Integrated circuit for controlling the base station for monitoring the downlink control channel
The use of parallel timers in 5G NR systems optimizes downlink control channel monitoring, addressing power consumption and performance issues by dynamically adjusting monitoring times based on channel occupancy, thereby enhancing system efficiency across various deployment scenarios.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2025-05-12
- Publication Date
- 2026-04-03
AI Technical Summary
Existing 5G NR systems face challenges in efficiently managing downlink control channel monitoring due to varying use case requirements and deployment scenarios, which can lead to inefficient power consumption and suboptimal performance.
Implementing a user device with a processing circuit that utilizes two parallel timers to control downlink control channel monitoring in unlicensed radio cells, where the first timer limits the maximum monitoring time and the second timer adjusts based on channel occupancy status, optimizing power usage and performance.
This approach enhances power savings and improves system efficiency by dynamically adjusting monitoring times based on channel conditions, addressing the diverse needs of enhanced mobile broadband, ultra-reliable low-latency communications, and massive machine type communication scenarios.
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Abstract
Description
Technical Field
[0001] The present disclosure relates to an integrated circuit for controlling a base station in a 3GPP (registered trademark) communication system or the like.
Background Art
[0002] Currently, 3GPP (3rd Generation Partnership Project) is working on the technical specifications of next-generation cellular technology, also known as the fifth generation (5G).
[0003] One objective is to provide a single technical framework that addresses all usage scenarios, requirements, and deployment scenarios (see, for example, Section 6 of TR38.913 version 15.0.0), including at least enhanced mobile broadband (eMBB), ultra-reliable low-latency communications (URLLC), and massive machine type communication (mMTC). For example, eMBB deployment scenarios may include indoor hotspots, dense urban areas, rural areas, urban macro, and high speed, and URLLC deployment scenarios may include industrial control systems, mobile healthcare (remote monitoring, diagnosis, and treatment), real-time vehicle control, and wide-area monitoring and control systems for smart grids, and mMTC deployment scenarios may include scenarios with a large number of devices by non-time-critical data transmission such as smart wearables and sensor networks. eMBB and URLLC services are similar in that both require a very wide bandwidth, but differ in that URLLC services preferably require ultra-low latency.
[0004] A second objective is to achieve forward compatibility. Backward compatibility with Long Term Evolution (LTE, LTE-A) cellular systems is not required, facilitating a completely new system design and / or the introduction of new features.
Summary of the Invention
[0005] One non-limiting, exemplary embodiment facilitates the provision of an improved procedure for monitoring a downlink control channel.
[0006] In embodiments, the technology disclosed herein features a user device having a processing circuit that operates a function relating to monitoring the downlink control channel of an unlicensed radio cell for information intended for the UE during operation, wherein the unlicensed radio cell operates in the unlicensed spectrum and is controlled by a base station communicating with the user device. The processing circuit and the receiver perform monitoring of the downlink control channel based on a first timer and a second timer operating in parallel. The first timer is used to limit the maximum time the downlink control channel is monitored by starting the first timer when monitoring of the downlink control channel begins and stopping the monitoring of the downlink control channel when the first timer expires. The second timer is used to stop monitoring of the downlink control channel earlier than the first timer, depending on the channel occupancy status of the radio cell in the unlicensed spectrum by the base station.
[0007] It should be noted that general or specific embodiments may be implemented as systems, methods, integrated circuits, computer programs, storage media, or any selective combination thereof.
[0008] Further benefits and advantages of the disclosed embodiments and different embodiments will become apparent from the specification and drawings. Benefits and / or advantages may also be obtained individually by the various embodiments and features of the specification and drawings, and these do not all need to be provided in order to obtain one or more of such benefits and / or advantages. [Brief explanation of the drawing]
[0009] In the following, exemplary embodiments will be described in more detail with reference to the attached drawings. [Figure 1] This shows an example architecture for a 3GPP NR system. [Figure 2] This document presents an example user and control plane architecture for LTE eNB, gNB, and UE. [Figure 3] This shows the DRX operation of a mobile device, particularly the DRX opportunities and on-duration periods due to short and long DRX cycles. [Figure 4] This shows the messages exchanged between the eNB and the UE when executing a contention-based RACH procedure. [Figure 5] This shows the messages exchanged between the eNB and the UE when performing a contention-free RACH procedure. [Figure 6] This shows an example LAA scenario involving multiple licensed and unlicensed cells. [Figure 7] This demonstrates the transmission operation for LAA transmission. [Figure 8] A simplified configuration is shown as an example of a UE and gNB. [Figure 9] This shows a UE configuration in an implementation that represents an example of an improved downlink control channel monitoring procedure. [Figure 10] This shows the various functions operating in the UE, the parallel operation of two related timers, and downlink control channel monitoring. [Figure 11] This is a flowchart illustrating the operation of the UE in an example implementation for an improved downlink control channel monitoring procedure. [Figure 12] This is a flowchart of the operation of the UE in a first example implementation for an improved downlink control channel monitoring procedure. [Figure 13] Figure 12 shows the parallel operation of the first and second timers and the resulting PDCCH monitoring in an implementation that is a first example of the improved downlink control channel monitoring procedure described in Figure 12. [Figure 14] This is a flowchart illustrating the operation of the UE in a second example implementation of the improved downlink control channel monitoring procedure. [Figure 15] Figure 14 shows the parallel operation of the first and second timers and the resulting PDCCH monitoring in a second example implementation of the improved downlink control channel monitoring procedure described in Figure 14. [Figure 16] Figure 14 shows the parallel operation of the first and second timers and the resulting PDCCH monitoring in a second example implementation of the improved downlink control channel monitoring procedure described in Figure 14. [Modes for carrying out the invention]
[0010] 5G NR system architecture and protocol stack 3GPP is working on the next release for fifth-generation cellular technology, simply called 5G, which will include the development of NR (New Radio Access Technology) operating in the frequency range up to 100 GHz. The first version of the 5G standard was completed at the end of 2017, enabling trials and commercial deployment of smartphones compliant with the 5G NR standard.
[0011] In particular, the overall system architecture assumes an NG-RAN (Next Generation-Radio Access Network) that includes gNBs and provides NG Radio Access User Plane (SDAP / PDCP / RLC / MAC / PHY) and Control Plane (RRC) protocol termination to the UE. The gNBs are interconnected with each other by Xn interfaces. The gNBs are also connected to the NGC (Next Generation Core) by NG (Next Generation) interfaces, and more specifically, to the AMF (Access and Mobility Management Function) (e.g., a specific core entity that performs the AMF) by NG-C interfaces and to the UPF (User Plane Function) (e.g., a specific core entity that performs the UPF) by NG-U interfaces. The NG-RAN architecture is shown in Figure 1 (see, for example, Section 4 of 3GPP TS38.300 v15.5.0).
[0012] A variety of different deployment scenarios are supported (see, for example, 3GPP TR38.801 v14.0.0). For example, a decentralized deployment scenario is presented there (see, for example, section 5.2 of TR38.801; a decentralized deployment is shown in section 5.4), in which base stations supporting 5G NR can be deployed. Figure 2 shows an example of a decentralized deployment scenario (see, for example, Figure 5.2-1 of TR38.801), and further shows the LTE eNB along with user equipment (UE) connected to both the gNB and the LTE eNB. A new eNB for NR 5G may be exemplary referred to as a gNB. The eLTE eNB is an evolution of the eNB that supports connectivity between the EPC (Evolved Packet Core) and the NGC (Next Generation Core).
[0013] The user plane protocol stack of NR (see, for example, section 4.4.1 of 3GPP TS38.300 v15.5.0) has a PDCP (Packet Data Convergence Protocol, see section 6.4 of TS38.300) sublayer, an RLC (Radio Link Control, see section 6.3 of TS38.300) sublayer, and a MAC (Medium Access Control, see section 6.2 of TS38.300) sublayer that are terminated at the gNB on the network side. Further, a new access stratum (AS) sublayer (SDAP, Service Data Adaptation Protocol) is introduced above PDCP (see, for example, subclause 6.5 of 3GPP TS38.300). A control plane protocol stack is also defined for NR (see, for example, section 4.4.2 of TS38.300). An overview of layer 2 functions is given in subclause 6 of TS38.300. The functions of the PDCP, RLC, and MAC sublayers are listed in sections 6.4, 6.3, and 6.2 of TS38.300, respectively. The functions of the RRC layer are listed in subclause 7 of TS38.300.
[0014] For example, the MAC layer handles multiplexing and scheduling of logical channels and scheduling-related functions, including handling of different numerologies.
[0015] For the physical layer, the MAC layer utilizes services in the form of transport channels. A transport channel can be defined by how information is transmitted and by what characteristics via a radio interface. The random access channel (RACH) is also defined as a transport channel that does not carry transport blocks but is handled by the MAC. One of the procedures supported by the MAC layer is the random access procedure.
[0016] The physical layer (PHY) is responsible for, for example, coding, PHY HARQ processing, modulation, multi-antenna processing, and mapping of signals to appropriate physical time-frequency resources. It also handles the mapping of transport channels to physical channels. The physical layer provides services to the MAC layer according to the format of the transport channels. The physical channels correspond to a set of time-frequency resources used for the transmission of a specific transport channel, and each transport channel is mapped to a corresponding physical channel. One physical channel is the PRACH (Physical Random Access Channel) used for random access.
[0017] Use cases / deployment scenarios for NR can include eMBB (enhanced Mobile Broadband), URLLC (Ultra-Reliable Low-Latency Communications), and mMTC (massive Machine Type Communication) with diverse requirements regarding data rate, latency, and coverage. For example, eMBB is expected to support peak data rates (20 Gbps for the downlink and 1 Gbps for the uplink) and user-perceived data rates on the order of three times that provided by IMT-Advanced. On the other hand, in the case of URLLC, tighter requirements are imposed for ultra-low latency (0.5 ms for both UL and DL of user plane latency) and high reliability (1 - 10 -5 ) within 1 ms. Finally, mMTC may preferably require a high connection density (1,000,000 devices / km in urban environments 2 ), large coverage in harsh environments, and extremely long battery life (15 years) for low-cost devices.
[0018] Therefore, OFDM neurology suitable for one use case (e.g., subcarrier interval, OFDM symbol duration, cyclic prefix (CP) duration, number of symbols per scheduling interval, etc.) may not work well for another use case. For example, a low-latency service may preferably require a shorter symbol duration (and therefore a larger subcarrier interval) and / or fewer symbols per scheduling interval (aka TTI) than an mMTC service. Furthermore, a deployment scenario with a large channel delay spread may preferably require a longer CP duration than a scenario with a short delay spread. To maintain similar CP overhead, the subcarrier interval should be optimized accordingly. NR may support multiple values for the subcarrier interval. In response to this, subcarrier intervals of 15kHz, 30kHz, 60kHz, etc. are currently being considered. Symbol duration T u The subcarrier spacing Δf is given by Δf = 1 / T u This is directly related through the formula. Similar to LTE systems, the term “resource element” can be used to refer to the smallest resource unit consisting of one subcarrier for the length of one OFDM / SC-FDMA symbol.
[0019] In the new 5G-NR wireless system, resource grids for subcarriers and OFDM symbols are defined for each neurology and carrier, for both uplink and downlink. Each element in the resource grid is called a resource element and is identified based on its frequency index in the frequency domain and its symbol position in the time domain (see 3GPP TS38.211 v15.5.0).
[0020] Downlink Control Channel Monitoring PDCCH DCI Many of the functions operated by the UE include, for example, monitoring downlink control channels (see section 5.2.3 of 3GPP TS38.300 v15.5.0 for PDCCH) to receive specific control information or data directed to the UE.
[0021] A non-exhaustive list of these functions is shown below. • Paging message monitoring function • System information acquisition function • Notification monitoring operation for intermittent reception (DRX) function • Inactivity monitoring operation for intermittent reception (DRX) function • Receive random access responses for random access functionality. • Reordering function for the PDCP (Packet Data Convergence Protocol) layer
[0022] This explanation focuses on the list of functions described above. However, the concepts and embodiments for improving PDCCH monitoring described herein are also applicable to other functions related to PDCCH monitoring.
[0023] As described above, PDCCH monitoring is performed by the UE to identify and receive information intended for the UE, such as control information and user traffic (e.g., DCI on the PDCCH and user data on the PDSCH notified by the PDCCH).
[0024] Downlink control information (referred to as Downlink Control Information (DCI)) serves the same purpose in 5G NR as DCI in LTE, namely, a special set of control information for scheduling, for example, downlink data channels (e.g., PDSCH) or uplink data channels (e.g., PUSCH). In 5G NR, there are already defined different DCI formats (see Section 7.3.1 of TS38.212 v15.5.0).
[0025] Each of these PDCCH monitoring functions serves a specific purpose and is therefore initiated until the end. PDCCH monitoring is typically controlled based on a timer operated by at least the UE. The timer has the purpose of controlling PDCCH monitoring, for example, by limiting the maximum time the UE monitors the PDCCH. For example, the UE does not need to monitor the PDCCH indefinitely, but may stop monitoring after a certain time to save power. Correspondingly, the timer may be started when the UE starts PDCCH monitoring for its intended purpose, and when the timer expires, the UE may stop PDCCH monitoring for its intended purpose, thus having the opportunity to save power.
[0026] The features listed above are explained in more detail below.
[0027] Paging procedure in 5G NR An exemplary implementation of the paging function in 5G NR for PDCCH monitoring, according to the currently standardized version, is described below in a simplified and abbreviated form.
[0028] 5G NR has two different paging procedures: RAN-based paging (e.g., based on RAN-based notification areas) and core network-based paging (see 3GPP TS38.300 v15.5.0, TS38.304 v15.3.0, and TS38.331 v15.5.0, which refer to RAN paging and CN paging in several sections, such as "Paging" in section 9.2.5 of TS38.300).
[0029] Paging allows the network to reach UEs in RRC_IDLE and RRC_INACTIVE states via paging messages, and to notify UEs in RRC_IDLE, RRC_INACTIVE, and RRC_CONNECTED states of system information changes and ETWS / CMAS (Earthquake and Tsunami Warning System / Commercial Mobile Alert System) notifications via short messages. Both paging messages and short messages are addressed by P-RNTI on the PDCCH, which is monitored by the UE. However, while the actual paging message (such as a paging record) is subsequently sent via the PCCH (and notified by the PDCCH), short messages can be sent directly via the PDCCH.
[0030] In RRC_IDLE mode, the UE monitors the CN-initiated paging channel, while in RRC_INACTIVE mode, the UE also monitors the RAN-initiated paging channel. While the UE does not need to continuously monitor the paging channel, paging DRX is defined such that an RRC_IDLE or RRC_INACTIVE UE only needs to monitor the paging channel during one paging opportunity (PO) per DRX cycle (see sections 6.1 and 7.1 of 3GPP TS38.304 v15.3.0, etc.). The paging DRX cycle is set by the network.
[0031] The POs (Points of Presence) of UEs in CN-start paging and RAN-start paging are based on the same UE ID, and the POs for both overlap. The number of different POs in a DRX period can be configured via system information, and the network may distribute UEs to those POs based on their IDs. A PO is a set of PDCCH monitoring opportunities and can consist of multiple time slots (e.g., subframes or OFDM symbols) that the paging DCI can transmit. A single paging frame (PF) is a single radio frame and may contain one or more POs or start points for POs.
[0032] When RRC_CONNECTED, the UE monitors the paging channels on any PO that are notified in the system information for SI change notifications and PWS (Public Warning System) notifications. In the case of Bandwidth Adaptive (BA) (see Section 6.10 of TS38.300), the RRC_CONNECTED UE monitors only the paging channels on the active BWP where the common search space is configured.
[0033] Summarizing the above within the context of improved concepts and embodiments for PDCCH monitoring, as described below, to control PDCCH monitoring for paging functionality, the UE may use, for example, a timer that counts the duration of a paging opportunity. For example, the timer is started at the beginning of the PO until it expires (having the length of the PO as the timer value).
[0034] When the UE receives a paging message, PDCCH monitoring can be stopped by the UE. Depending on the cause of the paging, the UE may continue to retrieve system information, establish an RRC connection with the base station, and receive traffic / commands from the network.
[0035] NR system information acquisition An example implementation of the system information acquisition function in 5G NR for PDCCH monitoring, based on the currently standardized version, is described below in a simplified and abbreviated form.
[0036] In 5G NR, system information (SI) is divided into a Master Information Block (MIB) and several System Information Blocks (SIBs) (see sections 5.2 of 3GPP TS38.331 v15.5.1, section 7.3 of 3GPP TS38.300 v15.5.0, section 13 of 3GPP TS38.213, etc.). The MIB is transmitted on the BCH and contains parameters required to retrieve SIB1 from the cell. SIB1 is transmitted periodically on the DL-SCH and contains information about availability and scheduling, such as the mapping of the SIB to an SI message, periodicity, the SI window size of other SIBs with notification whether one or more SIBs are provided only on demand, and in this case, the settings required by the UE to perform the SI request.
[0037] SIBs other than SIB1 are carried in system information messages (SI messages) transmitted over the DL-SCH. SIBs with the same periodicity can be mapped to the same SI message. Each SI message is transmitted within a periodically occurring time-domain window (referred to as an SI window with the same length for all SI messages). Each SI message is associated with an SI window, and the SI windows of different SI messages do not overlap.
[0038] The UE applies the SI acquisition procedure to obtain information from the access layer (AS) and non-access layer (NAS) and applies it to UEs in RRC_IDLE, RRC_INACTIVE, and RRC_CONNECTED modes. For example, the UE may apply the SI acquisition procedure when selecting a cell (e.g., when powering on), when re-selecting a cell, when returning from outside coverage, after reconfiguration due to synchronization completion, after joining the network from another RAT (Radio Access Technology), after receiving notification that system information has changed, and when the UE does not have a valid version of the stored SIB. A correction period is utilized, i.e., the updated SI is notified during the correction period following whether or not an SI change notification is sent.
[0039] UEs receive notifications about SI changes using short messages sent via DCI along with P-RNTI. RRC_IDLE or RRC_INACTIVE UEs may monitor SI change notifications during their own paging opportunities at each DRX cycle (see above). RRC_CONNECTED UEs monitor SI change notifications at least once per change cycle, during any paging opportunity.
[0040] To acquire an SI message, one or more PDCCH monitoring opportunities are determined, which may be the same as or different from those for PDCCH monitoring of SIB1. For example, the UE assumes that in an SI window, the PDCCH of an SI message is transmitted at at least one PDCCH monitoring opportunity corresponding to each transmitted SSB (Synchronization Signal Block). The SIB1 configuration provides information about the search space and other PDCCH-related parameters required by the UE to monitor the scheduling of SIB1.
[0041] Summarizing the above within the context of improved concepts and embodiments for PDCCH monitoring, as described below, the UE may utilize a timer to control the SI window length, and the UE may monitor the PDCCH until it successfully receives an SI message or until the end of an SI window of a specific length. If an SI message is not received by the end of the SI window, PDCCH monitoring can be repeated at the next SI window opportunity for the SI message in question in the current modification period.
[0042] Intermittent reception (DRX) in LTE and 5G NR An example implementation of the system information acquisition function in 5G NR for PDCCH monitoring, based on the currently standardized version, is described below in a simplified and abbreviated form.
[0043] To reduce battery consumption in the UE, a mechanism is used to minimize the time the UE spends monitoring the PDCCH, which is called the Intermittent Reception (DRX) function. The DRX function can be set for RRC_IDLE, in which case the UE uses a specific DRX value or a default DRX value (defaultPagingCycle). The default is broadcast in the system information and can have values of 32, 64, 128, or 256 radio frames. The UE needs to wake up for one paging opportunity per DRX cycle, and a paging opportunity is one subframe. The DRX function can also be set for “RRC_CONNECTED” UEs, which eliminates the need to constantly monitor the downlink control channel for downlink control information (or simply, the UE monitors the PDCCH) (see 3GPP Technical Standard TS36.321 15.5.0, chapter 5.7).
[0044] The following parameters, namely the On-Duration period during which the mobile node is active (i.e., DRX Active Time) and the period during which the mobile node is in DRX (i.e., not in DRX Active Time), can be used to define the behavior of the DRX UE.
[0045] - On-duration : The duration of downlink subframes during which the user device receives and monitors the PDCCH after waking up from the DRX, i.e., more specifically, the duration of subframes containing the PDCCH (also called PDCCH subframes). It should be noted that the term “PDCCH” here refers to the PDCCH, EPDCCH (in subframes when set), or R-PDCCH for relay nodes where R-PDCCH is set and not suspended. If the user device successfully decodes the PDCCH, the user device remains awake / active and starts the inactivity timer [1-200 subframes; 16 steps: 1-6, 10-60, 80, 100, 200]. - DRX Inactivity Timer : The duration of the downlink subframes in which the user device waits from the last successful decoding of the PDCCH until it successfully decodes the PDCCH again. If the UE fails to decode the PDCCH during this period, it re-enters the DRX. The user device restarts the inactivity timer following one successful decoding of the PDCCH for the first transmission only (i.e., not for retransmission) [1-2560 subframes; 22 steps, 10 spares: 1-6, 8, 10-60, 80, 100-300, 500, 750, 1280, 1920, 2560]. - DRX Retransmission timer Specifies the number of consecutive PDCCH subframes that the UE is expected to downlink retransmit after the first available retransmission time. [1 to 33 subframes, 8 steps: 1, 2, 4, 6, 8, 16, 24, 33]. - DRX short cycle: Specifies the on-duration periodic repetition following a possible inactivity period for a short DRX period. This parameter is arbitrary [2 to 640 subframes; 16 steps: 2, 5, 8, 10, 16, 20, 32, 40, 64, 80, 128, 160, 256, 320, 512, 640]. - DRX short cycle timer Specifies the number of consecutive frames following a short DRX period after the DRX Inactivity Timer expires. This parameter is arbitrary [1 to 16 subframes]. - Long DRX Cycle Start Offset :(determined by the formula specified in Section 5.7 of TS36.321) the subframe offset when the on-duration starts and the periodic repetition of the on-duration following a possible period of inactivity for the DRX long period [period length 10 to 2560 subframes; 16 steps: 10, 20, 30, 32, 40, 64, 80, 128, 160, 256, 320, 512, 640, 1024, 1280, 2048, 2560; offset is an integer between [0 to subframe length of the selected period]].
[0046] The total duration for which a UE is active is called “Active Time” or DRX Active Time. Active Time includes, for example, the on-duration of the DRX period, the time during which the UE is performing continuous reception while the inactivity timer has not expired, and the time during which the UE is performing continuous reception while waiting for a downlink retransmission after one HARQ RTT. Similarly, for uplinks, the UE is activated every 8ms after the first uplink transmit until the maximum number of retransmissions is reached, i.e., in DRX Active Time, in subframes where an uplink retransmission grant is receivable via the PDCCH. Based on the above, the minimum Active Time is a fixed length equal to the on-duration, and the maximum is variable, for example, depending on PDCCH activity.
[0047] The “DRX period” or “DRX off period” is the duration of downlink subframes during which the UE can skip receiving downlink channels for battery-saving purposes, i.e., monitoring downlink channels is not required. The operation of DRX gives the mobile terminal the opportunity to repeatedly deactivate its radio circuitry (according to the currently active DRX period) to conserve power. Whether the UE actually remains in DRX (i.e., inactive) during a DRX period may be decided by the UE, for example, the UE typically performs heterofrequency measurements that are not possible during the On-Duration period and therefore need to be performed at other times, such as during DRX off periods.
[0048] To satisfy conflicting requirements, two DRX periods (short and long) can be set for each UE, with the short DRX period being optional, meaning only the long DRX period can be used. Transitions between the short DRX period, the long DRX period, and continuous reception are controlled by a timer or explicit commands from the eNodeB. In a sense, the short DRX period can be considered an acknowledgment period in case a late packet arrives before the UE enters the long DRX period. If data arrives at the eNodeB while the UE is in the short DRX period, the data is scheduled for transmission in the next on-duration time, and the UE resumes continuous reception. On the other hand, if no data arrives at the eNodeB during the short DRX period, the UE enters the long DRX period, assuming that packet activity has ended for the time being.
[0049] During active time, the UE monitors the PDCCH, reports the configured SRS (Sounding Reference Signal), and reports CQI (Channel Quality Information), PMI (Precoding Matrix Indicator), RI (Rank Indicator), and PTI (Precoder Type Indication) on the PUCCH. When the UE is not active, type 0 triggered SRS and CQI / PMI / RI / PTI on the PUCCH do not need to be reported. If a CQI mask is set on the UE, reporting of CQI / PMI / RI / PTI on the PUCCH is limited to on-duration subframes.
[0050] Figure 3 discloses an example of DRX operation. The UE checks for scheduling messages (which may also be called downlink / uplink assignments, indicated by their C-RNTI (Cell Radio Network Temporary Identity) on the PDCCH) during the same “on-duration” period for both long and short DRX cycles. When a scheduling message is received during the “on-duration period,” the UE starts an “inactivity timer” and continues to monitor the PDCCH in all subframes while the Inactivity Timer is running. During this period, the UE can be considered to be in “continuous receive mode.” If a scheduling message is received while the Inactivity Timer is running, the UE restarts the Inactivity Timer, and when it expires, the UE transitions to a short DRX cycle and starts a “short DRX cycle timer” (assuming a short DRX cycle is set). When the short DRX cycle timer expires, the UE transitions to a long DRX cycle. A short DRX period may also be initiated by a DRX MAC Control Element that the eNB can send at any time to immediately put the UE into a DRX period, i.e., a short DRX period (if configured as such) or a long DRX period (if no short DRX period is configured).
[0051] The basic concept of DRX described above for LTE is also applicable to the new 5G NR, although there are some differences. Standardization has advanced and defined DRX (see section 5.7 titled “Discontinuous Reception (DRX)” in 3GPP TS38.321 v15.5.0).
[0052] The following is stated in TS38.321.
[0053] RRC controls DRX operation by setting the following parameters. -drx-onDurationTimer: Duration from the start of the DRX cycle -drx-SlotOffset: Delay before starting drx-onDurationTimer -drx-StartOffset: Subframe on which the DRX cycle starts -drx-InactivityTimer: Duration after a PDCCH opportunity in which PDCCH notifies a MAC entity of a new UL or DL transmission. -drx-RetransmissionTimerDL(per DL HARQ process): Maximum duration before DL retransmission is received -drx-RetransmissionTimerUL(per UL HARQ process): Maximum duration before a grant for UL retransmission is received. -drx-LongCycle: Long DRX cycle -drx-ShortCycle (optional): Short DRX cycle -drx-ShortCycleTimer(optional): Duration for which the UE follows a short DRX cycle. -drx-HARQ-RTT-TimerDL(DL per HARQ process): Minimum duration until DL allocation for HARQ retransmission is expected by the MAC entity. -drx-HARQ-RTT-TimerUL(UL HARQ per process): Minimum duration before an UL HARQ retransmission grant is expected by a MAC entity.
[0054] When the DRX cycle is set, the active time includes the following periods: -drx-onDurationTimer, drx-InactivityTimer, drx-RetransmissionTimerDL, drx-RetransmissionTimerUL, or ra-ContentionResolutionTimer (as described in subclose 5.1.5) is running, or - A scheduling request has been sent via PUCCH and is pending (as described in subclose 5.4.4), or - The PDCCH notifying the MAC entity's C-RNTI of a new transmission has not been received after the successful reception of a random access response for a random access preamble that is not selected by the MAC entity from among the contention-based random access preambles (as described in subclosed 5.1.4 of TS38.321).
[0055] It should be noted that the term PDCCH may refer to, for example, PDCCH by common search space, PDCCH by UE-specific search space, or GC-PDCCH (Group Common PDCCH) in 5G NR.
[0056] As is evident from this, the DRX for 5G NR is also based on long and short DRX cycles, with the transition between them based on a Short DRX Cycle timer defining the On-Duration at the start of the DRX cycle, and the DRX inactivity timer determining the duration of continuous reception after the UE has received a PDCCH after entering a sleep state. Thus, the 5G-NR DRX mechanism operates conceptually as shown in Figure 3.
[0057] To summarize the above within the context of the improved concepts and embodiments for PDCCH monitoring, as described later, the UE monitors the PDCCH using timers to control the On-Duration time and DRX-inactivity time, respectively. While the corresponding timers are running, the UE is required to continue monitoring the PDCCH for DRX operation.
[0058] Random Access Channel Procedure An exemplary implementation of the random access function in 5G NR for PDCCH monitoring, according to the currently standardized version, is described below in a simplified and abbreviated form.
[0059] When a UE detects a cell, it can access that cell. This can be done using a random access procedure. The LTE RACH procedure is described in more detail below with reference to Figures 4 and 5. In LTE, a mobile terminal can only be scheduled for uplink transmission if its uplink transmission is time-synchronized. Therefore, the Random Access Channel (RACH) procedure plays a crucial role as an interface between asynchronous mobile terminals (UEs) and orthogonal transmissions of uplink radio access. For example, random access in LTE is used to achieve uplink time synchronization for user equipment that has not yet achieved or has lost its uplink synchronization. Once the user equipment achieves uplink synchronization, the eNodeB can schedule uplink transmission resources for it. One scenario related to random access is when user equipment in the RRC_CONNECTED state, handing over from its current cell to a new target cell, executes a random access procedure to achieve uplink time synchronization in the target cell.
[0060] LTE provides two types of random access procedures that allow access to be contention-based, i.e., with an inherent risk of collision, or contention-free (non-contention-based) (see Section 5.1 of 3GPP TS36.321 v15.5.0).
[0061] The LTE contention-based random access procedure is described in more detail below with reference to Figure 4. This procedure consists of four “steps”. First, the user device sends a random access preamble over the PRACH (Physical Random Access Preamble) to the eNodeB (i.e., message 1 of the RACH procedure). After the eNodeB detects the RACH preamble, it uses the (random access) RA-RNTI to identify the time-frequency slot in which the preamble was detected and sends a random access response (RAR) message over the PDSCH (Physical Downlink Shared Channel) addressed on the PDCCH (message 2 of the RACH procedure). If multiple user devices send the same RACH preamble over the same PRACH resource (this is also called a collision), they receive the same random access response message. The RAR message may carry the detected RACH preamble, timing alignment commands (TA commands) for synchronizing subsequent uplink transmissions, an initial uplink resource allocation (grant) for the first scheduled transmission, and the allocation of a T-CRNTI (Temporary Cell Radio Network Temporary Identifier). This T-CRNTI is used by the eNodeB to deal with the detected mobile until the RACH procedure is complete, since the “actual” identifier of the mobile is not yet known to the eNodeB at this point.
[0062] The user device monitors the PDCCH for the reception of random access response messages within a predetermined time window set by the eNodeB (e.g., called the RAR time window). In response to the RAR message received from the eNodeB, the user device sends the first scheduled uplink transmission on the radio resource allocated by the grant within the random access response. This scheduled uplink transmission carries the actual random access procedure message, such as an RRC Connection Request, RRC Resume Request, or buffer status report.
[0063] Figure 5 shows the 3GPPLTE contention-free random access procedure, simplified compared to the contention-based random access procedure. In the first step, the eNodeB provides the user equipment with a preamble to use for random access, ensuring there is no risk of collisions, i.e., no risk of multiple user equipment transmitting the same preamble. The user equipment then transmits the preamble notified by the eNodeB on the uplink over the PRACH resource. Since multiple UEs transmitting the same preamble is avoided for contention-free random access, the contention-free random access procedure essentially terminates after the UEs have successfully received a random access response.
[0064] Similar or identical RACH procedures, as described in relation to Figures 4 and 5, will be implemented for new 5G wireless technologies (see Section 5.1 of 38.321 v15.5.0).
[0065] Furthermore, 3GPP is also studying a two-step RACH procedure for 5G NR, in which message 1, corresponding to messages 1 and 3 in the four-step RACH procedure, is sent first. Then, the gNB responds with message 2, corresponding to messages 2 and 4 in the LTE RACH procedure. Due to the reduced message exchange, the delay in the two-step RACH procedure may be reduced compared to the four-step RACH procedure. The radio resources for messages are optionally set by the network.
[0066] Summarizing the above within the context of the improved concept and embodiment for PDCCH monitoring, as described below, the UE monitors PDCCH using a timer to control the random access response time window after sending the RACH preamble as the first step of the RACH procedure. When the timer expires and no RAR is received, the UE is not required to continue PDCCH monitoring, but may, for example, resend the RACH preamble. If a RAR is received within the RAR time window, the UE proceeds to the next step of the RACH procedure, for example, sending a scheduled user data transmission.
[0067] PDCP Reordering An exemplary implementation of the PDCP reordering function in 5G NR for PDCCH monitoring, according to the currently standardized version, is described below in a simplified and abbreviated form (see sections 5.1.2, 5.2.1, 5.2.2, etc. of 3GPP TS38.323 v15.5.0).
[0068] PDCP (Packet Data Convergence Protocol) performs IP header compression, encryption, and integrity protection. It also handles retransmission, sequential delivery, and deduplication in case of handover. In particular, PDCP is responsible for performing reordering to ensure the sequential delivery of Service Data Units (SDUs) (sometimes called packets) to higher layer protocols. Reordering essentially buffers received SDUs and does not forward them to higher layers until all SDUs of lower numbers have been delivered. A counter value is used to identify missing SDUs, request retransmissions, and reorder received SDUs before delivery to higher layers.
[0069] A timer (e.g., called t-reordering) is available to control the reordering function of the PDCP layer. This timer is started when an unordered delivery from the base station is detected and controls the time the UE waits for the data packet (SDU) to be delivered in order before proceeding further. While the t-reordering timer is running, the UE may monitor the PDCCH for the delivery of the data packet (e.g., PDCP PDU) in order. When such a data packet is received, the UE transitions to PDCP operation, for example, by delivering the SDU in order to the upper layer and stopping the t-reordering timer until the next unordered delivery is detected.
[0070] LAA (Licensed-Assisted Access) and Enhanced LAA (eLAA) The reason for extending LTE into unlicensed bands is the ever-increasing demand for wireless broadband data in relation to limited licensed bands. Therefore, unlicensed spectrum is increasingly being considered by cellular operators as a complementary tool to enhance service delivery. Compared to relying on other radio access technologies (RATs) such as Wi-Fi, the advantage of LTE in unlicensed bands is that by complementing the LTE platform with unlicensed spectrum connectivity, operators and vendors can leverage existing or planned investments in LTE / EPC hardware in their wireless and core networks.
[0071] However, it must be considered that unlicensed spectrum access can never match the quality of licensed spectrum access due to its inevitable coexistence with other radio access technologies (RATs) in the unlicensed spectrum, such as Wi-Fi. Therefore, LTE operation on unlicensed bands was considered, at least initially, not as standalone operation on the unlicensed spectrum, but as a complement to LTE on the licensed spectrum. Based on this assumption, 3GPP established Licensed Assisted Access (LAA) for LTE operation on unlicensed bands, in association with at least one licensed band. However, standalone operation of LTE on the unlicensed spectrum, i.e., without support from licensed cells, has not been ruled out, and such standalone unlicensed operation is now predicted for 5G NR.
[0072] The overall LAA approach currently intended in 3GPP is to make the most of the already specified Rel-12 carrier aggregation (CA) framework, where the CA framework configuration described above includes a so-called primary cell (Pcell) carrier and one or more secondary cell (SCell) carriers. CAs generally support both cell self-scheduling (scheduling information and user data are transmitted on the same component carrier) and cross-carrier scheduling between cells (scheduling information for PDCCH / EPDCCH and user data for PDSCH / PUSCH are transmitted on different component carriers).
[0073] The use of unlicensed bands is also a focus of new 5G NR development. NR license designs can be used as a baseline, and the following development scenarios can be considered: • Similar to LTE LAA, carrier aggregation between NR licensed cells (e.g., PCell) and NR unlicensed cells (e.g., SCell) • Dual connectivity (LTE and NR), ENU-DC with master eNB operating on licensed spectrum and secondary gNB operating on unlicensed spectrum, NNU-DC with master NB operating on licensed spectrum and secondary gNB operating on unlicensed spectrum • Standalone (SA): Standalone NR PCell operating in the unlicensed spectrum as NR-U SA • NR radio cells with downlink in unlicensed bands and UL in licensed bands
[0074] In NR, Listen-Before-Talk is performed on an unlicensed carrier. Specifically, the transmitting entity performs LBT, and channel occupancy is only possible after a successful LBT CCA (Clear Channel Assessment).
[0075] A very simple scenario is shown in Figure 6 with a licensed PCell, a licensed SCell1, and various unlicensed SCells 2, 3, and 4 (shown illustratively as small cells). The transmit / receive network nodes of the unlicensed SCells 2, 3, and 4 can be remote radioheads managed by an eNB, or they can be nodes attached to the network without being managed by an eNB. For simplicity, the connections of these nodes to the eNB or network are not explicitly shown in the figure. Furthermore, an unlicensed radio cell 5 illustrates a standalone scenario of an NR PCell operating in the unlicensed spectrum.
[0076] At some point before data distribution phase 1320, the master AP also configures itself so that higher layer data is routed through it instead of through slave AP1. This may be done by temporarily updating the routing table of the network router device that forwards the data payload to the AP so that the master AP is recorded as the service AP for the target STA.
[0077] One of the most important issues is coexistence with other systems, such as Wi-Fi (IEEE 802.11) systems, operating in these unlicensed bands. To support fair coexistence between LTE, 5G NR, and other technologies such as Wi-Fi, and to ensure fairness between different operators in the same unlicensed band, channel access for unlicensed bands must be subject to a specific set of regulatory rules that may be partially dependent on geographical area and specific frequency bands (see, for example, 3GPP Technical Report TR36.889 version 13.0.0). Depending on the region and band, regulatory requirements that must be considered when designing LAA and 5G NR procedures include DFS (Dynamic Frequency Selection), TPC (Transmit Power Control), LBT (Listen Before Talk), and intermittent transmission with a limited maximum transmit duration (also called channel occupancy time, channel acquisition time, or similar expressions). A single global framework can be targeted, which essentially means that all requirements for different regions and bands of 5GHz can be considered in system design.
[0078] The Listen-Before-Talk (LBT) procedure is defined as a mechanism for applying a Clear Channel Assessment (CCA) check before a device uses a channel. In one example implementation, the CCA utilizes at least energy sensing to determine whether the channel is occupied or clear, and to determine the presence or absence of other signals on the unlicensed channel. For example, European and Japanese regulations mandate the use of LBT in the unlicensed band. Apart from regulatory requirements, such carrier sensing via LBT is considered one method for the equitable sharing of the unlicensed spectrum and is therefore seen as an important feature for fair and friendly operation of a single global solution framework in the unlicensed spectrum.
[0079] In the unlicensed spectrum, channel availability is not always guaranteed. Furthermore, certain regions, such as Europe and Japan, prohibit continuous transmission and impose restrictions on the maximum duration (maximum channel occupancy) of transmission bursts in the unlicensed spectrum. Therefore, intermittent transmission with limited maximum transmission duration is a feature for LAA and 5G NR.
[0080] In accordance with this European regulation concerning LBT, a device must perform a Clear Channel Assessment (CCA) before occupying an unlicensed radio channel by data transmission. In such a restricted exemplary scenario, for example, transmission on an unlicensed channel is permitted only after detecting the channel as free base based on energy sensing. In particular, the device must observe the channel for a specific minimum time during the CCA (e.g., 20 μs in Europe; see close 4.8.3 of ETSI 301 893). If the detected energy level exceeds a set CCA threshold (e.g., -73 dBm / MHz in Europe; see close 4.8.3 of ETSI 301 893), the channel is considered occupied; conversely, if the detected power level falls below the set CCA threshold, the channel is considered free. If the channel is determined to be occupied, the channel shall not transmit on that channel during the next fixed frame period. If the channel is classified as free, the device is permitted to transmit immediately. To ensure fair resource sharing with other devices operating in the same bandwidth, the maximum transmission duration is limited.
[0081] CCA is repeatable, with an optional backoff time in between.
[0082] Furthermore, the total time that an instrument has transmits on a given carrier without re-evaluating the carrier's availability (i.e., LBT / CCA) is defined as channel occupancy time (see, for example, close 4.8.3.1 of ETSI 301893). Channel occupancy time must be between 1ms and 10ms, and the maximum channel occupancy time can be, for example, 4ms as currently specified for Europe. In addition, there is a minimum idle time during which the UE is not permitted to transmit after a transmit on an unlicensed cell, and this minimum idle time is at least 5% of the channel occupancy time. Towards the end of the idle period, the UE may perform a new CCA, and so on.
[0083] Furthermore, CCA may not be required within a predetermined period after receiving a signal from another entity, for example, within 16 microseconds, as part of a shared COT. For example, switching between DL and UL, and between UL and DL, within a shared gNB COT does not require LBT.
[0084] This transmission operation is schematically shown in Figure 7 (see, for example, ETSI EN 301.893).
[0085] Therefore, operation on an unlicensed radio cell requires that any transmitter perform Listen-Before-Talk, as described above. This also applies to the transmission of PDCCH by the base station, which may consequently affect PDCCH monitoring by the UE.
[0086] Many different functions operated by the UE (see the examples above) include monitoring the PDCCH, which can therefore be affected by LBT failures of gNBs acquiring unlicensed cells (which can be expressed as acquiring the unlicensed spectrum of an unlicensed radio cell).
[0087] One possible solution to compensate for these LBT failures by the gNB side in scenarios where radio cells operate in the unlicensed spectrum is, for example, to extend the time that PDCCH is monitored compared to licensed radio cell operation. This increases the likelihood that the gNB will successfully acquire the unlicensed spectrum and reach the UE to transmit, for example, PDCCH and / or possibly PDSCH.
[0088] For example, a longer SI window may be set for NR unlicensed operation to give the gNB more opportunities to transmit system information. Furthermore, a longer DRX-On-Duration can be set to accommodate possible LBT failures. The reduced transmission opportunities for paging resulting from LBT failures can be compensated for by increasing the length of the paging opportunity or increasing the number of paging opportunities. As a further example, the RAR window size can be extended to, for example, 20ms. Setting a longer PDCCH monitoring time window to compensate for LBT failures on the gNB side may be a simple solution that utilizes as many existing functions as possible and therefore has little impact on any of the 3GPP specifications.
[0089] However, since UEs are required to monitor PDCCH for longer durations, simply setting a longer PDCCH monitoring duration (e.g., static / semi-static) can also result in higher UE power consumption. This power drawback can occur especially when the channel is not busy. In particular, assuming the unlicensed spectrum is not blocked by another entity, the gNB will have an opportunity to transmit PDCCH (and possibly PDSCH) immediately, but if the gNB has still not addressed the UE, the UE will monitor the PDCCH for a longer period without any benefit.
[0090] Accordingly, the inventors have identified the possibility of improving the monitoring of the PDCCH for one or more of the functions described above (e.g., DRX, paging, system information, random access, PDCP reordering) when operating in the unlicensed frequency spectrum. The present invention is also applicable to other functions relating to PDCCH monitoring, although not explicitly stated above.
[0091] In the following, UEs, base stations, and procedures for satisfying their requirements are described primarily for new radio connectivity technologies envisioned for 5G mobile communication systems, but which may also be used in LTE mobile communication systems. Different implementations and variations are also described. The following disclosures were realized by the descriptions and discoveries described above, but may also be based on, for example, at least in part thereto, or may be realized within such systems.
[0092] It should be noted that, in general, many assumptions are made herein to make the underlying principles of this disclosure clear and understandable. However, these assumptions should be understood as merely specific examples made hereinin for illustrative purposes, not to limit the scope of this disclosure. Those skilled in the art will recognize that the principles of the disclosure as developed in the claims below are applicable to different scenarios in ways not expressly described herein.
[0093] Furthermore, some of the terms used below, such as procedures, entities, and layers, are closely related to the terminology used in LTE / LTE-A systems or current 3GPP 5G standardization, although specific terminology to be used in the context of new radio access technologies for the next 3GPP 5G communication systems has not yet been fully determined or may ultimately change. Therefore, terminology may change in the future without affecting the functionality of the embodiments. For this reason, those skilled in the art will recognize that the embodiments and their scope of protection should not be limited to specific terms used exemplarily here due to the absence of newer or finally agreed-upon terminology, but should be understood more broadly with respect to the functions and concepts underlying the functionality and principles of this disclosure.
[0094] For example, a mobile station, mobile node, user terminal, or user equipment (UE) is a physical entity (physical node) in a communication network. A single node may have multiple functional entities. A functional entity represents a software or hardware module that implements and / or provides a predetermined set of functions to the same or another node or other functional entities in the network. A node may have one or more interfaces to attach it to a communication facility or medium with which it can communicate. Similarly, a network entity may have logical interfaces to attach functional entities to a communication facility or medium with which it can communicate to other functional entities or corresponding nodes.
[0095] Here, “base station” or “wireless base station” refers to a physical entity within a communication network. Similar to a mobile station, a base station may have several functional entities. A functional entity represents a software or hardware module that implements and / or provides a predetermined set of functions to the same or another node or other functional entities in the network. A physical entity performs several control tasks related to a communication device, including one or more of scheduling and configuration. It should be noted that the functions of a base station and a communication device may be integrated within a single device. For example, a mobile terminal may also implement the functions of a base station for other terminals. The term used in LTE is eNB (or eNodeB), while the term currently used for 5G NR is gNB.
[0096] Figure 8 shows a simplified, illustrative block diagram of the user equipment (also called the communication device) and the scheduling device (here, it is illustratively assumed that these are located in base stations such as, for example, an eNB (or ng-eNB) in eLTE or a gNB in 5G NR). The UE and eNB / gNB communicate with each other over a (radio) physical channel using transceivers.
[0097] A communication device may have a transceiver and a processing circuit. The transceiver may then have and / or function as a receiver and a transmitter. The processing circuit may be one or more processors or one or more pieces of hardware such as any LSI. Between the transceiver and the processing circuit there are input / output points (or nodes) through which the processing circuit can control the transceiver during operation, i.e., control the receiver and / or transmitter, and exchange received / transmitted data. The transceiver may include an RF (Radio Frequency) front end, including one or more antennas, amplifiers, RF modulators / demodulators, etc., as the transmitter and receiver. The processing circuit may perform control tasks, such as controlling the transceiver to transmit user data and control data provided by the processing circuit and / or to receive user data and control data that is further processed by the processing circuit. The processing circuit may also be responsible for performing other processes such as judgment, determination, calculation, and measurement. The transmitter may be responsible for performing transmission processing and other related processing. The receiver may be responsible for receiving processing and other related processing such as channel monitoring.
[0098] Improved monitoring of the downlink control channel (e.g., PDCCH) is described below.
[0099] The solutions provided below are primarily described in relation to 5G NR unlicensed scenarios, but are also applicable to unlicensed operations in LTE(A). As described above with reference to Figure 6, the UE can be located within an unlicensed radio cell operated by a gNB (e.g., one of the unlicensed SCells in Figure 6, or a standalone unlicensed radio cell). The UE is configured to perform many functions and also has the capability to monitor the downlink control channel transmitted by the gNB in the unlicensed radio cell (using the unlicensed frequency spectrum). That is, the downlink control channel is available to the gNB to transmit downlink control information (e.g., scheduling of downlink or uplink transmissions on the corresponding downlink / uplink shared channel) and user data.
[0100] Figure 9 shows a simplified exemplary UE configuration with an exemplary solution for improved monitoring of the downlink control channel, which is achievable based on the overall UE configuration described above in relation to Figure 8. The various components of the UE shown in the drawing are interconnectable with corresponding input / output nodes (not shown) for, for example, exchanging control data, user data, and other signals. The UE may have further components, which are not shown for illustrative purposes. As is evident therefrom, the UE may include a functional operation circuit, a downlink control channel monitoring circuit, a circuit for parallel operation of first and second timers, and a channel occupancy determination circuit.
[0101] Accordingly, as will be evident from the following description, in this case the processing circuit can be exemplary configured to at least partially perform one or more functions of monitoring the downlink control channel and operating the first and second timers. Accordingly the receiver can be exemplary configured to at least partially perform one or more of the following: monitoring the downlink control channel and receiving information intended for the UE via the downlink control channel.
[0102] Figure 10 is a schematic diagram of the different functions that can be operated by the UE. As is clear, the UE can operate several different functions #1 to #N, such as those described above. For example, functions #1 to #N are: • Paging message monitoring function • System information acquisition function • Notification monitoring operation for DRX function • Inactivity monitoring operation for DRX function • Receive random access responses for random access functionality. • PDCP layer reordering function
[0103] Each of the functions that operates relates to monitoring the downlink control channel, along with the parallel operation of the first and second timers. The first and second timers typically differ between different functions, and have different timer values and different purposes, for example, as will become more apparent below.
[0104] Concepts and embodiments for improved downlink control channel monitoring procedures will be described first, independently of their different functions, focusing on common embodiments that facilitate the resolution of the problems of the prior art.
[0105] Figure 11 is a sequence diagram for exemplary UE operation according to this improved downlink control channel monitoring procedure. As is evident from this, it is assumed that the UE performs a function related to monitoring the downlink control channel of an unlicensed radio cell. Downlink control channel monitoring is performed based on a first timer and a second timer that operate in parallel, which can be controlled by using two timers, for example, when downlink control channel monitoring is stopped.
[0106] In response to this, a first timer is used to limit the maximum time the downlink control channel is monitored by the UE. Therefore, when the UE starts monitoring the downlink control channel due to an activated function, the first timer is started, and monitoring stops at the latest when the first timer expires. This first timer is set and executed independently of the channel occupancy status in the unlicensed spectrum. In one arbitrary embodiment, the first timer can be a timer used in the prior art to control the monitoring of the downlink control channel for an activated function (e.g., a paging opportunity timer for a paging function, an on-duration timer for a DRX function, a timer for a system information acquisition window, an inactivity timer for a DRX function, a timer for a RAR window, or a PDCP reordering timer). The timer value of the first timer is extendable, for example, to an unlicensed scenario compared to a licensed scenario (see the above description for a simple solution and its resulting drawbacks).
[0107] On the other hand, the second timer is used to stop monitoring the downlink control channel earlier than the first timer, depending on the channel occupancy status of the unlicensed spectrum of the radio cell. In other words, the purpose of the second timer is to reduce the time the UE monitors the downlink control channel, where possible or appropriate, based on the channel occupancy status of the unlicensed spectrum by the gNB. For example, the channel occupancy status of the channel is considered in how the second timer can be used to stop monitoring earlier if the gNB is able to occupy the channel but has not yet transmitted information (e.g., control information or data) to the UE. This follows the consideration that the gNB is not prohibited from reaching the UE due to an LBT failure, but rather that the gNB does not need to reach the UE or is unable to reach it for other reasons (possibly unrelated to the LBT). Thus, the second timer compensates for the LBT failure, rather than for other reasons why the gNB does not reach the UE, by allowing the UE to stop channel monitoring earlier than the first timer, depending on the channel occupancy status.
[0108] This second timer is operated in parallel by the UE, for example, so that one timer does not follow the other. Monitoring specific to the function of the downlink control channel can be stopped based on either the first or second timer. Thus, the parallel operation of the two timers to control when to stop monitoring allows for the advantage of stopping monitoring as early as possible based on the second timer and channel occupancy status, while ensuring the maximum monitoring time for the downlink control channel by using the first timer. Consequently, the power used to monitor the downlink control channel can be reduced in some cases.
[0109] Accordingly, monitoring of the downlink control channel for a specific function is based on a first timer when operating in a licensed radio cell, while monitoring of the downlink control channel for that function is based on both a first and a second timer when operating in an unlicensed radio cell.
[0110] One possible exemplary implementation to ensure that the second timer expires earlier than the first timer is to set a smaller timer value for the second timer than for the first timer. The smaller the second timer is compared to the first timer, the greater the power saving gain that the UE can achieve. However, the gNB will have less time to reach the UE according to its function (e.g., paging the UE in time).
[0111] Returning to the flowchart in Figure 11, the UE operates the first and second timers in parallel to control when to stop monitoring the downlink control channel. As shown in Figure 11, the improved monitoring procedure involves determining the channel occupancy status of the unlicensed spectrum to stop monitoring using the second timer, while the first timer operates independently of the channel occupancy status of the unlicensed spectrum. The second timer is used to control whether it is appropriate to stop monitoring the downlink control channel earlier than the first timer. Whether monitoring is stopped early or not depends on the channel occupancy status of the unlicensed spectrum while monitoring the downlink control channel.
[0112] As described above, monitoring of the downlink control channel is performed as part of the function being operated and is therefore highly specific to that function. The function itself may already define several function-specific conditions for when to start and stop downlink control channel monitoring. For example, monitoring may also terminate once it receives the information intended for the UE in line with the purpose of the operated function.
[0113] For example, when a paging message is received, the paging function-specific monitoring of the downlink control channel is also stopped. In other words, the paging function requires the UE to monitor the downlink control channel during a paging opportunity in order to make it possible to receive paging messages. In this particular function, monitoring of the downlink control channel is stopped not only based on the operation of the first and second timers, but also when a paging message is received. According to a different function, the downlink control channel is monitored for non-operation of the DRX function, which stops monitoring of the downlink control channel based on the operation of the first and second timers, but if the information intended for the UE is actually received, monitoring continues (is not stopped).
[0114] In general, the improved downlink control channel monitoring described above and below is based on the use of a second timer and provides an additional termination of PDCCH monitoring based on the channel occupancy status of the corresponding unlicensed spectrum of the unlicensed radio cell. The benefit obtained is that the time required for the UE to perform downlink control channel monitoring is reduced, and therefore provides the UE with an opportunity to omit monitoring and save power.
[0115] On the other hand, by prematurely terminating function-specific monitoring of the downlink control channel, the UE may be able to move earlier to the next step of that function and thus reduce delays in specific procedures. For example, considering a random access function, premature termination of monitoring of the random access response can trigger an earlier retransmission of the RACH preamble. Another example is a PDCP reordering function, where premature termination of monitoring can be beneficial because the PDU status report can be sent earlier to the sender as it requests retransmission of missing or out-of-order PDUs.
[0116] The improved monitoring of the downlink control channel described above relates to determining the channel occupancy status of the unlicensed spectrum in an unlicensed radio cell. The UE can determine this channel occupancy status in various ways. According to one exemplary embodiment, the base station periodically transmits a channel occupancy signal when it acquires / occupies the unlicensed spectrum, and does not transmit a channel occupancy signal when it does not occupy the unlicensed spectrum. Thus, the UE can always infer the channel occupancy status from the reception or non-reception of the channel occupancy signal. Optionally, the channel occupancy signal may include information about the expected length of the channel occupancy by the gNB. According to a different implementation, the channel occupancy signal is not transmitted periodically, but only when the unlicensed spectrum is first acquired. However, the channel occupancy signal further includes information about the length of the channel occupancy so that the UE can derive how long the channel occupancy will last. According to a further alternative, to indicate the start of a channel occupancy, the gNB broadcasts a channel occupancy signal when it starts a channel occupancy, and to notify the end of a channel occupancy, it broadcasts another channel occupancy signal when it ends a channel occupancy.
[0117] According to current 3GPP discussions, channel occupancy signals (also known as COT notifications) can be periodically transmitted by gNBs. Their content and notification methods have not yet been agreed upon. However, Layer 1 (L1) of the UE may notify Layers 2 and 3 (L2 and L3) of the UE of the COT status, for example, when a gNB occupies an unlicensed spectrum, and optionally (see alternatives above) when a gNB ceases to occupy an unlicensed spectrum.
[0118] One further exemplary assumption is that the timer value of the first timer is longer when monitoring the downlink control channel is operating in an unlicensed radio cell scenario than when operating in a licensed radio cell scenario. As mentioned above, one possible solution to compensate for LBT failure is to increase the length of the timer controlling the monitoring of the downlink control channel (e.g., PDCCH) when operating in an unlicensed radio cell. Correspondingly, the gNB sets the UE with a longer timer value when communicating with the UE via an unlicensed radio cell. Then, to reduce the extra power costs for long-duration monitoring in the unlicensed radio cell where possible, a second timer is implemented as described above and below. When operating in a licensed radio cell, the second timer is not necessary.
[0119] The first and second timers can be configured in different ways. For example, the first and second timers can be configured individually by a gNB. In this regard, the gNB sends configuration information to the UE that includes separate notifications for configuring the first and second timers (for example, two different timer values, where the timer value of the second timer is smaller than the timer value of the first timer). This configuration information can be provided separately for each function being performed, thereby allowing the first and second timers to be configured individually for each function.
[0120] On the other hand, the first and second timers can be set together, with one timer being set dependent on the other; for example, the second timer is determined based on the first timer. For example, configuration information is sent by the gNB to set the first timer (see the 3GPP function described above in the usual way, as already done in prior art solutions). The second timer is then determined by the UE to be part of the first timer. For example, the unlicensed-related first timer value is multiplied by a scaling factor (e.g., 0 to 1) to determine the timer value of the second timer.
[0121] Next, the scaling factor (or part thereof) can be set by the gNB using configuration messages, for example, when setting the first timer related to unlicensing. Alternatively, the scaling factor may be defined by the 3GPP specification and therefore hardcoded in the UE or the UE's SIM card.
[0122] In a further exemplary implementation, the same or different scaling factors may be used to determine a second timer based on a first timer for different functions operating in the UE.
[0123] In a further exemplary implementation, if the gNB decides to correct the scaling factor value and sends a configuration message to the UE to change the scaling factor value, the UE may, instead of changing the scaling factor value immediately upon receiving the configuration message, gradually apply the change over a period of time.
[0124] In a further exemplary implementation, an unlicensed second timer (used by the UE to monitor the downlink control channel for a function when in an unlicensed radio cell) can be configured to be identical or similar to the licensed first timer used by the UE (for monitoring the downlink control channel for a function when in a licensed radio cell). In particular, the timer value of the unlicensed second timer can be identical or similar to the timer value of the licensed first timer. Reusing the configuration of the licensed first timer to configure the unlicensed second timer simplifies implementation and reduces the impact on the 3GPP specification.
[0125] On the other hand, the first timer, when operating in an unlicensed radio cell (exemplarily referred to as the unlicensed-related first timer), may be set depending on the first timer when operating in a licensed radio cell (exemplarily referred to as the licensed-related first timer). For example, the unlicensed-related first timer may simply be a multiple of the duration of the licensed-related first timer. Alternatively, the unlicensed-related first timer may be given by the 3GPP specification and therefore hardcoded, for example, in the UE or the UE's SIM card.
[0126] In an exemplary implementation specific to 3GPP, configuration information can be sent to the UE by the gNB using RRC messages.
[0127] Two different exemplary implementations of the improved monitoring of the downlink control channel described above are described below. The first implementation is described with reference to Figures 12 and 13. The second implementation is described with reference to Figures 14, 15 and 16. The first and second implementations differ primarily in how the second timer operates in response to the channel occupancy status and in the stopping of the downlink control channel as a result of the monitoring procedure.
[0128] According to the first alternative implementation, the second timer operates to accumulate the time the downlink control channel is monitored while the gNB occupies the unlicensed spectrum. That is, while the first timer operates independently of channel occupancy to measure the time the downlink control channel is monitored, the second timer operates when the gNB occupies the unlicensed spectrum and does not operate when the gNB does not occupy the unlicensed spectrum. Thus, the second timer accumulates only the time the gNB can actually reach the UE via the unlicensed radio cell (while ignoring other times, for example, whether the gNB cannot reach the UE due to an LBT failure, if the unlicensed spectrum is already busy and occupied by another system or another gNB). In this respect, the second timer is similar to the first timer operating in a licensed radio cell.
[0129] Figure 12 shows that monitoring of the downlink control channel is initiated as part of the function. The initiation of function-specific monitoring, along with the start of the first timer, triggers the operation of the second timer. However, whether the second timer is started, restarted, or stopped (for the first time) depends on the channel occupancy status. Thus, the UE determines the channel occupancy status of the unlicensed spectrum. It is exemplary to assume that the gNB eventually acquires the unlicensed spectrum (in the first time after monitoring has started), in which case the second timer is started. The second timer continues to operate for the duration of the channel occupancy time and is stopped when the unlicensed channel is no longer occupied by the gNB. The second timer can be restarted when the gNB again occupies the unlicensed spectrum. Thus, the second timer operates until it expires, in which case monitoring of the downlink control channel is stopped. Optionally, considering that monitoring of the downlink control channel has already been stopped based on a second timer (not shown in Figure 12), the first timer does not need to continue operating, and therefore the first timer can be stopped upon the expiration of the second timer.
[0130] Figure 13 illustrates the improved downlink control channel monitoring procedure with the above-described alternative, referring to Figure 12 in an exemplary scenario. The top of Figure 13 shows the monitoring of channel occupancy by a gNB (referred to as gNB COT) along with the downlink control channel (here, PDCCH). The middle of Figure 13 shows the operation of the first timer, and the bottom shows the operation of the second timer. The horizontal dashed lines indicate the timer values for each timer, where the timer value of the second timer is significantly lower than the timer value of the first timer. When a timer reaches its respective timer value (horizontal line), the timer expires.
[0131] As is clear, the first timer is started simultaneously with PDCCH monitoring and runs continuously, independently of the gNB COT. On the other hand, the second timer is started not at the start of PDCCH monitoring, but rather when the gNB acquires an unlicensed spectrum. The second timer runs until the end of the first gNB COT and is restarted at the second gNB COT. In the exemplary scenario, it is assumed that the second timer expires by the end of the second gNB COT and PDCCH monitoring stops (as shown at the top of Figure 13).
[0132] Figure 13 is just one example and assumes specific timer values and gNB COT length. In other scenarios, the second timer may expire earlier than shown in Figure 13 (for example, during the duration of the first gNB COT), or it may not expire at all if the first timer is the first to expire (see "Stop PDCCH monitoring when the first timer expires" in the upper right of Figure 13).
[0133] Figure 14 shows a flowchart of a second alternative implementation of the improved downlink control channel monitoring procedure. The second alternative implementation differs from the first implementation mainly in how the second timer operates. In particular, the second timer is essentially started simultaneously with the first timer, for example, when PDCCH monitoring is started. Furthermore, the second timer, like the first timer, operates continuously and independently of the gNB COT until it expires (or is stopped because the other timer expires first). When the second timer expires, the UE evaluates the channel occupancy status of the unlicensed spectrum (for example, by deciding whether the gNB has occupyed the unlicensed spectrum channel in response to the expiration of the second timer). If the base station occupies the unlicensed spectrum, the UE continues to monitor the PDCCH until the end of the current COT regarding whether the gNB (which has acquired the unlicensed spectrum) will transmit information to the UE. Monitoring stops at the end of the current gNB channel occupancy time. On the other hand, if the UE determines that the base station is not occupying the unlicensed spectrum, no specific action by the UE is required, and monitoring of the downlink control channel continues according to the operation of the first timer until the first timer expires (dashed box and arrow in Figure 14).
[0134] In response to this, a second timer is used to include a single check of the Check-in Time (COT) (at the expiration of the second timer) so that monitoring can be stopped earlier if the gNB determines that it is currently occupying an unlicensed channel. In other words, if the UE determines that the gNB has acquired an unlicensed spectrum but has not sent any information / data directed to the UE (the second timer expires during the COT, but no data is received during monitoring), the UE will consider it unbeneficial to continue monitoring the PDCCH, and monitoring will stop once the gNB COT is complete.
[0135] The second implementation shown in Figure 14 is simpler than the solution in Figure 12 because the UE does not need to continuously determine the channel occupancy status or accumulate the COT length. Rather, the UE checks the COT status only once when the second timer expires. Furthermore, if the second timer expires during the gNB COT period, the monitoring time is reduced, and therefore power can be saved.
[0136] Figures 15 and 16 illustrate the improved downlink control channel monitoring procedure with the second alternative described above, referring to Figure 14 in two exemplary scenarios. Figures 15 and 16 are similar to Figure 13 in that the top shows the monitoring of the downlink control channel (here, PDCCH) along with channel occupancy by the gNB (referred to as gNB COT). The middle of the figure shows the operation of the first timer, and the bottom shows the operation of the second timer. The horizontal dashed lines indicate the timer values of each timer, where the timer value of the second timer is significantly lower than the timer value of the first timer. When a timer reaches its respective timer value (horizontal line), the timer expires.
[0137] In Figure 15, it is illustratively assumed that the second timer expires during the gNB COT, whereas in Figure 16, it is illustratively assumed that the second timer expires outside the gNB COT. As is clear from Figure 15, the expiration of the second timer causes the UE to check the COT state and determine that the gNB is currently occupying the unlicensed spectrum. The UE continues to monitor the downlink control channel until the end of the current (first in the illustrative scenario) COT, and then stops monitoring, thus allowing the UE to conserve power.
[0138] On the other hand, as is clear from Figure 16, the expiration of the second timer prompts the UE to check the COT status and determine that the gNB is not currently occupying the unlicensed spectrum. Therefore, the UE continues to monitor the downlink control channel until the first timer expires.
[0139] Specific variations of the improved monitoring procedures described above in Figures 11-16 are feasible in current and future standardized LTE and 5G NR environments. The above description has presented specific LTE and 5G NR functions that include monitoring of the downlink control channel (in particular, PDCCH) and thus benefit from the improved monitoring procedures. Some of the different functions and how the improved monitoring procedures are feasible in them are described in detail below.
[0140] The PDCCH is monitored as part of the paging function so that it can receive paging messages transmitted by the base station to the UE. When implementing an improved PDCCH monitoring procedure in the paging function, the first timer can be a timer that counts the length of the paging opportunity (see sections 6.1 and 7.1 of TS38.304 v15.3.0 and section 9.2.5 of TS38.300 v15.5.0). In one exemplary implementation, the value of the first timer can be increased to cover extended paging opportunities (having longer lengths) or two or more paging opportunities (e.g., the sum of the lengths of multiple POs) due to the operation of the unlicensed radio cell in the unlicensed frequency spectrum. The second timer is a new timer for the paging function used when operating in the unlicensed radio cell. The timer value of the second timer can be, for example, a timer value corresponding to the paging opportunity monitored by the UE when in a licensed scenario.
[0141] The paging function configured in this way is operated by the UE. PDCCH monitoring is started at the beginning of a paging opportunity, at which point the UE starts (at least) a first PO timer. A second PO timer operates according to one of the various implementations described in relation to Figures 11-16. Correspondingly, the second timer is started after PO PDCCH monitoring has begun, specifically at the start of the gNB COT, and accumulates PDCCH monitoring time during the remaining gNB COT (and possibly further gNB COTs), and upon its expiration, triggers the UE to stop monitoring the PDCCH (see Figures 12 and 13). Alternatively, a second timer may be started simultaneously with the first timer at the start of PDCCH monitoring (see Figures 14-16), and upon its expiration, the UE is triggered to check the COT status to decide whether to continue monitoring until the end of COT (if the gNB determines that it has now acquired an unlicensed spectrum) or until the first timer expires (e.g., the end of a paging opportunity). Optionally, in accordance with the current provisions of the paging function, the UE may enter an idle DRX off state upon the expiration of the first and / or second timers.
[0142] If a paging message is received while monitoring the PDCCH (i.e., a PDCCH with P-RNTI is received and the corresponding PDSCH is received), the UE does not need to continue monitoring the PDCCH for paging functionality, and the UE can stop monitoring the PDCCH until the next paging interval (if it is not required as part of another function). In addition, the two timers can be stopped.
[0143] The second PO timer allows the UE to stop PDCCH monitoring earlier (especially when the unlicensed channel is free and the gNB can acquire the unlicensed channel). Thus, the UE can save power significantly.
[0144] Furthermore, the PDCCH is monitored as part of the system information acquisition function to enable the reception of system information. When implementing an improved PDCCH monitoring procedure in the system information acquisition function, the first timer can be a timer that counts the length of the system information window (see Section 5.2 of TS38.331 v15.5.1, Section 7.3 of TS38.300 v15.5.0, and Section 13 of TS38.213). In one exemplary implementation, the value of the first timer can be increased to cover an extended system information window (having a longer length) or to cover multiple SI windows (e.g., the sum of the lengths of multiple SI windows) for operation in the unlicensed frequency spectrum of an unlicensed radio cell. The second timer is a new timer for the SI acquisition function used when operating in an unlicensed radio cell. The timer value of the second timer can be, for example, a timer value corresponding to the SI window monitored by the UE when in a licensed scenario.
[0145] The system information acquisition function configured in this way is then operated by the UE. PDCCH monitoring is started at the beginning of the SI window, at which point the UE starts (at least) the first SI window timer. The second SI window timer operates according to one of the various implementations described in relation to Figures 11-16. Correspondingly, the second SI window timer is started after PDCCH monitoring for the SI window has begun, specifically at the beginning of the gNB COT, and accumulates PDCCH monitoring time during the remaining gNB COT (and possibly further gNB COTs), triggering the UE to stop PDCCH monitoring upon its expiration (see Figures 12 and 13). Alternatively, a second timer may be started simultaneously with the first timer at the start of PDCCH monitoring (see Figures 14-16), and upon its expiration, the UE is triggered to check the COT status to decide whether to continue monitoring until the end of the COT (if the gNB determines that it is currently acquiring an unlicensed spectrum) or until the first timer expires (e.g., the end of the SI window). Furthermore, if the reception of an SI message is unsuccessful and PDCCH monitoring is stopped, the UE may resume acquiring system information during the next SI period.
[0146] When a system information message is received while monitoring the PDCCH (e.g., a PDCCH with SI-RNTI and its corresponding PDSCH), the UE no longer needs to continue monitoring the PDCCH for the SI acquisition function, and the UE can stop monitoring the PDCCH until the next time new system information needs to be received (e.g., if it is not required as part of another function). In addition, the two timers can be stopped.
[0147] Therefore, the second SI window timer allows the UE to stop PDCCH monitoring earlier (especially when the unlicensed channel is free and the gNB can acquire the unlicensed channel). Thus, the UE can save power significantly.
[0148] Furthermore, the PDCCH is monitored as part of the DRX function's On-Duration period to confirm whether information addressed to the UE has been received and to determine whether to enter the DRX-off state. When implementing an improved PDCCH monitoring procedure in the DRX function, the first timer can be a timer that counts the length of the On-Duration period (see Section 5.7 of TS38.321 v15.5.0 for details on the On-Duration timer). In one exemplary implementation, the value of the first timer can be increased to cover an extended On-Duration (for a longer duration) for operation in the unlicensed frequency spectrum of an unlicensed radio cell. The second timer is a new timer for On-Duration operation used when operating in an unlicensed radio cell. The timer value of the second timer can be, for example, a timer value corresponding to the On-Duration period monitored by the UE when in a licensed scenario.
[0149] The DRX On-Duration operation configured in this way is then performed by the UE. PDCCH monitoring is started at the beginning of the DRX On-Duration period, at which point the UE starts (at least) the first On-Duration timer. The second On-Duration timer operates according to the various implementations described in relation to Figures 11-16. Correspondingly, the second On-Duration timer is started after the On-Duration PDCCH monitoring has started, specifically at the beginning of the gNB COT, and then accumulates PDCCH monitoring during the remainder of the gNB COT (and possibly further gNB COTs), triggering the UE to stop PDCCH monitoring upon its expiration (see Figures 12 and 13). Alternatively, a second On-Duration timer is started simultaneously with the first On-Duration timer at the start of PDCCH monitoring (see Figures 14-16), and upon its expiration, the UE is triggered to check the COT status to decide whether to continue monitoring until the end of the COT (if the gNB determines that it is currently acquiring unlicensed spectrum), or whether to continue monitoring PDCCH until the first timer expires (e.g., the end of the On-Duration period). Furthermore, if no PDCCH is received by the UE and PDCCH monitoring is stopped based on the first or second On-Duration timer, the UE may enter a DRX-off state.
[0150] On the other hand, if a PDCCH is received for the UE while monitoring the PDCCH (e.g., a downlink grant or uplink grant), the UE does not need to continue monitoring the PDCCH based on the On-Duration setting (e.g., the UE proceeds to process the downlink grant or uplink grant and then moves on to the next PDCCH monitoring stage). Furthermore, in accordance with the current DRX specifications, the UE may monitor the PDCCH as part of the DRX Inactivity Timer operation, as described in relation to the following functions.
[0151] Therefore, the second On-Duration timer allows the UE to stop On-Duration PDCCH monitoring early (especially when the unlicensed channel is free and the gNB can acquire the unlicensed channel). Thus, the UE can save power significantly.
[0152] Furthermore, the PDCCH is monitored as part of the DRX function's Inactivity timer to determine whether information addressed to the UE has been received and whether the UE has entered a DRX cycle (see Section 5.7 of TS38.321 v15.5.0 for details on extended inactivity). In implementing the improved PDCCH monitoring procedure in the DRX function, the first timer can be a DRX Inactivity timer that counts the length of inactivity. In one exemplary implementation, the first timer value can be increased to cover extended inactivity periods (of a longer length) due to the operation of an unlicensed radio cell in the unlicensed frequency spectrum. The second timer is a new timer for monitoring inactivity used when operating in an unlicensed radio cell. The timer value of the second timer can be, for example, a timer value corresponding to the Inactivity timer set for the UE when in a licensed scenario.
[0153] Subsequently, the configured operation of the DRX Inactivity function is performed by the UE. PDCCH monitoring is started at the beginning of the DRX inactivity period, at which point the UE starts (at least) the first Inactivity timer. The second Inactivity timer operates according to the various implementations described in relation to Figures 11-16. Correspondingly, the second Inactivity timer is started after the inactivity PDCCH monitoring has started, in particular at the beginning of the gNB COT, and accumulates PDCCH monitoring during the remaining gNB COT (and possibly further gNB COTs), and at its expiration, triggers the UE to stop monitoring PDCCH (see Figures 12 and 13). Alternatively, a second inactivity timer is started simultaneously with the first inactivity timer at the start of PDCCH monitoring (see Figures 14-16), and upon its expiration, the UE is triggered to check the COT status to decide whether to continue monitoring until the end of the COT (if the gNB determines that it is currently acquiring an unlicensed spectrum) or to continue monitoring PDCCH until the first timer expires (e.g., until the end of the inactivity period). Furthermore, if no PDCCH is received by the UE and PDCCH monitoring is stopped based on the first or second inactivity timer, the UE may then enter a short DRX period, if configured as such.
[0154] On the other hand, if a PDCCH is received by the UE while PDCCH monitoring is in progress (e.g., a downlink grant or an uplink grant), the UE restarts the first and second inactivity timers accordingly and continues to monitor PDCCH.
[0155] Therefore, the second inactivity timer allows the UE to stop inactivity PDCCH monitoring early (especially when the unlicensed channel is free and the gNB can acquire the unlicensed channel). Thus, the UE can save power significantly.
[0156] Furthermore, the PDCCH is monitored as part of the random access function to determine whether a random access response message is received from the gNB in response to a RACH preamble sent early by the UE via the gNB. In implementing an improved PDCCH monitoring procedure in the random access function, a first timer may be a timer for counting the length of the random access response (RAR) window (see section 5.1 of TS38.321 v15.5.0 for e.g., ra-ResponseWindow). In one exemplary implementation, the value of the first timer can be increased to cover an extended RAR window (having a longer length) for operation in the unlicensed frequency spectrum of an unlicensed radio cell. A second timer is a new timer for RAR monitoring used when operating in an unlicensed radio cell. The timer value of the second timer may be, for example, a timer value corresponding to the RAR window size set for the UE when in a licensed scenario.
[0157] Subsequently, the configured operation of the random access function is performed by the UE. PDCCH monitoring is started at the beginning of the RAR window, at which point the UE starts (at least) the first Inactivity Timer. The second RAR window timer operates according to the various implementations described in relation to Figures 11-16. Correspondingly, the second RAR window timer is started after RAR window monitoring has begun, in particular at the beginning of the gNB COT, and accumulates PDCCH monitoring during the remainder of the gNB COT (and possibly further gNB COTs), triggering the UE to stop monitoring PDCCH upon its expiration (see Figures 12 and 13). Alternatively, a second RAR window timer is started simultaneously with the first RAR window at the start of PDCCH monitoring (see Figures 14-16), and upon its expiration, the UE is triggered to check the COT status to decide whether to continue monitoring until the end of COT (if the gNB determines that it is currently acquiring an unlicensed spectrum) or to continue monitoring PDCCH until the first timer expires (e.g., the end of the RAR window). Furthermore, if no random access response is received to the UE and PDCCH monitoring is stopped based on the first or second RAR window timer, the UE may then proceed to the next step in the RACH procedure (e.g., resending the RACH preamble).
[0158] On the other hand, if received while RAR is monitoring PDCCH, the UE proceeds with random access (e.g., by msg 3).
[0159] Therefore, the second RAR window allows the UE to stop RAR monitoring earlier (especially when the unlicensed channel is free and the gNB can acquire the unlicensed channel). Thus, the UE can save power significantly. Furthermore, because the next step of random access can be initiated earlier, the improved PDCCH monitoring allows for a reduction in random access latency.
[0160] Furthermore, the PDCCH is monitored as part of the PDCP reordering function to verify whether missing PDUs have been received, so that data packets can be delivered to the upper layer in the correct order. In implementing the improved PDCCH monitoring procedure in the PDCP reordering function, the first timer can be a reordering timer that counts the length of the PDCP reordering window (see, for example, sections 5.1.2, 5.2.1, and 5.2.2 of TS38.323 v15.5.0 for the t-Reordering timer). In one exemplary implementation, the value of the first timer can be increased to cover an extended PDCP reordering window (having a longer length) due to the operation of the unlicensed radio cell in the unlicensed frequency spectrum. The second timer is a new timer for the PDCP reordering window used when operating in the unlicensed radio cell. The timer value of the second timer can be, for example, the timer value corresponding to the PDCP reordering window set for the UE when in a licensed scenario.
[0161] Subsequently, the configured operation of the PDCP reordering function is performed by the UE. PDCCH monitoring is started at the beginning of the PDCP reordering window, at which point the UE starts (at least) the first reordering timer. The second reordering timer operates according to the various implementations described in relation to Figures 11-16. Correspondingly, the second reordering timer is started after the reordering window monitoring has begun, specifically at the beginning of the gNB COT, and accumulates PDCCH monitoring during the remaining gNB COT (and possibly further gNB COTs), triggering the UE to stop PDCCH monitoring upon its expiration (see Figures 12 and 13). Alternatively, a second reordering window timer is started simultaneously with the first reordering window timer at the start of PDCCH monitoring (see Figures 14-16), and upon its expiration, the UE is triggered to check the COT status to decide whether to continue monitoring until the end of the COT (if the gNB determines that it is currently acquiring unlicensed spectrum), or to continue monitoring PDCCH until the first timer expires (e.g., the end of the reordering window). Furthermore, if no missing data packets (these packets enable sequential delivery to higher layers) are received and PDCCH monitoring is stopped based on the first or second reordering window timer, the UE may then proceed to the next step in PDCP data exchange (e.g., sending a PDCP status report to the gNB to request retransmission of the missing PDU).
[0162] On the other hand, if a missing data packet is received while monitoring the PDCCH, the UE stops PDCCH monitoring for the reordering function until the next time reordering is required (e.g., all packets are in order and reordering is not currently needed). Furthermore, the UE may proceed to deliver the ordered data packets to the upper layer. Thus, the second reordering window timer allows the UE to stop reordering monitoring earlier (especially when the unlicensed channel is free and the gNB can acquire the unlicensed channel). Thus, the UE can save power significantly. In addition, because the next stage of the reordering function can be performed earlier (e.g., PDCP status reporting), the improved PDCCH monitoring allows for a reduction in delays in PDCP protocol processing (less delay in data reception due to earlier retransmission).
[0163] The above description of improved downlink control channel monitoring focused on the UE side. However, improved downlink control channel monitoring is also applicable to the gNB side. The different functions described above include monitoring the PDCCH, but from the gNB's perspective, these various functions include transmitting information on the PDCCH. In particular, the UE monitors the PDCCH as part of a specific function, while the reverse operation by the gNB is to transmit corresponding information to the UE on the PDCCH. Therefore, the gNB may perform the same or similar parallel operation of two timers to determine when the UE monitors the downlink control channel in order to determine when to transmit information to the UE via the downlink control channel. For example, the gNB may perform a transmission on the PDCCH to the UE only if it determines that the UE is actually monitoring the PDCCH at that time; otherwise, the UE does not monitor the PDCCH and does not receive any PDCCH transmissions, so PDCCH transmission is not required. Accordingly, the various implementations and variations described above in relation to Figures 11-16 are applicable to the gNB operation.
[0164] For example, according to one exemplary implementation, the base station determines when to monitor the PDCCH based on the operation of the first and second timers as described with respect to Figure 11, based on the first implementation described in relation to Figures 12 and 13, or based on the second implementation described in relation to Figures 14, 15 and 16.
[0165] Furthermore, the base station is also responsible for configuring various functions in the UE, including the first and second timers and their timer values. In this regard, the gNB can transmit the appropriate configuration information using RRC protocol messages.
[0166] Further characteristics According to a first aspect, a UE is provided having a processing circuit that operates a function relating to monitoring the downlink control channel of an unlicensed radio cell for information intended for the UE, wherein the unlicensed radio cell operates in the unlicensed spectrum and is controlled by a base station communicating with user equipment. The UE's processing circuit and receiver perform monitoring of the downlink control channel based on a first timer and a second timer that operate in parallel. The first timer is used to limit the maximum time the downlink control channel is monitored by starting the first timer when monitoring of the downlink control channel begins and stopping the monitoring of the downlink control channel when the first timer expires. The second timer is used to stop monitoring of the downlink control channel earlier than the first timer, depending on the channel occupancy status of the radio cell in the unlicensed spectrum by the base station.
[0167] According to a second embodiment provided in addition to the first embodiment, the second timer operates to accumulate time during which the downlink control channel is monitored while the unlicensed spectrum is occupied by the base station. In an optional implementation thereof, the second timer runs during the period when the unlicensed spectrum is occupied by the base station. In a further optional implementation, monitoring of the downlink control channel is performed while either of the two timers is running, and monitoring of the downlink control channel stops upon the expiration of either the first or second timer. In a further optional implementation, the second timer is started when the base station occupies the unlicensed spectrum in a first time after the start of the first timer, the second timer is stopped when the base station does not occupy the unlicensed spectrum, and the second timer is restarted when the base station re-occupies the unlicensed spectrum.
[0168] According to a third aspect provided in addition to the second aspect, the function is a paging message monitoring function, and the downlink control channel is monitored for the reception of paging messages. Upon receiving a paging message, the first timer, the second timer, and the monitoring of the downlink control channel for the paging message monitoring function are stopped until the next paging interval. In an optional implementation thereof, the first timer counts the length of one or more paging opportunities, and the second timer counts the length of one or more paging opportunities during the period in which the unlicensed spectrum is occupied by the base station.
[0169] Furthermore, or alternatively, the function is a system information acquisition function, and the downlink control channel is monitored for the reception of system information messages. Upon receiving a system information message, the first timer, the second timer, and the downlink control channel monitoring for the system information acquisition function are stopped until the next time the UE needs to acquire system information. In an optional implementation of this, the first timer counts the length of one or more system information acquisition windows, and the second timer counts the length of one or more system information acquisition windows during the period in which the unlicensed spectrum is occupied by the base station.
[0170] Furthermore, or alternatively, the function is an alert monitoring operation for the intermittent reception (DRX) function, and the downlink control channel is monitored for any downlink control information relating to the downlink control channel directed to the user equipment. Upon receiving downlink control information, the first and second timers are stopped, and monitoring of the downlink control channel continues. In an optional implementation thereof, the first timer counts the length of the DRX-on duration, and the second timer counts the length of the DRX-on duration during the period when the unlicensed spectrum is occupied by the base station.
[0171] Furthermore, or alternatively, the function is an inactivity monitoring operation for the intermittent reception (DRX) function, and the downlink control channel is monitored for any downlink control information relating to the downlink control channel to the user equipment. Upon receiving downlink control information, the first and second timers are restarted, and monitoring of the downlink control channel continues. In an optional implementation thereof, the first timer counts the length of the DRX inactivity duration, and the second timer counts the length of the DRX inactivity duration during the period when the unlicensed spectrum is occupied by the base station.
[0172] Furthermore, or alternatively, the function is the reception of random access responses to the random access function, and the downlink control channel is monitored for random access response messages transmitted by the base station in response to a random access preamble previously transmitted to the base station by the user equipment. Upon receiving the random access response, the first and second timers are stopped, and the next step of the random access function is performed. In an optional implementation of this, the first timer counts the length of the random access response window, and the second timer counts the length of the random access response window during the period in which the unlicensed spectrum is occupied by the base station.
[0173] Furthermore, or alternatively, the function is a reordering function at the PDCP (Packet Data Convergence Protocol) layer, where the downlink control channel is monitored for missing or out-of-order data directed to the user equipment, and when missing or out-of-order data is received, the first and second timers are stopped until the next time out-of-order data delivery is detected, and monitoring of the downlink control channel continues. In an optional implementation of this, the first timer counts the length of the reordering time window, and the second timer counts the length of the reordering time window during the period when the unlicensed spectrum is occupied by the base station.
[0174] According to a fourth embodiment provided in addition to the first embodiment, upon the expiration of the second timer, the processing circuit determines whether the base station is currently occupying the unlicensed spectrum. If the base station is currently occupying the unlicensed spectrum, monitoring is stopped at the end of the current channel occupancy of the unlicensed spectrum, and optionally the first timer is stopped. If the base station is not currently occupying the unlicensed spectrum, monitoring is performed until the expiration of the first timer. In an optional implementation, the second timer is started simultaneously with the start of the first timer.
[0175] According to a fifth aspect provided in addition to the fourth aspect, the function is a paging message monitoring function, and the downlink control channel is monitored for the reception of paging messages. Upon receiving a paging message, the first timer, the second timer, and the downlink control channel monitoring the paging message monitoring function are stopped until the next paging interval. In an optional implementation thereof, the first timer and the second timer count the length of one or more paging opportunities.
[0176] Furthermore, or alternatively, the function is a system information acquisition function, and the downlink control channel is monitored for the reception of system information messages. Upon receiving a system information message, the first timer, the second timer, and the monitoring of the downlink control channel for the system information acquisition function are stopped until the next time the UE needs to acquire system information. In an optional implementation of this, the first timer and the second timer count the length of one or more system information acquisition windows.
[0177] Furthermore, or alternatively, the function is a notification monitoring operation for the intermittent reception (DRX) function, and the downlink control channel is monitored for any downlink control information relating to the downlink control channel directed to the user equipment. Upon receiving downlink control information, the first and second timers are stopped, monitoring of the downlink control channel continues, and optionally, a timer for the DRX inactive duration is started. In an optional implementation of this, the first and second timers count the length of the DRX on duration.
[0178] Furthermore, or alternatively, the function is an inactivity monitoring operation for the intermittent reception (DRX) function, and the downlink control channel is monitored for any downlink control information relating to the downlink control channel to the user equipment. Upon receiving downlink control information, the first and second timers are restarted, and monitoring of the downlink control channel continues. In an optional implementation of this, the first and second timers count the length of the DRX inactivity duration.
[0179] Furthermore, or alternatively, the function is the reception of random access responses to the random access function, and the downlink control channel is monitored for random access response messages transmitted by the base station in response to a random access preamble previously transmitted to the base station by the user equipment. Upon receiving the random access response, the first and second timers are stopped, and the next step of the random access function is executed. In an optional implementation of this, the first and second timers count the length of the random access response window.
[0180] Furthermore, or alternatively, the function is a reordering function at the PDCP (Packet Data Convergence Protocol) layer, and the downlink control channel is monitored for missing or out-of-order data directed to the user device. When missing or out-of-order data is received, the first and second timers are stopped until the next time out-of-order data delivery is detected, and monitoring of the downlink control channel continues. In an optional implementation of this, the first and second timers count the length of the reordering time window.
[0181] According to a sixth embodiment provided in addition to one of the first to fifth embodiments, the processing circuit determines channel occupancy by the base station based on a channel occupancy signal received by the receiver from the base station. In an optional implementation thereof, the channel occupancy signal is transmitted by the base station when the base station occupies the unlicensed spectrum and not transmitted by the base station when the base station does not occupy the unlicensed spectrum. In an optional implementation thereof, the channel occupancy signal indicates the length of the unlicensed spectrum occupied by the base station.
[0182] According to a seventh embodiment provided in addition to one of the first to sixth embodiments, the receiver receives configuration information from the base station to set a first timer value for a first timer. The processing circuit determines a second timer value for a second timer based on a portion of the timer value for the first timer. In an optional implementation thereof, this portion is used to determine a second timer value for a second timer for one or more of the following operated functions (e.g., paging message monitoring function, system information acquisition function, notification monitoring operation for intermittent reception (DRX) function, inactivity monitoring operation for intermittent reception (DRX) function, random access response reception for random access function, and reordering function for the PDCP (Packet Data Convergence Protocol) layer). Alternatively, the receiver receives configuration information from the base station to set a first timer value for a first timer and a second timer value for a second timer.
[0183] In two alternative optional implementations, the second timer value of the second timer is smaller than the first timer value of the first timer. In two further optional implementations, configuration information is received using RRC (Radio Resource Control) protocol messages.
[0184] According to the eighth aspect provided in addition to one of the first to seventh aspects, the functions to be operated are the following functions operated by the user device: • Paging message monitoring function • System information acquisition function • Notification monitoring operation for intermittent reception (DRX) function • Inactivity monitoring operation for DRX function • Receive random access responses for random access functionality. • Reordering function for the PDCP (Packet Data Convergence Protocol) layer It is one of them.
[0185] In the optional implementation described above, the UE operates one or more of the above functions, each of which is separately related to monitoring the downlink control channel and to the operation of the first and second timers as described in one of the first to seventh embodiments described above.
[0186] According to a ninth embodiment provided in addition to one of the first to eighth embodiments, the first timer value of the first timer and the second timer value of the second timer are set for the operation of a function in an unlicensed radio cell. A different first timer value of the first timer is set for the operation of a function in a licensed radio cell. A different first timer value in a licensed radio cell is smaller than the first timer value in an unlicensed radio cell. In an optional implementation, the second timer value of the second timer is the same as the first timer value of the first timer set for the operation in a licensed radio cell.
[0187] According to a tenth aspect, a base station is provided having a processing circuit that operates a function relating to transmitting information to a user equipment (UE) via a downlink control channel of an unlicensed radio cell monitored by the UE for information intended for the UE. The unlicensed radio cell operates in the unlicensed spectrum and is controlled by the base station communicating with the user equipment. The processing circuit determines when the UE monitors the downlink control channel based on a first timer and a second timer that operate in parallel to determine when to transmit information to the UE via the downlink control channel. The first timer is used to limit the maximum time the downlink control channel is monitored by the UE by starting the first timer when monitoring of the downlink control channel begins and stopping the monitoring of the downlink control channel when the first timer expires. The second timer is used to stop monitoring the downlink control channel earlier than the first timer, depending on the channel occupancy status of the radio cell in the unlicensed spectrum by the base station. The base station transmitter transmits information to the UE on the downlink control channel based on the previous determination based on the first timer and the second timer.
[0188] According to an eleventh embodiment provided in addition to the tenth embodiment, the transmitter transmits configuration information to the UE for setting a first timer value of the first timer. The processing circuit determines a second timer value of the second timer based on a portion of the timer value of the first timer. In an optional implementation, the transmitter transmits configuration information to the UE regarding the portion during operation. Alternatively, the transmitter transmits configuration information to the UE for setting a first timer value of the first timer and a second timer value of the second timer during operation.
[0189] In the two alternative optional implementations described above, the second timer value of the second timer is smaller than the first timer value of the first timer. In the two alternative optional implementations described above, configuration information is transmitted using RRC (Radio Resource Control) protocol messages.
[0190] According to the twelfth aspect, a method comprising the following steps performed by a user device (UE): A step of operating a function related to monitoring the downlink control channel of an unlicensed radio cell with respect to information intended for the UE, wherein the unlicensed radio cell operates in the unlicensed spectrum and is controlled by a base station that communicates with user equipment, A method is provided comprising the steps of performing monitoring of a downlink control channel based on a first timer and a second timer operating in parallel. The first timer is used to limit the maximum time the downlink control channel is monitored by starting the first timer when monitoring of the downlink control channel begins and stopping the monitoring of the downlink control channel when the first timer expires. The second timer is used to stop monitoring of the downlink control channel earlier than the first timer, depending on the channel occupancy status of the radio cell's unlicensed spectrum by the base station.
[0191] Hardware and software implementations of this disclosure This disclosure can be implemented by software, hardware, or software that interacts with hardware. Each functional block used in the description of each embodiment described above can be partially or entirely implemented by an LSI such as an integrated circuit, and each process described in each embodiment may be partially or entirely controlled by the same LSI or a combination of LSIs. The LSI may be formed as individual chips, or a single chip may be formed to include some or all of the functional blocks. The LSI may include data inputs and outputs coupled thereto. Here, LSIs can be called ICs (Integrated Circuits), system LSIs, super LSIs, or ultra LSIs depending on the degree of integration. However, the technology for realizing integrated circuits is not limited to LSIs and may be implemented using dedicated circuits, general-purpose processors, or application-specific processors. Furthermore, FPGAs (Field Programmable Gate Arrays) that can be programmed after manufacturing, or LSIs or reconfigurable processors in which the connections and settings of circuit cells arranged inside the LSI can be reconfigured, may be used. This disclosure can be implemented as digital or analog processing. As a result of advancements in semiconductor technology and other derivative technologies, if future integrated circuit technology replaces LSIs, functional blocks can be integrated using future integrated circuit technology. Biotechnology can also be applied.
[0192] This disclosure can be implemented by any type of device, apparatus, or system having communication capabilities, referred to as a communication apparatus.
[0193] Some non-exclusive examples of such communication devices include telephones (e.g., cell phones, smartphones), tablets, personal computers (PCs) (e.g., laptops, desktops, netbooks), cameras (e.g., digital still / video cameras), digital players (digital audio / video players), wearable devices (e.g., wearable cameras, smartwatches, tracking devices), game consoles, digital book readers, telehealth / telemedicine (remote health and telemedicine) devices, and vehicles providing communication capabilities (e.g., automobiles, airplanes, ships), as well as various combinations thereof.
[0194] Communication devices are not limited to being portable or mobile, and may include any type of device, system, or apparatus that is non-portable or fixed, such as smart home devices (e.g., appliances, lighting, smart meters, control panels), vending machines, and any other “thing” in the “Internet of Things (IoT)” network.
[0195] Communication may include, for example, exchanging data via cellular systems, wireless LAN systems, satellite systems, and various combinations thereof.
[0196] The communication device may include devices such as controllers or sensors coupled to a communication device that performs the communication functions described in this disclosure. For example, the communication device may include controllers or sensors that generate control signals or data signals used by the communication device that performs the communication functions of the communication device.
[0197] The communication equipment may also include infrastructure facilities such as base stations and access points, and any other equipment, devices, or systems that communicate with or control such equipment as those in the non-limiting examples above.
[0198] Furthermore, various embodiments may also be implemented by software modules executed directly by the processor or hardware. Combinations of software modules and hardware implementations are also possible. The software modules may be stored in any type of computer-readable storage medium, such as RAM, EPROM, EEPROM, flash memory, registers, hard disks, CD-ROMs, or DVDs. It should be further noted that the individual features of different embodiments may be subject to other embodiments individually or in any combination.
[0199] Those skilled in the art will understand that numerous modifications and / or improvements can be made to the present disclosure as shown in the specific embodiments. Therefore, these embodiments should be considered illustrative and not limiting in all respects.
Claims
1. An integrated circuit for controlling a base station, A processing circuit that handles the function of transmitting information intended for a user device (UE) to the UE via a downlink control channel of an unlicensed radio cell monitored by the UE, wherein the unlicensed radio cell operates in the unlicensed spectrum and is controlled by a base station that communicates with the user device, and the processing circuit The processing circuit determines when the UE monitors the downlink control channel, based on a first timer and a second timer that operate in parallel to determine when to transmit the information to the UE via the downlink control channel. The first timer is used to limit the maximum time the downlink control channel is monitored by the UE by starting the first timer when monitoring of the downlink control channel begins and stopping the monitoring of the downlink control channel when the first timer expires. The second timer is used to stop monitoring the downlink control channel earlier than the first timer, depending on the channel occupancy status of the unlicensed spectrum of the unlicensed radio cell by the base station. A transmission circuit that transmits the information to the UE via the downlink control channel based on the determination made by the first timer and the second timer, Having, Integrated circuit.
2. The transmitting circuit transmits setting information for setting the first timer value of the first timer to the UE, the processing circuit determines the second timer value of the second timer based on a portion of the timer value of the first timer, and the transmitting circuit transmits setting information relating to that portion to the UE. The integrated circuit according to claim 1.
3. The transmission circuit transmits setting information to the UE for setting the first timer value of the first timer and the second timer value of the second timer. The second timer value of the second timer is smaller than the first timer value of the first timer. The aforementioned configuration information is transmitted using RRC (Radio Resource Control) protocol messages. The integrated circuit according to claim 1.
Citation Information
Patent Citations
Method for configuring a DRX timer in a carrier aggregation with at least one scell operating in an unlicensed spectrum and a device therefor
US20180070405A1