Improved intermittent reception and power saving for user equipment

By using PDCCH skip instructions to adaptively manage UE power-saving behavior, the method addresses inefficient power consumption and latency in UE DRX cycles, improving power savings and traffic handling.

JP7851938B2Active Publication Date: 2026-04-27LENOVO (SINGAPORE) PTE LTD
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
LENOVO (SINGAPORE) PTE LTD
Filing Date
2022-01-14
Publication Date
2026-04-27

AI Technical Summary

Technical Problem

In wireless communication systems, user equipment (UE) needs to switch from long to short DRX cycles for low-latency traffic, leading to inefficient power consumption and latency issues.

Method used

Implementing PDCCH skip instructions during DRX cycles to adjust UE power-saving behavior dynamically, allowing adaptive PDCCH monitoring based on traffic conditions without RRC reconfiguration.

Benefits of technology

Enhances power savings and flexibility in handling sporadic low-latency traffic by optimizing PDCCH monitoring, reducing unnecessary power consumption and latency.

✦ Generated by Eureka AI based on patent content.

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Abstract

An apparatus, method, and system for improved discontinuous reception and power saving for user equipment is disclosed. The apparatus (200) includes a transceiver (225) for receiving a PDCCH skip indication for a group of a search space set via downlink control information ("DCI") from a network node during a physical downlink control channel ("PDCCH") monitoring opportunity, and a processor (205) for ceasing monitoring the PDCCH for the group of the search space set after at least an application delay has elapsed in response to the PDCCH skip indication indicating skipping of the PDCCH for the group of the search space set.
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Description

[Technical Field]

[0001] Cross-reference of related applications This application claims priority to U.S. Provisional Patent Application No. 63 / 137,565, filed on 14 January 2021, entitled "ENHANCED DISCONTINUOUS RECEPTION (DRX) AND POWER SAVING PDCCH FOR UE POWER SAVING".

[0002] The subject matter disclosed herein generally relates to wireless communications, and more specifically to improved intermittent reception and power saving for user equipment. [Background technology]

[0003] In some wireless communication systems, a wake-up indication can be applied to the entire intermittent receive ("DRX") cycle. Therefore, when latency-sensitive applications are initiated on a user equipment ("UE"), the UE may need to be reconfigured from a long DRX cycle value to a short DRX cycle value in order to properly handle low-latency traffic. [Overview of the project] [Means for solving the problem]

[0004] Improved procedures for intermittent reception and power saving for user equipment are disclosed. These procedures may be carried out by devices, systems, methods, and / or computer program products.

[0005] In one embodiment, the first device includes a transceiver that receives PDCCH skip instructions for a group of search spaces via downlink control information ("DCI") from a network node during a physical downlink control channel ("PDCCH") monitoring opportunity. In one embodiment, the first device includes a processor that, in response to a PDCCH skip instruction indicating a PDCCH skip for a group of search space sets, stops monitoring the PDCCH for the group of search space sets after at least an application delay has elapsed.

[0006] In one embodiment, the first method includes receiving a PDCCH skip instruction for a group of search space sets from a network node via downlink control information ("DCI") during a physical downlink control channel ("PDCCH") monitoring opportunity. In one embodiment, the first method includes, in response to a PDCCH skip instruction indicating a PDCCH skip for a group of search space sets, stopping monitoring the PDCCH for the group of search space sets after at least an application delay has elapsed.

[0007] In one embodiment, the second device includes a transceiver that transmits a PDCCH skip instruction for a group of search space sets configured for a user equipment (UE) device via downlink control information ("DCI") during a physical downlink control channel ("PDCCH") monitoring opportunity, and a processor that, in response to transmitting a PDCCH skip instruction indicating a skip of the PDCCH for the group of search space sets, stops transmitting PDCCHs for the group of search space sets after at least an application delay has elapsed.

[0008] In one embodiment, the second method includes the steps of: transmitting a PDCCH skip instruction for a group of search space sets configured for a user equipment (UE) device via downlink control information ("DCI") during a physical downlink control channel ("PDCCH") monitoring opportunity; and, in response to transmitting a PDCCH skip instruction indicating a skip of the PDCCH for the group of search space sets, ceasing to transmit PDCCH for the group of search space sets after at least an application delay has elapsed.

[0009] A more specific description of the embodiments briefly outlined above is given with reference to specific embodiments shown in the accompanying drawings. Understanding that these drawings illustrate only a few embodiments and should therefore not be considered as limitations of scope, the embodiments are described and explained with further specificity and detail through the use of the accompanying drawings. [Brief explanation of the drawing]

[0010] [Figure 1] This is a schematic block diagram illustrating one embodiment of a wireless communication system for improved intermittent reception and power saving for user equipment. [Figure 2] This is a block diagram of one embodiment of a user equipment device that may be used for improved intermittent reception and power saving for user equipment. [Figure 3] This is a block diagram showing one embodiment of a network device that may be used for improved intermittent reception and power saving for user equipment. [Figure 4] This flowchart illustrates one embodiment of an improved intermittent reception and power saving method for user equipment. [Figure 5] This flowchart illustrates one embodiment of an improved intermittent reception and alternative method for power saving for user equipment. [Modes for carrying out the invention]

[0011] As will be understood by those skilled in the art, embodiments of an embodiment can be embodied as a system, apparatus, method, or program product. Accordingly, an embodiment may take the form of a purely hardware embodiment, a purely software embodiment (including firmware, resident software, microcode, etc.), or an embodiment that combines software and hardware embodiments.

[0012] For example, the disclosed embodiments may be implemented as hardware circuits including custom very large-scale integrated circuits ("VLSI") or commercially available semiconductors such as gate arrays, logic chips, transistors, or other discrete components. The disclosed embodiments may also be implemented in programmable hardware devices such as field-programmable gate arrays, programmable array logic, or programmable logic devices. As another example, the disclosed embodiments may include one or more physical or logical blocks of executable code, which may be organized as, for example, objects, procedures, or functions.

[0013] Furthermore, embodiments may take the form of a program product embodied in one or more computer-readable storage devices that store machine-readable code, computer-readable code, and / or program code, hereafter referred to as code. The storage device may be tangible, non-temporary, and / or non-transmitting. The storage device does not have to embody signals. In some embodiments, the storage device merely utilizes signals for accessing the code.

[0014] Any combination of one or more computer-readable media may be used. A computer-readable media may be a computer-readable storage medium. A computer-readable storage medium may be a storage device that stores code. A storage device may be, for example, but not limited to, an electrical, magnetic, optical, electromagnetic, infrared, holographic, micromechanical, or semiconductor system, apparatus, or device, or any suitable combination thereof.

[0015] More specific examples of storage devices (a non-exclusive list) include electrical connections having one or more wires, portable computer diskettes, hard disks, random access memory ("RAM"), read-only memory ("ROM"), erasable programmable read-only memory ("EPROM") or flash memory, portable compact disk read-only memory ("CD-ROM"), optical storage devices, magnetic storage devices, or any suitable combination of the foregoing. In the context of this document, a computer-readable storage medium may be any tangible medium that can contain or store programs for use by or in conjunction with instruction execution systems, apparatus, or devices.

[0016] The code for performing the actions for the embodiments may be of any number of lines and may be written in any combination of one or more programming languages, including object-oriented programming languages ​​such as Python, Ruby, Java, Smalltalk, and C++, and traditional procedural programming languages ​​such as the “C” programming language, and / or machine languages ​​such as assembly language. The code may run 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 through any type of network, including a local area network (“LAN”), a wireless LAN (“WLAN”), or a wide area network (“WAN”), or it may be connected to an external computer (for example, via the Internet using an Internet Service Provider (“ISP”)).

[0017] Furthermore, the features, structures, or characteristics described in the embodiments may be combined in any suitable manner. The following description provides numerous specific details, such as examples of programming, software modules, user selection, network transactions, database queries, database structures, hardware modules, hardware circuits, and hardware chips, in order to provide a complete understanding of the embodiments. However, those skilled in the art will recognize that embodiments may be practiced without one or more of these specific details, or in conjunction with other methods, components, materials, etc. In other instances, well-known structures, materials, or operations are not shown or described in detail to avoid obscuring aspects of the embodiments.

[0018] Throughout this specification, any reference to “one embodiment,” “a certain embodiment,” or similar expression means that a particular feature, structure, or characteristic described in relation to an embodiment is included in at least one embodiment. Thus, throughout this specification, any occurrence of the words “one embodiment,” “a certain embodiment,” and similar expressions means “one or more, but not all, embodiments,” and may, but not necessarily, all refer to the same embodiment, unless otherwise explicitly stated. The terms “include,” “equip,” “have,” and variations thereof mean “include, but not limited to,” unless otherwise explicitly stated. The enumeration of items does not imply that any or all of the items are mutually exclusive unless otherwise explicitly stated. The terms “a,” “an,” and “the” also mean “one or more,” unless otherwise explicitly stated.

[0019] As used herein, a list using the conjunction “and / or” includes any single item in the list or a combination of items in the list. For example, the list of A, B, and / or C includes only A, only B, only C, the combination of A and B, the combination of B and C, the combination of A and C, or the combination of A, B, and C. As used herein, a list using the term “one or more of” includes any single item in the list or a combination of items in the list. For example, one or more of A, B, and C includes only A, only B, only C, the combination of A and B, the combination of B and C, the combination of A and C, or the combination of A, B, and C. As used herein, a list using the term “one of” includes only one single item in the list. For example, “one of A, B, and C” includes only A, only B, or only C and does not include the combination of A, B, and C. As used herein, “a member selected from the group consisting of A, B, and C” includes only one of A, B, or C and does not include the combination of A, B, and C. As used herein, “a member selected from the group consisting of A, B, and C and combinations thereof” includes only A, only B, only C, the combination of A and B, the combination of B and C, the combination of A and C, or the combination of A, B, and C.

[0020] Aspects of the embodiments are described below with reference to schematic flowchart diagrams and / or schematic block diagrams of methods, apparatuses, systems, and program products according to the embodiments. It will be understood that each block of the schematic flowchart diagrams and / or schematic block diagrams, and combinations of blocks in the schematic flowchart diagrams and / or schematic block diagrams, can be implemented by code. This code may be provided to a processor of a general purpose computer, a special purpose computer, or other programmable data processing apparatus for generating machines, whereby instructions executed via the processor of the computer or other programmable data processing apparatus create means for implementing the functions / actions specified in the flowchart diagrams and / or block diagrams.

[0021] Code that can be instructed to function in a particular manner in a computer, other programmable data processing apparatus, or other device may also be stored in a memory device, whereby the instructions stored in the memory device produce a manufactured article that includes instructions for implementing the functions / actions specified in the flowchart diagrams and / or block diagrams.

[0022] The code may also be loaded into a computer, other programmable apparatus, or other device so that a series of operational steps are performed in the computer, other programmable apparatus, or other device to produce a process implemented by the computer, thereby providing a process for implementing the functions / actions specified in the flowchart diagrams and / or block diagrams.

[0023] Flowchart diagrams and / or block diagrams in the drawings illustrate the architecture, functionality, and operation of possible implementations of apparatus, systems, methods, and program products according to various embodiments. In this regard, each block in the flowchart diagrams and / or block diagrams may represent a module, segment, or portion of code, which includes one or more executable instructions for implementing the specified logical function.

[0024] Note also that in some alternative implementations, the functions noted in the blocks may occur in orders other than those noted in the drawings. For example, two blocks shown in succession may in fact be executed substantially simultaneously, or the blocks may sometimes be executed in the reverse order, depending on the functions involved. One or more blocks shown in the drawings and other steps and methods equivalent in function, logic, or effect, or portions thereof, may be devised.

[0025] Various types of arrows and lines may be used in flowcharts and / or block diagrams, but they are understood not to limit the scope of the corresponding embodiment. In fact, some arrows or other connections may be used only to indicate the logical diagram of the illustrated embodiment. For example, an arrow may indicate an unspecified waiting or monitoring period between enumerated steps of the illustrated embodiment. It should also be noted that each block in a block diagram and / or flowchart, as well as combinations of blocks in a block diagram and / or flowchart, may be implemented by a dedicated hardware-based system or a combination of dedicated hardware and code that performs a specified function or action.

[0026] The descriptions of elements in each drawing may refer to elements in preceding drawings. In all drawings, the same number refers to the same element, including alternative embodiments of the same element.

[0027] Generally, this disclosure describes systems, methods, and apparatus for improved intermittent reception and power saving for user equipment. In some embodiments, the methods may be performed using computer code embodied in a computer-readable medium. In some embodiments, the apparatus or system may include a computer-readable medium containing computer-readable code that, when executed by a processor, causes the apparatus or system to perform at least a portion of the measures described below.

[0028] According to Rel-17 Work Item Description ("WID") for UE power saving enhancements (RP-193239), the following objectives are defined: i. If agreed, research and specify improvements to power-saving techniques for connected mode UEs that minimize the impact on system performance. 1. Where agreed, study and specify extensions to Rel-16 DCI-based power saving adaptations during DRX active time for active BWP, including reduction of physical downlink control channel ("PDCCH") monitoring when C-DRX is configured. a. Note: Power saving measures available in Rel-15 and Rel-16 should be supported by the UE and included in the evaluation. RAN1 requests RAN2 to confirm that power saving measures available in Rel-15 and Rel-16 are being used appropriately.

[0029] During the RAN1 #103-e meeting, RAN1 reached the following agreement regarding improved DCI-based power saving adaptations during DRX active time: i. Specify at least one of the following options for the Rel-17 dynamic PDCCH adaptation for active time: 1. Option 1: Switching search space set groups, including, for example, explicit and implicit switching of search space set groups. 2. Option 2: Skip PDCCH for a certain time length / DRX cycle. ii. Candidate downlink control information ("DCI") formats for dynamic PDCCH adaptation include DCI formats 1_1 (including scheduled and unscheduled DCIs), 0_1, 1_2, 0_2, 2_0, and 2_6. iii. Note - Companies should conduct an analysis of the impact on specifications, the benefits of power savings, and the impact on the system (e.g., packet latency, system overhead).

[0030] In Rel-16 new radio ("NR"), wake-up instructions are applicable to the entire DRX cycle. Therefore, if a latency-sensitive application is initiated on the UE, the UE may need to be reconfigured from a long DRX cycle value to a short DRX cycle value to properly handle low-latency traffic.

[0031] In the proposed method, the UE can be configured with relatively large DRX cycle values ​​(e.g., 300ms, 1000ms) for power saving. For sporadic low-latency traffic with varying characteristics, network entities can adaptively adjust the UE's PDCCH monitoring behavior without RRC reconfiguration of the DRX configuration by indicating to the UE, during normal monitoring opportunities, (1) not wake up but perform further monitoring of the power-saving PDCCH during additional monitoring opportunities that occur within subsequent DRX cycles, or (2) not wake up for one to several DRX cycles.

[0032] This disclosure proposes improved DRX and power-saving PDCCH operation that can flexibly adapt to various traffic conditions and provide power-saving benefits even for sporadic low-latency traffic.

[0033] In one embodiment, the UE in C-DRX operation determines a first set and a second set of monitoring opportunities for a power-saving PDCCH. Furthermore, the UE may be instructed not to wake up to monitor a PDCCH during a subsequent DRX cycle via a power-saving PDCCH detected during one of the monitoring opportunities in the first set of monitoring opportunities, but to monitor another power-saving PDCCH during at least one monitoring opportunity in the second set of monitoring opportunities during a subsequent DRX cycle.

[0034] In another embodiment, the UE receives PDCCH skip instructions for each group of search space sets via DCI format with scheduling information, or via DCI format without scheduling information. The time at which the UE initiates PDCCH skipping is determined based on whether there is at least one active search space set and whether there are potential retransmissions.

[0035] Figure 1 shows a wireless communication system 100 according to an embodiment of the present disclosure that supports improved intermittent reception and power saving for user equipment. In one embodiment, the wireless communication system 100 includes at least one remote unit 105, a radio access network ("RAN") 120, and a mobile core network 140. The RAN 120 and the mobile core network 140 form a mobile communication network. The RAN 120 may consist of a base unit 110 with which the remote unit 105 communicates using a wireless communication link 115. Although Figure 1 illustrates a specific number of remote units 105, base unit 110, wireless communication link 115, RAN 120, and mobile core network 140, those skilled in the art will recognize that any number of remote units 105, base unit 110, wireless communication link 115, RAN 120, and mobile core network 140 may be included in the wireless communication system 100.

[0036] In one implementation, RAN120 conforms to the 5G system as defined in the 3GPP® specification. In another implementation, RAN120 conforms to the LTE system as defined in the 3GPP specification. However, more generally, the wireless communication system 100 may implement any other open or proprietary communication network, among other networks, such as WiMAX. This disclosure is not limited to any particular wireless communication system architecture or protocol implementation.

[0037] In one embodiment, the remote unit 105 may include computing devices such as desktop computers, laptop computers, personal digital assistants ("PDAs"), tablet computers, smartphones, smart televisions (e.g., Internet-connected televisions), smart appliances (e.g., Internet-connected home appliances), set-top boxes, game consoles, security systems (including security cameras), in-vehicle computers, and network devices (e.g., routers, switches, modems). In some embodiments, the remote unit 105 may include wearable devices such as smartwatches, fitness bands, and optical head-mounted displays. Furthermore, the remote unit 105 may be referred to as a UE, subscriber unit, mobile, mobile station, user, terminal, mobile terminal, fixed terminal, subscriber station, user terminal, wireless transmit / receive unit ("WTRU"), device, or other terms used in the art.

[0038] The remote unit 105 may communicate directly with one or more base units 110 in the RAN 120 via uplink ("UL") and downlink ("DL") communication signals. Furthermore, the UL and DL communication signals may be carried via a wireless communication link 115, where the RAN 120 is an intermediate network that provides the remote unit 105 with access to the mobile core network 140.

[0039] In some embodiments, the remote unit 105 communicates with the application server 151 via a network connection to the mobile core network 140. For example, an application 107 on the remote unit 105 (e.g., a web browser, media client, or telephone / VoIP application) may cause the remote unit 105 to establish a PDU session (or other data connection) with the mobile core network 140 via the RAN 120. The mobile core network 140 then uses the PDU session to relay traffic between the remote unit 105 and the application server 151 in the packet data network 150. The remote unit 105 may establish one or more PDU sessions (or other data connections) with the mobile core network 140. Thus, the remote unit 105 may simultaneously have at least one PDU session for communicating with the packet data network 150 and at least one PDU session for communicating with another data network (not shown).

[0040] The base units 110 may be distributed across a geographical area. In some embodiments, the base units 110 may also be referred to as access terminals, access points, bases, base stations, Node-B, eNB, gNB, Home Node-B, relay nodes, RAN nodes, or any other terms used in the art. The base units 110 are generally part of a RAN, such as a Radio Access Network ("RAN") 120, which may include one or more controllers communicably coupled to one or more corresponding base units 110. These and other elements of the Radio Access Network are not shown but are generally well known to those skilled in the art. The base units 110 connect to a mobile core network 140 via the RAN 120.

[0041] The base unit 110 may serve several remote units 105 within a serving area, such as a cell or cell sector, via a wireless communication link 115. The base unit 110 may communicate directly with one or more of the remote units 105 via communication signals. Generally, the base unit 110 transmits DL communication signals to serve the remote units 105 in the time, frequency, and / or spatial domains. Furthermore, DL communication signals may be carried via the wireless communication link 115. The wireless communication link 115 may be any suitable carrier in the licensed or unlicensed radio spectrum. The wireless communication link 115 facilitates communication between one or more of the remote units 105 and / or one or more of the base units 110. Note that the base unit 110 and the remote units 105 may communicate over the unlicensed radio spectrum.

[0042] In one embodiment, the mobile core network 140 is a 5G core ("5GC") or evolved packet core ("EPC"), which may be coupled to a packet data network 150, such as the Internet and a private data network, among other data networks. The remote unit 105 may have a contract or other account with the mobile core network 140. Each mobile core network 140 belongs to a single public land mobile network ("PLMN"). This disclosure is not limited to any particular wireless communication system architecture or protocol implementation.

[0043] The mobile core network 140 includes several network functions ("NFs"). As shown in the figure, the mobile core network 140 includes several user plane functions ("UPFs") 141. The mobile core network 140 also includes several control plane functions, including, but not limited to, an access and mobility management function ("AMF") 143, a session management function ("SMF") 145, an authentication server function ("AUSF") 147, and an integrated data management function ("UDM") 149 that serve the RAN 120. In some embodiments, the mobile core network 140 may also include a policy control function ("PCF"), a network repository function ("NRF") (used by various NFs to discover and communicate with each other via APIs), or other NFs defined for 5GC.

[0044] In various embodiments, the mobile core network 140 supports different types of mobile data connections and different types of network slices, with each mobile data connection utilizing a specific network slice. Here, “network slice” refers to a portion of the mobile core network 140 optimized for a particular traffic type or communication service. Network instances may be identified by S-NSSAI, but the set of network slices permitted for use by the remote unit 105 is identified by NSSAI. In some embodiments, different network slices may include separate instances of network functions such as SMF145 and UPF141. In some embodiments, different network slices may share some common network functions such as AMF143. For simplicity of illustration, different network slices are not shown in Figure 1, but they are also supported.

[0045] While certain numbers and types of network functions are illustrated in Figure 1, those skilled in the art will recognize that any number and types of network functions may be included in the mobile core network 140. Furthermore, if the mobile core network 140 is an EPC, the illustrated network functions can be replaced by appropriate EPC entities such as MME, S-GW, P-GW, HSS, etc. In some embodiments, the mobile core network 140 may include an AAA server.

[0046] In various embodiments, the remote units 105 can communicate directly with each other using sidelink ("SL") communication signals 117 (e.g., device-to-device communication). V2X is an example of SL communication, where V2X transmission can be performed using V2X resources. The remote units 105 may be assigned different V2X communication resources for different V2X modes. Mode 1 corresponds to a V2X communication mode scheduled by an NR network. Mode 2 corresponds to a V2X communication mode scheduled by an LTE network.

[0047] Figure 1 illustrates the components of a 5G RAN and 5G core network, but the embodiments described apply to other types of communication networks and RATs, including variations of IEEE 802.11, GSM, GPRS, UMTS, variations of LTE, CDMA2000, Bluetooth, ZigBee, Sigfoxx, etc. For example, in a variation of LTE involving an EPC, the AMF141 may be mapped to the MME, the SMF may be mapped to the control plane portion of the PGW and / or the MME, the UPF may be mapped to the SGW and user plane portion of the PGW, and the UDM / UDR may be mapped to the HSS, and so on.

[0048] In the following explanation, the term "gNB" is used for base stations, but it can be replaced with any other radio access node, such as RAN node, eNB, BS, gNB, AP, NR, etc. Furthermore, the operation is described primarily in the context of 5G NR.

[0049] In Rel-16 NR, a UE in Radio Resource Control ("RRC") connection mode, configured with one or more DRX configurations (e.g., via RRC IE "DRX-Config" and additionally "DRX-ConfigSecondaryGroup"), may also be configured with a Bandwidth Part ("BWP") containing the configuration information for a power-saving PDCCH (i.e., DCI format 2_6). If the BWP containing the power-saving PDCCH configuration information is the UE's active BWP, the UE monitors the power-saving PDCCH. One or more opportunities to monitor the power-saving PDCCH may be configured within a slot or multiple slots prior to the start of the DRX ON time length (e.g., outside of the "active time" during which the UE performs PDCCH monitoring).

[0050] The UE begins monitoring the power-saving PDCCH using a cyclic redundancy check ("CRC") scrambled by the power-saving-wireless network transient identifier ("PS-RNTI") at a configured power-saving offset value (e.g., denoted as PS_offset) before the start of the DRX ON time length, up to the end of the configured monitoring range. The monitoring range is determined based on the search space configuration of the power-saving PDCCH (e.g., based on the parameters "monitoringSlotPeriodicityAndOffset", "duration", and "monitoringSymbolsWithinSlot"), and it is smaller than the configured power-saving offset value (e.g., PS_offset) to give the UE sufficient time to prepare the PDCCH monitoring at the beginning of the DRX ON time length. If the UE is in the DRX active time between power-saving PDCCH monitoring opportunities, the UE starts the drx-onDurationTimer at the beginning of the next DRX cycle.

[0051] With regard to PDCCH monitoring instructions and SCell dormancy / non-dormancy behavior (for example, from 3GPP TS 38.213), in one embodiment, a UE configured using DRX mode operation may be given the following for detection of DCI format 2_6 in PDCCH reception on PCell or SpCell: i.ps-RNTI for DCI Format 2_6 PS-RNTI The number of dci-Format2-6 search space sets for monitoring PDCCH for detection of DCI format 2_6 in the active DL BWP of PCell or SpCell using a common search space as described in section ii.10.1. iii. Payload size for DCI format 2_6 according to sizeDCI_2-6 iv.psPosition The position of the wake-up instruction bit in DCI format 2_6 according to DCI2-6. however 1. A value of "0" for the wake-up instruction bit indicates, when reported to the upper layer, that the drx-onDurationTimer should not be started for the next long DRX cycle. 2. A value of "1" for the wake-up instruction bit, when reported to the upper layer, instructs the drx-onDurationTimer to start for the next long DRX cycle. When the UE is given the number of groups of SCells configured by v.dormancyGroupOutsideActiveTime, the bitmap, however 1. The bitmap position is immediately after the wake-up instruction bit. 2. The bitmap size is equal to the number of groups of SCells that make up the bitmap, and each bit of the bitmap corresponds to a group of SCells from that number of groups of SCells that make up the bitmap. 3. A value of "0" in the bitmap indicates the active DL BWP for the UE provided by the dormantBWP-Id for each activated SCell in the corresponding group of configured SCells. 4. The value of a bit "1" in a bitmap is as follows: a. If the current active DL BWP is a dormant DL BWP, the active DL BWP for the UE for each activated SCell in the corresponding group of configured SCells is provided by firstOutsideActiveTimeBWP-Id. b. If the current active DL BWP is not a dormant DL BWP, the current active DL BWP for the UE for each activated SCell in the corresponding group of configured SCells vi. Offset by ps-Offset indicating time, where UE starts monitoring PDCCH for DCI format 2_6 detection according to the number of search space sets before drx-onDurationTimer starts in PCell or SpCell slot. 1. For each search space set, the PDCCH monitoring opportunity is the first T indicated by duration. s PDCCH monitoring opportunity within each slot, or if duration is not given. s = 1 slot, the first T s Starts in the first slot of each slot and ends before the drx-onDurationTimer starts.

[0052] In a PDCCH monitoring opportunity related to DRX cycles of the same length, in one embodiment, the UE does not expect to detect one more DCI format 2_6 when the wake-up instruction bit value of the UE is different or when the bitmap value for the UE is different.

[0053] In one embodiment, the UE does not monitor PDCCH to detect DCI format 2_6 during the active time.

[0054] If the UE reports a requirement of X slots for the Active DL BWP before the start of the slot in which the UE initiates drx-onDurationTimer, in one embodiment, the UE is not required to monitor PDCCH for detection of DCI format 2_6 between the X slots, where X corresponds to the subcarrier spacing ("SCS") requirement for the Active DL BWP in Table 1.

[0055] [Table 1]

[0056] Given a set of search spaces for the UE to monitor the PDCCH for detection of DCI format 2_6 in the active DL BWP of a PCell or SpCell, and when the UE detects DCI format 2_6, in one embodiment, the physical layer of the UE reports the value of the UE's wake-up instruction bit to the upper layer for the next long DRX cycle.

[0057] If the UE is given a set of search spaces to monitor the PDCCH for detection of DCI format 2_6 in the active DL BWP of a PCell or SpCell, and the UE does not detect DCI format 2_6, in one embodiment the physical layer of the UE does not report the value of the wake-up instruction bit to the upper layer for the next long DRX cycle.

[0058] If the UE is given a set of search spaces to inspect PDCCH for detection of DCI format 2_6 in the active DL BWP of PCell or SpCell, the UE will: i. During all corresponding PDCCH monitoring opportunities outside the active time prior to the next long DRX cycle, it is not necessary to monitor PDCCH for detection of DCI format 2_6, or ii. Outside the active time of the next long DRX cycle, there is no opportunity for PDCCH monitoring to detect DCI format 2_6.

[0059] The UE's physical layer reports a value of 1 for the wake-up instruction bit for the next long DRX cycle to the upper layer.

[0060] Regarding the switching of search space groups, in one embodiment, the UE may be given a group index for each Type3-PDCCH CSS set or USS set by searchSpaceGroupIdList-r16 for PDCCH monitoring in the serving cell. If the UE is not given a searchSpaceGroupIdList-r16 for the search space set, the following procedure cannot be applied to PDCCH monitoring according to the search space set.

[0061] If the UE is given a searchSpaceSwitchingGroupList-r16 indicating one or more groups of serving cells, in one embodiment the following procedure applies to all serving cells within each group. Otherwise, the following procedure applies only to the serving cells for which the UE is given a searchSpaceGroupIdList-r16.

[0062] When the UE is given searchSpaceGroupIdList-r16, in one embodiment, the UE resets the PDCCH monitoring according to the search space set with group index 0, if provided by searchSpaceGroupIdList-r16.

[0063] UE has a number of symbols P switch It may also be given by searchSpaceSwitchingDelay-r16, P switch The minimum values ​​for UE processing capacity 1, UE processing capacity 2, and SCS configuration μ are given in Table 2. UE processing capacity 1 for SCS configuration μ is applied unless the UE indicates support for UE processing capacity 2.

[0064] [Table 2]

[0065] In one embodiment, the UE may be given a timer value by searchSpaceSwitchingTimer-r16 for a serving cell to which the UE is given searchSpaceGroupIdList-r16, or, if searchSpaceSwitchingGroupList-r16 is given, a timer value for a set of serving cells to which it is given. The UE decrements the timer value by 1 after each slot based on a reference SCS configuration which is the smallest SCS configuration μ among all configured DL BWPs in the serving cell or set of serving cells. The UE maintains the reference SCS configuration during the timer decrement procedure.

[0066] In one embodiment, the UE is given the position of the search space set group switching flag field for a serving cell in DCI format 2_0 by SearchSpaceSwitchTrigger-r16, and i. If the UE detects DCI format 2_0 and the value of the search space set group switching flag field in DCI format 2_0 is 0, then the UE will have at least P switch In the first slot following the symbol, on the serving cell, begin monitoring PDCCH according to the search space set where the group index is 0, and stop monitoring PDCCH according to the search space set where the group index is 1. ii. If the UE detects DCI format 2_0 and the value of the search space set group switching flag field in DCI format 2_0 is 1, then the UE will have at least P switchOn the serving cell in the first slot after the symbol, start monitoring the PDCCH according to the search space set with a group index of 1, stop monitoring the PDCCH according to the search space set with a group index of 0, and the UE sets the timer value to the value given by searchSpaceSwitchingTimer-r16. And / or iii. When the UE monitors the PDCCH on the serving cell according to the search space set with a group index of 1, the UE is at least P symbols after the last symbol of the remaining channel occupancy time for the serving cell indicated by DCI format 2_0 or after the slot in which the timer expires switch On the serving cell at the beginning of the first slot after the symbol, start monitoring the PDCCH on the serving cell according to the search space set with a group index of 0 and stop monitoring the PDCCH according to the search space set with a group index of 1.

[0067] If the UE is not given SearchSpaceSwitchTrigger-r16 for the serving cell, and i. When the UE detects a DCI format by monitoring the PDCCH according to the search space set with a group index of 0, the UE is at least P symbols after the last symbol of the PDCCH of the DCI format switch On the serving cell in the first slot after the symbol, start monitoring the PDCCH according to the search space set with a group index of 1, stop monitoring the PDCCH according to the search space set with a group index of 0, and if the UE detects a DCI format by monitoring the PDCCH in any search space set, the UE sets the timer value to the value given by searchSpaceSwitchingTimer-r16. And / or ii. If the UE monitors the PDCCH on a serving cell according to a search space set where the group index is 1, the UE will, from the slot where the timer expires, or, if the UE is given a search space set to monitor the PDCCH to detect DCI format 2_0, from the last symbol of the remaining channel occupancy time for the serving cell indicated by DCI format 2_0, at least P switch At the beginning of the first slot following the symbol, on the serving cell, begin monitoring the PDCCH on the serving cell according to the search space set where the group index is 0, and stop monitoring the PDCCH according to the search space set where the group index is 1.

[0068] In one embodiment, the UE determines the slots and symbols within the slots in which PDCCH monitoring should be started or stopped, based on the smallest SCS configuration μ among all configured DL BWPs in a serving cell or set of serving cells, and in a serving cell in which, if any, the UE detects a corresponding DCI format 2_0 in which PDCCH is received and triggers the start or stop of PDCCH monitoring according to the search space set, according to the search space set for a serving cell in which the UE is given a searchSpaceGroupIdList-r16, or, if a searchSpaceSwitchingGroupList-r16 is given, according to the search space set for a set of serving cells.

[0069] In one embodiment, DCI format 2_0 (for example, from 3GPP TS 38.212) is used to indicate the slot format, channel occupancy time ("COT") length, available resource block ("RB") set, and search space set group switching.

[0070] The following information may be transmitted in DCI format 2_0 with CRC scrambled by slot format instruction ("SFI")-RNTI: i. When the upper-level parameter slotFormatCombToAddModList is configured 1. Slot format indicator 1, slot format indicator 2, ..., slot format indicator N ii. When the upper-level parameter availableRB-SetsToAddModList-r16 is configured 1. Available RB Set Indicator 1, Available RB Set Indicator 2, ..., Available RB Set Indicator N1 iii. When the upper-level parameter co-DurationsPerCellToAddModList-r16 is configured 1. COT Time Length Indicator 1, COT Time Length Indicator 2, ..., COT Time Length Indicator N2 iv. When the upper-level parameter searchSpaceSwitchTriggerToAddModList-r16 is configured 1. Search space set group switching flag 1, search space set group switching flag 2, ..., search space set group switching flag M

[0071] The size of DCI format 2_0 can be configured by the upper layers up to a maximum of 128 bits.

[0072] In one embodiment, DCI format 2_6 (for example, from 3GPP TS 38.212) is used to notify power saving information outside of the DRX active time for one or more UEs.

[0073] In one embodiment, the following information is transmitted in DCI format 2_6 using CRC scrambled by PS-RNTI. a. Block number 1, block number 2, ..., block number N Here, the starting position of the block is determined by the parameter ps-PositionDCI-2-6, which is provided by the upper layer for the UE composed of the block.

[0074] In one embodiment, when the UE is configured using the upper layer parameters ps-RNTI and dci-Format2-6, one block is configured for the UE by the upper layer, and the following fields are defined for that block. i. Wake-up instruction - 1 bit ii. SCell dormancy instruction - 0 bits if the upper layer parameter dormancyGroupOutsideActiveTime is not configured, otherwise a bitmap of 1, 2, 3, 4, or 5 bits determined according to the upper layer parameter dormancyGroupOutsideActiveTime, where each bit corresponds to one of the SCell groups configured by the upper layer parameter dormancyGroupOutsideActiveTime, and the bits from the most significant bit ("MSB") to the least significant bit ("LSB") of the bitmap correspond to the first to last configured SCell group.

[0075] The size of DCI format 2_6 can be indicated by the upper-level parameter sizeDCI-2-6.

[0076] With respect to DRX (for example, from 3GPP TS 38.321), a Media Access Control ("MAC") entity may be configured by an RRC with DRX functionality to control the UE's PDCCH monitoring activities for the MAC entity's Cell ("C")-RNTI, Cancellation Indicator ("CI")-RNTI, Configured Scheduling ("CS")-RNTI, Interruption ("INT")-RNTI, SFI-RNTI, Semi-Persistent ("SP") Channel State Information ("CSI")-RNTI, Transmit Power Control ("TPC") Physical Uplink Control Channel ("PUCCH")-RNTI, TPC Physical Uplink Shared Channel ("PUSCH")-RNTI, TPC Sounding Reference Signal ("SRS")-RNTI, and Availability Indicator ("AI")-RNTI. With DRX operation, the MAC entity shall also monitor the PDCCH in accordance with the requirements found in other sections of this specification. When DRX is configured while in the RRC_CONNECTED state, the MAC entity may discontinuously monitor the PDCCH for all activated serving cells using the DRX behavior specified in this section; otherwise, the MAC entity shall monitor the PDCCH. i. Note 1: If sidelink resource allocation mode 1 is configured by RRC, the DRX function is not configured.

[0077] In one embodiment, the RRC controls the DRX operation by configuring the following parameters. i.drx-onDurationTimer: Time duration at the beginning of the DRX cycle ii.drx-SlotOffset: Delay before starting drx-onDurationTimer iii.drx-InactivityTimer: Time duration after a PDCCH opportunity indicating a new UL or DL ​​transmission for a MAC entity. iv.drx-RetransmissionTimerDL (per DL HARQ process, excluding broadcast processes): Maximum time until DL retransmission is received v.drx-RetransmissionTimerUL (per UL HARQ process): Maximum time until a grant for UL retransmission is received. vi.drx-LongCycleStartOffset: Defines the long DRX cycle and the subframes from which the long and short DRX cycles begin. drx-StartOffset vii.drx-ShortCycle (optional): Short DRX cycle viii.drx-ShortCycleTimer(Optional): The length of time the UE should follow a short DRX cycle. ix.drx-HARQ-RTT-TimerDL (per DL HARQ process, excluding broadcast processes): Minimum time until DL allocation for HARQ retransmission is expected by the MAC entity. x.drx-HARQ-RTT-TimerUL(UL HARQ per process): Minimum time until UL HARQ retransmission grant is expected by MAC entities xi.ps-Wakeup (optional): Configuration to start the associated drx-onDurationTimer if DCP is monitored but not detected. xii.ps-TransmitOtherPeriodicCSI(Optional): A configuration to report a periodic CSI that is not L1-RSRP on PUCCH for the duration indicated by drx-onDurationTimer, when DCP is configured but the associated drx-onDurationTimer is not started. xiii.ps-TransmitPeriodicL1-RSRP(Optional): A configuration for sending periodic CSIs, which are L1-RSRP on PUCCH, for the duration indicated by the drx-onDurationTimer, when DCP is configured but the associated drx-onDurationTimer is not started.

[0078] In one embodiment, a serving cell of a MAC entity may be configured by an RRC in two DRX groups, each with separate DRX parameters. When the RRC does not constitute a secondary DRX group, there is only one DRX group, and all serving cells belong to that single DRX group. When two DRX groups are configured, each serving cell is uniquely assigned to one of the two groups. The DRX parameters configured separately for each DRX group are drx-onDurationTimer and drx-InactivityTimer. The DRX parameters common to DRX groups are drx-SlotOffset, drx-RetransmissionTimerDL, drx-RetransmissionTimerUL, drx-LongCycleStartOffset, drx-ShortCycle (optional), drx-ShortCycleTimer (optional), drx-HARQ-RTT-TimerDL, and drx-HARQ-RTT-TimerUL.

[0079] When a DRX cycle is configured, in one embodiment, the active time for a serving cell in a DRX group is: i. The duration for which a drx-onDurationTimer or drx-InactivityTimer configured for a DRX group is running, or ii. The amount of time that drx-RetransmissionTimerDL or drx-RetransmissionTimerUL is running in any serving cell within the DRX group, iii.ra-ContentionResolutionTimer or msgB-ResponseWindow is running, or iv. The time that a scheduling request has been sent on PUCCH and remains unresolved, or v. A new transmission addressed to the MAC entity's C-RNTI has not been received after the successful reception of a random access response for a random access preamble that was not selected by the MAC entity from among the contention-based random access preambles, PDCCH Includes.

[0080] In a first embodiment of the proposed strategy, an improved DRX operation using an improved US power-saving DCI is discussed. In one embodiment, during connected-mode DRX (C-DRX) operation, the UE determines a first set of monitoring opportunities and a second set of monitoring opportunities for a power-saving PDCCH. Furthermore, the UE may be instructed not to wake up to monitor the PDCCH during a subsequent (e.g., next) DRX cycle via a power-saving PDCCH detected at one of the monitoring opportunities in the first set of monitoring opportunities (e.g., the UE does not start a DRX ON time length by not starting a "drx-onDurationTimer"), but to monitor another power-saving PDCCH at at least one monitoring opportunity in the second set of monitoring opportunities within that subsequent DRX cycle.

[0081] In one embodiment, the UE receives configuration information for a power-saving PDCCH (e.g., DCI format in which the CRC is scrambled using PS-RNTI), which includes at least one search space set and associated control resource set ("CORESET"), the at least one search space set including information for multiple monitoring opportunities, which include multiple normal monitoring opportunities (e.g., a first set of monitoring opportunities) and multiple additional monitoring opportunities (e.g., a second set of monitoring opportunities) for the power-saving PDCCH.

[0082] In one example, a first search space set of at least one search space set includes information on multiple monitoring opportunities, each comprising multiple normal monitoring opportunities (e.g., a first set of monitoring opportunities), and a second search space set of at least one search space set includes information on multiple additional monitoring opportunities for a power-saving PDCCH (e.g., a second set of monitoring opportunities). The multiple normal monitoring opportunities comprise monitoring opportunities present in each DRX cycle time interval, the start time of the time interval determined by a first time offset (indicated via the parameter ps-Offset) prior to the beginning of the slot in which the subsequent DRX cycle starts, and the end time of the time interval determined by a second time offset prior to the beginning of the slot in which the subsequent DRX cycle starts. The second time offset is determined by the minimum required time gap value X in the slot before the UE starts the drx-onDurationTimer, which the UE may report as part of the capability information (if not reported, X is assumed to be 0). The multiple additional monitoring opportunities comprise monitoring opportunities not included in each DRX cycle time interval (defined above).

[0083] In one embodiment, the UE performs monitoring of the power-saving PDCCH during multiple normal monitoring opportunities. i. Wake up for Y1 subsequent DRX cycles (for example, Y1 is selected from a first set of configured values, e.g., {1, 2, 4, 8}). 1. The UE skips monitoring the power-saving PDCCH during normal monitoring opportunities within subsequent (Y1-1) consecutive DRX cycles. ii. Y does not wake up for two DRX cycles (for example, Y2 is selected from a second set of configured values, e.g., {1, 2, 3, 4}). 1. The UE skips monitoring the power-saving PDCCH during normal monitoring opportunities within subsequent (Y2-1) consecutive DRX cycles. iii. The power-saving PDCCH will not wake up in the subsequent DRX cycle, but will monitor one or more additional monitoring opportunities within the subsequent DRX cycle. Detects the DCI format of the power-saving PDCCH, including the instructions selected from.

[0084] In one embodiment, when the UE receives an instruction to monitor the power-saving PDCCH for one or more additional monitoring opportunities within a subsequent DRX cycle, in order to not wake up during a normal monitoring opportunity for the power-saving PDCCH in a subsequent DRX cycle, the UE returns to sleep without fully waking up for PDCCH monitoring (e.g., monitoring the PDCCH for DL ​​allocation, UL grant, uplink power control commands, slot format instructions, DL preemption, and / or UL cancellation) or starting the drx-onDurationTimer at the beginning of the subsequent DRX cycle, and then partially wakes up later to monitor the power-saving PDCCH for one or more additional monitoring opportunities. In one embodiment, the UE performs monitoring of the power-saving PDCCH for one or more additional monitoring opportunities in a DRX cycle, for example, i. Wake up and start drx-onDurationTimer2 during the DRX cycle (drx-onDurationTimer2 is used for ON time length which can be started at any time within the DRX cycle) (UE is in the DRX active time, and the active time includes the time drx-onDurationTimer2 is running (in addition to the conditions defined in TS 38.321 (V16.3.0))), ii. Wake up and start the drx-onDurationTimer during the DRX cycle (the duration of the drx-onDurationTimer is reduced (from its configured initial value) by an offset. The offset may be the time between the slot in which the UE starts the drx-onDurationTimer and the slot in which the UE detects the DCI format of the low-power PDCCH, where X slots later, and X is the minimum required time gap (in slots) between receiving the wake-up instruction and starting PDCCH monitoring. In another example, the offset may correspond to the time between when the UE starts the drx-onDurationTimer and a point delayed by a first time length (as described below) from the end of the additional monitoring opportunity in which the UE detects the DCI format of the low-power PDCCH). iii. Wake up and start the drx-InactivityTimer during the DRX cycle. iv. Wake up and start a timer, such as ps-WakeupTimer, during the DRX cycle (the UE is in the DRX active time, and the active time includes the time the ps-WakeupTimer is running. The duration of the ps-WakeupTimer is based on the duration of the drx-onDurationTimer and when (e.g., in which slot) the UE detects the DCI format of the low-power PDCCH. In one example, the timer duration is set to the initial value of the drx-onDurationTimer, which is less than the offset. The offset is... The offset may be the time between the slot in which the UE starts the drx-onDurationTimer and the slot in which the UE detects the DCI format of the low-power PDCCH, where X slots later, and X is the minimum required time gap (in slots) between receiving the wake-up instruction and starting PDCCH monitoring. In another example, the offset may correspond to the time between when the UE starts the drx-onDurationTimer and a point delayed by a first time length (as described below) from the end of the additional monitoring opportunity in which the UE detects the DCI format of the low-power PDCCH. v. Do not wake up, but continue monitoring the low-power PDCCH for the remaining additional monitoring opportunities within the DRX cycle. Detects the DCI format of a power-saving PDCCH that includes instructions selected from one or more of the following.

[0085] In another example, the instructions are: i. Wake up over Y1 DRX cycles that include that DRX cycle (for example, Y1 is selected from a first set of configured values, e.g., {1, 2, 4, 8}). 1. The UE starts drx-onDurationTimer2 (or ps-WakeupTimer or drx-onDurationTimer with a shorter duration) for the DRX cycle, stops monitoring the power-saving PDCCH for the remaining additional monitoring opportunities within the DRX cycle, and skips monitoring the power-saving PDCCH for the normal monitoring opportunities within the subsequent (Y1-1) consecutive DRX cycles. ii. Y does not wake up for two DRX cycles (for example, Y2 is selected from a second set of configured values, e.g., {1, 2, 3, 4}). 1. The UE stops monitoring the power-saving PDCCH for the remaining additional monitoring opportunities within the DRX cycle and skips monitoring the power-saving PDCCH for the subsequent (Y2-1) consecutive monitoring opportunities within the DRX cycle. iii. Do not wake up, but continue to monitor the low-power PDCCH for any additional monitoring opportunities within the DRX cycle. Selected from.

[0086] In one embodiment, if the UE receives a signal to wake up for an additional monitoring opportunity within a DRX cycle, the UE wakes up and begins monitoring the PDCCH (for example, by starting drx-onDurationTimer2 (or ps-WakeupTimer or drx-onDurationTimer with a shorter time duration) during the DRX cycle) after a first time duration from the end of the additional monitoring opportunity in which the UE detects the DCI format of the low-power PDCCH. The first time duration may be determined by the UE based on a reported minimum time gap, based on the minimum time gap required between receiving the wake-up signal and starting PDCCH monitoring, or it may be configured by the network entity. The value of drx-onDurationTimer2 may be set to be the same as or different from the value of drx-onDurationTimer.

[0087] In one embodiment, if the UE receives instructions not to further monitor the power-saving PDCCH without waking it up during additional monitoring opportunities within the DRX cycle, the UE will not monitor the power-saving PDCCH during the remaining additional monitoring opportunities within the DRX cycle, but will monitor the power-saving PDCCH during the normal monitoring opportunities of the DRX cycle.

[0088] In one embodiment, if the UE receives instructions not to further monitor the power-saving PDCCH without waking it up during an additional monitoring opportunity within the DRX cycle, the UE will not start drx-onDurationTimer2 (or ps-WakeupTimer or drx-onDurationTimer with a shorter duration) during the DRX cycle, but will continue to monitor the power-saving PDCCH during the next additional monitoring opportunity within the DRX cycle.

[0089] In one embodiment, the UE may be configured with DRX cycles that have relatively large DRX cycle values ​​for power saving (e.g., 300ms, 600ms, 1000ms). If a latency-sensitive application is initiated for the UE and there are no imminent packets in the buffer that need to be delivered to the UE, the network entity may, during normal monitoring opportunities, indicate to the UE that it should not wake up, but should perform additional monitoring of the power-saving PDCCH during additional monitoring opportunities configured within the next DRX cycle. By monitoring the PDCCH-based power-saving channel during additional monitoring opportunities configured throughout the next DRX cycle, the UE does not miss latency-sensitive packets while remaining in a "sleep" state for most of the time in the next DRX cycle when there is no data to send or receive.

[0090] In one example, the UE is instructed via a 2-bit DCI bitfield to wake up, not wake up for the following number of DRX cycles, not wake up for the following number of DRX cycles, and not wake up for additional monitoring of the low-power PDCCH in the next DRX cycle.

[0091] In another example, the DCI format 2_6z is used to communicate improved power saving information outside of the DRX active time for one or more UEs.

[0092] The following information is transmitted in DCI format 2_6z, with the CRC scrambled by PS-RNTI: i. Block number 1, block number 2, ... block number N, where the starting position of a block is determined by the parameter ps-PositionDCI-2-6z provided by the upper layer for the UE composed of that block.

[0093] If the UE is composed of the upper layer parameters ps-RNTI and dci-Format2-6z, then one block is configured for the UE by the upper layer, and the following fields are defined for that block. i. Wake-up instruction - 2 bits. 00: Wake up, 01: Do not wake up for 1 DRX cycle, 10: Do not wake up for 2 DRX cycles, 11: Do not wake up, but continue monitoring for additional monitoring opportunities in the next DRX cycle. ii. SCell dormancy instruction - 0 bits if the upper-layer parameter dormancyGroupOutsideActiveTime is not configured. Otherwise, a 1, 2, 3, 4, or 5-bit bitmap determined according to the upper-layer parameter dormancyGroupOutsideActiveTime, where each bit corresponds to one of the SCell groups configured by the upper-layer parameter dormancyGroupOutsideActiveTime, and the MSB to LSB of the bitmap corresponds to the first to last configured SCell group.

[0094] In one embodiment, the size of the DCI format 2_6z is indicated by the upper layer parameter sizeDCI-2-6z.

[0095] In another example, a network entity may configure a set of UEs for a power-saving PDCCH during a normal monitoring opportunity of the UE, distinct from a set of UEs for a power-saving PDCCH during an additional monitoring opportunity of the UE. Thus, the UE receives separate configurations for power-saving PDCCHs, one for normal monitoring opportunities and the other for additional monitoring opportunities. For example, PS-RNTI, the number of search space sets by dci-Format2-6z, the payload size of DCI Format 2_6 by sizeDCI_2-6z, and / or the starting location of DCI Format 2_6z by psPositionDCI-2-6z may be configured separately for monitoring a power-saving PDCCH during an additional monitoring opportunity. The UE may also receive a separate configuration for ps-Wakeup, i.e., a configuration for starting the relevant drx-onDurationTimer2 (or a shorter ps-WakeupTimer or drx-onDurationTimer) in case the power-saving PDCCH is monitored but not detected during an additional monitoring opportunity.

[0096] In a second embodiment of the proposed strategy, the UE receives PDCCH skip instructions for each search space set or each group of search space sets (e.g., whether to stop / skip PDCCH monitoring or restart PDCCH monitoring) via DCI format along with scheduling information (e.g., DL allocation, UL grant, DL SPS activation / release, type2 configuration grant ("CG")-PUSCH activation / release) or via DCI format without scheduling information.

[0097] In one embodiment, if a PDCCH skip instruction indicates a PDCCH skip for a UE-specific search space set, and there is at least one active UE-specific search space set that does not include the indicated search space set (e.g., at least one UE-specific search space set for which the PDCCH is not skipped), the UE stops monitoring the PDCCH for the indicated search space set from a point in time a number of application delays after the last PDCCH reception containing the instruction (or the last monitoring opportunity for which the instruction is received). The application delay may be configured by a higher layer and / or dynamically indicated in the DCI using a PDCCH skip instruction by a network entity.

[0098] In one embodiment, if a PDCCH skip instruction indicates a PDCCH skip for a UE-specific search space set, and there are no active UE-specific search space sets that do not include the indicated search space set (for example, if a PDCCH skip is applied or has been applied for all configured UE-specific search space sets), the UE will monitor the PDCCH for the indicated search space set. a. The application should not be made earlier than the application delay of the last PDCCH reception containing that instruction (or the last monitoring opportunity in which that instruction is received). b. If drx-HARQ-RTT-TimerDL or drx-RetransmissionTimerDL is running, when drx-RetransmissionTimerDL expires, it performs the DL DCI format for the search space set. If c.drx-HARQ-RTT-TimerUL or drx-RetransmissionTimerUL is running, when drx-RetransmissionTimerUL expires, it will perform the UL DCI formatting for the search space set. d. If drx-onDurationTimer or drx-InactivityTimer is running, stop drx-onDurationTimer or drx-InactivityTimer.

[0099] For example, if the UE is given a set of search spaces to monitor PDCCH for the detection of DCI format 0_1 ​​and DCI format 1_1, and if one or both of DCI format 0_1 ​​and DCI format 1_1 contain a PDCCH skip instruction field, a. The PDCCH skip instruction field is a bitmap with a size equal to the number of configured search space sets (or the number of groups of configured search space sets) given by searchSpaceGroupList. b. Each bit in the bitmap corresponds to a configured search space set (or a group of configured search space sets) from that number of configured search space sets (or a group of that number of configured search space sets). c. A value of "1" for a bit in the bitmap indicates a skip of PDCCH for the corresponding search space set (or the corresponding group of search space sets). d. The value "0" for a bitmap bit is i. If PDCCH skipping is not activated for the corresponding search space set (or the corresponding group of the search space set), PDCCH monitoring will continue for the corresponding search space set (or the corresponding group of the search space set). ii. If a PDCCH skip is activated for a corresponding search space set (or a corresponding group of a search space set), PDCCH monitoring will be resumed for the corresponding search space set (or a corresponding group of a search space set).

[0100] According to a third embodiment, the UE may choose to adapt (e.g., reduce) the number of transmit Tx (or receive Rx) antennas / antenna ports and / or the maximum number of multiple input multiple output ("MIMO") layers for active BWP. This may be for power saving (e.g., turning off antennas), to reduce overall transmit power to address thermal issues, and / or due to implementation constraints of the UE, such as form factor constraints, antenna placement, antenna correlation, and antenna coupling. For example, the UE may choose to operate with a single Tx antenna port transmit when, for example, the foldable device is closed, and with support for uplink MIMO (e.g., codebook or non-codebook) transmit (one or more Tx antenna ports simultaneously) when the foldable device is open.

[0101] In one embodiment, the UE may indicate to the network a change in the current configuration / capacity of the number of Tx (or Rx) antennas / antenna ports and / or the maximum number of MIMO layers, for example, based on the operating state of the device, it may indicate a preferred number of Tx (or Rx) antennas / antenna ports and / or the maximum number of MIMO layers for active BWP. In one example, the preferred configuration (if recognized by the network, for example) remains valid until the preferred configuration is next updated. In one example, the preferred number of Tx (or Rx) antennas / antenna ports and / or the maximum number of MIMO layers may not be greater than the most recent RRC configuration related to the number of Tx (or Rx) antennas / antenna ports and / or the maximum number of MIMO layers.

[0102] Figure 2 shows a user equipment device 200 that may be used for improved intermittent reception and power saving for user equipment according to embodiments of the present disclosure. In various embodiments, the user equipment device 200 is used to implement one or more of the measures described above. The user equipment device 200 may be one embodiment of the remote unit 105 and / or UE 205 described above. Furthermore, the user equipment device 200 may include a processor 205, memory 210, input device 215, output device 220, and transceiver 225.

[0103] In some embodiments, the input device 215 and the output device 220 are combined into a single device such as a touchscreen. In some embodiments, the user equipment 200 may not include the input device 215 and / or the output device 220. In various embodiments, the user equipment 200 may include one or more of the processor 205, memory 210, and transceiver 225, and may not include the input device 215 and / or the output device 220.

[0104] As illustrated, the transceiver 225 includes at least one transmitter 230 and at least one receiver 235. In some embodiments, the transceiver 225 communicates with one or more cells (or wireless coverage areas) supported by one or more base units 121. In various embodiments, the transceiver 225 is capable of operating in the unlicensed spectrum. Furthermore, the transceiver 225 may include multiple UE panels supporting one or more beams. In addition, the transceiver 225 may support at least one network interface 240 and / or application interface 245. The application interface 245 may support one or more APIs. The network interface 240 may support 3GPP reference points such as Uu, N1, PC5, etc. Other network interfaces 240 may be supported, as will be understood by those skilled in the art.

[0105] In one embodiment, the processor 205 may include any known controller capable of executing computer-readable instructions and / or logical operations. For example, the processor 205 may be a microcontroller, microprocessor, central processing unit ("CPU"), graphics processing unit ("GPU"), auxiliary processing unit, field-programmable gate array ("FPGA"), or similar programmable controller. In some embodiments, the processor 205 executes instructions stored in memory 210 to perform the methods and routines described herein. The processor 205 is communicatively coupled to memory 210, input device 215, output device 220, and transceiver 225. In some embodiments, the processor 205 may include an application processor (also known as the "main processor") that manages application area and operating system ("OS") functions and a baseband processor (also known as the "baseband radio processor") that manages radio functions.

[0106] In one embodiment, transceiver 225 receives a PDCCH skip instruction for a group of search space sets from a network node via downlink control information ("DCI") during a physical downlink control channel ("PDCCH") monitoring opportunity. In one embodiment, processor 205, in response to a PDCCH skip instruction indicating a PDCCH skip for a group of search space sets, stops monitoring the PDCCH for the group of search space sets after at least an application delay has elapsed.

[0107] In one embodiment, the processor 205 further stops monitoring the PDCCH for a group of search space sets after an application delay has elapsed since the last PDCCH reception with a PDCCH skip instruction.

[0108] In one embodiment, the processor 205 further stops monitoring the PDCCH for a group of search space sets after an application delay has elapsed since the end of a PDCCH monitoring opportunity in which a PDCCH skip instruction is received.

[0109] In one embodiment, the processor 205 further stops monitoring the PDCCH for a group of search space sets according to a timer in response to a PDCCH skip instruction indicating a skip of the PDCCH for a group of search space sets, and in response to the absence of any active UE-specific search space sets that do not have a group of search space sets.

[0110] In one embodiment, the processor 205 further provides a downlink DCI for a group of search space sets, and when the timer expires, it stops monitoring the PDCCH for the group of search space sets, and the timer includes a downlink intermittent receive retransmit timer.

[0111] In one embodiment, the processor 205 further provides an uplink DCI for a group of search space sets, and when the timer expires, it stops monitoring the PDCCH for the group of search space sets, and the timer includes an uplink intermittent receive retransmit timer.

[0112] In one embodiment, the processor 205 further determines a first plurality of PDCCH monitoring opportunities and a second plurality of PDCCH monitoring opportunities, detects a first power-saving PDCCH in the first PDCCH monitoring opportunity among the first plurality of PDCCH monitoring opportunities, determines whether to monitor the power-saving PDCCH in at least one of the second plurality of PDCCH monitoring opportunities based on the detected first power-saving PDCCH, and detects a second power-saving PDCCH in the second PDCCH monitoring opportunity among the second plurality of PDCCH monitoring opportunities in response to the decision to monitor the power-saving PDCCH in at least one of the second plurality of PDCCH monitoring opportunities.

[0113] In one embodiment, the transceiver 225 further receives a PDCCH skip instruction by initiating PDCCH monitoring for a group of search space sets in response to detecting a second low-power PDCCH.

[0114] In one embodiment, the transceiver 225 further receives first configuration information related to a first type of power-saving PDCCH and second configuration information related to a second type of power-saving PDCCH, the first type of power-saving PDCCH is monitored by a first set of PDCCH monitoring opportunities and the second type of power-saving PDCCH is monitored by a second set of PDCCH monitoring opportunities.

[0115] In one embodiment, the first configuration comprises at least one selected from the group including a first low-power wireless network temporary identifier ("PS-RNTI"), a first set of at least one search space, a first payload size for a first type of low-power PDCCH, a first start location for an assigned block in the DCI, and a time offset, and the second configuration comprises at least one selected from the group including a second low-power wireless network temporary identifier ("PS-RNTI"), a second set of at least one search space, a second payload size for a second type of low-power PDCCH, and a second start location for an assigned block in the DCI.

[0116] In one embodiment, the transceiver 225 further receives a power-saving PDCCH from among the second type of power-saving PDCCH based on the first and second configuration information.

[0117] In one embodiment, the transceiver 225 further receives intermittent reception ("DRX") configurations, the DRX configurations comprising a set of DRX ON time length timer values ​​and a set of configurations indicating whether each configuration initiates the associated DRX ON time length timer based on the set of DRX ON time length timer values ​​when the corresponding power-saving PDCCH is monitored but not detected.

[0118] In one embodiment, the set of DRX ON time-length timer values ​​includes a first DRX ON time-length timer value associated with a first set of PDCCH monitoring opportunities and a second DRX ON time-length timer value associated with a second set of PDCCH monitoring opportunities.

[0119] In one embodiment, the set of DRX ON time-length timer values ​​includes a first DRX ON time-length timer value associated with a first plurality of PDCCH monitoring opportunities, and the processor 205 further determines a second DRX ON time-length timer value based on the first DRX ON time-length timer value.

[0120] In one embodiment, the first PDCCH monitoring opportunity occurs within the first DRX cycle, the second PDCCH monitoring opportunity occurs within the second DRX cycle, and the first DRX cycle precedes the second DRX cycle.

[0121] In one embodiment, the processor 205 further determines whether to start a DRX ON time-length timer associated with a second DRX cycle based on the detected second power-saving PDCCH.

[0122] In one embodiment, memory 210 is a computer-readable storage medium. In some embodiments, memory 210 includes a volatile computer storage medium. For example, memory 210 may include RAM, including dynamic RAM ("DRAM"), synchronous dynamic RAM ("SDRAM"), and / or static RAM ("SRAM"). In some embodiments, memory 210 includes a non-volatile computer storage medium. For example, memory 210 may include a hard disk drive, flash memory, or any other non-volatile computer storage device. In some embodiments, memory 210 includes both volatile and non-volatile computer storage mediums.

[0123] In some embodiments, memory 210 stores data related to improved intermittent reception and power saving for the user equipment. For example, memory 210 may store various parameters, panel / beam configurations, resource allocations, policies, etc., as described above. In some embodiments, memory 210 also stores program code and related data, such as the operating system or other controller algorithms running on the user equipment device 200.

[0124] In one embodiment, the input device 215 may include any known computer input device, such as a touch panel, buttons, a keyboard, a stylus, or a microphone. In some embodiments, the input device 215 may be integrated with the output device 220, for example, as a touchscreen or similar touch-sensitive display. In some embodiments, the input device 215 includes a touchscreen, so text can be entered using a virtual keyboard displayed on the touchscreen and / or by writing on the touchscreen. In some embodiments, the input device 215 includes two or more different devices, such as a keyboard and a touchscreen.

[0125] In one embodiment, the output device 220 is designed to output visual, auditory, and / or tactile signals. In some embodiments, the output device 220 includes an electrically controllable display or display device capable of outputting visual data to the user. For example, the output device 220 may include, but is not limited to, an LCD display, LED display, OLED display, projector, or similar display device capable of outputting images, text, etc., to the user. Another, but not limited, example of the output device 220 is a wearable display, such as a smartwatch, smart glasses, or head-up display, which is separate from, but communicatively coupled to, the rest of the user equipment device 200. Furthermore, the output device 220 may be a component of a smartphone, personal digital assistant, television, tablet computer, notebook (laptop) computer, personal computer, or vehicle dashboard.

[0126] In some embodiments, the output device 220 includes one or more speakers for producing sound. For example, the output device 220 may produce an audible warning or notification (e.g., a beep or chime). In some embodiments, the output device 220 includes one or more haptic devices for producing vibration, motion, or other tactile feedback. In some embodiments, all or part of the output device 220 may be integrated with the input device 215. For example, the input device 215 and the output device 220 may form a touchscreen or similar touch-sensitive display. In other embodiments, the output device 220 may be located near the input device 215.

[0127] The transceiver 225 communicates with one or more network functions of the mobile communication network via one or more access networks. The transceiver 225 operates under the control of the processor 205 to transmit messages, data, and other signals, and to receive messages, data, and other signals. For example, the processor 205 may selectively activate the transceiver 225 (or a portion thereof) at specific times to transmit and receive messages.

[0128] The transceiver 225 includes at least one transmitter 230 and at least one receiver 235. One or more transmitters 230 may be used to provide UL communication signals to the base unit 121, such as UL transmissions as described herein. Similarly, one or more receivers 235 may be used to receive DL communication signals from the base unit 121, as described herein. Although only one transmitter 230 and one receiver 235 are shown, the user equipment 200 may have any suitable number of transmitters 230 and receivers 235. Furthermore, the transmitters 230 and receivers 235 may be any suitable type of transmitter and receiver. In one embodiment, the transceiver 225 includes a first transmitter / receiver pair used to communicate with a mobile communication network over the licensed radio spectrum, and a second transmitter / receiver pair used to communicate with the mobile communication network over the unlicensed radio spectrum.

[0129] In some embodiments, a first transmitter / receiver pair used to communicate with a mobile communications network over the licensed radio spectrum and a second transmitter / receiver pair used to communicate with the mobile communications network over the unlicensed radio spectrum may be combined into a single transceiver unit, for example, a single chip that performs functions for use with both the licensed and unlicensed radio spectrums. In some embodiments, the first transmitter / receiver pair and the second transmitter / receiver pair may share one or more hardware components. For example, several transceivers 225, transmitters 230, and receivers 235 may be implemented as physically separate components that access shared hardware and / or software resources, such as a network interface 240.

[0130] In various embodiments, one or more transmitters 230 and / or one or more receivers 235 may be implemented and / or integrated into a single hardware component, such as a multi-transceiver chip, system-on-chip, ASIC, or other type of hardware component. In some embodiments, one or more transmitters 230 and / or one or more receivers 235 may be implemented and / or integrated into a multi-chip module. In some embodiments, other components, such as a network interface 240 or other hardware components / circuits, may be integrated into a single chip along with any number of transmitters 230 and / or receivers 235. In such embodiments, the transmitters 230 and receivers 235 may be logically configured as transceivers 225 using one or more common control signals, or as modular transmitters 230 and receivers 235 implemented on the same hardware chip or multi-chip module.

[0131] Figure 3 shows a network device 300 that may be used for improved intermittent reception and power saving for user equipment according to embodiments of the present disclosure. In one embodiment, the network device 300 may be an implementation of a RAN node, such as a base unit 121, a RAN node 210, or a gNB, as described above. Furthermore, the basic network device 300 may include a processor 305, memory 310, input device 315, output device 320, and transceiver 325.

[0132] In some embodiments, the input device 315 and the output device 320 are combined into a single device such as a touchscreen. In some embodiments, the network device 300 may not include any input device 315 and / or output device 320. In various embodiments, the network device 300 may include one or more of the processor 305, memory 310, and transceiver 325, and may not include the input device 315 and / or output device 320.

[0133] As illustrated, the transceiver 325 includes at least one transmitter 330 and at least one receiver 335, where the transceiver 325 communicates with one or more remote units 105. In addition, the transceiver 325 may support at least one network interface 340 and / or application interface 345. The application interface 345 may support one or more. The network interface 340 may support 3GPP reference points such as Uu, N1, N2, and N3. Other network interfaces 340 may be supported, as will be understood by those skilled in the art.

[0134] In one embodiment, the processor 305 may include any known controller capable of executing computer-readable instructions and / or logical operations. For example, the processor 305 may be a microcontroller, microprocessor, CPU, GPU, auxiliary processing unit, FPGA, or similar programmable controller. In some embodiments, the processor 305 executes instructions stored in memory 310 to perform the methods and routines described herein. The processor 305 is communicatively coupled to memory 310, an input device 315, an output device 320, and a transceiver 325. In some embodiments, the processor 805 may include an application processor (also known as the “main processor”) that manages the application area and operating system (“OS”) functions, and a baseband processor (also known as the “baseband radio processor”) that manages radio functions.

[0135] In various embodiments, the network device 300 is a RAN node (e.g., a gNB) including a processor 305 and a transceiver 325. In one embodiment, the transceiver 325 transmits a PDCCH skip instruction via downlink control information ("DCI") during a physical downlink control channel ("PDCCH") monitoring opportunity for a group of search space sets configured for a user equipment ("UE") device, and the processor 305, in response to transmitting the PDCCH skip instruction indicating a skip of the PDCCH for the group of search space sets, stops transmitting PDCCH for the group of search space sets after at least an application delay has elapsed.

[0136] In one embodiment, memory 310 is a computer-readable storage medium. In some embodiments, memory 310 includes a volatile computer storage medium. For example, memory 310 may include RAM, including dynamic RAM ("DRAM"), synchronous dynamic RAM ("SDRAM"), and / or static RAM ("SRAM"). In some embodiments, memory 310 includes a non-volatile computer storage medium. For example, memory 310 may include a hard disk drive, flash memory, or any other suitable non-volatile computer storage device. In some embodiments, memory 310 includes both volatile and non-volatile computer storage mediums.

[0137] In some embodiments, memory 310 stores data related to improved intermittent reception and power saving for user equipment. For example, memory 310 may store parameters, configurations, resource allocations, policies, etc., as described above. In some embodiments, memory 310 also stores program code and related data, such as the operating system or other controller algorithms running on the network device 300.

[0138] In one embodiment, the input device 315 may include any known computer input device, such as a touch panel, buttons, a keyboard, a stylus, or a microphone. In some embodiments, the input device 315 may be integrated with the output device 320, for example, as a touchscreen or similar touch-sensitive display. In some embodiments, the input device 315 includes a touchscreen, so text can be entered using a virtual keyboard displayed on the touchscreen and / or by writing on the touchscreen. In some embodiments, the input device 315 includes two or more different devices, such as a keyboard and a touchscreen.

[0139] In one embodiment, the output device 320 is designed to output visual, auditory, and / or tactile signals. In some embodiments, the output device 320 includes an electrically controllable display or display device capable of outputting visual data to a user. For example, the output device 320 may include, but is not limited to, an LCD display, LED display, OLED display, projector, or similar display device capable of outputting images, text, etc., to a user. Another, but not limited, example, the output device 320 may include a wearable display, such as a smartwatch, smart glasses, or head-up display, that is separate from the rest of the network device 300 but communicatively coupled to it. Furthermore, the output device 320 may be a component of a smartphone, personal digital assistant, television, tablet computer, notebook (laptop) computer, personal computer, or vehicle dashboard.

[0140] In some embodiments, the output device 320 includes one or more speakers for producing sound. For example, the output device 320 may produce an audible warning or notification (e.g., a beep or chime). In some embodiments, the output device 320 includes one or more haptic devices for producing vibration, motion, or other tactile feedback. In some embodiments, all or part of the output device 320 may be integrated with the input device 315. For example, the input device 315 and the output device 320 may form a touchscreen or similar touch-sensitive display. In other embodiments, the output device 320 may be located near the input device 315.

[0141] The transceiver 325 includes at least one transmitter 330 and at least one receiver 335. One or more transmitters 330 may be used to communicate with a UE as described herein. Similarly, one or more receivers 335 may be used to communicate with network functions in the NPN, PLMN, and / or RAN as described herein. Although only one transmitter 330 and one receiver 335 are shown, the network device 300 may have any suitable number of transmitters 330 and receivers 335. Furthermore, the transmitters 330 and receivers 335 may be any suitable type of transmitter and receiver.

[0142] Figure 4 is a flowchart of Method 400 for improved intermittent reception and power saving for user equipment. Method 400 may be implemented by a UE, such as the remote unit 105, UE 205, and / or user equipment device 200, as described herein. In some embodiments, Method 400 may be implemented by a processor that executes program code, such as a microcontroller, microprocessor, CPU, GPU, auxiliary processing unit, FPGA, etc.

[0143] In one embodiment, Method 400 includes the steps of: receiving a PDCCH skip instruction for a group of search space sets via downlink control information ("DCI") from a network node during a physical downlink control channel ("PDCCH") monitoring opportunity (405); and, in response to the PDCCH skip instruction indicating a skip of the PDCCH for a group of search space sets, ceasing to monitor the PDCCH for the group of search space sets after at least an application delay has elapsed (410). Method 400 then terminates.

[0144] Figure 5 is a flowchart of Method 500 for improved intermittent reception and power saving for user equipment. Method 500 can be implemented by a network device such as a RAN node, gNB, and / or network equipment device 300 as described herein. In some embodiments, Method 500 can be implemented by a processor that executes program code, such as a microcontroller, microprocessor, CPU, GPU, auxiliary processing unit, FPGA, etc.

[0145] Method 500 includes the steps of: sending a PDCCH skip instruction for a group of search space sets configured for a user equipment (UE) device via downlink control information ("DCI") during a physical downlink control channel ("PDCCH") monitoring opportunity (505); and stopping the transmission of PDCCH for the group of search space sets after at least an application delay has elapsed in response to the transmission of a PDCCH skip instruction indicating the skip of PDCCH for the group of search space sets (510). Method 500 then terminates.

[0146] A first device for improved intermittent reception and power saving for user equipment is disclosed herein. The first device may include a UE as described herein, for example, a remote unit 105, a UE 205, and / or a user equipment device 200. In some embodiments, the first device includes a processor that executes program code, for example, a microcontroller, microprocessor, CPU, GPU, auxiliary processing unit, FPGA, etc.

[0147] In one embodiment, the first device includes a transceiver that receives PDCCH skip instructions for a group of search space sets from a network node via downlink control information ("DCI") during a physical downlink control channel ("PDCCH") monitoring opportunity. In one embodiment, the first device includes a processor that, in response to a PDCCH skip instruction indicating a PDCCH skip for a group of search space sets, stops monitoring the PDCCH for the group of search space sets after at least an application delay has elapsed.

[0148] In one embodiment, the processor further stops monitoring for PDCCH for a group of search space sets after an application delay has elapsed since the last PDCCH reception with a PDCCH skip instruction.

[0149] In one embodiment, the processor further stops monitoring the PDCCH for a group of search space sets after an application delay has elapsed since the last PDCCH monitoring opportunity in which a PDCCH skip instruction was received.

[0150] In one embodiment, the processor further stops monitoring the PDCCH for a group of search space sets according to a timer in response to a PDCCH skip instruction indicating a skip of the PDCCH for a group of search space sets, and to the absence of any active UE-specific search space sets that do not have a group of search space sets.

[0151] In one embodiment, the processor further provides a downlink DCI for a group of search space sets, and when the timer expires, it stops monitoring the PDCCH for the group of search space sets, and the timer includes a downlink intermittent receive retransmit timer.

[0152] In one embodiment, the processor further provides an uplink DCI for a group of search space sets, and when the timer expires, it stops monitoring the PDCCH for the group of search space sets, and the timer includes an uplink intermittent receive retransmit timer.

[0153] In one embodiment, the processor further determines a first plurality of PDCCH monitoring opportunities and a second plurality of PDCCH monitoring opportunities, detects a first power-saving PDCCH in the first PDCCH monitoring opportunity among the first plurality of PDCCH monitoring opportunities, determines whether to monitor the power-saving PDCCH in at least one of the second plurality of PDCCH monitoring opportunities based on the detected first power-saving PDCCH, and detects a second power-saving PDCCH in the second PDCCH monitoring opportunity among the second plurality of PDCCH monitoring opportunities in response to the decision to monitor the power-saving PDCCH in at least one of the second plurality of PDCCH monitoring opportunities.

[0154] In one embodiment, the transceiver further receives a PDCCH skip instruction by initiating PDCCH monitoring for a group of search space sets in response to detecting a second low-power PDCCH.

[0155] In one embodiment, the transceiver further receives first configuration information relating to a first type of power-saving PDCCH and second configuration information relating to a second type of power-saving PDCCH, the first type of power-saving PDCCH is monitored by a first set of PDCCH monitoring opportunities and the second type of power-saving PDCCH is monitored by a second set of PDCCH monitoring opportunities.

[0156] In one embodiment, the first configuration comprises at least one selected from the group including a first low-power wireless network temporary identifier ("PS-RNTI"), a first set of at least one search space, a first payload size for a first type of low-power PDCCH, and a first starting location for an assigned block in the DCI, and the second configuration comprises at least one selected from the group including a second low-power wireless network temporary identifier ("PS-RNTI"), a second set of at least one search space, a second payload size for a second type of low-power PDCCH, and a second starting location for an assigned block in the DCI.

[0157] In one embodiment, the transceiver further receives a power-saving PDCCH from among the second type of power-saving PDCCH based on the first and second configuration information.

[0158] In one embodiment, the transceiver further receives an intermittent receive ("DRX") configuration, the DRX configuration comprising a set of DRX ON time length timer values ​​and a set of configurations indicating whether each configuration initiates the associated DRX ON time length timer based on the set of DRX ON time length timer values ​​when the corresponding power-saving PDCCH is monitored but not detected.

[0159] In one embodiment, the set of DRX ON time-length timer values ​​includes a first DRX ON time-length timer value associated with a first set of PDCCH monitoring opportunities and a second DRX ON time-length timer value associated with a second set of PDCCH monitoring opportunities.

[0160] In one embodiment, the set of DRX ON time-length timer values ​​comprises a first DRX ON time-length timer value associated with a first plurality of PDCCH monitoring opportunities, and the processor further determines a second DRX ON time-length timer value based on the first DRX ON time-length timer value.

[0161] In one embodiment, the first PDCCH monitoring opportunity occurs within the first DRX cycle, the second PDCCH monitoring opportunity occurs within the second DRX cycle, and the first DRX cycle precedes the second DRX cycle.

[0162] In one embodiment, the processor further determines, based on the detected second power-saving PDCCH, whether to start a DRX ON time-length timer associated with the second DRX cycle.

[0163] A first method for improved intermittent reception and power saving for user equipment is disclosed herein. The first method may be performed by a UE, such as a remote unit 105, UE 205, and / or user equipment device 200, as described herein. In some embodiments, the first method may be performed by a processor that executes program code, such as a microcontroller, microprocessor, CPU, GPU, auxiliary processing unit, FPGA, etc.

[0164] In one embodiment, the first method includes receiving a PDCCH skip instruction for a group of search space sets from a network node via downlink control information ("DCI") during a physical downlink control channel ("PDCCH") monitoring opportunity. In one embodiment, the first method includes, in response to a PDCCH skip instruction indicating a PDCCH skip for a group of search space sets, stopping monitoring the PDCCH for the group of search space sets after at least an application delay has elapsed.

[0165] In one embodiment, the first method includes the step of stopping monitoring for PDCCH for a group of search space sets after an application delay has elapsed since the last PDCCH reception that includes a PDCCH skip instruction.

[0166] In one embodiment, the first method includes the step of stopping monitoring the PDCCH for a group of search space sets after an application delay has elapsed since the last PDCCH monitoring opportunity in which a PDCCH skip instruction is received.

[0167] In one embodiment, the first method includes a PDCCH skip instruction indicating a PDCCH skip for a group of search space sets, and, in response to the absence of any active UE-specific search space sets that do not have a group of search space sets, stopping monitoring the PDCCH for the group of search space sets according to a timer.

[0168] In one embodiment, the first method includes the step of stopping monitoring the PDCCH for a group of search space sets when a timer expires, with respect to the downlink DCI of a group of search space sets, the timer comprising a downlink intermittent receive retransmit timer.

[0169] In one embodiment, the first method includes the step of stopping monitoring the PDCCH for a group of search space sets when a timer expires, with respect to the uplink DCI of a group of search space sets, the timer comprising an uplink intermittent receive retransmit timer.

[0170] In one embodiment, the first method includes the steps of determining a first plurality of PDCCH monitoring opportunities and a second plurality of PDCCH monitoring opportunities; detecting a first power-saving PDCCH in the first PDCCH monitoring opportunity among the first plurality of PDCCH monitoring opportunities; determining whether to monitor the power-saving PDCCH in at least one of the second plurality of PDCCH monitoring opportunities based on the detected first power-saving PDCCH; and detecting a second power-saving PDCCH in the second PDCCH monitoring opportunity among the second plurality of PDCCH monitoring opportunities in response to the decision to monitor the power-saving PDCCH in at least one of the second plurality of PDCCH monitoring opportunities.

[0171] In one embodiment, the first method includes receiving a PDCCH skip instruction by initiating PDCCH monitoring for a group of search space sets in response to the detection of a second power-saving PDCCH.

[0172] In one embodiment, the first method includes the steps of receiving first configuration information relating to a first type of power-saving PDCCH and receiving second configuration information relating to a second type of power-saving PDCCH, wherein the first type of power-saving PDCCH is monitored by a first group of PDCCH monitoring opportunities and the second type of power-saving PDCCH is monitored by a second group of PDCCH monitoring opportunities.

[0173] In one embodiment, the first configuration comprises at least one selected from the group including a first low-power wireless network temporary identifier ("PS-RNTI"), a first set of at least one search space, a first payload size for a first type of low-power PDCCH, a first start location for an assigned block in the DCI, and a time offset, and the second configuration comprises at least one selected from the group including a second low-power wireless network temporary identifier ("PS-RNTI"), a second set of at least one search space, a second payload size for a second type of low-power PDCCH, and a second start location for an assigned block in the DCI.

[0174] In one embodiment, the first method includes the step of receiving a power-saving PDCCH from among a second type of power-saving PDCCH based on first and second configuration information.

[0175] In one embodiment, the first method includes the step of receiving an intermittent receive ("DRX") configuration, the DRX configuration comprising a set of DRX ON time length timer values ​​and a set of configurations, each configuration indicating whether to start the associated DRX ON time length timer based on the set of DRX ON time length timer values ​​when the corresponding power saving PDCCH is monitored but not detected.

[0176] In one embodiment, the set of DRX ON time-length timer values ​​includes a first DRX ON time-length timer value associated with a first set of PDCCH monitoring opportunities and a second DRX ON time-length timer value associated with a second set of PDCCH monitoring opportunities.

[0177] In one embodiment, the set of DRX ON time-length timer values ​​comprises a first set of DRX ON time-length timer values ​​associated with a first set of PDCCH monitoring opportunities, and the first method includes the step of determining a second set of DRX ON time-length timer values ​​based on the first set of DRX ON time-length timer values.

[0178] In one embodiment, the first PDCCH monitoring opportunity occurs within the first DRX cycle, the second PDCCH monitoring opportunity occurs within the second DRX cycle, and the first DRX cycle precedes the second DRX cycle.

[0179] In one embodiment, the first method includes the step of determining whether to start a DRX ON time-length timer associated with a second DRX cycle based on a detected second power-saving PDCCH.

[0180] A second device for improved intermittent reception and power saving for user equipment is disclosed herein. The second device may include network devices such as those described herein, e.g., RAN nodes, gNBs, and / or network equipment devices 300. In some embodiments, the second device may include a processor for executing program code, e.g., a microcontroller, microprocessor, CPU, GPU, auxiliary processing unit, FPGA, etc.

[0181] In one embodiment, the second device includes a transceiver that transmits a PDCCH skip instruction for a group of search space sets configured for a user equipment (UE) device via downlink control information ("DCI") during a physical downlink control channel ("PDCCH") monitoring opportunity, and a processor that, in response to transmitting a PDCCH skip instruction indicating a skip of the PDCCH for the group of search space sets, stops transmitting PDCCHs for the group of search space sets after at least an application delay has elapsed.

[0182] A second method for improved intermittent reception and power saving for user equipment is disclosed herein. The second method may be performed by a network device such as a RAN node, gNB, and / or network equipment device 300 as described herein. In some embodiments, the second method may be performed by a processor that executes program code, such as a microcontroller, microprocessor, CPU, GPU, auxiliary processing unit, FPGA, etc.

[0183] In one embodiment, the second method includes the steps of: transmitting a PDCCH skip instruction for a group of search space sets configured for a user equipment (UE) device via downlink control information ("DCI") during a physical downlink control channel ("PDCCH") monitoring opportunity; and, in response to transmitting a PDCCH skip instruction indicating a skip of the PDCCH for the group of search space sets, ceasing to transmit the PDCCH for the group of search space sets after at least an application delay has elapsed.

[0184] The embodiments described may be practiced in other specific forms. The embodiments described should be considered in all respects as illustrative and not limiting. Accordingly, the scope of the invention is indicated by the appended claims rather than by the foregoing description. All modifications that fall within the intent and equivalence of the claims should be included within that scope. [Explanation of Symbols]

[0185] 105 Remote Unit 107 applications 110 Base Unit 115 UL / DL 117 SL 120 Wireless Access Networks 140 Mobile Core Network 141 UPF 143 AMF 145 SMF 147 AUSF 149 UDM 150 packet data network 151 Application Server 200 User Equipment 205 Processor 210 memory 215 Input Devices 220 Output Devices 225 Transceiver 230 Transmitter 235 Receiver 240 network interfaces 245 Application Interfaces 300 Network Equipment 305 Processor 310 memory 315 Input Devices 320 Output Devices 325 Transceiver 330 Transmitter 335 Receiver 340 Network Interfaces 345 Application Interfaces

Claims

1. User equipment (UE) for wireless communication, At least one memory, The system comprises at least one processor coupled to the at least one memory, and the at least one processor is During a Physical Downlink Control Channel ("PDCCH") monitoring opportunity, the network node receives a PDCCH skip instruction for a group of search space sets via Downlink Control Information ("DCI"), In response to the PDCCH skip instruction indicating the skipping of PDCCH for the group of search space sets, to stop monitoring PDCCH for the group of search space sets after at least the application delay has elapsed. It is configured to cause the aforementioned UE to perform the following: The at least one processor is configured to cause the UE to stop monitoring the PDCCH for the group of search space sets once the application delay has elapsed since the last PDCCH reception that includes the PDCCH skip instruction, The aforementioned application delay is constructed by upper-layer signaling. UE.

2. User equipment (UE) for wireless communication, At least one memory, The system comprises at least one processor coupled to the at least one memory, and the at least one processor is During a Physical Downlink Control Channel ("PDCCH") monitoring opportunity, the network node receives a PDCCH skip instruction for a group of search space sets via Downlink Control Information ("DCI"), In response to the PDCCH skip instruction indicating the skipping of PDCCH for the group of search space sets, to stop monitoring PDCCH for the group of search space sets after at least the application delay has elapsed. It is configured to cause the aforementioned UE to perform the following: The at least one processor is configured to cause the UE to stop monitoring the PDCCH for the group in the search space set once the application delay has elapsed since the end of the PDCCH monitoring opportunity in which the PDCCH skip instruction was received. UE.

3. User equipment (UE) for wireless communication, At least one memory, The system comprises at least one processor coupled to the at least one memory, and the at least one processor is During a Physical Downlink Control Channel ("PDCCH") monitoring opportunity, the network node receives a PDCCH skip instruction for a group of search space sets via Downlink Control Information ("DCI"), In response to the PDCCH skip instruction indicating the skipping of PDCCH for the group of search space sets, to stop monitoring PDCCH for the group of search space sets after at least the application delay has elapsed. It is configured to cause the aforementioned UE to perform the following: The aforementioned at least one processor, The PDCCH skip instruction indicates skipping a PDCCH for the group of search space sets, There are no active UE-specific search space sets that do not have the aforementioned group of search space sets. In response, the UE is configured to stop monitoring the PDCCH for the group of search space sets according to a timer. UE.

4. The aforementioned at least one processor, With respect to the downlink DCI of the group of the search space set, stopping monitoring of the PDCCH for the group of the search space set when the timer expires, wherein the timer comprises a downlink intermittent receive retransmit timer. To stop monitoring the PDCCH for the group of the search space set when the timer expires for the uplink DCI of the group of the search space set, wherein the timer includes an uplink intermittent receive retransmit timer. The UE is configured to perform the above action. The UE according to claim 3.

5. The aforementioned at least one processor, To determine the first set of multiple PDCCH monitoring opportunities and the second set of multiple PDCCH monitoring opportunities, The first power-saving PDCCH is detected in the first PDCCH monitoring opportunity among the first multiple PDCCH monitoring opportunities, Based on the detected first power-saving PDCCH, it is determined whether to monitor the power-saving PDCCH in at least one of the second plurality of PDCCH monitoring opportunities. In response to the decision to monitor the power-saving PDCCH in at least one of the second PDCCH monitoring opportunities, the second power-saving PDCCH is detected in the second PDCCH monitoring opportunity among the second PDCCH monitoring opportunities. Receiving the PDCCH skip instruction by starting PDCCH monitoring for the group of search space sets in response to detecting the second power-saving PDCCH and The UE is configured to perform the above action. The UE according to any one of claims 1 to 3.

6. The aforementioned at least one processor, Receiving information of a first configuration related to a first type of power-saving PDCCH, Receiving information on a second configuration related to a second type of power-saving PDCCH, It is configured to cause the aforementioned UE to perform the following: The first type of power-saving PDCCH is monitored by the first set of PDCCH monitoring opportunities, and the second type of power-saving PDCCH is monitored by the second set of PDCCH monitoring opportunities. The UE according to claim 5.

7. The first configuration comprises at least one selected from the group including a first low-power-wireless network temporary identifier ("PS-RNTI"), a first set of at least one search space, a first payload size of the first type of low-power PDCCH, a first start location of an allocated block in the DCI, and a time offset, The second configuration comprises at least one selected from the group including a second low-power-wireless network temporary identifier ("PS-RNTI"), a second set of at least one search space, a second payload size for the second type of low-power PDCCH, and a second starting location for an allocated block in the DCI. The UE according to claim 6.

8. The at least one processor is configured to cause the UE to receive an intermittent receive ("DRX") configuration, The DRX configuration comprises a set of DRX ON time length timer values, and a set of configurations indicating whether each configuration initiates the associated DRX ON time length timer based on the set of DRX ON time length timer values ​​when the corresponding power saving PDCCH is monitored but not detected. The UE according to claim 7.

9. The set of DRX ON time-length timer values ​​comprises a first DRX ON time-length timer value associated with the first plurality of PDCCH monitoring opportunities and a second DRX ON time-length timer value associated with the second plurality of PDCCH monitoring opportunities. The UE according to claim 8.

10. The set of DRX ON time-length timer values ​​comprises a first DRX ON time-length timer value associated with the first plurality of PDCCH monitoring opportunities, and the at least one processor is configured to cause the UE to determine a second DRX ON time-length timer value based on the first DRX ON time-length timer value. The UE according to claim 8.

11. The UE according to claim 5, wherein the first PDCCH monitoring opportunity is within a first DRX cycle, the second PDCCH monitoring opportunity is within a second DRX cycle, and the first DRX cycle precedes the second DRX cycle.

12. The at least one processor is configured to cause the UE to determine whether to start the DRX ON time-length timer associated with the second DRX cycle based on the detected second power-saving PDCCH. The UE according to claim 11.

13. A method performed by a user device ("UE"), The steps include receiving a PDCCH skip instruction for a group of search space sets from a network node via downlink control information ("DCI") during a physical downlink control channel ("PDCCH") monitoring opportunity, In response to the PDCCH skip instruction indicating the skipping of PDCCH for the group of the search space set, the steps include stopping monitoring for PDCCH for the group of the search space set after at least the elapsed application delay, The step of stopping monitoring for the PDCCH for the group of search space sets after the application delay has elapsed since the last PDCCH reception that includes the PDCCH skip instruction, The aforementioned application delay is constructed by upper-layer signaling. method.

14. A method performed by a user device ("UE"), The steps include receiving a PDCCH skip instruction for a group of search space sets from a network node via downlink control information ("DCI") during a physical downlink control channel ("PDCCH") monitoring opportunity, In response to the PDCCH skip instruction indicating the skipping of PDCCH for the group of the search space set, the steps include stopping monitoring for PDCCH for the group of the search space set after at least the elapsed application delay, The steps include: stopping monitoring for the PDCCH for the group in the search space set after the application delay has elapsed since the last PDCCH reception with the PDCCH skip instruction; The step includes stopping monitoring the PDCCH for the group of search space sets after the application delay has elapsed since the end of the PDCCH monitoring opportunity in which the PDCCH skip instruction was received. method.

15. A method performed by a user device ("UE"), The steps include receiving a PDCCH skip instruction for a group of search space sets from a network node via downlink control information ("DCI") during a physical downlink control channel ("PDCCH") monitoring opportunity, In response to the PDCCH skip instruction indicating the skipping of PDCCH for the group of the search space set, the steps include stopping monitoring for PDCCH for the group of the search space set after at least the elapsed application delay, The steps include: stopping monitoring for the PDCCH for the group in the search space set after the application delay has elapsed since the last PDCCH reception with the PDCCH skip instruction; The PDCCH skip instruction indicates skipping a PDCCH for the group of search space sets, There are no active UE-specific search space sets that do not have the aforementioned group of search space sets. The process includes the step of stopping monitoring the PDCCH for the group of search space sets in response to the above, according to a timer. method.

16. A base station for wireless communications, At least one memory, The system comprises at least one processor coupled to the at least one memory, and the at least one processor is During a Physical Downlink Control Channel ("PDCCH") monitoring opportunity, send a PDCCH skip instruction to a group of search space sets configured for a User Equipment ("UE") device via Downlink Control Information ("DCI"). In response to sending the PDCCH skip instruction indicating the skipping of PDCCH for the group of search space sets, to stop sending PDCCH for the group of search space sets after at least the application delay has elapsed, When the application delay has elapsed since the end of the PDCCH transmission that includes the PDCCH skip instruction, the transmission of PDCCH for the group of the search space set shall be stopped. It is configured to have the base station perform the above, The at least one processor is configured to set the applied delay in the UE device by upper-layer signaling. Base station.

17. A base station for wireless communication, At least one memory, The system comprises at least one processor coupled to the at least one memory, and the at least one processor is During a Physical Downlink Control Channel ("PDCCH") monitoring opportunity, send a PDCCH skip instruction to a group of search space sets configured for a User Equipment ("UE") device via Downlink Control Information ("DCI"). In response to sending the PDCCH skip instruction indicating the skipping of PDCCH for the group of search space sets, to stop sending PDCCH for the group of search space sets after at least the application delay has elapsed, When the application delay has elapsed since the end of the PDCCH monitoring opportunity in which the PDCCH skip instruction is sent, stop sending PDCCH for the group in the search space set. The base station is configured to perform the above action. Base station.

18. A base station for wireless communication, At least one memory, The system comprises at least one processor coupled to the at least one memory, and the at least one processor is During a Physical Downlink Control Channel ("PDCCH") monitoring opportunity, send a PDCCH skip instruction to a group of search space sets configured for a User Equipment ("UE") device via Downlink Control Information ("DCI"). In response to sending the PDCCH skip instruction indicating the skipping of PDCCH for the group of search space sets, to stop sending PDCCH for the group of search space sets after at least the application delay has elapsed, It is configured to have the base station perform the above, The aforementioned at least one processor, The PDCCH skip instruction indicates skipping a PDCCH for the group of search space sets, There are no active UE-specific search space sets that do not have the aforementioned group of search space sets. In response, the system is configured to cause the base station to stop transmitting PDCCH for the group of search space sets, according to a timer. Base station.

19. A processor for wireless communication, It comprises at least one controller coupled to at least one memory, and the at least one controller is During a Physical Downlink Control Channel ("PDCCH") monitoring opportunity, the network node receives a PDCCH skip instruction for a group of search space sets via Downlink Control Information ("DCI"), In response to the PDCCH skip instruction indicating the skipping of PDCCH for the group of search space sets, monitor the PDCCH for the group of search space sets at least after the application delay has elapsed. The system is configured to cause the processor to perform the following actions: The at least one controller is configured to cause the processor to stop monitoring the PDCCH for the group of search space sets once the application delay has elapsed since the last PDCCH reception with the PDCCH skip instruction, The aforementioned application delay is constructed by upper-layer signaling. Processor.

20. A processor for wireless communication, It comprises at least one controller coupled to at least one memory, and the at least one controller is During a Physical Downlink Control Channel ("PDCCH") monitoring opportunity, the network node receives a PDCCH skip instruction for a group of search space sets via Downlink Control Information ("DCI"), In response to the PDCCH skip instruction indicating the skipping of PDCCH for the group of search space sets, monitor the PDCCH for the group of search space sets at least after the application delay has elapsed. The system is configured to cause the processor to perform the following actions: The at least one controller is configured to cause the processor to stop monitoring the PDCCH for the group in the search space set once the application delay has elapsed since the end of the PDCCH monitoring opportunity in which the PDCCH skip instruction was received. Processor.

21. A processor for wireless communication, It comprises at least one controller coupled to at least one memory, and the at least one controller is During a Physical Downlink Control Channel ("PDCCH") monitoring opportunity, the network node receives a PDCCH skip instruction for a group of search space sets via Downlink Control Information ("DCI"), In response to the PDCCH skip instruction indicating the skipping of PDCCH for the group of search space sets, monitor the PDCCH for the group of search space sets at least after the application delay has elapsed. The system is configured to cause the processor to perform the following actions: The aforementioned at least one controller, The PDCCH skip instruction indicates skipping a PDCCH for the group of search space sets, There are no active UE-specific search space sets that do not have the aforementioned group of search space sets. In response, the system is configured to cause the processor to stop monitoring the PDCCH for the group of search space sets, according to a timer. Processor.

22. The aforementioned at least one controller, With respect to the downlink DCI of the group of the search space set, stopping monitoring of the PDCCH for the group of the search space set when the timer expires, wherein the timer comprises a downlink intermittent receive retransmit timer. To stop monitoring the PDCCH for the group of the search space set when the timer expires for the uplink DCI of the group of the search space set, wherein the timer includes an uplink intermittent receive retransmit timer. The processor is configured to perform the above action. The processor according to claim 21.

Citation Information

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