Arrangements for reference signaling in a wireless communication system
Optimized reference signals in 5G NR systems address power consumption issues in UE by providing efficient configurations and updates, reducing power usage without impacting network resources.
Patent Information
- Application Number
- JP2024188153
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2024-10-25
- Publication Date
- 2026-01-09
- Estimated Expiration
- 2040-02-14
AI Technical Summary
The increased complexity and power consumption in user equipment (UE) for 5G New Radio (NR) systems, particularly in RRC idle, inactive, and connected modes, due to the reduced periodicity of synchronization signals and gaps between synchronization signals and paging occasions, leading to inefficient power usage.
Implementing additional reference signals, such as CSI-RS, SSS, and PSS, with optimized configurations and validity periods to reduce UE power consumption without additional network resource overhead, by providing configurations and updates through SIB, DCI, and short messages.
Reduces UE power consumption in RRC idle, inactive, and connected modes by optimizing reference signal configurations and transmissions, ensuring network efficiency and reducing unnecessary power consumption.
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Abstract
Description
[Technical Field]
[0001] (Technical field) This document generally focuses on wireless communications. [Background technology]
[0002] (background) Wireless communication technologies are moving the world toward an increasingly connected and networked society. The rapid growth of wireless communications and technological advances are leading to further demands for capacity and connectivity. Other aspects, such as energy consumption, device cost, spectral efficiency, and latency, are also important to meet the needs of various communication scenarios. Compared to existing wireless networks, next-generation systems and wireless communication techniques provide support for an increased number of users and devices, which operate in a power-aware manner. Summary of the Invention [Means for solving the problem]
[0003] (overview) This document relates to methods, systems, and devices for configuration related to reference signaling in mobile communication technologies, including fifth generation (5G) communication systems.
[0004] In one example aspect, a wireless communication method is disclosed that includes a network node transmitting, to a wireless device, first signaling comprising information associated with a first reference signal, the information comprising at least one of a configuration of the first reference signal, update information for the first reference signal, or a validity period for the first reference signal.
[0005] In another example aspect, a wireless communication method is disclosed that includes: a wireless device receiving, from a network node, first signaling comprising information associated with a first reference signal, the information comprising at least one of a configuration of the first reference signal, update information for the first reference signal, or a validity period for the first reference signal.
[0006] In yet another exemplary aspect, the methods described above are embodied in the form of processor-executable code and stored in a computer-readable program medium.
[0007] In yet another exemplary embodiment, a device configured or operable to perform the above-described method is disclosed.
[0008] These and other aspects and their implementations are described in more detail in the drawings, description, and claims. The present invention provides, for example, the following. (Item 1) 1. A method for wireless communication, comprising: transmitting, by the network node, first signaling to the wireless device, the first signaling comprising information associated with the first reference signal; the information comprises at least one of a configuration of the first reference signal, update information of the first reference signal, or a validity period of the first reference signal; method. (Item 2) 1. A method for wireless communication, comprising: receiving, by the wireless device, first signaling from a network node, the first signaling comprising information associated with a first reference signal; the information comprises at least one of a configuration of the first reference signal, update information of the first reference signal, or a validity period of the first reference signal; method. (Item 3) 3. The method of claim 1, wherein the wireless device is in a Radio Resource Control (RRC) idle mode, an RRC inactive mode, or an RRC connected mode. (Item 4) 4. The method according to any one of items 1 to 3, wherein the first signaling comprises at least one of a system information block (SIB), a downlink control information (DCI) with a cyclic redundancy check (CRC) scrambled by a paging radio network temporary identifier (P-RNTI), or a short message. (Item 5) 5. The method of claim 4, wherein the DCI with a CRC scrambled by the P-RNTI comprises at least one of a frequency domain resource allocation information field, a time domain resource allocation information field, a modulation and coding scheme (MCS) information field, or an information field located after a transport block (TB) scaling factor. (Item 6) Item 6. The method of item 5, wherein the DCI comprises a short message, or the code point of the short message indicator comprised in the DCI is "00" or "10". (Item 7) 4. The method according to any one of items 1 to 3, wherein the first signaling further comprises a paging occasion (PO) configuration. (Item 8) 8. The method of claim 7, wherein the PO configuration comprises at least one of paging occasion grouping information, a time domain allocation of the PO, or a frequency domain allocation of the PO. (Item 9) 4. The method of any one of items 1 to 3, wherein the validity period is based on at least one of a periodicity, an offset, or a duration. (Item 10) 4. The method according to any one of items 1 to 3, wherein the first reference signal comprises a channel state information reference signal (CSI-RS) for tracking, a CSI-RS for mobility, or a CSI-RS for layer 1 (L1) reference signal received power (RSRP) calculation. (Item 11) 4. The method according to any one of items 1 to 3, wherein the reference signal of the quasi-co-located (QCL) assumption of the first reference signal is a synchronization signal / PBCH block (SSB). (Item 12) 4. The method according to any one of items 1 to 3, wherein the configuration comprises a time domain configuration. (Item 13) Item 13. The method of item 12, wherein the time domain configuration comprises a periodicity and / or an offset. (Item 14) Item 14. The method of item 13, wherein the periodicity is less than a threshold value. (Item 15) Item 15. The method of item 14, wherein the threshold is based on a synchronization signal / PBCH block (SSB) periodicity, a paging occasion, a paging frame, or a discontinuous reception (DRX) cycle. (Item 16) Item 14. The method of item 13, wherein the offset is based on a reference point in the time domain associated with a synchronization signal / PBCH block (SSB) burst, a paging occasion (PO), a paging frame (PF), or a discontinuous reception (DRX) cycle. (Item 17) Item 17. The method of item 16, wherein the reference point in the time domain associated with the SSB burst comprises at least one of the beginning or end of the SSB burst, the beginning or end of a half-frame comprising transmission of the SSB burst, or the beginning or end of a Primary Synchronization Signal (PSS), a Secondary Synchronization Signal (SSS), a Physical Broadcast Channel (PBCH), or a Demodulation Reference Signal (DM-RS) associated with the PBCH. (Item 18) Item 17. The method of item 16, wherein the reference point in the time domain associated with the PO comprises at least one of the beginning or end of the PO, the beginning or end of a first physical downlink control channel (PDCCH) monitoring time point of the PO, or the beginning or end of a last PDCCH monitoring time point of the PO. (Item 19) Item 17. The method of item 16, wherein the reference point in the time domain associated with the PF comprises at least a beginning or an end of the PF. (Item 20) Item 17. The method of item 16, wherein the reference point in the time domain associated with the DRX cycle comprises at least a start or an end of the DRX cycle. (Item 21) Item 14. The method of item 13, wherein the periodicity of the first reference signal comprises one or more synchronization signal / PBCH block (SSB) bursts, paging occasions (POs), paging frames (PFs), or discontinuous reception (DRX) cycles. (Item 22) 22. The method of claim 21, wherein the gaps between adjacent first reference signals within the periodicity are the same. (Item 23) 4. The method according to any one of items 1 to 3, wherein the configuration comprises a frequency domain configuration. (Item 24) 24. The method of claim 23, wherein the frequency domain configuration comprises an indication of a number and / or offset of physical resource blocks (PRBs). (Item 25) 25. The method of claim 24, wherein the offset is based on a second reference signal or a second resource block. (Item 26) 21. The method of claim 20, wherein the second reference signal comprises at least one of a synchronization signal / PBCH block (SSB), a primary synchronization signal (PSS), a secondary synchronization signal (SSS), a physical broadcast channel (PBCH), or a demodulation reference signal (DM-RS) associated with the PBCH. (Item 27) 21. The method of claim 20, wherein the second resource block comprises a control resource set (CORESET) associated with a paging search space or CORESET0. (Item 28) 4. The method according to any one of items 1 to 3, wherein the configuration of the first reference signal in the first signaling has a higher priority than a configuration in a Radio Resource Control (RRC) signal. (Item 29) Item 11. The method of item 10, wherein the first reference signal is used for radio resource management (RRM) measurements, cell selection, or cell reselection. (Item 30) 30. The method of claim 29, wherein the cell selection or cell reselection criteria for a synchronization signal / PBCH block (SSB) and the first reference signal are configured separately. (Item 31) Item 31. The method according to item 30, wherein the cell selection or cell reselection criterion is satisfied when the measurement result of the SSB or the measurement result of the first reference signal satisfies the criterion. (Item 32) Item 11. The method of item 10, wherein the first reference signal corresponds to a physical downlink control channel (PDCCH) monitoring time point for paging within a paging occasion (PO). (Item 33) A wireless communication device comprising: a processor; and a memory, wherein the processor is configured to read code from the memory and implement a method according to any one of items 1 to 32. (Item 34) A computer program product comprising a computer-readable program medium code stored thereon, the code causing the processor to implement a method according to any one of items 1 to 32 when executed by the processor. [Brief explanation of the drawings]
[0009] BRIEF DESCRIPTION OF THE DRAWINGS [Figure 1] FIG. 1 illustrates an example of a base station (BS) and user equipment (UE) in wireless communication in accordance with some embodiments of the disclosed technology. [Figure 2A]2A and 2B show examples of effective transmission periods for a first reference signal. [Figure 2B] 2A and 2B show examples of effective transmission periods for a first reference signal. [Figure 3] FIG. 3 illustrates an example of multiple first reference resources within a predefined period between synchronization signal / physical broadcast channel (PBCH) blocks (SSBs). [Figure 4] FIG. 4 shows an example of one first reference resource within a predefined period between SSBs. [Figure 5] FIG. 5 illustrates an example of multiple first reference resources within a predefined period between paging occasions (POs). [Figure 6] FIG. 6 shows an example of one first reference resource within a predefined period between POs. [Figure 7] FIG. 7 illustrates an example of a varying offset between a physical downlink control channel (PDCCH) monitoring instant at a paging occasion (PO) and a first reference signal. [Figure 8] FIG. 8 shows an example of a first reference resource set with identical spatial filter parameters and PDCCH monitoring instants of paging occasions (PO). [Figure 9] FIG. 9 shows an example of a first reference resource set with different spatial filter parameters and PDCCH monitoring instants of paging occasions (PO). [Figure 10A] 10A and 10B illustrate an example of a wireless communication method. [Figure 10B] 10A and 10B illustrate an example of a wireless communication method. [Figure 11] FIG. 11 is a block diagram representation of a portion of an apparatus that may be configured to implement one or more methods described herein. DETAILED DESCRIPTION OF THE INVENTION
[0010] (Detailed explanation) The upcoming 5G New Radio (NR) system promises significantly improved system throughput and quality of service. However, many of the gains come at the cost of complexity in the user equipment (UE), which results in increased power consumption in the UE.
[0011] In one embodiment, in a Long Term Evolution (LTE) system, a cell-specific reference signal (CRS) can be used for idle mode UEs for automatic gain control (AGC) tracking, radio resource management (RRM) measurements, paging reception, time and / or frequency tracking, etc. These operations rely on synchronization signals / PBCH blocks (SSBs) in an NR system. However, the periodicity of SSBs (in NR) is much less than that of CRSs (in LTE).
[0012] Furthermore, there is typically a gap between the SSB and the paging occasion (PO) in the time domain, in which case the UE needs to wake up multiple times to detect the PDCCH monitoring occasion of the SSB or PO, which consumes power.
[0013] More generally, reference signal configuration is one of the primary contributors to power consumption for a UE in Radio Resource Control (RRC) idle mode or RRC inactive mode. Embodiments of the disclosed technology provide methods, devices, and systems for reducing UE power consumption in RRC idle mode, RRC inactive mode, and RRC connected mode.
[0014] In some embodiments, reducing the power consumption of UEs in RRC idle, RRC inactive, and RRC connected modes can be achieved by providing other reference signals in addition to SSBs. While also considering resource overhead and network power efficiency, in one example, reference signals for RRC connected mode UEs are used for RRC idle and RRC inactive mode UEs. Furthermore, these methods do not require additional reference signal transmission on the network side, thereby ensuring that network side power efficiency is not significantly reduced.
[0015] In some embodiments, the reference signal is directed to RRC idle mode UEs, RRC inactive mode UEs, or RRC connected mode UEs. (1) Operations for RRC idle mode UE include: (a) Public Land Mobile Network (PLMN) selection; (b) system information broadcasting; (c) Cell reselection mobility, (d) 5GC initiated paging for mobile terminated data; and (e) DRX for CN paging configured by the Non-Access Stratum (NAS). (2) Operations for RRC inactive mode UE include: (a) PLMN selection, (b) system information broadcasting; (c) Cell reselection mobility, (d) paging is initiated by NG-RAN (RAN paging); (e) RAN-based Notification Areas (RNAs) are managed by NG-RAN; (f) DRX for RAN paging configured by NG-RAN; (g) a 5GC-NG-RAN connection (both C / U plane) is established for the UE; (h) the UE AS context is stored in the NG-RAN and the UE; and (i) The NG-RAN knows the RNA to which the UE belongs. (3) Operations for RRC connected mode UE include: (a) A 5GC-NG-RAN connection (both C / U plane) is established for the UE; (b) the UE AS context is stored in the NG-RAN and the UE; (c) the NG-RAN knows the cell to which the UE belongs; (d) forwarding unicast data to / from the UE; and (e) Network-controlled mobility, including measurements.
[0016] 1 illustrates an example of a wireless communication system (e.g., an LTE, 5G, or other cellular network) including a BS 120 and one or more user equipments (UEs) 111, 112, and 113. In some embodiments, downlink transmissions (141, 142, 143) include information associated with a first reference signal. In some examples, the information may include a configuration of the first reference signal, an update for the first reference signal, or a validity period for the first reference signal. The UE may be, for example, a smartphone, a tablet, a mobile computer, a machine-to-machine (M2M) device, a terminal, a mobile device, an Internet of Things (IoT) device, etc.
[0017] This document uses section headings and subheadings to facilitate easy understanding, but not to limit the scope of the disclosed techniques and embodiments to a certain section. Thus, embodiments disclosed in different sections can be used in conjunction with each other. Furthermore, this document uses examples from the 3GPP® New Radio (NR) network architecture and 5G protocols only to facilitate understanding, and the disclosed techniques and embodiments can be practiced in other wireless systems that use communication protocols different from the 3GPP® protocols.
[0018] In some embodiments, information associated with the first reference signal may be transmitted via the first signaling.
[0019] In some embodiments, the first signaling includes at least one of the following: (1) System Information Block (SIB). In some embodiments, the SIB includes at least one of SIB1, SIB2, SIB3, or SIB4. (2) Downlink Control Information (DCI): In some embodiments, the DCI is transmitted via a Physical Downlink Control Channel (PDCCH) scrambled by at least one of the P-RNTI, SI-RNTI, RA-RNTI, or TC-RNTI. (3) DCI with CRC scrambled by P-RNTI. In some embodiments, the first signaling includes at least one of a short message indicator information field, a frequency domain resource allocation information field, a time domain resource allocation information field, a modulation and coding scheme (MCS) information field, a VRB / PRB mapping information field, a transport block (TB) scaling factor information field, or an information field located after the transport block (TB) scaling factor carried by the DCI with CRC scrambled by the P-RNTI.
[0020] In some embodiments, the short message indicator field includes a code point with a value of "00" or "01" or "10".
[0021] In some embodiments, the first signaling includes at least one of a frequency domain resource allocation information field, a time domain resource allocation information field, an MCS information field, a VRB / PRB mapping information field, or a transport block (TB) scaling factor information field when only a short message is carried by the DCI, or when scheduling information for paging is not carried by the DCI, or when the code point of the short message indicator is '00' or '10'. (4) Short Message. In some embodiments, the first signaling includes a short message when only scheduling information for paging is carried, or when a short message is not present by the DCI, or when the code point of the short message indicator is "00" or "01." In some embodiments, the short message includes at least one of the third bit to the eighth bit of the short message. (5) Third Reference Signal. In some embodiments, the third reference signal is located before / after the synchronization signal / PBCH block (SSB). In some embodiments, the third reference signal is located before the paging occasion (PO). In some embodiments, the third reference signal also includes an indication of whether the UE needs to monitor subsequent or additional POs.
[0022] In some embodiments, the information field carried by the DCI with CRC scrambled by the P-RNTI includes: - Short message indicator, - Short messages, - frequency domain resource allocation; - time domain resource allocation; - MCS information field, - Virtual Resource Block (VRB) / Physical Resource Block (PRB) mapping, - Transport Block (TB) scaling factor, and - Reserved bits.
[0023] In some embodiments, the short message indicator comprises two bits: A codepoint of '01' indicates that only scheduling information for paging is present in the DCI; A codepoint of '10' indicates that only short messages are present in the DCI; A codepoint of '11' indicates that both scheduling information for paging and short messages are present in the DCI; A codepoint of '00' is reserved.
[0024] In some embodiments, the short message includes 8 bits. The first bit, which is the most significant bit, indicates a system information modification. If the first bit is set to "1", it indicates a system information modification other than SIB6, SIB7, or SIB8. The second bit, which is the next most significant bit, indicates an Earthquake and Tsunami Warning System (ETWS) / Commercial Mobile Alert System (CMAS) notification. Bits 3 through 8 of the short message are reserved.
[0025] In some embodiments, the frequency domain resource allocation information field, the time domain resource allocation information field and the MCS information field, the VRB / PRB mapping information field, and the transport block (TB) scaling factor information field are reserved when only short messages are carried.
[0026] In some embodiments, the reserved bits are present after the TB scaling information field of the DCI with a CRC scrambled by the P-RNTI.
[0027] In some embodiments, the short message is suspended when it carries scheduling information for paging.
[0028] In some embodiments, the reserved information field can be configured to carry additional information, such as configuration, update indication, availability of the first reference signal or paging occasion (PO) configuration, or other information of the first reference signal.
[0029] Embodiments for Providing Configurations In some embodiments, the configuration for the first reference signal can be transmitted via first signaling. In one example, the first signaling includes at least one of the following: (1) System Information Block (SIB). In some embodiments, the SIB includes at least one of SIB1, SIB2, SIB3, or SIB4. (2) Downlink Control Information (DCI): In some embodiments, the DCI is transmitted over a Physical Downlink Control Channel (PDCCH) with a Cyclic Redundancy Check (CRC) scrambled by at least one of a Paging Radio Network Temporary Identifier (P-RNTI), a System Information RNTI (SI-RNTI), a Random Access RNTI (RA-RNTI), or a Temporary Cell RNTI (TC-RNTI). (3) DCI with CRC scrambled by P-RNTI. In some embodiments, at least one of the frequency domain resource allocation information field, the time domain resource allocation information field, the modulation and coding scheme (MCS) information field, the virtual resource block (VRB) / physical resource block (PRB) mapping information field, the transport block (TB) scaling factor information field located after the transport block (TB) scaling factor carried by the DCI with CRC scrambled by the P-RNTI, or the information field indicates a configuration for the first reference signal.
[0030] In some embodiments, at least one of the frequency domain resource allocation information field, the time domain resource allocation information field, the MCS information field, the VRB / PRB mapping information field, or the transport block (TB) scaling factor information field is used when only short messages are carried by the DCI, or when scheduling information for paging is not carried by the DCI, or when the code point of the short message indicator is '00' or '10'. (4) Short Message. In some embodiments, a short message is used to carry the configuration of the first reference signal when only scheduling information for paging is carried, or when a short message is not present by the DCI, or when the code point of the short message indicator is "00" or "01." In some embodiments, the short message includes at least one of the third bit to the eighth bit of the short message. (5) Third Reference Signal. In some embodiments, the third reference signal is located before / after the synchronization signal / PBCH block (SSB). In some embodiments, the third reference signal is located before the paging occasion (PO). In some embodiments, the third reference signal also includes an indication of whether the UE needs to monitor subsequent or additional POs.
[0031] In some embodiments, the availability of the first reference signal includes an update indication of the first reference signal. In some embodiments, the update indication includes at least one of an activation indication, a deactivation indication, or a modification indication.
[0032] In some embodiments, the activation indication of the first reference signal indicates that the configuration of the first reference signal is valid, the deactivation indication of the first reference signal indicates that the configuration of the first reference signal is invalid, and the modification indication of the first reference signal indicates that the configuration of the first reference signal should be modified.
[0033] Embodiments for Providing Update Indications In some embodiments, the activation indication or update indication of the first reference signal may be transmitted via the first signaling. In one example, the first signaling includes at least one of the following: (1) System Information Block (SIB). In some embodiments, the SIB includes at least one of SIB1, SIB2, SIB3, or SIB4. (2) Downlink Control Information (DCI): In some embodiments, the DCI is transmitted via a Physical Downlink Control Channel (PDCCH) scrambled by at least one of the P-RNTI, SI-RNTI, RA-RNTI, or TC-RNTI. (3) DCI with CRC scrambled by P-RNTI. In some embodiments, at least one of the short message indicator information field, the frequency domain resource allocation information field, the time domain resource allocation information field, the modulation and coding scheme (MCS) information field, the VRB / PRB mapping information field, the transport block (TB) scaling factor information field, or the information field located after the transport block (TB) scaling factor carried by the DCI with CRC scrambled by the P-RNTI indicates an update indication for the first reference signal.
[0034] In some embodiments, the short message indicator field includes a code point with a value of "00" or "01".
[0035] In some embodiments, at least one of the frequency domain resource allocation information field, the time domain resource allocation information field, the MCS information field, the VRB / PRB mapping information field, or the transport block (TB) scaling factor information field is used when only short messages are carried by the DCI, or when scheduling information for paging is not carried by the DCI, or when the code point of the short message indicator is '00' or '10'. (4) Short Message. In some embodiments, a short message is used to carry an update indication of the first reference signal when only scheduling information for paging is carried, or when a short message is not present by the DCI, or when the code point of the short message indicator is "00" or "01". In some embodiments, the short message includes at least one of the third bit to the eighth bit of the short message. (5) Third Reference Signal. In some embodiments, the third reference signal is located before / after the synchronization signal / PBCH block (SSB). In some embodiments, the third reference signal is located before the paging occasion (PO). In some embodiments, the third reference signal also includes an indication of whether the UE needs to monitor subsequent or additional POs.
[0036] Embodiments for Providing Update Indications and PO Configurations In some embodiments, the update indication of the first reference signal may be indicated along with a paging occasion (PO) configuration.
[0037] In some embodiments, the PO configuration includes at least one of paging occasion grouping information, a time domain allocation of POs, or a frequency domain allocation of POs.
[0038] Embodiments for Indicating Availability of a First Reference Signal In some embodiments, the first reference signal is also transmitted to RRC connected mode UEs. When the UE is configured with discontinuous reception (DRX), the first reference signal is not required to be transmitted during the DRX off state. In some embodiments, the configuration of the first reference signal is identical to that of a reference signal configured by the network by UE-specific Radio Resource Control (RRC) signaling.
[0039] Embodiments of the disclosed technology can be configured to enable the network to inform an RRC idle mode or RRC inactive mode UE when the first reference signal is valid or when the first reference signal is not transmitted (e.g., when an RRC connected mode UE is in a DRX off state), which would otherwise consume power if the UE continues to detect the first reference signal.
[0040] In some embodiments, the availability indication of the first reference signal can be conveyed via first signaling. In one example, the first signaling includes at least one of the following: (1) System Information Block (SIB). In some embodiments, the SIB includes at least one of SIB1, SIB2, SIB3, or SIB4. (2) Downlink Control Information (DCI): In some embodiments, the DCI with a CRC is scrambled by at least one of the P-RNTI, SI-RNTI, RA-RNTI, and TC-RNTI. (3) DCI with CRC scrambled by P-RNTI. In some embodiments, at least one of the short message indicator information field, the frequency domain resource allocation information field, the time domain resource allocation information field, the modulation and coding scheme (MCS) information field, the VRB / PRB mapping information field, the transport block (TB) scaling factor information field, or the information field located after the transport block (TB) scaling factor carried by the DCI with CRC scrambled by the P-RNTI indicates an update indication for the first reference signal.
[0041] In some embodiments, the short message indicator field includes a code point with a value of "00" or "01".
[0042] In some embodiments, at least one of the frequency domain resource allocation information field, the time domain resource allocation information field, the MCS information field, the VRB / PRB mapping information field, or the transport block (TB) scaling factor information field is used when only short messages are carried by the DCI, or when scheduling information for paging is not carried by the DCI, or when the code point of the short message indicator is '00' or '10'. (4) Short Message. In some embodiments, a short message is used to carry an update indication of the first reference signal when only scheduling information for paging is carried, or when a short message is not present by the DCI, or when the code point of the short message indicator is "00" or "01". In some embodiments, the short message includes at least one of the third bit to the eighth bit of the short message. (5) Third Reference Signal. In some embodiments, the third reference signal is located before / after the synchronization signal / PBCH block (SSB). In some embodiments, the third reference signal is located before the paging occasion (PO). In some embodiments, the third reference signal also includes an indication of whether the UE needs to monitor subsequent or additional POs.
[0043] In some embodiments, the availability indication of the first reference signal in the first signaling includes at least one of the following: (1) Whether the first reference signal is always available. In some embodiments, if the first signaling indicates that the first reference signal is always available, it means that the first reference signal is available. In some embodiments, if the first signaling indicates that the first reference signal is not always available, it means that the first reference signal is available during the valid period or that the UE can detect the first reference signal during the valid period. (2) Validity Period. In some embodiments, the first reference signal is available during the validity period, or the UE may detect the first reference signal during the validity period, or the network transmits the first reference signal during the validity period. An example is shown in FIG. 2A. In some examples, the validity period includes one or more time points for the first reference signal, which is indicated in FIG. 2A by the shaded area within the "validity period."
[0044] In some embodiments, the validity period is based on at least one of periodicity, offset, or duration. An example is shown in Figure 2B. In some embodiments, the validity period is based on periodicity and duration.
[0045] Embodiments of the Type of First Reference Signal In some embodiments, the first reference signal includes at least one or more of a Channel State Information Reference Signal (CSI-RS), a Secondary Synchronization Signal (SSS), or a Primary Synchronization Signal (PSS). In certain examples, the CSI-RS includes a CSI-RS for mobility, a CSI-RS for tracking, and / or a CSI-RS for Layer 1 (L1) Reference Signal Received Power (RSRP) calculation.
[0046] In some embodiments, the CSI-RS for L1-RSRP includes a Non-Zero-Power (NZP)-CSI-RS-ResourceSet with the "Repetition" parameter set to "On."
[0047] In some embodiments, the CSI-RS for L1-RSRP includes a CSI-RS resource set, which has identical spatial filter parameters for all CSI-RS resources therein.
[0048] In some embodiments, the CSI-RS for L1-RSRP includes an NZP-CSI-RS-ResourceSet with the "repetition" parameter set to "off."
[0049] In some embodiments, the CSI-RS for tracking includes an NZP-CSI-RS-ResourceSet configured with the higher layer parameter trs-Info.
[0050] In some embodiments, the CSI-RS for mobility includes CSI-RS resources used for RRM measurements.
[0051] Embodiments for Configuring the First Reference Signal The configuration of the first reference signal includes at least one of a time domain configuration, a frequency domain configuration, a power domain configuration, or an antenna domain configuration.
[0052] In some embodiments, the time domain configuration includes at least one of a periodicity, an offset, a duration, a reference point in the time domain, a number of first reference signals within the periodicity, a number of symbols occupied by the first reference signal within a slot, a number of symbols occupied by the first reference signal within a slot, a start of a symbol occupied by the first reference signal within a slot, and a density or spacing between adjacent first reference signals.
[0053] In some embodiments, the slot with the first reference signal is determined by at least one of a periodicity, an offset, a duration, or a reference point in the time domain.
[0054] In some embodiments, the slot with the first reference signal is determined by at least one of an offset, a duration, or a reference point in the time domain. In one example, the first reference signal is determined by an offset relative to a reference point in the time domain. In this example, the periodicity of the first reference signal is predefined. For one example, the periodicity of the first reference signal is determined by at least one of the following: - periodicity of SSB bursts, - Periodicity of the DRX cycle, - paging frame, - the number of paging frames within a DRX cycle, - Number of POs in the paging frame.
[0055] In this embodiment, the network only needs to broadcast the periodicity of the first reference signal through the first signaling, and the resource overhead can be reduced.
[0056] In some embodiments, the offset determines that a slot with the first reference signal includes one or more offset values. In one example, the offset includes offset 1 and offset 2. The subframe with the first reference signal is based on offset 1. The slot within the subframe with the first reference signal is based on offset 2.
[0057] In some embodiments, the pattern of the first reference signal within the slot is determined by at least one of the number of symbols occupied by the first reference signal within the slot, the number of symbols occupied by the first reference signal within the slot, or the beginning of the symbols occupied by the first reference signal within the slot.
[0058] Embodiments of a time-domain configuration of a first reference signal In some embodiments, the configuration of the first reference signal includes a time-domain configuration. In some embodiments, parameters of the time-domain configuration for the CSI-RS for tracking, the CSI-RS for mobility, or the CSI-RS for L1-RSRP are identical. In some embodiments, parameters of the time-domain configuration apply to the CSI-RS for tracking, the CSI-RS for mobility, or the CSI-RS for L1-RSRP.
[0059] In some embodiments, the time-domain configuration includes a periodicity and / or an offset. In one example, the periodicity of the first reference signal satisfies predefined requirements, which may include at least one of the following: (1) The periodicity is above a first threshold. (2) The periodicity is less than a second threshold.
[0060] In an embodiment, the offset of the first reference signal satisfies predefined requirements, which may include at least one of the following: (1) The offset exceeds the third threshold. (2) The offset is less than a fourth threshold.
[0061] The offset ranges from negative to positive values.
[0062] In some embodiments, the first / second / third / fourth thresholds are based on at least one of the following: - periodicity of SSB bursts, - Periodicity of the DRX cycle, - paging frame, - the number of paging frames within a DRX cycle, - number of POs in the paging frame, - The number of PDCCH monitoring instants in the PO.
[0063] In some embodiments, the periodicity of the SSB bursts is that of a half frame with SSB.
[0064] In some embodiments, an SSB comprises a Primary Synchronization Signal (PSS), a Secondary Synchronization Signal (SSS), and a Physical Broadcast Channel (PBCH) with associated Demodulation Reference Signals (DM-RS) in consecutive symbols. An SSB burst comprises one or more SSBs. In some examples, one or more SSBs in an SSB burst are in the same half-frame. The number of SSBs or the index of the SSBs transmitted within an SSB burst can be indicated by the network.
[0065] In one embodiment, the first / second threshold is the periodicity of the SSB bursts.
[0066] In one embodiment, the periodicity of the SSB bursts is 20 ms for initial access, and therefore the first / second thresholds may be set to 20 ms.
[0067] In one embodiment, the first reference signal is configured to be provided as a complement to the SSB, in which case power savings are reduced if the first reference signal has a periodicity less than or closer to the SSB.
[0068] In some embodiments, the offset of the first reference signal may be defined relative to a reference point in the time domain associated with the SSB burst.
[0069] The reference points in the time domain associated with the SSB burst include at least one of the following: (a) The beginning or end of an SSB burst or an SSB within an SSB burst. In this embodiment, the reference point in the time domain may be the beginning or end of an SSB burst or an SSB within an SSB burst. In some embodiments, an SSB within an SSB burst is configured to be the reference point in the time domain. (b) A slot that includes the beginning or end of an SSB burst or an SSB within an SSB burst. (c) A subframe with the beginning or end of an SSB burst or an SSB within an SSB burst. In some embodiments, an SSB within an SSB burst is configured to be a reference point in the time domain. (d) The beginning or end of an SSB burst or a half-frame with an SSB within an SSB burst. In some embodiments, an SSB within an SSB burst is configured to be a reference point in the time domain. (e) The beginning or end of a PSS, SSS, physical broadcast channel (PBCH), or demodulation reference signal (DM-RS) associated with the PBCH. (f) A slot with the beginning or end of a PSS, SSS, physical broadcast channel (PBCH), or demodulation reference signal (DM-RS) associated with the PBCH. (g) A subframe using a slot with the beginning or end of a PSS, SSS, physical broadcast channel (PBCH), or demodulation reference signal (DM-RS) associated with the PBCH.
[0070] An exemplary embodiment is shown in FIG.
[0071] As shown in Figure 3, one or more first reference signals are present within a predefined period of time. The time-domain configuration of the one or more first signals has at least one of the following characteristics: (a) The predefined period includes a periodicity of multiple SSB bursts. In one embodiment, the predefined period is a periodicity of SSB bursts. (b) The gaps between adjacent first reference signals within a single predefined period are identical.
[0072] In this embodiment, the time-domain configuration includes a gap or density between adjacent first reference signals.
[0073] An exemplary embodiment is shown in FIG.
[0074] As shown in Figure 4, the first reference signal is present within a predefined period. In one embodiment, the predefined period includes a periodicity of multiple SSB bursts. In another embodiment, the predefined period is a periodicity of SSB bursts.
[0075] In some embodiments, the offset of the first reference signal is defined relative to a paging occasion (PO) or paging frame. In one example, the reference point or paging frame in the time domain associated with the PO includes at least one of the following: (a) The beginning or end of a paging frame. (b) The beginning or end of the first PDCCH monitoring time point within a paging frame. (c) The slot with the beginning or end of the first PDCCH monitoring time point within the paging frame. (d) The subframe with the beginning or end of the first PDCCH monitoring time point within the paging frame. (e) The beginning or end of the last PDCCH monitoring point within the paging frame. (f) The slot with the beginning or end of the last PDCCH monitoring time point within the paging frame. (g) The subframe with the beginning or end of the last PDCCH monitoring time point within the paging frame. (h) The beginning or end of a PO. (i) The beginning or end of the first PDCCH monitoring time in a PO. (j) The slot with the beginning or end of the first PDCCH monitoring instant in the PO. (k) The subframe with the beginning or end of the first PDCCH monitoring instant in the PO. (l) The beginning or end of the last PDCCH monitoring point in the PO. (m) The slot with the beginning or end of the last PDCCH monitoring time in the PO. (n) The subframe with the beginning or end of the last PDCCH monitoring time in the PO.
[0076] An example embodiment is shown in Figure 5. As shown therein, one or more first reference signals are present within a predefined period of time. The time-domain configuration of the one or more first signals has at least one of the following characteristics: (a) The predefined period is a number of DRX cycles or paging frames. In one embodiment, the predefined period is a number of DRX cycles or paging frames. (b) The gaps between adjacent first reference signals within a single predefined period are identical.
[0077] In this embodiment, the time-domain configuration includes gaps between adjacent first reference signals or densities.
[0078] An example embodiment is shown in Figure 6. As shown therein, a first reference signal is present within a predefined period of time.
[0079] An example embodiment is shown in Figure 7. As shown therein, the offset can be defined as a time gap between a reference point in the time domain and the first reference signal. The reference point in the time domain can be the beginning or end of a PO, or the beginning or end of the first PDCCH monitoring instant in a PO, or the beginning or end of the last PDCCH monitoring instant in a PO.
[0080] A paging frame (PF) is a radio frame and may contain one or more PO(s) or the start of a PO. A paging occasion (PO) is a set of PDCCH monitoring occasions and may consist of multiple time slots (e.g., subframes or OFDM symbols) in which paging DCI may be transmitted. A UE detects a PO for scheduling information and / or system information update indication in a paging message.
[0081] In some embodiments, the PF and PO for paging are determined by the following formula: The SFN for the PF is determined by: (SFN+PF_offset) mod T=(T div N) * (UE_ID mod N) The index (i_s) of the PO is determined as follows: i_s=floor(UE_ID / N) mod Ns PO is a set of 'S' consecutive PDCCH monitoring time points, where 'S' is the number of SSBs actually transmitted, determined according to ssb-PositionsInBurst in SIB1.
[0082] The following parameters are used for the calculation of PF and i_s above: T: UE DRX cycle Total number of paging frames in N:T Ns: number of paging points for PF PF_offset: The offset used for PF determination UE_ID:5G-S-TMSI mod 1024
[0083] Embodiments of Frequency Domain Configuration of First Reference Signal In some embodiments, the configuration of the first reference signal includes a frequency-domain configuration. In some embodiments, parameters of the frequency-domain configuration for the CSI-RS for tracking, the CSI-RS for mobility, and the CSI-RS for L1-RSRP are identical. In some embodiments, parameters of the time-domain configuration apply to the CSI-RS for tracking, the CSI-RS for mobility, or the CSI-RS for L1-RSRP.
[0084] In some embodiments, the frequency domain configuration includes at least one of a number of physical resource blocks (PRBs) and / or offsets, a number of resource elements (REs) occupied by the first reference signal in a PRB, a number of REs occupied by the first reference signal in a PRB, a start of an RE occupied by the first reference signal in a PRB, or a frequency density.
[0085] In some embodiments, the PRB associated with the first reference signal is determined by at least one of a number of physical resource blocks (PRBs) and / or an offset.
[0086] In some embodiments, the REs with the first reference signal are determined by at least one of the number of REs occupied by the first reference signal in the PRB, the number of REs occupied by the first reference signal in the PRB, the beginning of the REs occupied by the first reference signal in the PRB, or the frequency density.
[0087] In some embodiments, the frequency domain configuration includes an indication of the number of physical resource blocks (PRBs) and / or an offset.
[0088] In some embodiments, the offset of the first reference signal is defined relative to the second reference signal or resource block.
[0089] In some embodiments, the second reference signal includes at least one of an SSB, a PSS, an SSS, a PBCH, or a DM-RS associated with the PBCH.
[0090] In some embodiments, the resource block includes a control resource set (CORESET) that is associated with a paging search space or CORESET0.
[0091] In some embodiments, the offset of the first reference signal is defined relative to the lowest or highest PRB index, or the beginning or end or middle of the second reference signal or resource block.
[0092] In some embodiments, the offset of the first reference signal is defined relative to point A or the absolute frequency location of the reference resource block or common resource block 0.
[0093] Embodiments for QCL Assumption of First Reference Signal In some embodiments, the spatial domain configuration includes a quasi-co-location (QCL) relationship or spatial filter parameters. In some embodiments, the type of the first reference signal includes "QCL-Type D" with SS / PBCH blocks.
[0094] Embodiments for the power of the first reference signal In some embodiments, the power domain configuration includes a power parameter. In some embodiments, the power parameter is a ratio between a first reference signal energy per resource element (EPRE) and a PSS EPRE, or a SSS EPRE, or a PBCH EPRE, or a DM-RS associated with the PBCH EPRE. In some embodiments, the ratio between the first reference signal EPRE and a DM-RS associated with the PSS EPRE, or a SSS EPRE, or a PBCH EPRE, or a PBCH EPRE is fixed or predefined.
[0095] CSI-RS for Mobility Embodiments In some embodiments, the first reference signal includes a CSI-RS for mobility and a CSI-RS for L1-RSRP.
[0096] The CSI-RS for L1-RSRP includes a CSI-RS resource set with the repetition parameter set to “on.” The CSI-RS for mobility is used for RRM measurements.
[0097] An embodiment of the disclosed technology is configured to broadcast CSI-RS for mobility to RRC idle mode UEs and RRC inactive mode UEs. In another embodiment, the CSI-RS for L1-RSRP includes CSI-RS resources with the same spatial filter.
[0098] At least one of an RRM measurement, a cell selection, or a cell reselection is performed based on the first reference signal.
[0099] In some embodiments, the first reference signal is used for serving cell measurements only.
[0100] In some embodiments, cell selection, cell reselection, or cell ranking is based on SSB and / or the first reference signal. In some embodiments, criteria or parameters for cell selection based on SSB and the first reference signal are configured separately. In some examples, the same type of reference signal (SSB or first reference signal) is used to compare evaluations of different cells. In another example, the cell selection, cell reselection, or cell ranking criterion is satisfied when the evaluation result based on SSB or the evaluation result based on the first reference signal meets the criterion. In another example, the cell selection, cell reselection, or cell ranking criterion is satisfied when both the evaluation result based on SSB and the evaluation result based on the first reference signal meet the criterion.
[0101] In some embodiments, the cell selection criterion is cell selection criterion S.
[0102] In some embodiments, the cell selection criterion S is determined based on the evaluation result of either the SSB or the first reference signal satisfying the following requirement: S rxlev >0 AND S qual >0, where S rxlev is the cell selection RX level value (dB), and S qual is the cell selection quality value (dB).
[0103] In another embodiment, the cell selection criterion S is such that both the evaluation results based on the SSB and the first reference signal satisfy the following requirement: S rxlev >0 AND S qual >0, where S rxlev is the cell selection RX level value (dB), and S qual is the cell selection quality value (dB).
[0104] In some embodiments, the measurements are based on a combination of the SSS and the first reference signal. In one example, the first reference signal may be used in addition to the secondary synchronization signal for SS-RSRP determination. In another example, the first reference signal may be used in addition to the secondary synchronization signal for SS-SINR determination.
[0105] In some embodiments, the SSS and the first reference signal are QCL'd using QCL type D. In some embodiments, the SSB and the first reference signal are QCL'd using QCL type D. In some embodiments, the power ratio between the first reference signal and the SSS is configured or predetermined. For example, the ratio between the first reference signal EPRE and the PSS EPRE, or the SSS EPRE, or the PBCH EPRE, or the DM-RS associated with the PBCH EPRE is fixed or predefined.
[0106] In some embodiments, the first signaling includes configuration of a first reference signal, threshold, or parameter for serving cell selection or intra / inter cell reselection or inter-RAT reselection, wherein the serving cell selection or intra / inter cell reselection or inter-RAT reselection is based on the first reference signal.
[0107] In some embodiments, the first signaling includes an indication of whether the timing of the serving cell can be used to derive the timing of the neighbor cell.
[0108] In some embodiments, configurations or thresholds or parameters for serving cell selection are conveyed by SIB1.
[0109] In some embodiments, configurations or thresholds or parameters for intra-cell reselection are conveyed by SIB2 or SIB3.
[0110] In some embodiments, configurations or thresholds or parameters for inter-cell reselection are conveyed by SIB2 or SIB4.
[0111] In some embodiments, the configuration or thresholds or parameters for inter-RAT reselection are conveyed by SIB2 or SIB5.
[0112] CSI-RS for Tracking Embodiments In some embodiments, the first reference signal includes a CSI-RS for tracking.
[0113] In some embodiments, the resource type of the first reference signal is periodic and / or semi-persistent.
[0114] In some embodiments, the number of antenna ports for the first reference signal is one.
[0115] First Reference Signal and PO Embodiment In some implementations, the PDCCH monitoring time point with a PO corresponds to an SSB, or the PDCCH monitoring time point with a PO has the same transmission beam as the SSB. In some implementations, the UE needs to wake up in advance to detect beam information and then select a beam or beams for receiving the PO. If the gap between the PO and the SSB is large, the UE cannot enter deep sleep for a long time, which consumes power. The following disclosed embodiments provide a solution that enables the UE to obtain beam information via a first reference signal. The first reference signal is located close to the PO, which reduces the UE's wake-up period to save power consumption.
[0116] In some embodiments, the first reference signal includes a CSI-RS. In one example, the CSI-RS includes a CSI-RS for L1-RSRP.
[0117] In some embodiments, the transmission beam of the first reference signal is the same for one or more PDCCH monitoring instants in a PO.
[0118] In some embodiments, the first reference signal corresponds to one or more PDCCH monitoring instants in a PO. In some embodiments, a first reference signal of the plurality of first reference signals corresponds to a PDCCH monitoring instant in a PO. In some embodiments, each first reference signal of the plurality of first reference signals corresponds to a PDCCH monitoring instant in a PO. In some embodiments, the kth reference signal of the plurality of first reference signals corresponds to the kth PDCCH monitoring instant in a PO, where k is a positive integer. In some embodiments, the plurality of first reference signals are configured within the same reference resource set. In one example, the plurality of first reference signals are configured within the same reference resource set with repetition set to "off." In one example, spatial filter parameters of the plurality of first reference signals configured within the same reference resource set are not assumed to be identical.
[0119] In some embodiments, the one or more first reference signals correspond to one PDCCH monitoring instance. In one example, the spatial filter parameters or transmission beams of the one or more first reference signals are the same. In another example, the one or more first reference signals are QCL'd using QCL type D. In some embodiments, the one or more first reference signals are configured within the same reference resource set. In some embodiments, the i-th reference resource set corresponds to the i-th PDCCH monitoring instance in a PO, where i is a positive integer. In some examples, the one or more first reference signals are configured within the same reference resource set with repetition set to "on."
[0120] In some embodiments, the correspondence between the first reference signal and the PDCCH monitoring time instants is predefined. In some embodiments, the correspondence between the first reference signal and the PDCCH monitoring time instants is indicated or updated by the first signaling.
[0121] In some embodiments, the number of antenna ports for the first reference signal is one.
[0122] An example embodiment is shown in Figure 8. As shown therein, the first reference signal includes a CSI-RS resource set. In one example, the CSI-RS resources within a CSI-RS resource set have the same spatial filter. The resource sets are used to associate or correspond to the PDCCH monitoring instances in a PO. The i-th resource set corresponds to the i-th PDCCH monitoring instance in a PO, where i = 1, 2, or 3.
[0123] Another example is shown in Figure 9. As shown therein, the first reference signal includes a CSI-RS resource set. In one example, one or more first reference signals are present in the set. The first reference signals are used to associate with or correspond to PDCCH monitoring instances in a PO. The kth first reference signal of the resource set corresponds to the kth PDCCH monitoring instance in the PO, where k = 1, 2, or 3.
[0124] Embodiments for RRC Connected Mode UE The first reference signal configured by the first signaling may also be detected by the RRC connected mode UE.
[0125] In some embodiments, the first reference signal configured by UE-specific signaling has a lower priority than the first signaling, for example, the first reference signal configured by RRC signaling has a lower priority than the first signaling.
[0126] In some embodiments, the first reference signal constituted by the UE-specific signaling and the first signaling are identical.
[0127] In some embodiments, the configuration of the first reference signal by the UE-specific signaling overrides the configuration by the first signaling.
[0128] In some embodiments, the parameters of the first reference signal configured by the UE-specific signaling override the parameters configured by the first signaling.
[0129] In some embodiments, the parameters of the first reference signal configured by the first signaling override the parameters configured by the UE-specific signaling.
[0130] In some embodiments, the parameters of the first reference signal configured by the UE-specific signaling have a higher priority than the parameters configured by the first signaling.
[0131] In some embodiments, the parameters of the first reference signal configured by the first signaling have a higher priority than the parameters configured by the UE-specific signaling.
[0132] In some embodiments, the first reference signal may be determined by a plurality of parameters configured by the UE-specific signaling in addition to another plurality of parameters configured by the first signaling.
[0133] In some embodiments, a first reference signal configured by UE-specific signaling is not allowed to be FDM or TDMed with another first reference signal configured by first signaling.
[0134] In some embodiments, the first reference signal is determined by multiple parameters of the first reference signal configured by the first signaling and / or UE-specific RRC signaling, and in some examples, some of the parameters of the first reference signal conveyed by the first signaling may also be used to configure the first reference signal to reduce resource overhead.
[0135] Additional Embodiments of the Disclosed Technology 10A illustrates an example of a wireless communication method 1000. Method 1000 includes, at operation 1002, a network node transmitting first signaling to a wireless device comprising information associated with a first reference signal. In some embodiments, the information comprises at least one of a configuration of the first reference signal, update information for the first reference signal, or a validity period for the first reference signal.
[0136] 10B shows an example of a wireless communication method 1050. The method 1050 includes, at operation 1052, the wireless device receiving first signaling from a network node comprising information associated with a first reference signal. In some embodiments, the information comprises at least one of a configuration of the first reference signal, update information for the first reference signal, or a validity period for the first reference signal.
[0137] In some embodiments, the following technical solutions can be implemented: 1. A method for wireless communications, comprising: a network node transmitting first signaling to a wireless device, the first signaling comprising information associated with a first reference signal, the information comprising at least one of a configuration of the first reference signal, update information for the first reference signal, or a validity period for the first reference signal. 2. A method for wireless communications, comprising: a wireless device receiving first signaling from a network node comprising information associated with a first reference signal, the information comprising at least one of a configuration of the first reference signal, update information for the first reference signal, or a validity period for the first reference signal. 3. The method of solution 1 or 2, wherein the wireless device is in a Radio Resource Control (RRC) idle mode, an RRC inactive mode, or an RRC connected mode. 4. The method according to any of solutions 1 to 3, wherein the first signaling comprises at least one of a system information block (SIB), a downlink control information (DCI) with a cyclic redundancy check (CRC) scrambled by a paging radio network temporary identifier (P-RNTI), or a short message. 4a. The method according to Solution 4, wherein the SIB comprises at least one of SIB1, SIB2, SIB3, or SIB4. 5. The method according to solution 4, wherein the DCI with CRC scrambled by the P-RNTI comprises at least one of a frequency domain resource allocation information field, a time domain resource allocation information field, a modulation and coding scheme (MCS) information field, or an information field located after a transport block (TB) scaling factor. 6. The method described in Solution 5, wherein the DCI comprises a short message or the code point of the short message indicator comprised in the DCI is "00" or "10". 6a. The method of solution 4, wherein the short message comprises at least one of the third bit to the eighth bit of the short message. 7. The method according to any one of solutions 1 to 3, wherein the first signaling further comprises a paging occasion (PO) configuration. 8. The method according to solution 7, wherein the PO configuration comprises at least one of paging occasion grouping information, a time domain allocation of the PO, or a frequency domain allocation of the PO. 9. The method according to any of Solutions 1 to 3, wherein the validity period is based on at least one of periodicity, offset, or duration. 10. The method of any of Solutions 1 to 3, wherein the first reference signal comprises a channel state information reference signal (CSI-RS) for tracking, a CSI-RS for mobility, or a CSI-RS for Layer 1 (L1) Reference Signal Received Power (RSRP) calculation. 10a. The method of solution 10, wherein the CSI-RS for L1 RSRP calculation has a repetition parameter set to on. 10b. The method according to solution 10, wherein the CSI-RS for L1 RSRP calculation comprises a CSI-RS resource set with spatial filter parameters that are the same as the CSI-RS resource. 10c. The method of solution 10, wherein the CSI-RS for L1 RSRP calculation has a repetition parameter set to off. 11. The method according to any of solutions 1 to 3, wherein the reference signal of the quasi-co-located (QCL) assumption of the first reference signal is a synchronization signal / PBCH block (SSB). 12. The method according to any of solutions 1 to 3, wherein the configuration comprises a time domain configuration. 13. The method according to solution 12, wherein the time domain configuration comprises a periodicity and / or an offset. 13a. The method of solution 13, wherein the periodicity exceeds the periodicity of the synchronization signal / PBCH block (SSB). 13b. The method according to solution 13, wherein the periodicity is less than the periodicity of the synchronization signal / PBCH block (SSB). 13c. The method of solution 13, wherein the offset is greater than a threshold. 14. The method of solution 13, wherein the periodicity is less than a threshold value. 15. The method of solution 14, wherein the threshold is based on a synchronization signal / PBCH block (SSB) periodicity, a paging occasion, a paging frame, or a discontinuous reception (DRX) cycle. 16. The method of solution 13, wherein the offset is based on a reference point in the time domain associated with a synchronization signal / PBCH block (SSB) burst, a paging occasion (PO), a paging frame (PF), or a discontinuous reception (DRX) cycle. 17. The method of solution 16, wherein the reference point in the time domain associated with the SSB burst comprises at least one of the beginning or end of the SSB burst, the beginning or end of a half-frame comprising the transmission of the SSB burst, or the beginning or end of a primary synchronization signal (PSS), a secondary synchronization signal (SSS), a physical broadcast channel (PBCH), or a demodulation reference signal (DM-RS) associated with the PBCH. 18. The method of solution 16, wherein the reference point in the time domain associated with the PO comprises at least one of the beginning or end of the PO, the beginning or end of the first physical downlink control channel (PDCCH) monitoring time point of the PO, or the beginning or end of the last PDCCH monitoring time point of the PO. 19. The method according to solution 16, wherein the reference point in the time domain associated with the PF comprises at least the beginning or the end of the PF. 20. The method according to solution 16, wherein the reference point in the time domain associated with the DRX cycle comprises at least the beginning or the end of the DRX cycle. 21. The method of solution 13, wherein the periodicity of the first reference signal comprises one or more synchronization signal / PBCH block (SSB) bursts, paging occasions (POs), paging frames (PFs), or discontinuous reception (DRX) cycles. 22. The method according to solution 21, wherein the gaps between adjacent first reference signals within the periodicity are the same. 23. The method according to any one of solutions 1 to 3, wherein the configuration comprises a frequency domain configuration. 24. The method of solution 23, wherein the frequency domain configuration comprises an indication of the number and / or offset of physical resource blocks (PRBs). 25. The method of solution 24, wherein the offset is based on a second reference signal or a second resource block. 26. The method of solution 20, wherein the second reference signal comprises at least one of a synchronization signal / PBCH block (SSB), a primary synchronization signal (PSS), a secondary synchronization signal (SSS), a physical broadcast channel (PBCH), or a demodulation reference signal (DM-RS) associated with the PBCH. 27. The method of solution 20, wherein the second resource block comprises a control resource set (CORESET) associated with a paging search space or CORESET0. 28. The method according to any of solutions 1 to 3, wherein the configuration of the first reference signal in the first signaling has a higher priority than the configuration in the radio resource control (RRC) signaling. 29. The method of solution 10, wherein the first reference signal is used for radio resource management (RRM) measurements, cell selection, or cell reselection. 30. The method of solution 29, wherein the cell selection or cell reselection criteria for the synchronization signal / PBCH block (SSB) and the first reference signal are configured separately. 31. The method of solution 30, wherein the cell selection or cell reselection criterion is satisfied when the measurement result of the SSB or the measurement result of the first reference signal satisfies the criterion. 32. The method of solution 10, wherein the first reference signal corresponds to a physical downlink control channel (PDCCH) monitoring time for paging within a paging occasion (PO). 33. A wireless communication device comprising a processor and a memory, wherein the processor is configured to read code from the memory and implement a method described in any of solutions 1 to 32. 34. A computer program product comprising a computer-readable program medium code stored thereon, the code, when executed by a processor, causing the processor to implement a method according to any one of solutions 1 to 32.
[0138] 11 is a block diagram representation of a portion of an apparatus according to some embodiments of the disclosed technology. An apparatus 1105, such as a base station or wireless device (or UE), may include processor electronics 1110, such as a microprocessor, that implements one or more of the techniques presented herein. The apparatus 1105 may include transceiver electronics 1115 for transmitting and / or receiving wireless signals via one or more communication interfaces, such as antenna(s) 1120. The apparatus 1105 may also include other communication interfaces for transmitting and receiving data. The apparatus 1105 may include one or more memories (not explicitly shown) configured to store information, such as data and / or instructions. In some implementations, the processor electronics 1110 may include at least a portion of the transceiver electronics 1115. In some embodiments, at least some of the disclosed techniques, modules, or functionality are implemented using the apparatus 1105.
[0139] Some of the embodiments described herein are described in the general context of methods or processes, which, in one embodiment, may be implemented by a computer program product embodied in a computer-readable medium including computer-executable instructions, such as program code, executed by computers in a networked environment. Computer-readable media may include removable and non-removable storage devices, including, but not limited to, read-only memory (ROM), random access memory (RAM), compact discs (CDs), digital versatile discs (DVDs), and the like. Thus, computer-readable media may include non-transitory storage media. Generally, program modules may include routines, programs, objects, components, data structures, etc. that perform particular tasks or implement particular abstract data types. Computer- or processor-executable instructions, associated data structures, and program modules represent examples of program code for executing steps of the methods disclosed herein. The particular sequence of such executable instructions or associated data structures represents examples of corresponding acts for implementing the functions described in such steps or processes.
[0140] Some of the disclosed embodiments can be implemented as devices or modules using hardware circuits, software, or a combination thereof. For example, a hardware circuit implementation may include separate analog and / or digital components integrated, for example, as part of a printed circuit board. Alternatively, or in addition, the disclosed components or modules can be implemented as application-specific integrated circuits (ASICs) and / or field-programmable gate array (FPGA) devices. Some implementations may also, or alternatively, include digital signal processors (DSPs), which are specialized microprocessors with architectures optimized for the needs of digital signal processing operations associated with the disclosed functionality. Similarly, various components or subcomponents within each module may be implemented in software, hardware, or firmware. Connectivity between modules and / or components within modules may be provided using any one of connectivity methods and mediums known in the art, including, but not limited to, communication via the Internet, wired, or wireless networks using appropriate protocols.
[0141] While this document contains many details, these should not be construed as limitations on the scope of the claimed invention, or what may be claimed, but rather as descriptions of features specific to particular embodiments. Certain features described herein in the context of separate embodiments can also be implemented in combination in a single embodiment. Conversely, various features described in the context of a single embodiment can also be implemented in multiple embodiments separately or in any suitable subcombination. Furthermore, while features may be described above as acting in a combination and may even be initially claimed as such, one or more features from a claimed combination can, in some cases, be deleted from the combination, and the claimed combination may be directed to a subcombination or variation of the subcombination. Similarly, although acts are depicted in the figures in a particular order, this should be understood as requiring such acts to be performed in the particular order or sequence shown, or that all of the illustrated acts be performed to achieve a desired result.
[0142] Only some implementations and examples are described; other implementations, enhancements, and variations can be made based on what is described and illustrated in this disclosure.
Claims
1. A method for wireless communication, comprising: a wireless device receiving a downlink control information (DCI) signaling message from a network node, the DCI signaling message comprising configuration information of a reference signal, the reference signal including a channel state information reference signal (CSI-RS), a secondary synchronization signal (SSS), or a primary synchronization signal (PSS); the DCI signaling message being a cyclic redundancy check (CRC) scrambled by a paging radio network temporary identifier (P-RNTI); the DCI signaling message including a short message indicator information field, a frequency domain resource allocation information field, a time domain resource allocation information field, a modulation and coding scheme (MCS) information field, a virtual resource block (VRB) / physical resource block (PRB) mapping information field, a transport block (TB) scaling factor information field, and an indicator field after the TB scaling factor information field, the indicator field indicating an update of the reference signal availability, the availability of the reference signal being based on whether the reference signal is detectable during a validity period; the wireless device performing an action with the network node based on the configuration information of the reference signal; A method comprising:
2. The method described in claim 1, wherein the validity period is based on at least one of periodicity, offset, or duration.
3. The method described in claim 2, wherein the start of the validity period is based on a paging point (PO) or an offset relative to a paging frame.
4. A method according to any one of claims 1 to 3, wherein the wireless device is in an idle or inactive state and the indicator field includes one or more bits.
5. A method according to any one of claims 1 to 4, wherein the synchronization signal / PBCH block (SSB) satisfies the quasi-collocation (QCL) assumption with the reference signal.
6. A method for wireless communication, comprising: A network node transmits a downlink control information (DCI) signaling message to a wireless device, the DCI signaling message comprising configuration information of a reference signal, the reference signal including a channel state information reference signal (CSI-RS), a secondary synchronization signal (SSS), or a primary synchronization signal (PSS), the DCI signaling message being a cyclic redundancy check (CRC) scrambled by a paging radio network temporary identifier (P-RNTI), and the DCI signaling message comprises a short message indicator information field and a frequency a time domain resource allocation information field, a time domain resource allocation information field, a modulation and coding scheme (MCS) information field, a virtual resource block (VRB) / physical resource block (PRB) mapping information field, a transport block (TB) scaling factor information field, and an indicator field following the TB scaling factor information field, wherein the indicator field includes one or more bits indicating an update of the reference signal availability, and the availability of the reference signal is based on whether the reference signal is detectable during a validity period; the network node performing an action with the wireless device based on the configuration information of the reference signal; A method comprising:
7. The method of claim 6, wherein the validity period is based on at least one of periodicity, offset, or duration.
8. The method of claim 7, wherein the start of the validity period is based on a paging point (PO) or an offset relative to a paging frame.
9. A method according to any one of claims 5 to 8, wherein the wireless device is in an idle or inactive state and the indicator field includes one or more bits.
10. A method according to any one of claims 5 to 7, wherein the synchronization signal / PBCH block (SSB) satisfies the quasi-collocation (QCL) assumption with the reference signal.
11. A wireless communication device, comprising a processor and a memory, wherein the processor is configured to read code from the memory and perform a method according to any one of claims 1 to 5.
12. A wireless communication device, comprising a processor and a memory, wherein the processor is configured to read code from the memory and perform a method according to any one of claims 6 to 10.
13. A computer-readable program storage medium on which code is stored, the code causing the processor to perform a method according to any one of claims 1 to 5 when executed by the processor.
14. A computer-readable program storage medium on which code is stored, the code causing the processor to perform a method according to any one of claims 6 to 10 when executed by the processor.
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