methods described herein may be implemented in various forms of hardware, firmware, or combinations of hardware and software. The actual specialized control hardware or software code used to implement these systems and / or methods is not intended to limit the implementation. Thus, the operation and behavior of the systems and / or methods are described herein without reference to specific software code, and it will be understood that software and hardware can be designed to implement the systems and / or methods based on the description herein.

[0023] Although particular combinations of features are recited in the claims and / or disclosed herein, these combinations are not intended to limit the disclosure of possible implementations. Indeed, many of these features may be combined in ways not specifically recited in the claims and / or disclosed herein. Although each dependent claim listed below may depend directly on only one claim, the disclosure of possible implementations includes each dependent claim in combination with all other claims in the claim set.

[0024] No element, act, or instruction used herein should be construed as critical or required unless explicitly described as such. Also, as used herein, the articles "a" and "an" are intended to include one or more items and may be used interchangeably with "one or more." Where only one item is intended, the term "one" or similar phrases are used. Also, as used herein, terms such as "has," "have," "having," "include," and "including" are intended to be open-ended terms. Furthermore, the phrase "based on" is intended to mean "based at least in part on," unless specifically stated otherwise. Furthermore, phrases such as "at least one of [A] and [B]" or "at least one of [A] or [B]" should be understood to include A only, B only, or both A and B.

[0025] Throughout this specification, references to "one embodiment," "an embodiment," or similar language mean that a particular feature, structure, or characteristic described in connection with the illustrated embodiment is included in at least one embodiment of the solution. Thus, throughout this specification, the phrases "in one embodiment," "in an embodiment," and similar language may, but do not necessarily, all refer to the same embodiment.

[0026] Furthermore, the described features, advantages, and characteristics of the present disclosure may be combined in any suitable manner in one or more embodiments. Those skilled in the art will recognize in light of the description herein that the present disclosure can be practiced without one or more of the specific features or advantages of a particular embodiment. In other instances, additional features and advantages may be recognized in certain embodiments that may not be present in all embodiments of the present disclosure.

[0027] Embodiments of the present disclosure relate to performing network energy conservation by turning off transmit chains. In some embodiments, a gNB may be capable of entering one of various energy-saving states at a given time (e.g., a normal state and an energy-saving state in which multiple transmit chains are turned off) and dynamically indicating the current and future states to UEs. In some embodiments, the gNB may collect feedback from the UEs and, based on the feedback, classify the UEs into one of at least two groups: (1) UEs that can maintain acceptable performance when some transmit chains are turned off, and (2) UEs that cannot maintain acceptable performance when some transmit chains are turned off. UEs in the second group may be configured with coverage extension techniques. The gNB may dynamically turn multiple transmit chains on and off. UEs in the second group may suspend certain communication activities when the gNB is in the energy-saving state.

[0028] 1 is a diagram of an exemplary device for implementing embodiments of the present disclosure. Device 100 may correspond to any type of known computer, server, or data processing device. For example, device 100 may comprise a processor, a personal computer (PC), a printed circuit board (PCB) with a computing device, a minicomputer, a mainframe computer, a microcomputer, a telephone computing device, a wired / wireless computing device (e.g., a smartphone, a personal digital assistant (PDA)), a laptop, a tablet, a smart device, or any other similarly functional device.

[0029] In some embodiments, as shown in FIG. 1, device 100 may include a set of components such as a processor 120, a memory 130, a storage component 140, an input component 150, an output component 160, and a communication interface 170.

[0030] Bus 110 may comprise one or more components that enable communication between a set of components of device 100. For example, bus 110 may be a communication bus, a crossover bar, a network, etc. Although bus 110 is depicted in FIG. 1 as a single line, bus 110 may be implemented using multiple (two or more) connections between a set of components of device 100. This disclosure is not limited in this respect.

[0031] Device 100 may include one or more processors, such as processor 120. Processor 120 may be implemented in hardware, firmware, and / or a combination of hardware and software. For example, processor 120 may include a central processing unit (CPU), graphics processing unit (GPU), accelerated processing unit (APU), microprocessor, microcontroller, digital signal processor (DSP), field-programmable gate array (FPGA), application-specific integrated circuit (ASIC), general-purpose single-chip or multi-chip processor, or other programmable logic device, discrete gate or transistor logic, discrete hardware components, or any combination thereof designed to perform the functions described herein. A general-purpose processor may be a microprocessor, or any conventional processor, controller, microcontroller, or state machine. Processor 120 may also be implemented as a combination of computing devices, such as a combination of a DSP and a microprocessor, multiple microprocessors, one or more microprocessors in conjunction with a DSP core, or any other such configuration. In some embodiments, particular processes and methods may be performed by circuitry that is specific to a given function.

[0032] The processor 120 may control the overall operation of the device 100 and / or a set of components of the device 100 (eg, memory 130, storage component 140, input component 150, output component 160, communication interface 170).

[0033] Device 100 may further comprise memory 130. In some embodiments, memory 130 may comprise random access memory (RAM), read-only memory (ROM), electrically erasable programmable ROM (EEPROM), flash memory, magnetic memory, optical memory, and / or another type of dynamic or static storage device. Memory 130 may store information and / or instructions for use (e.g., execution) by processor 120.

[0034] Storage component 140 of device 100 may store information and / or computer-readable instructions and / or code related to the operation and use of device 100. For example, storage component 140 may include a hard disk (e.g., a magnetic disk, optical disk, magneto-optical disk, and / or solid-state disk), a compact disc (CD), a digital versatile disc (DVD), a Universal Serial Bus (USB) flash drive, a Personal Computer Memory Card International Association (PCMCIA) card, a floppy disk, a cartridge, a magnetic tape, and / or another type of non-transitory computer-readable medium, along with a corresponding drive.

[0035] Device 100 may further include input component 150. Input component 150 may include one or more components that enable device 100 to receive information via user input or the like (e.g., a touchscreen, a keyboard, a keypad, a mouse, a stylus, a button, a switch, a microphone, a camera, etc.). Alternatively or additionally, input component 150 may include sensors for sensing information (e.g., a Global Positioning System (GPS) component, an accelerometer, a gyroscope, an actuator, etc.).

[0036] Output component 160 of device 100 may include one or more components that may provide output information from device 100 (e.g., a display, a Liquid Crystal Display (LCD), Light-Emitting Diodes (LEDs), Organic Light-Emitting Diodes (OLEDs), a haptic feedback device, a speaker, etc.).

[0037] Device 100 may further comprise a communications interface 170. Communications interface 170 may include a receiver component, a transmitter component, and / or a transceiver component. Communications interface 170 may enable device 100 to establish connections and / or transfer communications with other devices (e.g., a server, another device). Communications may occur via a wired connection, a wireless connection, or a combination of wired and wireless connections. Communications interface 170 may enable device 100 to receive information from and / or provide information to other devices. In some embodiments, communication interface 170 may provide for communication with another device over a network, such as a Local Area Network (LAN), a Wide Area Network (WAN), a Metropolitan Area Network (MAN), a private network, an ad hoc network, an intranet, the Internet, an optical fiber-based network, a cellular network (e.g., a Fifth Generation (5G) network, a Long-Term Evolution (LTE) network, a Third Generation (3G) network, a Code Division Multiple Access (CDMA) network, etc.), a Public Land Mobile Network (PLMN), a telephone network (e.g., a Public Switched Telephone Network (PSTN)), etc., and / or a combination of these or other types of networks. Alternatively or additionally, the communication interface 170 may provide communication with another device via a device-to-device (D2D) communication link, such as FlashLinQ, WiMedia, Bluetooth, ZigBee, Wi-Fi, LTE, 5G, etc.In other embodiments, communication interface 170 may include an Ethernet interface, an optical interface, a coaxial interface, an infrared interface, a radio frequency (RF) interface, or the like.

[0038] Device 100 may perform one or more processes described herein. Device 100 may perform operations based on processor 120 executing computer-readable instructions and / or code, which may be stored by a non-transitory computer-readable medium, such as memory 130 and / or storage component 140. A computer-readable medium may refer to a non-transitory memory device. A memory device may include memory space within a single physical storage device and / or memory space distributed across multiple physical storage devices.

[0039] Computer readable instructions and / or code may be loaded into memory 130 and / or storage component 140 from another computer readable medium or from another device via communication interface 170. The computer readable instructions and / or code stored in memory 130 and / or storage component 140, when executed by processor 120, may cause device 100 to perform one or more processes described herein.

[0040] Alternatively, or in addition, hardwired circuitry may be used in place of or in combination with software instructions to implement one or more of the processes described herein. Thus, the embodiments described herein are not limited to any specific combination of hardware circuitry and software.

[0041] The number and arrangement of components shown in Figure 1 are provided as an example. In practice, there may be additional, fewer, different, or differently arranged components than those shown in Figure 1. Furthermore, two or more components shown in Figure 1 may be implemented within a single component, or a single component shown in Figure 1 may be implemented as multiple distributed components. Alternatively, or in addition, a set of components shown in Figure 1 may perform one or more functions that are described as being performed by another set of components shown in Figure 1.

[0042] 2 illustrates an example wireless communication system in accordance with various embodiments of the present disclosure. The wireless communication system 200 (which may also be referred to as a wireless wide area network (WWAN)) may include one or more user equipments (UEs) 210, one or more base stations 220, at least one transmission network 230, and at least one core network 240. The device 100 (FIG. 1) may be incorporated into the UE 210 or the base station 220.

[0043] One or more UEs 210 may access at least one core network 240 and / or IP services 250 via a connection to one or more base stations 220 through the RAN domain 224 and through at least one transport network 230. Examples of UEs 210 may include a cellular phone, a smartphone, a Session Initiation Protocol (SIP) phone, a laptop, a personal digital assistant (PDA), a satellite radio, a global positioning system (GPS), a multimedia device, a video device, a digital audio player (e.g., an MP3 player), a camera, a game console, a tablet, a smart device, a wearable device, a vehicle, an electric meter, a gas pump, a large or small kitchen appliance, a healthcare device, an implant, a sensor / actuator, a display, or any other similarly functioning device. Some of the one or more UEs 210 may be referred to as Internet-of-Things (IoT) devices (e.g., a parking meter, a gas pump, a toaster, a vehicle, a heart monitor, etc.). One or more UEs 210 may also be referred to as a station, mobile station, subscriber station, mobile unit, subscriber unit, radio unit, remote unit, mobile device, radio device, wireless communication device, remote device, mobile subscriber station, access terminal, mobile terminal, radio terminal, remote terminal, handset, user agent, mobile agent, client, or some other suitable terminology.

[0044] One or more base stations 220 may communicate wirelessly with one or more UEs 210 through the RAN domain 224. Each base station of the one or more base stations 220 may provide communication coverage to one or more UEs 210 located within the geographic coverage area of ​​that base station 220. In some embodiments, as shown in FIG. 2, a base station 220 may transmit one or more beamformed signals to one or more UEs 210 in one or more transmit directions. One or more UEs 210 may receive beamformed signals from a base station 220 in one or more receive directions. Alternatively or additionally, one or more UEs 210 may transmit beamformed signals to a base station 220 in one or more transmit directions. A base station 220 may receive beamformed signals from one or more UEs 210 in one or more receive directions.

[0045] One or more base stations 220 may include macrocells (e.g., high-power cellular base stations) and / or small cells (e.g., low-power cellular base stations). Small cells may include femtocells, picocells, and microcells. Whether a macrocell or a large cell, base station 220 may include and / or be referred to as an access point (AP), an evolved (or Evolved Universal Terrestrial Radio Access Network (E-UTRAN)) Node B (eNB), a next generation Node B (gNB), or any other type of base station known to those skilled in the art.

[0046] The one or more base stations 220 may be configured to interface (e.g., establish connections, transfer data, etc.) with at least one core network 240 through at least one transmission network 230. In addition to other functions, the one or more base stations 220 may perform one or more of the following functions: forwarding data (e.g., uplink data) received from one or more UEs 210 to the at least one core network 240 via the at least one transmission network 230; forwarding data (e.g., downlink data) received from the at least one core network 240 to the one or more UEs 210 via the at least one transmission network 230.

[0047] The transmission network 230 may transport data (e.g., uplink data, downlink data) and / or signaling between the RAN domain 224 and the CN domain 244. For example, the transmission network 230 may provide one or more backhaul links between one or more base stations 220 and at least one core network 240. The backhaul links may be wired or wireless.

[0048] The core network 240 may be configured to provide one or more services (e.g., enhanced Mobile Broadband (eMBB), Ultra-Reliable Low-Latency Communications (URLLC), massive Machine Type Communications (mMTC), etc.) to one or more UEs 210 connected to the RAN domain 224 via the TN domain 234. Alternatively or additionally, the core network 240 may serve as an entry point for IP services 250. The IP services 250 may include the Internet, an intranet, an IP Multimedia Subsystem (IMS), streaming services (e.g., video, audio, games, etc.), and / or other IP services.

[0049] In some embodiments, a gNB (e.g., 220) may deactivate (e.g., turn off (disconnect), not use) a subset of transmit and receive chains, e.g., to conserve energy. Depending on the port-to-TXRU mapping, this deactivation may deactivate one or more ports (e.g., CSI-RS ports). The deactivated resources may not be available to the UEs. A state in which the TXRU is turned off may be referred to as an energy-saving state. A state in which the TXRU is not turned off may be referred to as a normal state.

[0050] The TXRU may not be visible to the UEs (e.g., the UEs may not know the exact number of TXRUs the gNB uses). However, deactivating multiple TXRUs may result in multiple ports becoming unavailable to the UEs. In some embodiments, the gNB may configure its UEs with at least two distinct configurations. The first configuration may include a first set of ports (e.g., CSI-RS ports), and the second configuration may include a second set of ports. The second set may include a smaller number of antenna ports than the first set. The second configuration may be used when a TXRU chain is deactivated. For example, if there is a one-to-one mapping between CSI-RS ports and TXRUs and there are K TXRUs (e.g., K=32), then K CSI-RS ports may be supported. For example, if K / 2 TXRUs are deactivated, then K / 2 CSI-RS ports may be supported. In another example, when a TXRU is deactivated, the number of supported ports remains the same, but the total transmit power and / or beamwidth may still decrease due to the fewer active TXRUs. The received signal energy may also decrease.

[0051] The embodiments of the present disclosure are disclosed assuming that a gNB and / or network can be in two states (normal state and energy saving state). However, the embodiments may be extended to more than two states. For example, there may be multiple energy saving states depending on how much energy can be saved in each state. As an example, for K TXRUs, two separate energy saving states may correspond to when K / 4 and K / 2 TXRUs are turned off, respectively. Although the energy saving states can be achieved by turning off multiple TXRUs, the same embodiments may be applicable when the energy saving states are enabled by other mechanisms (e.g., by turning off antenna elements).

[0052] In some embodiments, the energy saving procedure may include probing UEs, classifying the UEs, configuring the UEs, indicating an energy saving state, and applying energy saving. When probing the UEs, the gNB may instruct the UEs to feedback channel state information (CSI) derived for a normal state and / or an energy saving state. The UEs may also be instructed to report quantities other than CSI. The state during which the gNB probes the UEs may be referred to as the probing phase. UE classification may classify the UEs into distinct groups based on the UE feedback, for example, based on the UEs' communication capabilities with a reduced number of TXRUs. As an example, UEs that may require enhancement (e.g., coverage extension) if some TXRUs are turned off may be classified into a first group. UEs that can continue to operate without enhancement may be classified into a second group.

[0053] In UE configuration, the gNB can configure the UEs in the first group with coverage extension or other extension techniques. These techniques can be used when the gNB is in an energy saving state. For example, the UEs can be configured to monitor the physical downlink control channel (PDCCH) only when the gNB is in a normal state and not monitor the PDCCH when the gNB is in an energy saving state. In another example, the UEs can be configured to apply a specific coverage extension technique when the gNB is in an energy saving state. During the energy saving state indication, the gNB can adapt its energy saving state behavior over time. For example, the gNB can be in a normal state for some slots (e.g., all TXRUs on) and the gNB can be in an energy saving state for some slots (e.g., some TXRUs off). The progression of the gNB's state over time can be referred to as an energy saving pattern, and the gNB's current and / or future state can be indicated to the UEs based on the energy saving pattern. After the energy state is indicated, the gNB may apply energy saving (e.g., turn off the TXRU based on the indicated energy saving pattern). The state of the gNB while applying energy saving may be referred to as the energy saving phase. The probing phase and the energy saving phase may overlap in time partially or completely.

[0054] In some embodiments, the gNB may transmit reference signals and / or other signals that the UE can use to measure and derive CSI (e.g., CSI-RS, synchronization signal blocks (SSBs)). The UE may derive at least two types of CSI (Type 1 and Type 2). Type 1 may correspond to reference signals transmitted by the gNB when the gNB is in a normal state. Type 2 may correspond to reference signals transmitted by the gNB when the gNB is in an energy-saving state. For example, the gNB may have 32 TXRUs and 32 CSI-RS ports. The first type of CSI may be derived by the UE using this configuration. In a particular interval, the gNB may turn off 16 of the TXRUs and transmit reference signals using the remaining active TXRUs. In this particular interval, the number of CSI-RS ports may be set to 16. The second type of CSI may be derived using this configuration.

[0055] In some embodiments, a UE may be configured with two CSI reporting configurations. Parameters in one configuration (e.g., number of CSI-RS ports, number of CSI-RS resources, etc.) may correspond to a normal state, and other configuration parameters may correspond to an energy-saving state. The types of CSI configurations may be periodic, aperiodic, and semi-static.

[0056] When the base station is not in an energy saving state (e.g., in a normal state), the UE may be configured to measure and report conventional CSI. For example, in a normal state, the base station may transmit with 64 antennas. In some embodiments, the UE may be instructed to skip CSI-RS measurements during a specific time window. In that time window, the UE may be instructed to measure CSI-RS and report CSI corresponding to the energy saving state. For example, for a given interval / window, the gNB instructs the UE that 8 antennas will be used instead of 64. This window may be referred to as a time skip window. An example time sequence 300 with a time skip window 302 is shown in FIG. 3. During the time skip window, the base station may be in an energy saving state, and the UE does not use the original configuration of 64 antennas. Therefore, the UE skips measuring 64 CSI-RS and reporting the corresponding CSI. Instead, during the time skip window / interval, the UE need only measure 8 antennas and report CSI for the 8 antennas. As illustrated in time series 400 with time window 402 (FIG. 4), the UE may measure a different set of CSI-RS associated with an energy saving state and report the associated CSI. CSI reporting may be performed outside the window, and DL transmissions may only be inside the window.

[0057] In some embodiments, the skip window may be configured by the gNB. The window may be periodic and may be configured by the periodicity of the start (or end) of the window, an offset value for shifting the start (or end), and a time length (e.g., in slots or milliseconds). Alternatively, every kth CSI report of the configuration may be configured to be associated with an energy-saving state. The UE may be instructed on a reference signal to be used to derive every kth CSI report. For example, it may be assumed that the last CSI-RS and / or the last SSB before the kth CSI report is transmitted with some TXRUs turned off. In another example, a window may be defined with respect to the kth CSI report, and it may be assumed that reference signals within this window are transmitted with TXRUs turned off.

[0058] In another example, a UE may be configured with a CSI reporting configuration corresponding to a normal state. Certain parameter values ​​in the configuration may be temporarily updated. For example, the number of CSI-RS ports may be 32 in the normal state. During the time window 302 shown in FIG. 3, the number of ports may be temporarily set to 16. Similarly, the number of ports may be set to 16 to derive the kth CSI report.

[0059] In some embodiments, CSI reporting for an energy-saving state may be activated by aperiodic indication, as shown in FIG. 5 , which illustrates an example timeline 500. A UE may be configured with a Type-2 CSI configuration, which may be activated using a PDCCH. After the validity time expires, the activated Type-2 CSI configuration may be deactivated. Activation of the Type-2 CSI reporting configuration may deactivate the Type-1 CSI reporting configuration, which means that the UE may skip (e.g., suspend) the Type-1 CSI reporting configuration until the validity time expires.

[0060] In some embodiments, the PDCCH can set / reset the values ​​of certain parameters of the CSI configuration. In this regard, after the validity time expires, the values ​​of these parameters can be set to the values ​​before the PDCCH indication. For example, the MAC CE can indicate the CSI-RS parameters shown in Table 1 to the UE. Bits and / or codepoints in the PDCCH can set the number of CSI-RS ports in the configuration to one of the values ​​in the table by indicating the row index. Values ​​of other parameters can be added to the table as columns. [Table 1]

[0061] The probing phase and the energy saving phase may overlap partially or completely, and the embodiments disclosed above may be used in the energy saving phase.

[0062] During the probing phase (e.g., when turning off some TXRUs), certain UE procedures may be skipped and / or interrupted. For example, one or more of the following may be applicable:

[0063] The UE does not monitor the PDCCH.

[0064] The UE stops assessing the radio link quality.

[0065] The UE stops sending an indication to higher layers (eg, the MAC layer) that the radio link quality is worse than a threshold.

[0066] The UE suspends transmission of the Physical Random Access Channel (PRACH).

[0067] The UE stops sending scheduling requests (SRs).

[0068] The UE MAC layer stops incrementing the beam failure indication (BFI) counter and / or starting the beam failure detection timer.

[0069] The parameter beamFailureInstanceMaxCount is set to a larger value, for example, infinity, and

[0070] When the UE evaluates the link quality, it determines the link quality based on a threshold (Q out,LR +Q out_offset ) and / or (Q in,LR +Q in_offset ) can be used, and the offset value can be configured by the gNB and can be applicable only during the probing phase (e.g., within the probing time window). Similarly, the parameter Q in and Q out An offset value may be added to

[0071] Besides CSI, the UE may feed back one or more of the following additional quantities:

[0072] Power headroom (tolerance) for beam failure events, e.g., Reference Signal Received Power (RSRP)-Q out,LR and / or RSRP-Q in_LR .

[0073] Power headroom for radio link failure events, e.g., RSRP-Q out and / or RSRP-Q in and

[0074] RSRP / SINR measured in the probing phase - RSRP / SINR measured before the probing phase (e.g., the final value of RSRP / SINR before the probing phase).

[0075] In some embodiments, the collected feedback can be used to classify UEs based at least on whether the UEs can continue normal operation when the gNB is in an energy saving state. For example, a first group of UEs is at the cell center and can maintain acceptable performance with a certain number of TXRUs turned off. A second group of UEs is on the cell edge and can maintain acceptable performance when a certain number of TXRUs are turned off and an extension, e.g., coverage extension, is applied. A third group of UEs may not be able to maintain acceptable performance when a certain number of TXRUs are turned off, even if an extension is applied. Different classifications may be applicable at different levels of energy saving states.

[0076]

[0077] In some embodiments, when a gNB enters an energy saving state, the behavior of UEs can be determined by which group they are in. UEs can be assigned a group ID. Based on the group ID, the UE can adjust its behavior when the gNB is in an energy saving state. For example, a UE can transition to sleep mode when it is in group 3 and the gNB is in an energy saving state. In another example, the gNB can send a go-to-sleep signal before the gNB enters an energy saving state and instructs one or more UEs to transition to sleep. The sleep transition signal can be monitored by UEs belonging to a particular group and / or configured with specific tags / parameters. The sleep transition signal can be PDCCH-based, where one bit in the PDCCH can instruct a set of UEs whether to transition to sleep.

[0078] In some embodiments, the UE may be instructed and / or configured to apply coverage extension techniques when the gNB is in an energy saving state. For example, depending on the energy saving state of the gNB, one or more of the PDCCH, the physical downlink shared channel (PDSCH), the physical uplink shared channel (PUSCH), and the physical uplink control channel (PUCCH) may be subject to repetition. Activation / deactivation of coverage extension techniques may be determined by the energy saving state of the gNB.

[0079] In some embodiments, the gNB may be in various energy saving states depending on the time. For example, in a particular slot, the gNB may be in a normal state, while in some slots, the gNB may be in an energy saving state. The gNB may transmit an indication of the energy saving state to UEs. For example, a UE-common PDCCH may be used for the indication. The UEs may be configured with a search space for monitoring the PDCCH. One or more bits in the downlink control information (DCI) may indicate the energy saving state over a period of time. For example, if the time duration is N slots, bits 11001 may indicate that the gNB is in a power saving state (bit 1) during the first, second, and fifth periods of the N slots, and the gNB is in a normal state (bit 0) during the third and fourth periods of the N slots. Allocating more bits per duration may indicate more than two states. In another example, the UE may monitor the PDCCH based on a search space. The DCI in the PDCCH may indicate the energy saving state(s) and the corresponding duration(s).

[0080] The embodiments indicating the probing phase can be used to indicate an energy saving state. For example, the energy saving phase may occur periodically, and a window similar to a "probing window" may be defined as the time interval during which the gNB is in the energy saving phase. As another example, similar to the DRX ON period definition, certain slots may be designated as belonging to a normal state (e.g., the TXRU is not turned off in these slots), and the remaining slots may be designated as being in an energy saving state. In some embodiments, the energy saving state may be activated by aperiodic signaling using the PDCCH and / or MAC CE, as disclosed for the probing phase.

[0081] 6 shows a flowchart of one embodiment of a process 600 for performing network energy saving. Process 600 may be performed by a gNB. Process 600 may begin at operation S602, where the gNB transmits one or more probing messages to one or more UEs. The probing messages may include reference signals, such as CSI reference signals.

[0082] The process proceeds to operation S604, where the gNB receives one or more CSI reports in response to the one or more probing messages. The process proceeds to operation S606, where, based on the one or more CSI reports, each UE is classified into one of a plurality of classification groups. For example, the classification groups may include groups 1 to 3 described above. The process proceeds to operation S608, where, based on the classification, UEs are configured. For example, the UEs may be configured for Type 1 or Type 2 reference signals, as described above. The process proceeds to operation S610, where, based on the classification, the gNB transmits an energy saving state indication to the UEs. For example, the gNB may transmit a bit pattern (e.g., 1101) that indicates in which slots the gNB will enter an energy saving state. The process proceeds to operation S612, where, based on the energy saving state indication, the gNB applies an energy saving mode by turning off one or more transmit chains.

[0083] FIG. 7 shows a flowchart of one embodiment of a process 700 for probing UEs. Process 700 may begin at operation S702, where a base station transmits one or more probing messages to a UE in a first state. For example, the base station may be in a normal state in which each antenna of the base station is in an on state. The first set of one or more probing messages may include a set of reference signals (e.g., 64 beams). The process proceeds to operation S704, where the base station receives a first CSI report in response to the one or more first probing messages. For example, the first CSI report may provide first CSI corresponding to measurements of the set of reference signals (e.g., 64 beams).

[0084] The process proceeds to operation S706, where the base station transmits a second set of one or more probing messages to the UE in a second state. As an example, the second state may be an energy saving state in which the base station turns off one or more antennas. The second set of one or more probing messages may include a subset of reference signals (e.g., eight beams). An indication may be provided to the UE indicating the timing of when the base station will enter the energy saving state. The process proceeds to operation S708, where the base station receives a second CSI report in response to the second set of one or more probing messages. The second CSI report may include second CSI based on measurements of the subset of reference signals (e.g., eight beams). Thus, the second CSI report may provide CSI corresponding to the energy saving state of the network.

[0085] The foregoing disclosure provides illustration and description, but is not intended to be exhaustive or to limit the implementations to the precise forms disclosed. Modifications and variations are possible in light of the above disclosure or may be acquired from practicing the implementations.

[0086] It is understood that the particular order or hierarchy of blocks in the processes / flowcharts disclosed herein represents example approaches. It is understood that the particular order or hierarchy of blocks within the processes / flowcharts may be rearranged based on design preferences. Furthermore, some blocks may be combined or omitted. The accompanying method claims present various block elements in a sample order and are not meant to be limited to the particular order or hierarchy presented.

[0087] Some embodiments may relate to systems, methods, and / or computer-readable media at any possible level of technical detail of integration. Furthermore, one or more of the above components described above may be implemented as instructions stored on a computer-readable medium and executable by at least one processor (and / or may include at least one processor). The computer-readable medium may include one or more computer-readable non-transitory storage media having computer-readable program instructions for causing a processor to perform operations.

[0088] A computer-readable storage medium may be a tangible device that can hold and store instructions for use by an instruction-execution device. The computer-readable storage medium may be, for example, but not limited to, an electronic storage device, a magnetic storage device, an optical storage device, an electromagnetic storage device, a semiconductor storage device, or any suitable combination of the foregoing. A non-exhaustive list of more specific examples of computer-readable storage media includes portable computer diskettes, hard disks, random access memory (RAM), read-only memory (ROM), erasable programmable read-only memory (EPROM or flash memory), static random access memory (SRAM), portable compact disc read-only memory (CD-ROM), digital versatile disc (DVD), memory stick, floppy disk, mechanically encoded devices such as punch cards or ridge structures in grooves on which instructions are recorded, and any suitable combination of the foregoing. As used herein, computer-readable storage media should not be construed as being, per se, transitory signals such as radio waves or other freely propagating electromagnetic waves, electromagnetic waves propagating through a waveguide or other transmission medium (e.g., light pulses passing through a fiber optic cable), or electrical signals transmitted through wires.

[0089] The computer-readable program instructions described herein can be downloaded from a computer-readable storage medium to each computing / processing device or to an external computer or external storage device via a network, such as the Internet, a local area network, a wide area network, and / or a wireless network. The network may include copper transmission cables, optical fiber transmissions, wireless transmissions, routers, firewalls, switches, gateway computers, and / or edge servers. A network adapter card or network interface in each computing / processing device receives the computer-readable program instructions from the network and forwards the computer-readable program instructions for storage in a computer-readable storage medium in the respective computing / processing device.

[0090] The computer-readable program code / instructions for performing operations may be either source code or object code written in any combination of one or more programming languages, including assembler instructions, instruction set architecture (ISA) instructions, machine instructions, machine-dependent instructions, microcode, firmware instructions, state setting data, configuration data for integrated circuits, or object-oriented programming languages ​​such as Smalltalk and C++, and procedural programming languages ​​such as the "C" programming language or similar programming languages. The computer-readable program instructions may execute entirely on the user's computer, partially on the user's computer, as a standalone software package, partially on the user's computer and partially on a remote computer, or entirely on a remote computer or server. In the latter scenario, the remote computer may be connected to the user's computer via any type of network, including a local area network (LAN) or a wide area network (WAN), or may be connected to an external computer (e.g., via the Internet using an Internet Service Provider). In some embodiments, an electronic circuit, including, for example, a programmable logic circuit, a field programmable gate array (FPGA), or a programmable logic array (PLA), may execute computer-readable program instructions by utilizing state information of the computer-readable program instructions to personalize the electronic circuit to perform an aspect or operation.

[0091] These computer-readable program instructions may be provided to a processor of a general-purpose computer, a special-purpose computer, or other programmable data processing apparatus to produce a machine, such that the instructions, which execute on the processor of the computer or other programmable data processing apparatus, create means for performing the functions / acts specified in one or more blocks of the flowcharts and / or block diagrams. These computer-readable program instructions may also be stored on a computer-readable storage medium that can direct a computer, programmable data processing apparatus, and / or other device to function in a particular manner, such that the computer-readable storage medium on which the instructions are stored comprises a product containing instructions that implement aspects of the functions / acts specified in one or more blocks of the flowcharts and / or block diagrams.

[0092] The computer-readable program instructions may also be loaded onto a computer, other programmable data processing apparatus, or other device to cause the computer, other programmable apparatus, or other device to execute a series of operational steps to create a computer-implemented process, such that the instructions executing on the computer, other programmable apparatus, or other device perform the functions / acts specified in one or more blocks of the flowcharts and / or block diagrams.

[0093] The flowcharts and block diagrams in the figures illustrate the architecture, functionality, and operation of possible implementations of systems, methods, and computer-readable media according to various embodiments. In this regard, each block in the flowcharts or block diagrams may represent a module, segment, or portion of instructions, including one or more executable instructions for implementing a particular logical function. The methods, computer systems, and computer-readable media may include additional, fewer, different, or differently arranged blocks compared to the blocks shown in the figures. In some alternative implementations, the functions noted in the blocks may occur in a different order than that noted in the figures. For example, two blocks shown in succession may actually be executed concurrently or substantially concurrently, or the blocks may sometimes be executed in the reverse order, depending on the functionality involved. It should also be noted that each block of the block diagrams and / or flowchart diagrams, and combinations of blocks in the block diagrams and / or flowchart diagrams, can be implemented by a dedicated hardware-based system that performs the specified functions or operations or executes a combination of dedicated hardware and computer instructions.

[0094] It will be apparent that the systems and / or methods described herein may be implemented in various forms of hardware, firmware, or combinations of hardware and software. The actual specialized control hardware or software code used to implement these systems and / or methods is not intended to limit the implementation. Thus, the operation and behavior of the systems and / or methods are described herein without reference to specific software code, and it will be understood that software and hardware can be designed to implement the systems and / or methods based on the description herein.

[0095] The above disclosure also encompasses the embodiments listed below. (1) A method executed by at least one processor of a base station, the method comprising: in a first state, transmitting a first set of one or more probing messages to a UE; wherein the first set of one or more probing messages includes a set of reference signals; Note 1 more than one probing message The first set of receiving a first channel state information (CSI) report from the UE in response to, wherein the first CSI report includes first CSI derived from measurements of the set of reference signals; transmitting a second set of one or more probing messages to the UE in a second state, wherein the second set of one or more probing messages includes a subset of the reference signals; and receiving a second CSI report in response to the second set of one or more probing messages, the second CSI report including second CSI derived from measurements of the subset of reference signals. (2) The method according to feature (1), wherein the first state is a normal state and the second state is an energy-saving state. (3) The method according to (2), wherein in the energy saving state, the base station turns off one or more antennas. (4) The method of any one of features (1) to (3), wherein the first set of one or more probing messages includes an indication of a window having a duration during which the UE measures the subset of reference signals. (5) The method according to feature (4), wherein the base station configures the window at periodic time intervals. (6) The method according to feature (4) or (5), wherein the second CSI report is transmitted from the UE to the base station at a timing outside the window. (7) The method according to any one of features (2) to (6), further comprising: transmitting to the UE a predetermined downlink signal that causes the UE to end measurement of the set of reference signals in the normal state and start measurement of the subset of reference signals in the energy saving state. (8) The method according to feature (7), wherein the predetermined downlink signal is a physical downlink control channel (PDCCH) signal. (9) The method of features (7) or (8), wherein the measurement of the subset of reference signals is terminated after a predetermined time interval. (10) The method of any one of features (1) to (9), further comprising classifying each UE of the one or more sets of UEs into one of a plurality of classification groups based on the one or more CSI reports. (11) The plurality of classification groups include: (i) a first classification group: wherein the base station Ministry and (ii) a second classification group, wherein each UE assigned to the second classification group utilizes cell extended coverage when the base station is in the energy saving state. (12) The method according to feature (11), wherein the cell extended coverage includes repetition of one or more downlink signals or repetition of one or more uplink signals. (13) The method according to feature (12), wherein the one or more downlink signals include one of a physical downlink control channel (PDCCH) signal and a physical downlink shared channel (PDSCH) signal, and the one or more uplink signals include one of a physical uplink shared channel (PUSCH) signal and a physical uplink control channel (PUCCH) signal. (14) The method of any one of features (2) to (13), further comprising: sending to the UE an indication of the energy saving state, the indication including one or more bits specifying one or more time slots to which the energy saving state applies. (15) At least one memory configured to store computer program code; and a computer configured to access the at least one memory and operate as instructed by the computer program code. , in the base stationand at least one processor, wherein the computer program code comprises: first transmission code configured to cause at least one of the at least one processor to transmit a first set of one or more probing messages to a UE in a first state, wherein the first set of one or more probing messages includes a set of reference signals; and Note 1 more than one probing message The first set of a first receive code configured to cause the at least one processor to receive a first channel state information (CSI) report from the UE in response to a first receive code, wherein the first CSI report includes first CSI derived from measurements of the set of reference signals; a second transmit code configured to cause the at least one processor to transmit a second set of one or more probing messages to the UE in a second state; and a second receive code configured to cause the at least one processor to receive a second CSI report in response to the second set of one or more probing messages, wherein the second set of one or more probing messages includes a subset of the reference signals. (16) The device according to feature (15), wherein the first state is a normal state and the second state is an energy saving state. (17) The apparatus of feature (16), wherein in the energy saving state, the base station turns off one or more antennas. (18) The apparatus of any one of features (15) to (17), wherein the first set of one or more probing messages includes an indication of a window having a duration during which the UE measures the subset of reference signals. (19) The apparatus of feature (18), wherein the base station configures the window at periodic time intervals. (20) A non-transitory computer-readable medium storing instructions that, when executed by a processor in a base station, cause the processor to perform a method, the method comprising: in a first state, transmitting a first set of one or more probing messages to a UE, wherein the first set of one or more probing messages includes a set of reference signals; Note 1 more than one probing message The first set of receiving a first channel state information (CSI) report from the UE in response to, wherein the first CSI report includes a first CSI derived from measurements of the set of reference signals; transmitting, in a second state, a second set of one or more probing messages to the UE, wherein the second set of one or more probing messages includes a subset of the reference signals; and receiving, in response to the second set of one or more probing messages, a second CSI report including a second CSI derived from measurements of the subset of reference signals.

Claims

1. A method executed by at least one processor of a base station, said method comprising: transmitting a first set of one or more probing messages to the UE in a first state, wherein the first set of one or more probing messages includes a set of reference signals; receiving a first channel state information (CSI) report from the UE in response to the first set of one or more probing messages, wherein the first CSI report includes first CSI derived from measurements of the set of reference signals; transmitting a second set of one or more probing messages to the UE in a second state, wherein the second set of one or more probing messages includes a subset of the reference signals; receiving a second CSI report in response to the second set of one or more probing messages, the second CSI report including second CSI derived from measurements of the subset of the reference signals.

2. The method of claim 1 , wherein the first state is a normal state and the second state is an energy saving state.

3. The method of claim 2 , wherein in the energy saving state, the base station turns off one or more antennas.

4. The method of claim 1 , wherein the first set of the one or more probing messages includes an indication of a window having a duration during which the UE measures the subset of reference signals.

5. The method of claim 4 , wherein the base station configures the window at periodic time intervals.

6. The method of claim 4 , wherein the second CSI report is transmitted from the UE to the base station at a timing outside the window.

7. transmitting a predetermined downlink signal to the UE causing the UE to terminate measurements of the set of reference signals in the normal state and to start measurements of the subset of reference signals in the energy saving state; The method of claim 2 further comprising:

8. The method of claim 7 , wherein the predetermined downlink signal is a Physical Downlink Control Channel (PDCCH) signal.

9. The method of claim 7 , wherein the measurement of the subset of reference signals terminates after a predetermined time interval.

10. The method of claim 1 , further comprising classifying each UE of one or more sets of UEs into one of a plurality of classification groups based on the one or more CSI reports.

11. 11. The method of claim 10, wherein the plurality of classification groups comprises: (i) a first classification group, wherein each UE assigned to the first classification group does not utilize cell extension coverage when the base station is in an energy saving state; and (ii) a second classification group, wherein each UE assigned to the second classification group utilizes cell extension coverage when the base station is in the energy saving state.

12. The method of claim 11 , wherein the cell extended coverage comprises a repetition of one or more downlink signals or a repetition of one or more uplink signals.

13. 13. The method of claim 12, wherein the one or more downlink signals comprise one of a physical downlink control channel (PDCCH) signal and a physical downlink shared channel (PDSCH) signal, and the one or more uplink signals comprise one of a physical uplink shared channel (PUSCH) signal and a physical uplink control channel (PUCCH) signal.

14. transmitting to the UE an indication of an energy saving state comprising one or more bits specifying one or more time slots in which the energy saving state applies; The method of claim 2 further comprising:

15. 1. An apparatus comprising: at least one memory configured to store computer program code; and at least one processor in a base station configured to access the at least one memory and to operate as instructed by the computer program code, the computer program code comprising: a first transmission code configured to cause at least one of the at least one processor to, in a first state, transmit a first set of one or more probing messages to a UE, wherein the first set of one or more probing messages includes a set of reference signals; a first receive code configured to cause at least one of the at least one processor to receive a first channel state information (CSI) report from the UE in response to the first set of the one or more probing messages, wherein the first CSI report includes first CSI derived from measurements of the set of reference signals; a second transmission code configured to cause at least one of the at least one processor to, in a second state, transmit a second set of one or more probing messages to the UE, wherein the second set of one or more probing messages includes a subset of the reference signals; and a second receive code configured to cause at least one of the at least one processor to second receive, in response to the second set of the one or more probing messages, a second CSI report including second CSI derived from measurements of the subset of the reference signals.

16. 16. The device of claim 15, wherein the first state is a normal state and the second state is an energy saving state.

17. 17. The apparatus of claim 16, wherein in the energy saving state, the base station turns off one or more antennas.

18. 16. The apparatus of claim 15, wherein the first set of the one or more probing messages includes an indication of a window having a duration during which the UE measures the subset of reference signals.

19. 20. The apparatus of claim 18, wherein the base station configures the window at periodic time intervals.

20. 1. A non-transitory computer-readable medium storing instructions that, when executed by a processor in a base station, cause the processor to perform a method, the method comprising: transmitting a first set of one or more probing messages to the UE in a first state, wherein the first set of one or more probing messages includes a set of reference signals; receiving a first channel state information (CSI) report from the UE in response to the first set of one or more probing messages, wherein the first CSI report includes first CSI derived from measurements of the set of reference signals; transmitting a second set of one or more probing messages to the UE in a second state, wherein the second set of one or more probing messages includes a subset of the reference signals; and receiving, in response to the second set of one or more probing messages, a second CSI report including second CSI derived from measurements of the subset of the reference signals.

Citation Information

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