Radio Resource Control for Radio Resource Management in New Wireless Technologies: Dynamic Radio Frequency Switching in Connected State
By employing SSB timing groups for RRM measurements, the UE efficiently monitors multiple inter-frequency layers during a single gap, addressing inefficiencies in 5G NR handover performance and measurement update rates.
Patent Information
- Application Number
- JP2023009309
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2018-10-25
- Filing Date
- 2023-01-25
- Publication Date
- 2026-02-12
- Estimated Expiration
- 2039-10-22
AI Technical Summary
In 5G NR, user equipment (UE) in the RRC_CONNECTED state faces inefficiencies in RRM measurements due to the inability to measure SSBs of multiple inter-frequency layers within a single measurement gap, affecting handover performance and measurement update rates.
Implementing RRM measurements based on SSB timing groups, allowing the UE to switch receivers effectively within one SSB burst and multiple inter-frequency layers during a measurement gap, thereby enhancing measurement efficiency.
This approach improves the measurement update rate and handover performance by enabling simultaneous monitoring of multiple inter-frequency layers during a single measurement gap, optimizing UE operations in the RRC_CONNECTED state.
Smart Images

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Abstract
Description
[Technical Field]
[0001] CROSS-REFERENCE TO RELATED APPLICATIONS This application claims priority to U.S. Provisional Patent Application No. 62 / 750,464, filed October 25, 2018, entitled "Dynamic Radio Frequency Switching for Inter-frequency Radio Resource Management (RRM) Measurements In Radio Resource Control (RRC)_CONNECTED State," the entire disclosure of which is incorporated herein by reference.
[0002] FIELD OF THE INVENTION Embodiments of the present invention generally relate to the field of wireless communications. [Background technology]
[0003] The background art provided herein is for the purpose of generally presenting the context of the present disclosure. To the extent described in this background art section, the work of the currently cited inventors, as well as aspects of the description that may not otherwise be considered prior art at the time of filing, are not explicitly or implicitly admitted as prior art against the present disclosure. Unless otherwise stated herein, the approaches described in this section are not prior art to the claims of the present disclosure and are not admitted to be prior art by inclusion in this section.
[0004] Fifth generation (5G) new radio technology (NR) requires inter-frequency and / or intra-frequency radio resource management (RRM) measurements for user equipment (UE) to monitor the quality of neighboring cells. Such monitoring may be used for handover in the radio resource control (RRC)_CONNECTED state and / or cell reselection in the RRC_IDLE state. In 5G NR, RRM measurements of one or more target neighboring cells can be based on measurements on one or more synchronization signal blocks (SSBs) associated with the one or more target neighboring cells. In the RRC_CONNECTED state, monitoring of two or more inter-frequency layers may be necessary. Based on existing RRM measurements on SSB bursts within a corresponding measurement gap, it may be inefficient if the UE can only measure the SSB of one inter-frequency layer corresponding to one SSB burst within a scheduled measurement gap.
[0005] Embodiments will be readily understood by the following detailed description taken in conjunction with the accompanying drawings, in which: To facilitate this description, like reference numerals designate like structural elements, and in which embodiments are shown by way of example, and not by way of limitation, in which: [Brief explanation of the drawings]
[0006] [Figure 1] 1 illustrates a schematic diagram of an example network comprising a user equipment (UE) and an access node (AN) in a wireless network, in accordance with various embodiments. [Figure 2] 1 illustrates exemplary components of a device according to various embodiments. [Figure 3A] 1 illustrates an exemplary radio frequency front end (RFFE) incorporating a millimeter-wave (mm-wave) RFFE and one or more sub-millimeter-wave radio frequency integrated circuits (RFICs), according to some embodiments. [Figure 3B] 1 illustrates an alternative RFFE according to some embodiments. [Figure 4A] 1 illustrates an example of RRM measurements in RRC_CONNECTED state based on SSB bursts, according to various embodiments. [Figure 4B] 10 illustrates an example of RRM measurements in RRC_CONNECTED state based on SSB timing groups, according to various embodiments. [Figure 5] 1 illustrates an example operational flow that facilitates the process of neighbor cell monitoring in an RRC_CONNECTED state, in accordance with various embodiments. [Figure 6A] 1 illustrates an operational flow / algorithm structure for facilitating a receiver operation switching pattern determination and implementation process when a UE is in an RRC-CONNECTED state, according to various embodiments. [Figure 6B] 1 illustrates an operational flow / algorithm structure for facilitating a receiver operation switching pattern determination and implementation process when an AN is in an RRC-CONNECTED state, according to various embodiments. [Figure 7] 1 illustrates an exemplary interface for a baseband circuit according to various embodiments. [Figure 8] 1 illustrates hardware resources according to various embodiments. DETAILED DESCRIPTION OF THE INVENTION
[0007] In the following detailed description, reference is made to the accompanying drawings that form a part hereof, where like numerals designate like parts throughout, and in which are shown by way of illustration embodiments that may be practiced. It is to be understood that other embodiments may be utilized and structural or logical changes may be made without departing from the scope of the present disclosure. Therefore, the following detailed description is not to be taken in a limiting sense.
[0008] Various operations may be described as multiple separate actions or sequential operations in a manner that is most helpful in understanding the claimed subject matter. However, the order of description should not be construed as to imply that these operations are necessarily order dependent. In particular, these operations may not be performed in the order presented. The operations described may be performed in a different order than in the described embodiment. In additional embodiments, various additional operations may be performed and / or described operations may be omitted.
[0009] For purposes of this disclosure, the phrases "A or B" and "A and / or B" mean (A), (B), or (A and B). For purposes of this disclosure, the phrases "A, B, or C" and "A, B, and / or C" mean (A), (B), (C), (A and B), (A and C), (B and C), or (A, B, and C).
[0010] The description may use the phrases "in one embodiment" or "in an embodiment," each of which may refer to one or more of the same or different embodiments. Furthermore, the terms "comprising," "including," "having," and the like, are synonymous when used in connection with embodiments of the present disclosure.
[0011] The terms “coupled,” “electronically coupled,” “communicatively coupled,” “connected,” “electronically connected,” and “communicatively connected,” along with their derivatives, are used herein. The terms “coupled” and / or “connected” can mean that two or more elements are in direct physical or electrical contact with each other, can mean that two or more elements cooperate or interact with each other while in indirect contact with each other, and / or can mean that one or more other elements are coupled or connected between the elements that are said to be coupled to each other. The terms “directly coupled” and / or “directly connected” can mean that two or more elements are in direct contact with each other. The terms “electronically coupled” and / or “electronically connected” can mean that two or more elements may be in contact with each other by means of a circuit, including through one or more vias, traces, wires, wire bonds, or other interconnects, or through a wireless communication channel or link, or the like.
[0012] As used herein, the term "circuitry" refers to, may be part of, or may include any combination of integrated circuits (e.g., field programmable gate arrays (FPGAs), application specific integrated circuits (ASICs), etc.), discrete circuits, combinational logic circuits, systems on chips (SOCs), and systems in packages (SiPs) that provide the described functionality. In some embodiments, a circuitry may execute one or more software or firmware modules to provide the described functionality. In some embodiments, a circuitry may include logic that is at least partially operable in hardware.
[0013] Conventionally, in the RRC_CONNECTED state, a UE needs to perform RRM measurements to monitor signal quality from one or more cells on one or more inter-frequency layers. The UE can switch its one or more receivers to operate on one of the inter-frequency layers that it needs to monitor during one SSB burst. Then, the UE can switch its one or more receivers to operate on another of the inter-frequency layers during the next SSB burst. Thus, SSB measurements may be performed on the inter-frequency layer for each SSB burst. Such measurements may or may not be operated within a measurement gap. Thus, not all of the SSBs on different inter-frequency layers may be monitored in one SSB burst and / or during a measurement gap, which may affect the update rate of the inter-frequency measurements and / or the associated UE handover performance.
[0014] Embodiments described herein may include, for example, an apparatus, a method, and a storage medium for configuring and performing RRM measurements for monitoring neighboring cells based on an SSB timing group in the RRC_CONNECTED state. A receiver operation switching pattern may be determined by the UE to effectively measure SSBs within one SSB burst and / or at one or more inter-frequency layers within a measurement gap. Thus, the UE may operate more effectively when monitoring neighboring cells in the RRC_CONNECTED state.
[0015] 1 schematically illustrates an exemplary wireless network 100 (hereinafter "network 100") in accordance with various embodiments herein. Network 100 may include a UE 105 in wireless communication with an AN 110. UE 105 may be configured to connect to, e.g., be communicatively coupled to, AN 110. In this example, connection 112 is shown as an air interface for enabling the communicative coupling and may support cellular communication protocols such as 5G NR protocols operating at mmWave and sub-6 GHz, Global System for Mobile Communications (GSM) protocols, Code Division Multiple Access (CDMA) network protocols, Push-to-Talk (PTT) protocols, etc.
[0016] The UE 105 is illustrated as a smartphone (e.g., a handheld touchscreen mobile computing device capable of connecting to one or more cellular networks), but may include any mobile or non-mobile computing device, such as a personal digital assistant (PDA), a pager, a laptop computer, a desktop computer, a wireless handset, a customer premises equipment (CPE), a fixed wireless access (FWA) device, a vehicle-mounted UE, or any computing device that includes a wireless communication interface. In some embodiments, the UE 105 may include an Internet of Things (IoT) UE, which may include a network access layer designed for low-power IoT applications that utilize short-term UE connectivity. IoT UEs may utilize technologies such as narrowband IoT (NB-IoT), machine-to-machine (M2M), or MTC to exchange data with machine-type communication (MTC) servers or devices via public land mobile networks (PLMNs), proximity-based services (ProSe) or device-to-device (D2D) communications, sensor networks, or IoT networks. The M2M or MTC data exchange may be a machine-initiated exchange of data. An NB-IoT / MTC network describes interconnected NB-IoT / MTC UEs, which may include uniquely identifiable embedded computing devices (within the Internet infrastructure) with short-term connections. NB-IoT / MTC UEs may run background applications (e.g., keep-alive messages, status updates, location-related services, etc.).
[0017] The AN 110 can enable or terminate connections 112. The AN 110 may be referred to as a base station (BS), a Node B, an evolved Node B (eNB), a next generation eNB (ng-eNB), a next generation Node B (gNB or ng-gNB), an NG-RAN node, a cell, a serving cell, a neighboring cell, a primary cell (PCell), a secondary cell (SCell), a primary SCell (PSCell), etc., and may comprise an earth station (e.g., a terrestrial access point) or a satellite station that provides coverage within a geographic area.
[0018] The AN 110 may be the first point of contact for the UE 105. In some embodiments, the AN 110 may perform various logic functions, including, but not limited to, radio resource control (c), radio network controller (RNC) functions such as radio bearer management, uplink and downlink dynamic radio resource management and data packet scheduling, and mobility management.
[0019] In some embodiments, a downlink resource grid can be used for downlink transmissions from the AN 110 to the UE 105, while uplink transmissions can utilize similar techniques. The grid can be a time-frequency grid, also called a resource grid or time-frequency resource grid, which represents the physical resources of the downlink within each slot. Such a time-frequency plane representation is common in Orthogonal Frequency Division Multiplexing (OFDM) systems and makes radio resource allocation intuitive. Each column and row of the resource grid corresponds to one OFDM symbol and one OFDM subcarrier, respectively. The duration of the resource grid in the time domain corresponds to one slot in a radio frame. The smallest time-frequency unit of the resource grid is denoted as a resource element. Each resource grid contains a number of resource blocks, which describe the mapping of a specific physical channel to the resource elements. Each resource block contains a set of resource elements, which, in the frequency domain, can represent the smallest amount of resources that can currently be allocated. There are several different physical downlink channels conveyed using such resource blocks.
[0020] The Physical Downlink Shared Channel (PDSCH) can carry user data and higher layer signaling to the UE 105. The Physical Downlink Control Channel (PDCCH) can carry, among other things, information regarding the transport format and resource allocation for the PDSCH channel. It can also inform the UE 105 about the transport format, resource allocation, and Hybrid Automatic Repeat Request (HARQ) information for the uplink shared channel. Typically, downlink scheduling (allocation of control and shared channel resource blocks to UEs 105 in a cell) may be performed in the AN 110 based on channel quality information fed back from any of the UEs 105. Downlink resource allocation information may be transmitted on the PDCCH used (e.g., assigned) for the UE 105.
[0021] The PDCCH may convey control information using control channel elements (CCEs). Before being mapped to resource elements, PDCCH complex-valued symbols may first be organized into quadruplets and then shuffled using a subblock interleaver for rate matching. Each PDCCH may be transmitted using one or more of these CCEs, and each CCE may correspond to nine sets of four physical resource elements known as a resource element group (REG). Four quadrature phase shift keying (QPSK) symbols may be mapped to each REG. The PDCCH may be transmitted using one or more CCEs, depending on the size of the downlink control information (DCI) and the channel conditions.
[0022] Some embodiments may use a concept for resource allocation for control channel information that is an extension of the concept described above. For example, some embodiments may utilize an enhanced physical downlink control channel (ePDCCH) that uses PDSCH resources for control information transmission. The ePDCCH may be transmitted using one or more enhanced control channel elements (ECCEs). As above, each ECCE may correspond to nine sets of four physical resource elements known as enhanced resource element groups (EREGs). An ECCE may have other numbers of EREGs in some situations.
[0023] As shown in FIG. 1, the UE 105 may include millimeter wave communication circuitry grouped according to function. The circuitry illustrated here is for illustrative purposes, and the UE 105 may include other circuitry as shown in FIGS. 3A and 3B. The UE 105 may include protocol processing circuitry 115, which may perform one or more layer operations related to media access control (MAC), radio link control (RLC), packet data convergence protocol (PDCP), radio resource control (RRC), and non-access layer (NAS). The protocol processing circuitry 115 may include one or more processing cores (not shown) for executing instructions and one or more memory structures (not shown) for storing program and data information.
[0024] The UE 105 may further include digital baseband circuitry 125, which may implement physical layer (PHY) functions including one or more of HARQ functions, scrambling and / or descrambling, encoding and / or decoding, layer mapping and / or demapping, modulation symbol mapping, received symbol and / or bit metric determination, multi-antenna port precoding and / or decoding, which may include space-time, space-frequency, or spatial coding, reference signal generation and / or detection, preamble sequence generation and / or decoding, synchronization sequence generation and / or detection, control channel signal blind decoding, and other related functions.
[0025] The UE 105 may further include transmit circuitry 135, receive circuitry 145, radio frequency (RF) circuitry 155, and an RF front end (RFFE) 165 that may include or be connected to one or more antenna panels 175.
[0026] In some embodiments, the RF circuitry 155 may include multiple parallel RF chains or branches for one or more of the transmit or receive functions, each of which may be coupled to one antenna panel 175.
[0027] In some embodiments, the protocol processing circuitry 115 may include one or more instances of control circuitry (not shown) for providing control functions for the digital baseband circuitry 125 (or simply “baseband circuitry 125”), the transmit circuitry 135, the receive circuitry 145, the radio frequency circuitry 155, the RFFE 165, and one or more antenna panels 175.
[0028] UE reception may be established by or through one or more antenna panels 175, RFFE 165, RF circuitry 155, receive circuitry 145, digital baseband circuitry 125, and protocol processing circuitry 115. One or more antenna panels 175 may receive transmissions from AN 110 with receive beamformed signals received by multiple antennas / antenna elements of one or more antenna panels 175. Further details regarding the UE 105 architecture are shown in FIGS. 2, 3A / 3B, and 6. Transmissions from AN 110 may be transmit beamformed by antennas of AN 110. In some embodiments, baseband circuitry 125 may include both transmit circuitry 135 and receive circuitry 145. In other embodiments, baseband circuitry 125 may be implemented on separate chips or modules, e.g., one chip may include transmit circuitry 135 and another chip may include receive circuitry 145.
[0029] Like the UE 105, the AN 110 may include mm / submillimeter wave communications circuitry grouped according to function. The AN 110 may include protocol processing circuitry 120, digital baseband circuitry 130 (or simply “baseband circuitry 130”), transmit circuitry 140, receive circuitry 150, RF circuitry 160, RFFE 170, and one or more antenna panels 180.
[0030] Cell transmissions may be established by or through protocol processing circuitry 120, digital baseband circuitry 130, transmit circuitry 140, RF circuitry 160, RFFE 170, and one or more antenna panels 180. One or more antenna panels 180 may transmit signals by forming transmit beams. Figure 3 shows further details regarding RFFE 170 and antenna panels 180.
[0031] The AN 110 can generate and transmit a message including a measurement gap configuration according to various embodiments herein. The UE 105 can decode the message transmitted by the AN 100 to determine the starting point of the configured measurement gap according to various embodiments herein.
[0032] FIG. 2 illustrates example components of a device 200 according to some embodiments. In contrast to FIG. 1, FIG. 2 illustrates example components of a UE 105 or an AN 110 in terms of receive and / or transmit functions and may not include all of the components described in FIG. 1. In some embodiments, the device 200 may include, at least as shown, an application circuit 202, a baseband circuit 204, an RF circuit 206, an RFFE circuit 208, and multiple antennas 210 together. The baseband circuit 204 may be similar to, and substantially interchangeable with, the baseband circuit 125 of some embodiments. The multiple antennas 210 may constitute one or more antenna panels for beamforming. The illustrated components of the device 200 may be included in a UE or an AN. In some embodiments, the device 200 may include fewer elements (e.g., a cell may not utilize the application circuit 202 and may instead include a processor / controller for processing IP data received from an EPC). In some embodiments, device 200 may include additional elements, such as, for example, memory / storage, a display, a camera, sensors, or input / output (I / O) interfaces. In other embodiments, the components described below may be included in two or more devices (e.g., the above circuitry may be included separately in two or more devices for a Cloud RAN (C-RAN) implementation).
[0033] The application circuitry 202 may include one or more application processors. For example, the application circuitry 202 may include circuitry such as, but not limited to, one or more single-core or multi-core processors. The processor(s) may include any combination of general-purpose processors and special-purpose processors (e.g., graphics processors, application processors, etc.). The processor(s) may be coupled to or include memory / storage and may be configured to execute instructions stored in the memory / storage to enable various applications or operating systems to run on the device 200. In some embodiments, the processor of the application circuitry 202 may process IP data packets received from an EPC.
[0034] The baseband circuitry 204 may include circuitry such as, but not limited to, one or more single-core or multi-core processors. The baseband circuitry 204 may be similar to, and substantially interchangeable with, the baseband circuitry 125 and the baseband circuitry 130 of some embodiments. The baseband circuitry 204 may include one or more baseband processors or control logic for processing baseband signals received from the receive signal path of the RF circuitry 206 and generating baseband signals for the transmit signal path of the RF circuitry 206. The baseband circuitry 204 may interface with the application circuitry 202 for generating and processing the baseband signals and for controlling the operation of the RF circuitry 206. For example, in some embodiments, the baseband circuitry 204 may include a third-generation (3G) baseband processor 204A, a fourth-generation (4G) baseband processor 204B, a fifth-generation (5G) and / or NR baseband processor 204C, or other baseband processor(s) 204D for other existing, developing, or future generations (e.g., second generation (2G), sixth generation (6G), etc.). The baseband circuitry 204 (e.g., one or more of the baseband processors 204A-D) may process various radio control functions that enable communication with one or more wireless networks via the RF circuitry 206. In another embodiment, some or all of the functionality of the baseband processors 204A-D may be included in modules stored in memory 204G and executed via a central processing unit (CPU) 204E. Radio control functions may include, but are not limited to, signal modulation / demodulation, encoding / decoding, radio frequency shifting, etc. In some embodiments, the modulation / demodulation circuitry of the baseband circuitry 204 may include Fast Fourier Transform (FFT), precoding, or constellation mapping / demapping functionality. In some embodiments, the encoding / decoding circuitry of the baseband circuitry 204 may include convolutional, tail-biting convolutional, Turbo, Viterbi, or low-density parity-check (LDPC) encoder / decoder functionality.The implementation of the modulation / demodulation and encoder / decoder functions is not limited to these examples and may include other suitable functions in other embodiments.
[0035] In some embodiments, the baseband circuitry 204 may include one or more audio digital signal processors (DSP)(s) 204F. The audio DSP(s) 204F may include elements for compression / decompression and echo cancellation, and in other embodiments may include other suitable processing elements. The components of the baseband circuitry may in some embodiments be suitably combined within a single chip, a single chipset, or may be located on the same circuit board. In some embodiments, some or all of the components of the baseband circuitry 204 and the application circuitry 202 may be implemented together, for example, on a SOC.
[0036] In some embodiments, the baseband circuitry 204 may provide communications compatible with one or more wireless technologies. For example, in some embodiments, the baseband circuitry 204 may support communications with an Evolved Universal Terrestrial Radio Access Network (E-UTRAN) or other wireless metropolitan area networks (WMANs), wireless local area networks (WLANs), or wireless personal area networks (WPANs). Embodiments in which the baseband circuitry 204 is configured to support wireless communications of two or more wireless protocols may be referred to as multimode baseband circuitry.
[0037] The RF circuitry 206 can enable communication with a wireless network using modulated electromagnetic radiation through a non-solid medium. In various embodiments, the RF circuitry 206 can include one or more switches, filters, amplifiers, etc. to facilitate communication with the wireless network. The RF circuitry 206 can include a receiver circuit 206A, which can include circuitry for downconverting RF signals received from the RFFE circuitry 208 and providing a baseband signal to the baseband circuitry 204. The RF circuitry 206 can also include a transmitter circuit 206B, which can include circuitry for upconverting baseband signals provided by the baseband circuitry 204 and providing an RF output signal to the RFFE circuitry 208 for transmission.
[0038] In some embodiments, the output baseband signal and the input baseband signal may be analog baseband signals, although the scope of the embodiments is not limited in this respect. In some alternative embodiments, the output baseband signal and the input baseband signal may be digital baseband signals. In these alternative embodiments, the RF circuitry 206 may include analog-to-digital converter (ADC) and digital-to-analog converter (DAC) circuitry, and the baseband circuitry 204 may include a digital baseband interface for communicating with the RF circuitry 206.
[0039] In some dual-mode embodiments, separate radio integrated circuit (IC) circuits may be provided for processing signals in each spectrum, although the scope of the embodiments is not limited in this respect.
[0040] The RFFE circuitry 208 may include a receive signal path, which may include circuitry configured to operate on RF beams received from one or more antennas 210. The RF beams may be transmit beams formed and transmitted by the AN 110 while operating in the millimeter-wave or submillimeter-wave frequency range. The RFFE circuitry 208, coupled to one or more antennas 210, may receive the transmit beams and forward them to the RF circuitry 206 for further processing. The RFFE circuitry 208 may also include a transmit signal path, which may include circuitry configured to amplify signals for transmission provided by the RF circuitry 206 for transmission by one or more of the antennas 210, with or without beamforming. In various embodiments, amplification through the transmit or receive signal path may occur solely in the RF circuitry 206, solely in the RFFE circuitry 208, or in both the RF circuitry 206 and the RFFE circuitry 208.
[0041] In some embodiments, the RFFE circuitry 208 may include a TX / RX switch for switching between transmit and receive mode operation. The RFFE circuitry 208 may include a receive signal path and a transmit signal path. The receive signal path of the RFFE circuitry 208 may include a low noise amplifier (LNA) for amplifying a received RF beam and providing an amplified received RF signal as an output (e.g., to the RF circuitry 206). The transmit signal path of the RFFE circuitry 208 may include a power amplifier (PA) for amplifying an input RF signal (e.g., provided by the RF circuitry 206) and one or more filters for generating an RF signal for beamforming and subsequent transmission (e.g., by one or more of the one or more antennas 210).
[0042] The processors of the application circuitry 202 and the baseband circuitry 204 can be used to execute elements of one or more instances of a protocol stack. For example, the processor of the baseband circuitry 204 can be used alone or in combination to execute Layer 3, Layer 2, or Layer 1 functions, while the processor of the application circuitry 202 can utilize data (e.g., packet data) received from these layers and can also execute Layer 4 functions (e.g., Transmission Control Protocol (TCP) and User Datagram Protocol (UDP) layers). As referred to herein, Layer 3 may include a Radio Resource Control (RRC) layer, which is described in more detail below. As referred to herein, Layer 2 may include a Media Access Control (MAC) layer, a Radio Link Control (RLC) layer, and a Packet Data Convergence Protocol (PDCP) layer, which are described in more detail below. As referred to herein, Layer 1 may include a physical (PHY) layer of the UE / AN, which is described in more detail below.
[0043] 3A illustrates one embodiment of a radio frequency front end 300 incorporating a mmWave RFFE 305 and one or more sub-6 GHz radio frequency integrated circuits (RFICs) 310. The mmWave RFFE 305 may be similar to and substantially interchangeable with the RFFE 165, RFFE 170, and / or RFFE circuitry 208 of some embodiments. The mmWave RFFE 305 may be used in the UE 105 while operating in FR2 or mmWave. The RFIC 310 may be used in the UE 105 while operating in the FR1, sub-6 GHz, or LTE bands. In this embodiment, the one or more RFICs 310 may be physically separate from the mmWave RFFE 305. The RFIC 310 may include connections to one or more antennas 320. The RFFE 305 may be coupled to multiple antennas 315, which may comprise one or more antenna panels.
[0044] 3B illustrates an alternative embodiment of RFFE 325. In this aspect, both millimeter-wave and sub-6 GHz radio functionality may be implemented in the same physical RFFE 330. RFFE 330 may incorporate both a millimeter-wave antenna 335 and a sub-6 GHz antenna 340. RFFE 330 may be similar to and substantially interchangeable with RFFE 165, RFFE 170, and / or RFFE circuitry 208 of some embodiments.
[0045] 3A and 3B show various RFFE architecture embodiments for either the UE 105 or the AN 110.
[0046] 4A illustrates an example of RRM measurements based on SSB bursts in the RRC_CONNECTED state, according to various embodiments. The bottom row represents an intra-frequency layer f0 400 of the UE 105's serving cell. The middle row represents an inter-frequency layer f1 405 of the serving cell, and the top row represents another inter-frequency layer f2 410 of the serving cell. In this exemplary illustration, all of the neighboring cells may have the same burst pattern, and they may be time-synchronized with each other. Note that various embodiments disclosed herein may apply to SSBs that are not time-synchronized and / or to different SSB burst patterns.
[0047] 4A , there may be four SSBs (SSB1_f1, SSB2_f1, SSB3_f1, and SSB4_f1) in the first inter-frequency layer f1 405 and four SSBs (SSB1_f2, SSB2_f2, SSB3_f2, and SSB4_f2) in the second inter-frequency layer f2 410. In the RRC_CONNECTED state, the UE 105 may need to monitor at least two inter-frequency layers, which means that the UE 105 switches its receiver(s) or RF receiver(s) to operate on those frequencies, receive transmitted SSBs, and / or perform RRM measurements. Because the RRM measurements are based on SSB bursts, the UE 105 can switch its receiver to operate on inter-frequency layer f2 410 for the duration of the first SSB burst 1 415A in the first measurement gap 418A and to operate on inter-frequency layer f1 405 for the duration of the second SSB burst 2 415B in the second measurement gap 418B. These two receiver-on periods are shown as Rx_ON_f1 and RX-ON_f2 in FIG. 4A. Thus, SSB1_f2, SSB2_f2, SSB3_f2, and SSB4_f2 corresponding to SSB burst 1 415A, and SSB1_f1, SSB2_f1, SSB3_f1, and SSB4_f1 corresponding to SSB burst 2 415B, can be measured by the UE 105 in the two measurement gaps indicated by the gray SSB blocks in FIG. 4A. Additionally, during non-measurement gap times, the UE 105 may switch the receiver back to intra-frequency layer f0 400 for downlink data reception, denoted as RX_ON_f0 420. Note that intra-frequency layer refers to a frequency associated with the same frequency as the frequency used by the UE's serving cell, and inter-frequency layer refers to a frequency associated with a different frequency than the frequency used by the UE's serving cell.
[0048] RRM measurements may include, but are not limited to, measurements of reference signal received power (RSRP), reference signal received quality (RSRQ), signal-to-noise-and-interference ratio (SINR), and received signal strength indicator (RSSI) for SSBs, and / or channel state information reference signals (CSI_RS) in NR. Depending on the subcarrier spacing (SCS) of the reference signal, the SSB may include one or up to 64 SSBs. SSB bursts may be transmitted periodically with a pre-set repetition period (RP), which may be between 5 milliseconds (ms) and 160 ms. In NR, an SSB burst sequence indicating SSB burst transmissions may be provided to the UE 105 by the AN 110 via a neighboring cell via a system information block type 1 (SIB1).
[0049] In some embodiments, RRM measurements performed based on SSB bursts where the UE 105 cannot switch to operate on one or more inter-frequency layers during a scheduled measurement gap may be referred to herein as SSB scan measurements. In such scan measurements, if the UE 105 needs to monitor SSBs on more than one inter-frequency layer, the UE may monitor each inter-frequency layer within more than one measurement gap.
[0050] In the NR RRC_CONNECTED state, the UE may need to monitor and measure neighboring cells on two or more inter-frequency layers. This is used to prepare for inter-frequency handover in high-mobility situations and reduces or minimizes call drops and / or other similar issues. RRM measurements may be performed by the AN 110 by suspending intra-frequency downlink PDSCH and / or PDCCH reception based on one or more pre-configured measurement gap patterns. The UE 105 may switch its receiver to operate on inter-frequency layers during measurement gaps and perform RRM measurements accordingly. As mentioned above, RRM measurements based on SSB bursts can measure only one inter-frequency layer during one measurement gap. In contrast, RRM measurements based on SSB timing groups can measure two or more inter-frequency layers during one measurement gap to improve the measurement update rate for each measurement gap.
[0051] 4B illustrates an example of RRM measurements based on SSB timing groups in the RRC_CONNECTED state, according to various embodiments. Similar to FIG. 4A, the last row represents intra-frequency layer f0 400. The middle row represents inter-frequency layer f1 405, and the top row represents inter-frequency layer f2 410. In this illustrative example, all of the neighboring cells may have the same burst pattern, which may be time-synchronized with one another. Note that various embodiments disclosed herein may apply to SSBs that are not time-synchronized and / or different SSB burst patterns.
[0052] The neighbor cell's transmission may include a first SSB burst 1 435A and a second SSB burst 2 435B, as well as many more similar SSB bursts (not shown). Within each SSB burst, there may be four SSB groups (SSB group 1, SSB group 2, SSB group 3, and SSB group 4) in both inter-frequency layer f1 405 and inter-frequency layer f2 410. The SSB groups may be referred to as SSB timing groups, where all SSBs are grouped into one SSB group if their time scales are aligned when they arrive at the UE 105. Note that the alignment of the SSBs may not be exact and may allow for some tolerance. For example, there may be one or more SSBs that arrive at the UE receiver at or around time t0. All of these SSBs may be grouped as SSB group 1. These grouped SSBs may all have the same or different carrier frequencies and / or may be on different inter-frequency layers. Therefore, these SSBs may be in inter-frequency layer f1 405 and inter-frequency layer f2 410, or in any other inter-frequency layer(s) not shown in FIG. 4B.
[0053] In an embodiment, the UE 105 may measure SSB(s) from neighboring cells in the RRC_CONNECTED state within SSB bursts. Accordingly, the UE 105 may determine one or more SSB time groups containing SSBs from neighboring cells operating on one or more inter-frequency layers. Such determination may be based on the power levels and / or other signal quality indicators of the SSBs according to RRM measurements within one or more SSB bursts and / or measurement gaps, respectively. Further details regarding this point are provided below with respect to FIG. 5. Accordingly, a receiver operation switching pattern may be determined based on the SSBs that need to be measured (e.g., one or more preselected SSBs). In the example shown in FIG. 4B, SSB group 1 and SSB group 3 may have preselected and time-synchronized SSBs on inter-frequency layer f1, SSB group 2 may have preselected and time-synchronized SSBs on inter-frequency layer f1 and inter-frequency layer f2, and SSB group 4 may have preselected and time-synchronized SSBs on inter-frequency layer f2. Accordingly, a receiver operation switching pattern 440 can be determined. In accordance with the receiver operation switching pattern 440, the UE 105 can switch its receiver(s) to receive and measure SSB group 1 and SSB group 3 on inter-frequency layer f1 during the first SSB burst 1 435A and the second SSB burst 2 435B and / or the measurement gap 418A / 418B. The UE 105 can switch its receiver(s) to receive and measure SSB group 2 in a time-multiplexed manner on inter-frequency layer f1 during the first SSB burst 1 435A and / or the measurement gap 438A, and on inter-frequency layer f2 during the second SSB burst 2 435B and / or the measurement gap 438A. The UE 105 can switch its receiver(s) to receive and measure SSB group 4 on inter-frequency layer f1 during the first and second SSB bursts 435A / 435B and / or measurement gaps 438A / 438B.
[0054] The UE 105 can switch its receiver(s) back to operating on intra-frequency layer f0 when no measurement gaps are scheduled, as indicated by "RX_ON_f0" in FIG. 4B. In FIG. 4B, the measured SSB timing groups are colored gray. In the example of FIG. 4B, two inter-frequency layers (f1 and f2) are both measured within one measurement gap. Because the UE 105 monitors only two inter-frequency layers, the measurement update rate for each of SSB timing groups 1, 3, and 4 is 1 per measurement gap, and the measurement update rate for SSB timing group 2 is 1 per two measurement gaps.
[0055] In an embodiment, the UE 105 may determine one or more SSB timing groups having corresponding inter-frequency layers to measure based on scan measurements of SSBs having one or more measurement gaps according to burst-based measurements as illustrated with respect to FIG. 4A. Such scan measurements may be performed in one or more measurement gaps. For example, if the UE 105 is to monitor three inter-frequency layers for a neighboring cell, the UE 105 may need to perform scan measurements in three measurement gaps for each of the three inter-frequency layers. The UE 105 may then determine one or more SSB timing groups based on the determined one or more SSBs, but the SSBs need to be measured in the RRC_CONNECTED state.
[0056] In an embodiment, the UE 105 may determine a receiver operation switching pattern based on an SSB timing group pattern instead of an SSB burst pattern after detection / determination to measure one or more SSBs or SSB timing groups in a particular frequency layer.
[0057] In an embodiment, if an SSB timing group has time-colliding SSBs from different inter-frequency layers, e.g., SSB group 2 in Figure 4B, the UE 105 may decide to measure the SSBs on different frequency layers in a time-multiplexed manner. For example, Figure 4B shows that the UE receiver may be switched to operate on inter-frequency layer f1 in the first SSB burst 1 435A and / or first measurement gap 438A to measure SSB group 2 on inter-frequency layer f1, and switched to operate on inter-frequency layer f2 to measure SSB group 2 on inter-frequency layer f2 in the second SSB burst 1 435B and / or second measurement gap 438B.
[0058] In an embodiment, if an SSB group includes SSBs that need to be monitored in only one inter-frequency layer, e.g., SSB groups 1, 3, or 4 in Figure 4B, the UE 105 may decide to measure the SSB group in that inter-frequency layer in each scheduled measurement gap, such that the measurement update rate may be 1 per measurement gap. The measurement update rate refers to the rate at which RRM measurements related to neighbor cell monitoring can be performed for a particular SSB in a measurement gap.
[0059] In an embodiment, the UE 105 may decide to switch the receiver to operate on an intra-frequency layer for data transmission and / or reception if no measurement gaps are scheduled.
[0060] 4A and 4B, it can be concluded that the UE 105 can monitor / measure SSBs on different inter-frequency layers within one SSB burst and / or measurement gap according to the RRM measurement based on the SSB timing group. Furthermore, each measurement update rate can be increased accordingly. For example, SSBs 1 and 3 on inter-frequency layer f1 and SSB 4 on inter-frequency layer f2 can increase their respective measurement update rates by 50% to 100%.
[0061] 5 illustrates an example operational flow 500 for facilitating the process of neighbor cell monitoring in the RRC_CONNECTED state, according to various embodiments illustrated in connection with FIGS. 4A and 4B. The operational flow 500 may include two modes: an SSB scan mode 505 and an SSB tracking mode 510. In the SSB scan mode 505, the UE 105 may perform one or more SSB scan measurements, which may be the same as or substantially similar to the RRM measurements based on SSB bursts described with reference to FIG. 4A. In the SSB tracking mode 510, the UE 105 may perform one or more SSB tracking measurements, which may be the same as or substantially similar to the RRM measurements based on SSB timing groups described with reference to FIG. 4B.
[0062] In an embodiment, one or more SSBs may be selected based on one or more SSB scan measurements in SSB scan mode 505 within one or more measurement gaps. If the quality metrics of these SSBs are greater than a scan threshold, the UE 105 may switch to SSB tracking mode 510. The quality metrics may include, but are not limited to, reference signal received power (RSRP), reference signal received quality (RSRQ), signal-to-noise-and-interference ratio (SINR), and received signal strength indicator (RSSI) measurements of the SSBs. In some embodiments, the UE 105 may select the strongest one or more SSBs based on the scan measurements. The UE 105 may select one or more SSBs based on other criteria related to the quality metrics of the SSBs. The quality metrics may take into account one or more of these measurements for the SSBs. A scan threshold, which may include a value or set of values, may be configured according to AN 110 or may be predetermined by the UE 105. The UE 105 may include one or more selected SSBs in one or more SSB timing groups based on the timing information of the selected SSBs.
[0063] In an embodiment, the UE 105 may perform SSB tracking measurements for selected SSBs of the corresponding SSB timing group in SSB tracking mode 510 within each scheduled measurement gap. If the corresponding quality metric of the measured SSB is less than the tracking threshold, which corresponds to a measurement result and may include one or a set of values used in this regard (e.g., RSRP, RSRQ, SINR, RSSI, or a combination thereof), the UE 105 may be switched back to SSB scanning mode 505. It should be noted that various algorithms and / or weighting values may be used to form a decision approach in this regard.
[0064] In an embodiment, a scanning threshold may be used to ensure that the selected SSB should be above a certain quality that is monitored and / or measured in the RRC_CONNECTED state. A tracking threshold may ensure that an SSB should be reselected if the quality of the selected SSB deteriorates due to various reasons within the network, such as UE mobility, interference, and other similar causes.
[0065] Figure 6A illustrates an operational flow / algorithm structure 600 for facilitating the process of receiver operation switching pattern determination and implementation in an RRC_CONNECTED state by a UE 105, according to various embodiments illustrated in connection with Figures 4A / 4B and 5. The operational flow / algorithm structure 600 may be executed by the UE 105 or circuitry thereof.
[0066] The operational flow / algorithm structure 600 may include, at 610, determining a set of SSB timing groups in the SSB burst based on one or more selected SSBs. The one or more selected SSBs may be determined based on one or more SSB scan measurements according to various embodiments described with respect to FIG. 4A. Each SSB timing group in the set of SSB timing groups may include one or more SSBs that are correlated in time. For example, the SSBs in an SSB timing group may have the same or sufficiently close transmission times at the AN 110 and / or the same or sufficiently close reception times at the UE 105. The co-timed SSBs may be determined based on one or more decoded SSB burst sequences combined with reception of the SSBs by the UE 105.
[0067] In an embodiment, the SSB scan measurement may be performed for each frequency layer or for each neighbor cell, and may be performed based on SSB bursts according to one or more decoded neighbor cell SSB burst sequences.
[0068] Additionally or alternatively, the UE 105 may determine the SSB timing group based on one or more SSB burst arrangements for one or more neighboring cells. The UE 105 may receive and / or acquire one or more neighboring cell SSB burst arrangements via System Information Block Type 1 (SIB1) or other system signaling. Each neighboring cell SSB burst arrangement may indicate one or more SSB bursts transmitted with the neighboring cell on one or more inter-frequency layers.
[0069] The operational flow / algorithm structure 600 may include, at 620, generating a receiver operation switching pattern based on the set of SSB timing groups, indicating whether to switch the UE's receiver to operate on one or more inter-frequency layers associated with the UE's serving cell for each SSB timing group of the set of SSB timing groups in the RRC_CONNECTED state. The receiver operation switching pattern can be used to configure the UE 105 to switch on and off one or more receivers of the UE 105. The one or more receivers may include one or more RF sections and one or more baseband sections, with reference to the description of FIG. 1 and / or FIG. 2. The one or more receivers may further include one or more intermediate frequency (IF) sections for receivers operating in the FR2 range.
[0070] The operational flow / algorithm structure 600 may include, at 630, switching the receiver to operate on a respective inter-frequency layer of one or more inter-frequency layers for a respective SSB timing group for each of the SSB measurements in the RRC_CONNECTED state based on the receiver operation switching pattern. The SSB measurements may be referred to as SSB tracking measurements, as described with respect to FIG. 5.
[0071] In an embodiment, to determine the set of SSB timing groups, the UE 105 may perform one or more SSB scan measurements on one or more inter-frequency layers for one or more SSB bursts, select one or more SSBs to be measured on each of the one or more inter-frequency layers for neighbor cell monitoring in the RRC_CONNECTED state, and determine one or more SSB timing groups based on the selected one or more SSBs and their corresponding timing information.
[0072] 6B illustrates an operational flow / algorithm structure 605 for facilitating the process of receiver operation switching pattern determination and implementation in the RRC_CONNECTED state by the AN 110, according to various embodiments illustrated in connection with FIGS. 4A and 4B. The AN 110 may be an eNB in an NR-associated network operating in an EN-DC mode, an NR CA mode, an NR-NR DC mode, or another NR standalone mode. The operational flow / algorithm structure 605 may be executed by the AN 110 or circuitry thereof.
[0073] The operational flow / algorithm structure 605 may include generating 615 one or more SSBs for one or more neighboring cells based on one or more SSB burst arrangements. The one or more SSBs may operate on one or more inter-frequency layers associated with the UE's serving cell. The SSBs for different neighboring cells may correspond to the same or different SSB burst patterns.
[0074] The operational flow / algorithm structure 605 may further include transmitting one or more SSBs at 625. The one or more SSBs may be transmitted for neighbor cell monitoring purposes and / or other similar purposes.
[0075] In an embodiment, the AN 110 may further transmit one or more SSB burst arrangements to the UE for one or more neighboring cells. The one or more SSB burst arrangements may indicate transmission of one or more SSBs corresponding to one or more neighboring cells.
[0076] FIG. 7 illustrates an exemplary interface of a baseband circuit according to some embodiments. As discussed above, the baseband circuit 204 of FIG. 2 may include processors 204A-204E and memory 204G utilized by the processors. The processors 204A-204E of the UE 105 may execute part or all of the operational flow / algorithm structure 600 according to various embodiments with respect to FIGS. 4A / 4B and 5. The processors 204A-204E of the AN 110 may execute part or all of the operational flow / algorithm structure 605 according to various embodiments with respect to FIGS. 4A / 4B and 5. Each of the processors 204A-204E may include a memory interface 704A-704E, respectively, for transmitting / receiving data to / from the memory 204G. The processors 204A-204E of the UE 105 may be used to process SFTD measurements. The processors 204A-204E of the AN 110 may be used to generate an SFTD measurement configuration.
[0077] The baseband circuit 204 may further include one or more interfaces for communicatively coupling to other circuits / devices, such as a memory interface 712 (e.g., an interface for sending / receiving data to / from memory external to the baseband circuit 204), an application circuit interface 714 (e.g., an interface for sending / receiving data to / from the application circuit 202 of FIG. 2), an RF circuit interface 716 (e.g., an interface for sending / receiving data to / from the RF circuit 206 of FIG. 2), a wireless hardware connection interface 718 (e.g., an interface for sending / receiving data to / from near field communication (NFC) components, Bluetooth® components (e.g., Bluetooth® Low Energy), Wi-Fi® components, and other communication components), and a power management interface 720 (e.g., an interface for sending / receiving power or control signals).
[0078] 8 is a block diagram illustrating components capable of reading instructions from a machine-readable or computer-readable medium (e.g., a non-transitory machine-readable storage medium) and performing any one or more of the methodologies discussed herein, according to some demonstrative embodiments. Specifically, FIG. 8 shows a diagrammatic representation of hardware resources 800 including one or more processors (or processor cores) 810, one or more memory / storage devices 820, and one or more communication resources 830, each of which may be communicatively coupled via a bus 840. In embodiments in which node virtualization (e.g., network function virtualization (NFV)) is utilized, a hypervisor 802 may execute to provide an execution environment for one or more network slices / sub-slices to utilize the hardware resources 800.
[0079] Processor 810 (e.g., a central processing unit (CPU), a reduced instruction set computing (RISC) processor, a complex instruction set computing (CISC) processor, a graphics processing unit (GPU), a digital signal processor (DSP) such as a baseband processor, an application specific integrated circuit (ASIC), a radio frequency integrated circuit (RFIC), another processor, or any suitable combination thereof) may include, for example, processor 812 and processor 814.
[0080] The memory / storage device 820 may include main memory, disk storage, or any suitable combination thereof. The memory / storage device 820 may include any type of volatile or non-volatile memory, such as, but not limited to, dynamic random access memory (DRAM), static random access memory (SRAM), erasable programmable read-only memory (EPROM), electrically erasable programmable read-only memory (EEPROM), flash memory, solid-state storage, etc.
[0081] Communications resources 830 may include interconnect or network interface components for communicating with one or more peripherals 804 or one or more databases 806 over network 808. For example, communications resources 830 may include wired communications components (e.g., for coupling via Universal Serial Bus (USB)), cellular communications components, NFC components, Bluetooth® components (e.g., Bluetooth® Low Energy), Wi-Fi® components, and other communications components.
[0082] The instructions 850 may include software, programs, applications, applets, apps, or other executable code for causing at least one of the processors 810 to perform any one or more of the methodologies discussed herein, e.g., operational flows 600 and 605. For example, in an embodiment in which the hardware resource 800 is implemented within the UE 105, the instructions 850 may cause the UE to execute part or all of the operational flow / algorithm structure 600. In another embodiment, the hardware resource 800 may be implemented within the AN 110. The instructions 850 may cause the AN 110 to execute part or all of the operational flow / algorithm structure 605. The instructions 850 may reside, fully or partially, within at least one of the processor 810 (e.g., in the processor's cache memory), the memory / storage device 820, or any suitable combination thereof. Furthermore, any portion of the instructions 850 may be transferred to the hardware resource 800 from any combination of the peripherals 804 or the database 806. Thus, the memory of processor 810, memory / storage 820, peripherals 804, and database 806 are examples of computer-readable and machine-readable media.
[0083] Some non-limiting examples are as follows: The following examples relate to further embodiments, and the details in the examples may be used anywhere in one or more of the preceding embodiments. Any of the following examples can be combined with any other example or any embodiment discussed herein.
[0084] Example 1 may include a method including: determining a set of SSB timing groups in an SSB burst based on one or more selected synchronization signal blocks (SSBs); generating a receiver operation switching pattern indicating whether to switch a receiver of a UE to operate in one or more inter-frequency layers associated with the UE's serving cell for each SSB timing group of the set of SSB timing groups in a radio resource control_connected (RRC_CONNECTED) state based on the set of SSB timing groups; and switching the receiver to operate in each inter-frequency layer of the one or more inter-frequency layers for each SSB timing group for each radio resource management (RRM) measurement in the RRC_CONNECTED state based on the receiver operation switching pattern.
[0085] Example 2 may include the method of example 1 and / or any other example herein, wherein one or more inter-frequency layers are monitored and / or measured by RRM measurements by a user equipment (UE).
[0086] Example 3 may include the method of Examples 1 to 2 and / or any other example herein, wherein the one or more inter-frequency layers refer to one or more carrier frequencies different from the carrier frequency used between the UE and the UE's serving cell.
[0087] Example 4 may include the method of examples 1-2 and / or any other example herein, wherein the RRM measurement is an SSB scanning measurement or an SSB tracking measurement.
[0088] Example 5 may include the method of Examples 1 to 4 and / or any other example herein, wherein determining the set of SSB timing groups includes, upon receiving one or more SSB burst sequences, performing SSB scan measurements on one or more frequency layers for the one or more SSB bursts; selecting one or more SSBs to be measured on each of the one or more frequency layers for neighbor cell monitoring in the RRC_CONNECTED state based on the SSB scan measurements; and determining one or more SSB timing groups based on the selected one or more SSBs and their corresponding timing information.
[0089] Example 6 may include the method of Example 5 and / or any other example herein, wherein selecting one or more SSBs includes determining, based on the SSB scan measurements, that individual quality metrics of the one or more SSBs are greater than a scan threshold, and selecting the one or more SSBs.
[0090] Example 7 may include the method of Example 6 and / or any other example herein, wherein each quality metric is a measurement result based on at least one of a Reference Signal Received Power (RSRP), a Reference Signal Received Quality (RSRQ), a Signal-to-Noise-Interference Ratio (SINR), and a Received Signal Strength Indicator (RSSI) measurement result of the SSB scan measurement.
[0091] Example 8 may include the method of Example 6 and / or any other example herein, and may further include performing, based on a receiver operation switching pattern, one or more SSB tracking measurements for each inter-frequency layer of one or more frequency layers for each SSB timing group for each radio resource management (RRM) measurement in the RRC_CONNECTED state based on the receiver operation switching pattern.
[0092] Example 9 may include the method of Example 8 and / or any other example herein, wherein the set of SSB groups is a first set of SSB groups and the SSB scan measurement is a first SSB scan measurement in one or more inter-frequency layers for a first set of one or more SSB bursts.
[0093] Example 10 may include the method of Example 9 and / or any other example herein, and further includes determining, based on performing one or more SSB tracking measurements, that at least one quality metric of the individual quality metrics of the one or more measured SSBs is lower than a tracking threshold, and performing a second SSB scan measurement at one or more inter-frequency layers for a second set of one or more SSB bursts.
[0094] Example 11 may include the method of Examples 1 to 10 and / or any other example herein, wherein the receiver operation switching pattern indicates whether to switch the receiver to operate on one inter-frequency layer of the one or more inter-frequency layers for each SSB timing group of the set of SSB timing groups during one or more SSB bursts corresponding to a respective measurement gap.
[0095] Example 12 may include the method of Examples 1 to 10 and / or any other example herein, wherein the receiver operation switching pattern indicates, for an SSB timing group of the set of SSB timing groups, switching the receiver to operate on one inter-frequency layer of the one or more inter-frequency layers when the SSB timing group includes only one selected SSB of the one or more selected SSBs.
[0096] Example 13 may include the method of Example 12 and / or any other example herein, wherein the receiver operation switching pattern indicates switching the receiver to operate between one frequency until a determination is made that an individual quality metric of one or more measured SSBs is below a tracking threshold.
[0097] Example 14 may include the method of Examples 1 to 10 and / or any other example herein, wherein the receiver operation switching pattern indicates, for an SSB timing group of the set of SSB timing groups, switching the receiver to operate on two or more inter-frequency layers in a time multiplexed manner when the one SSB timing group includes two or more selected SSBs of the two or more inter-frequency layers.
[0098] Example 15 may include the method of Examples 1 to 10 and / or any other example herein, wherein the receiver operation switching pattern indicates switching the receiver to operate on an intra-frequency layer associated with the serving cell if the SSB timing group is not measured.
[0099] Example 16 may include the method of Examples 1 to 10 and / or any other example herein, further including, upon receiving the one or more SSB burst sequences, decoding the one or more SSB burst sequences in relation to monitoring neighbor cell SSBs in the RRC-CONNECTED state.
[0100] Example 17 may include the method of Example 16 and / or any other example herein, further including receiving one or more SSB burst sequences, wherein the one or more SSB burst sequences relate to monitoring neighbor cell SSBs.
[0101] Example 18 includes a method including: upon receiving one or more SSB burst sequences, performing SSB scan measurements on multiple inter-frequency layers for the one or more SSB bursts; determining a set of SSB timing groups for the one or more incoming SSB bursts based on the SSB scan measurements; generating a receiver operation switching pattern based on the set of SSB timing groups, the receiver operation switching pattern indicating whether to switch the UE's receiver to operate on multiple inter-frequency layers for each SSB timing group of the set of SSB timing groups for the one or more incoming SSB bursts; and switching the receiver to operate on each inter-frequency layer of the multiple inter-frequency layers for one or more SSB tracking measurements for the one or more incoming SSB bursts in a radio resource control_connected (RRC_CONNECTED) state based on the receiver operation switching pattern.
[0102] Example 19 may include the method of Example 18 and / or any other example herein, wherein determining the set of SSB timing groups includes selecting one or more SSBs to be measured on each inter-frequency layer of multiple inter-frequency layers for neighbor cell monitoring in the RRC_CONNECTED state based on SSB scan measurements, and determining one or more SSB timing groups based on the selected one or more SSBs and their corresponding timing information.
[0103] Example 20 may include the method of Example 18 and / or any other example herein, and further includes performing one or more SSB tracking measurements for each SSB timing group on each inter-frequency layer of the plurality of inter-frequency layers based on the receiver operation switching pattern.
[0104] Example 21 may include the method of Example 20 and / or any other example herein, and further includes determining, based on the one or more SSB tracking measurements, that at least one quality metric of the individual quality metrics of the one or more SSBs being the measured one or more SSBs is lower than a tracking threshold.
[0105] Example 22 may include the method of Examples 18 to 20 and / or any other example herein, wherein the SSB scan measurement is a first SSB scan measurement, and the method further includes determining to perform a second SSB scan measurement on one or more incoming SSB bursts.
[0106] Example 23 may include the method of Examples 1 to 22 and / or any other example herein, wherein the method is performed by a UE or a part thereof.
[0107] Example 24 may include a method including generating one or more synchronization signal blocks (SSBs) for one or more neighboring cells based on one or more SSB burst arrangements, and transmitting the one or more SSBs.
[0108] Example 25 may include the method of Example 24 and / or any other example herein, wherein transmitting one or more SSBs is transmitting one or more SSBs on one or more inter-frequency layers.
[0109] Example 26 may include the method of Example 25 and / or some other examples herein, wherein the one or more inter-frequency layers are one or more inter-frequency layers related to a serving cell of a user equipment (UE).
[0110] Example 27 may include the method of Examples 24 to 26 and / or any other example herein, further including generating one or more SSB burst sequences and transmitting the one or more SSB burst sequences.
[0111] Example 28 may include the method of example 27 and / or any other example herein, wherein the one or more SSB burst sequences correspond to one or more neighboring cells.
[0112] Example 29 can include the method of Examples 24 to 28 and / or any other example herein, where the method is performed by an AN or a portion thereof.
[0113] Example 30 can include an apparatus including means for performing one or more elements of a method described or related to any of Examples 1 to 29, or any other method or process described herein.
[0114] Example 31 can include one or more non-transitory computer-readable media comprising instructions that, when executed by one or more processors of the electronic device, cause the electronic device to perform one or more elements of a method described in or related to any of Examples 1 to 29, or any other method or process described herein.
[0115] Example 32 can include an apparatus including logic, modules, and / or circuitry for performing one or more elements of a method described or related to any of Examples 1 to 29, or any other method or process described herein.
[0116] Example 33 can include any method, technique, or process described in or related to any of Examples 1-29, or any portion or component thereof.
[0117] Example 34 may include an apparatus including one or more processors and one or more computer-readable media including instructions that, when executed by the one or more processors, cause the one or more processors to perform a method, technique, or process, or portion thereof, described in or related to any of Examples 1 to 29.
[0118] The present disclosure has been described with reference to flowchart diagrams or block diagrams of methods, apparatus (systems), and computer program products according to embodiments of the present disclosure. It will be understood that each block of the flowchart diagrams or block diagrams, and combinations of blocks in the flowchart diagrams or block diagrams, can be implemented by computer program instructions. These computer program instructions can be provided to a processor of a general-purpose computer, a special-purpose computer, or other programmable data processing apparatus to create a machine, such that the instructions, executed by the processor of the computer or other programmable data processing apparatus, create means for performing the function(s) specified in the block(s) of the flowchart or block diagram.
[0119] These computer program instructions may also be stored on a computer-readable medium, and these computer program instructions may instruct a computer or other programmable data processing apparatus to function in a specific manner, such that the instructions stored on the computer-readable medium create an article of manufacture that includes instruction means that perform the function(s) / act(s) specified in the flowchart or block diagram block(s).
[0120] Computer program instructions may also be loaded onto a computer or other programmable data processing device to cause the computer or other programmable device to perform a series of operational steps to create a computer-implemented process, such that the instructions, which execute on the computer or other programmable device, provide a process for performing the function(s) / act(s) specified in the flowchart or block diagram block(s).
[0121] The description herein of illustrated implementations, including those described in the Abstract, is not intended to be exhaustive or to limit the disclosure to the disclosed forms. While specific implementations and examples are described herein for illustrative purposes, it will be recognized by those skilled in the art in light of the above detailed description that various alternative or equivalent embodiments or implementations calculated to achieve the same purpose may be made without departing from the scope of the present disclosure.
Claims
1. One or more computer-readable media (CRM) containing instructions that, upon execution by one or more processors of an access node (AN), cause the AN to: generating one or more synchronization signal block (SSB) burst sequences; generating one or more SSB bursts for one or more neighboring cells based on the one or more SSB burst sequences; transmitting the one or more SSBs comprising SSB timing groups to the UE, each of the SSB timing groups comprising the one or more SSBs aligned to a time scale when arriving at a user equipment (UE), the SSB timing groups comprising a first timing group and a second timing group, the first timing group comprising the one or more SSBs in a first inter-frequency layer, and the second timing group comprising the one or more SSBs in a second inter-frequency layer different from the first inter-frequency layer; One or more computer readable media (CRMs).
2. The one or more CRMs of claim 1 , wherein the instructions, when executed, further cause the AN to transmit the one or more SSB burst sequences.
3. 2. The one or more CRMs of claim 1, wherein the instructions cause the AN to transmit the one or more SSBs on one or more inter-frequency layers associated with a serving cell of the UE, to transmit the one or more SSBs.
4. 1. An access node (AN) for wireless communication, comprising: means for generating one or more synchronization signal block (SSB) burst sequences for one or more adjacent cells; means for transmitting said one or more SSB burst sequences; means for generating one or more SSBs based on the one or more SSB burst sequences for one or more radio resource management (RRM) measurements; means for transmitting the one or more SSBs in a Radio Resource Control Connected (RRC_CONNECTED) state, the one or more SSBs comprising SSB timing groups, each of the SSB timing groups comprising the one or more SSBs that are aligned to a time scale upon arrival at a user equipment (UE), the SSB timing groups comprising a first timing group and a second timing group, the first timing group comprising the one or more SSBs in a first inter-frequency layer, and the second timing group comprising the one or more SSBs in a second inter-frequency layer different from the first inter-frequency layer; An access node (AN) including:
5. The AN of claim 4 , wherein the one or more SSBs are transmitted on one or more inter-frequency layers associated with a serving cell of a user equipment (UE).
6. 1. A method of an access node (AN), comprising: generating one or more synchronization signal block (SSB) burst sequences; generating one or more SSB burst sequences for one or more neighboring cells based on the one or more SSB burst sequences; Transmitting the one or more SSBs to the UE, the one or more SSBs comprising SSB timing groups, each of the SSB timing groups comprising the one or more SSBs that are aligned to a time scale when arriving at a user equipment (UE), the SSB timing groups comprising a first timing group and a second timing group, the first timing group comprising the one or more SSBs in a first inter-frequency layer, and the second timing group comprising the one or more SSBs in a second inter-frequency layer different from the first inter-frequency layer; A method comprising:
7. The method of claim 6 , further comprising transmitting the one or more SSB burst sequences.
8. 7. The method of claim 6, wherein transmitting the one or more SSB burst arrangements further comprises transmitting the one or more SSBs on one or more inter-frequency layers associated with a serving cell of a user equipment (UE).
9. 3. The one or more CRMs of claim 2, wherein the instructions cause the AN to transmit the one or more SSB burst sequences using a System Information Block Type 1 (SIB1) message.
10. The one or more CRMs of claim 3 , wherein the one or more inter-frequency layers are located in Frequency Range 1 (FR1), Frequency Range 2 (FR2), or both.
11. 5. The AN of claim 4, comprising means for transmitting one or more SSB bursts using a System Block Type 1 (SIB1) message.
12. The AN of claim 5 , wherein the one or more inter-frequency layers are located in frequency range 1 (FR1), frequency range 2 (FR2), or both.
13. 8. The method of claim 7, wherein transmitting one or more SSB burst sequences further comprises transmitting one or more SSB burst sequences using a System Information Block Type 1 (SIB1) message.
14. The method of claim 8 , wherein the one or more inter-frequency layers are located in frequency range 1 (FR1), frequency range 2 (FR2), or both.
Citation Information
Patent Citations
Radio Resource Control for Radio Resource Management in New Wireless Technologies: Dynamic Radio Frequency Switching in Connected State
JP2022508959A