Request for synchronization signal / physical broadcast channel block transmission in a wireless communication system

By allowing a UE to request SSB/PBCH block transmissions over a different serving cell, the inefficiencies in SSB/PBCH block communications are addressed, resulting in reduced power consumption and improved system performance.

WO2025141554A1PCT designated stage Publication Date: 2025-07-03LENOVO (SINGAPORE) PTE LTD
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Patent Information

Application Number
PCT/IB2025/051645
Authority / Receiving Office
WO · WO
Patent Type
Applications
Current Assignee / Owner
Priority Date
2024-02-16
Filing Date
2025-02-14
Publication Date
2025-07-03

AI Technical Summary

Technical Problem

Wireless communication systems face inefficiencies in the transmission and reception of synchronization signal blocks (SSBs) and physical broadcast channels (PBCHs), leading to excessive data usage and high power consumption.

Method used

A user equipment (UE) transmits a request for SSB/PBCH block transmissions over one serving cell, allowing the actual transmission to occur over another serving cell, thereby reducing unnecessary system information transmissions and conserving power.

Benefits of technology

This approach reduces processor usage, power consumption, and data usage while enhancing overall system performance by optimizing SSB/PBCH block communications.

✦ Generated by Eureka AI based on patent content.

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Abstract

Various aspects of the present disclosure relate to methods, apparatuses, and devices for wireless communication. A user equipment (UE) may generate (1002) a request for at least one transmission of at least one synchronization signal (SS) / physical broadcast channel (PBCH) block. The UE may transmit (1004), to a first serving cell, the request for the at least one transmission of the at least one SS / PBCH block from a second serving cell.
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Description

REQUEST FOR SYNCHRONIZATION SIGNAL / PHYSICAL BROADCASTCHANNEL BLOCK TRANSMISSION IN A WIRELESS COMMUNICATIONSYSTEMTECHNICAL FIELD

[0001] The present disclosure relates to wireless communications, and more specifically to communicating (e.g., receiving, transmitting) one or more request for one or more synchronization signal (SS)Zphysical broadcast channel (PBCH) transmissions in a wireless communication system.BACKGROUND

[0002] A wireless communications system may include one or multiple network communication devices, which may be otherwise known as network equipment (NE), supporting wireless communications for one or multiple user communication devices, which may be otherwise known as user equipment (UE), or other suitable terminology. The wireless communications system may support wireless communications with one or multiple user communication devices by utilizing resources of the wireless communication system (e.g., time resources (e.g., symbols, slots, subframes, frames, or the like) or frequency resources (e.g., subcarriers, carriers, or the like)). Additionally, the wireless communications system may support wireless communications across various radio access technologies including third generation (3G) radio access technology, fourth generation (4G) radio access technology, fifth generation (5G) radio access technology, among other suitable radio access technologies beyond 5G (e.g., sixth generation (6G)).SUMMARY

[0003] An article “a” before an element is unrestricted and understood to refer to “at least one” of those elements or “one or more” of those elements. The terms “a,” “at least one,” “one or more,” and “at least one of one or more” may be interchangeable. As used herein, including in the claims, “or” as used in a list of items (e.g., a list of items prefaced by a phrase such as “at least one of’ or “one or more of’ or “one or both of’) indicates an inclusive list such that, for example, a list of at least one of A, B, or C means A or B or C or AB or AC or BC or ABC (i.e., A and B and C). Also, as usedherein, the phrase “based on” shall not be construed as a reference to a closed set of conditions. For example, an example step that is described as “based on condition A” may be based on both a condition A and a condition B without departing from the scope of the present disclosure. In other words, as used herein, the phrase “based on” shall be construed in the same manner as the phrase “based at least in part on.” Further, as used herein, including in the claims, a “set” may include one or more elements.

[0004] Various aspects of the present disclosure relate to wireless communications, including support for providing (e.g., transmitting) requests for one or multiple SS / PBCH block transmissions in a wireless communication system. For example, a UE may generate a request for at least one transmission of at least one SS / PBCH block. The UE may transmit, to a first serving cell, an uplink communication, for example, information via a physical uplink control channel (PUCCH) that indicates the request for the at least one transmission of the at least one SS / PBCH block for a second serving cell. Put another way, the UE may request transmission of at least one SS / PBCH block over one serving cell (e.g., the first serving cell), while the transmission of the at least one SS / PBCH block may occur over another serving cell (e.g., the second serving cell). As a result, the UE may reduce the occurrences of transmission of system information (e.g., transmission of SS / PBCH block), and thereby may experience reduced processor usage and higher power saving.BRIEF DESCRIPTION OF THE DRAWINGS

[0005] Figure 1 illustrates an example of a wireless communications system in accordance with aspects of the present disclosure.

[0006] Figures 2A through 2F illustrate an example of a PUCCH-Config information element (IE) in accordance with aspects of the present disclosure.

[0007] Figure 3 illustrates an example of a SchedulingRequestConfig IE in accordance with aspects of the present disclosure.

[0008] Figure 4 illustrates an example of a SchedulingRequestResourceConfig IE in accordance with aspects of the present disclosure.

[0009] Figure 5 illustrates an example of a time and frequency structure of a SS / PBCH block in accordance with aspects of the present disclosure.

[0010] Figure 6 illustrates an example of a procedure for master information block (MIB) and / or system information block (SIB) transmission flow in accordance with aspects of the present disclosure.

[0011] Figure 7 illustrates an example of a UE in accordance with aspects of the present disclosure.

[0012] Figure 8 illustrates an example of a processor in accordance with aspects of the present disclosure.

[0013] Figure 9 illustrates an example of a NE in accordance with aspects of the present disclosure.

[0014] Figure 10 illustrates a flowchart of a method performed by a UE in accordance with aspects of the present disclosure.

[0015] Figure 11 illustrates a flowchart of a method performed by a NE in accordance with aspects of the present disclosure.DETAILED DESCRIPTION

[0016] A wireless communication system, including one or more user communication devices and network communication devices may support communication (e.g., reception, transmission) of SS / PBCH block (also referred to as a synchronization signal block (SSB)). An SS / PBCH block may include a combination of synchronization signals (SS) and physical broadcast channel (PBCH) including demodulation reference signal (DMRS) of the PBCH, among other examples as described herein. In the wireless communication system, the network communication devices may transmit the SS / PBCH block to the user communication devices, which may, based on receiving the SS / PBCH block, perform cell search and acquire system information to establish a connection with a cell, initiate handover, among other examples. Some wireless communication systems may experience inefficiencies with communication (e.g., transmission, reception) of SS / PBCH blocks. For example, in some cases, excessive data may be used for transmission of system information (e.g., SSBs, PBCH, system information block 1 (SIB1)). The transmission of the system information may occur on a regular basis (e.g., periodicity) and thereby utilize excessive data, as well as result in high power consumption, among other inefficiencies.

[0017] Various aspects of the present disclosure relate to communicating (e.g., transmitting, receiving) a request for one or multiple SS / PBCH block transmissions. A user communication device (e.g., a UE) may transmit, to a network communication device (e.g., a base station) a request for the one or multiple SS / PBCH block transmissions over one serving cell, while the one or multiple SS / PBCH block transmissions may occur over another serving cell. By requesting for the one or multiple SS / PBCH block transmissions, the communication devices may reduce one or more of the occurrences of transmission of system information, and as a result the communication devices may experience power saving, reduced processor usage, and fewer data usage. Additionally, the wireless communication system, including the communication devices, may experience an increase in overall system performance.

[0018] Aspects of the present disclosure are described in the context of a wireless communications system.

[0019] Figure 1 illustrates an example of a wireless communications system 100 in accordance with aspects of the present disclosure. The wireless communications system 100 may include one or more NE 102, one or more UE 104, and a core network (CN) 106. The wireless communications system 100 may support various radio access technologies. In some implementations, the wireless communications system 100 may be a 4G network, such as an LTE network or an LTE-Advanced (LTE-A) network. In some other implementations, the wireless communications system 100 may be a new radio (NR) network, such as a 5G network, a 5G-Advanced (5G-A) network, or a 5G ultrawideband (5G-UWB) network. In other implementations, the wireless communications system 100 may be a combination of a 4G network and a 5G network, or other suitable radio access technology including Institute of Electrical and Electronics Engineers (IEEE) 802.11 (Wi-Fi), IEEE 802.16 (WiMAX), IEEE 802.20. The wireless communications system 100 may support radio access technologies beyond 5G, for example, 6G. Additionally, the wireless communications system 100 may support technologies, such as time division multiple access (TDMA), frequency division multiple access (FDMA), or code division multiple access (CDMA), etc.

[0020] The one or more NE 102 may be dispersed throughout a geographic region to form the wireless communications system 100. One or more of the NE 102 described herein may be or include or may be referred to as a network node, a base station, anetwork element, a network function, a network entity, a radio access network (RAN), a NodeB, an eNodeB (eNB), a next-generation NodeB (gNB), or other suitable terminology. An NE 102 and a UE 104 may communicate via a communication link, which may be a wireless or wired connection. For example, an NE 102 and a UE 104 may perform wireless communication (e.g., receive signaling, transmit signaling) over a Uu interface.

[0021] An NE 102 may provide a geographic coverage area for which the NE 102 may support services for one or more UEs 104 within the geographic coverage area. For example, an NE 102 and a UE 104 may support wireless communication of signals related to services (e.g., voice, video, packet data, messaging, broadcast, etc.) according to one or multiple radio access technologies. In some implementations, an NE 102 may be moveable, for example, a satellite associated with a non-terrestrial network (NTN). In some implementations, different geographic coverage areas associated with the same or different radio access technologies may overlap, but the different geographic coverage areas may be associated with different NE 102.

[0022] The one or more UE 104 may be dispersed throughout a geographic region of the wireless communications system 100. A UE 104 may include or may be referred to as a remote unit, a mobile device, a wireless device, a remote device, a subscriber device, a transmitter device, a receiver device, or some other suitable terminology. In some implementations, the UE 104 may be referred to as a unit, a station, a terminal, or a client, among other examples. Additionally, or alternatively, the UE 104 may be referred to as an Intemet-of-Things (loT) device, an Intemet-of-Everything (loE) device, or machine-type communication (MTC) device, among other examples.

[0023] A UE 104 may be able to support wireless communication directly with other UEs 104 over a communication link. For example, a UE 104 may support wireless communication directly with another UE 104 over a device-to-device (D2D) communication link. In some implementations, such as vehicle-to-vehicle (V2V) deployments, vehicle-to-everything (V2X) deployments, or cellular-V2X deployments, the communication link may be referred to as a sidelink. For example, a UE 104 may support wireless communication directly with another UE 104 over a UE-to-UE interface (PC5 interface).

[0024] An NE 102 may support communications with the CN 106, or with another NE 102, or both. For example, an NE 102 may interface with other NE 102 or the CN 106 through one or more backhaul links (e.g., SI, N2, N2, or network interface). In some implementations, the NE 102 may communicate with each other directly. In some other implementations, the NE 102 may communicate with each other or indirectly (e.g., via the CN 106. In some implementations, one or more NE 102 may include subcomponents, such as an access network entity, which may be an example of an access node controller (ANC). An ANC may communicate with the one or more UEs 104 through one or more other access network transmission entities, which may be referred to as a radio heads, smart radio heads, or transmission -reception points (TRPs).

[0025] The CN 106 may support user authentication, access authorization, tracking, connectivity, and other access, routing, or mobility functions. The CN 106 may be an evolved packet core (EPC), or a 5G core (5GC), which may include a control plane entity that manages access and mobility (e.g., a mobility management entity (MME), an access and mobility management functions (AMF)) and a user plane entity that routes packets or interconnects to external networks (e.g., a serving gateway (S-GW), a Packet Data Network (PDN) gateway (P-GW), or a user plane function (UPF)). In some implementations, the control plane entity may manage non-access stratum (NAS) functions, such as mobility, authentication, and bearer management (e.g., data bearers, signal bearers, etc.) for the one or more UEs 104 served by the one or more NE 102 associated with the CN 106.

[0026] The CN 106 may communicate with a packet data network over one or more backhaul links (e.g., via an SI, N2, N2, or another network interface). The packet data network may include an application server. In some implementations, one or more UEs 104 may communicate with the application server. A UE 104 may establish a session (e.g., a protocol data unit (PDU) session, or the like) with the CN 106 via an NE 102. The CN 106 may route traffic (e.g., control information, data, and the like) between the UE 104 and the application server using the established session (e.g., the established PDU session). The PDU session may be an example of a logical connection between the UE 104 and the CN 106 (e.g., one or more network functions of the CN 106).

[0027] In the wireless communications system 100, the NEs 102 and the UEs 104 may use resources of the wireless communications system 100 (e.g., time resources(e.g., symbols, slots, subframes, frames, or the like) or frequency resources (e.g., subcarriers, carriers)) to perform various operations (e.g., wireless communications). In some implementations, the NEs 102 and the UEs 104 may support different resource structures. For example, the NEs 102 and the UEs 104 may support different frame structures. In some implementations, such as in 4G, the NEs 102 and the UEs 104 may support a single frame structure. In some other implementations, such as in 5G and among other suitable radio access technologies, the NEs 102 and the UEs 104 may support various frame structures (i.e., multiple frame structures). The NEs 102 and the UEs 104 may support various frame structures based on one or more numerologies.

[0028] One or more numerologies may be supported in the wireless communications system 100, and a numerology may include a subcarrier spacing and a cyclic prefix. A first numerology (e.g., jU=O) may be associated with a first subcarrier spacing (e.g., 15 kHz) and a normal cyclic prefix. In some implementations, the first numerology (e.g., ^=0) associated with the first subcarrier spacing (e.g., 15 kHz) may utilize one slot per subframe. A second numerology (e.g., ^=1) may be associated with a second subcarrier spacing (e.g., 30 kHz) and a normal cyclic prefix. A third numerology (e.g., ^=2) may be associated with a third subcarrier spacing (e.g., 60 kHz) and a normal cyclic prefix or an extended cyclic prefix. A fourth numerology (e.g., ju=3) may be associated with a fourth subcarrier spacing (e.g., 120 kHz) and a normal cyclic prefix. A fifth numerology (e.g., i=4) may be associated with a fifth subcarrier spacing (e.g., 240 kHz) and a normal cyclic prefix.

[0029] A time interval of a resource (e.g., a communication resource) may be organized according to frames (also referred to as radio frames). Each frame may have a duration, for example, a 10 millisecond (ms) duration. In some implementations, each frame may include multiple subframes. For example, each frame may include 10 subframes, and each subframe may have a duration, for example, a 1 ms duration. In some implementations, each frame may have the same duration. In some implementations, each subframe of a frame may have the same duration.

[0030] Additionally or alternatively, a time interval of a resource (e.g., a communication resource) may be organized according to slots. For example, a subframe may include a number (e.g., quantity) of slots. The number of slots in each subframe may also depend on the one or more numerologies supported in the wirelesscommunications system 100. For instance, the first, second, third, fourth, and fifth numerologies (i.e., / r=0, ju=l, ,11=2. [1=3, =4) associated with respective subcarrier spacings of 15 kHz, 30 kHz, 60 kHz, 120 kHz, and 240 kHz may utilize a single slot per subframe, two slots per subframe, four slots per subframe, eight slots per subframe, and 16 slots per subframe, respectively. Each slot may include a number (e.g., quantity) of symbols (e.g., orthogonal frequency division multiplexing (OFDM) symbols). In some implementations, the number (e.g., quantity) of slots for a subframe may depend on a numerology. For a normal cyclic prefix, a slot may include 14 symbols. For an extended cyclic prefix (e.g., applicable for 60 kHz subcarrier spacing), a slot may include 12 symbols. The relationship between the number of symbols per slot, the number of slots per subframe, and the number of slots per frame for a normal cyclic prefix and an extended cyclic prefix may depend on a numerology. It should be understood that reference to a first numerology (e.g., i=0) associated with a first subcarrier spacing (e.g., 15 kHz) may be used interchangeably between subframes and slots.

[0031] In the wireless communications system 100, an electromagnetic (EM) spectrum may be split, based on frequency or wavelength, into various classes, frequency bands, frequency channels, etc. By way of example, the wireless communications system 100 may support one or multiple operating frequency bands, such as frequency range designations FR1 (410 MHz - 7.125 GHz), FR2 (24.25 GHz - 52.6 GHz), FR3 (7.125 GHz - 24.25 GHz), FR4 (52.6 GHz - 114.25 GHz), FR4a or FR4-1 (52.6 GHz - 71 GHz), and FR5 (114.25 GHz - 300 GHz). In some implementations, the NEs 102 and the UEs 104 may perform wireless communications over one or more of the operating frequency bands. In some implementations, FR1 may be used by the NEs 102 and the UEs 104, among other equipment or devices for cellular communications traffic (e.g., control information, data). In some implementations, FR2 may be used by the NEs 102 and the UEs 104, among other equipment or devices for short-range, high data rate capabilities.

[0032] FR1 may be associated with one or multiple numerologies (e.g., at least three numerologies). For example, FR1 may be associated with a first numerology (e.g.,i=0), which includes 15 kHz subcarrier spacing; a second numerology (e.g., i=l), which includes 30 kHz subcarrier spacing; and a third numerology (e.g., i=2), which includes 60 kHz subcarrier spacing. FR2 may be associated with one or multiple numerologies (e.g., at least 2 numerologies). For example, FR2 may be associated witha third numerology (e.g., ^=2), which includes 60 kHz subcarrier spacing; and a fourth numerology (e.g., ^=3), which includes 120 kHz subcarrier spacing.

[0033] In some systems, a network may expend substantial energy in transmitting synchronization signal blocks (SSBs), physical broadcast channels (PBCHs) (e.g., containing a master information block (MIB) and / or a system information block (SIB) 1 (SIB1)). The SIBs apart from SIB1 may be provided on demand. It may be desirable to save energy with respect to SSBs and SIB1. In one example, these may be provided on a need basis (e.g., on on-demand basis). In another example, an anchor cell may be used as a proxy (e.g., for time-frequency synchronization, SIB1) for these.

[0034] In certain systems, for network energy savings, procedures and / or signaling methods may be used to support on-demand SSB secondary cell (SCell) operation for UEs in a connected mode configured with carrier aggregation (CA), for both intra-band and inter-band CA. Such systems may specify triggering methods (e.g., select from a UE uplink wake-up-signal using an existing signal and / or channel, a cell on / off indication via backhaul, Scell activation and / or deactivation signaling, and so forth). Different examples to establish signaling for a UE operating in CA to send a request for an on-demand SSB transmission on an SCell are described herein.

[0035] Emissions and energy consumption from different elements of a telecommunication system may adversely contribute to the climate. Further, the operating expenses to run a telecommunication service may be large. In telecom systems, a number of industry-specific factors rooted in countering rising network costs may shape efficiency efforts. There is a continued rise in mobile data traffic, estimated at 6.4 GB per user per month in 2019 and forecast to grow threefold on a per-user basis over the next five years. With the rise in mobile data traffic combined with the rising costs of the spectrum, capital investment, and ongoing radio access network (RAN) maintenance / upgrades, energy-saving measures in network operations may be necessary. 5G new radio (NR) may offer significant energy-efficiency improvements per gigabyte over previous generations of mobility. However, new 5G use cases and the adoption of mm Wave may require more sites and antennas. This may lead to a more efficient network that may paradoxically result in higher emissions without active intervention.

[0036] Network energy saving may be important for environmental sustainability, to reduce environmental impact (e.g., greenhouse gas emissions), and for operational cost savings. As 5G is becoming pervasive across industries and geographical areas, handling more advanced services and applications may require very high data rates (e.g., extended reality (XR)), networks may be denser, use more antennas, have larger bandwidths, and use more frequency bands. The environmental impact of 5G may need to be controlled, and network energy savings may need to be used.

[0037] In some configurations, the energy cost on mobile networks accounts for -23% of the total operator cost. Most of the energy consumption may come from a radio access network and, in particular, from an active antenna unit (AAU), with data centers and fiber transport accounting for a smaller share. The power consumption of radio access may be split into two parts: the dynamic part which is only consumed when data transmission and / or reception is ongoing, and the static part which is consumed all the time to maintain necessary operation of the radio access devices even when the data transmission and / or reception is not on -going.

[0038] Therefore, a network energy consumption model may be used for a base station, key performance indicators (KPIs), an evaluation methodology, and to identify and study network energy savings techniques in targeted deployment scenarios. Moreover, efficient operation may be determined dynamically and / or semi-statically and finer granularity adaptation of transmissions and / or receptions in one or more of network energy saving techniques in time, frequency, spatial, and power domains, with potential support / feedback from a UE, potential UE assistance information, and information exchange / coordination over network interfaces.

[0039] In various systems, potential network energy consumption gains may be monitored and / or optimized, but also impact on network and user performance may be assessed and / or balanced (e.g., by looking at KPIs such as spectral efficiency, capacity, user perceived throughput (UPT), latency, UE power consumption, complexity, handover performance, call drop rate, initial access performance, service level agreement (SLA) assurance related KPIs, etc.).

[0040] Figures 2A through 2F illustrate an example of a PUCCH-config IE 200 in accordance with aspects of the present disclosure. Tables 1 through 6 may be used to understand various aspects of the PUCCH-config IE 200.Table 1: PUCCH-ConfigField DescriptionsTable 2: PUCCH-format3 Field DescriptionsTable 3: PUCCH-FormatConfig, PUCCH-FormatConfigExt Field DescriptionsTable 4: PUCCH-Resource, PUCCH-ResourceExt Field DescriptionsTable 5: PUCCH-ResourceSet Field DescriptionsTable 6

[0041] Figure 3 illustrates an example of a SchedulingRequestConfig IE 300 in accordance with aspects of the present disclosure. Tables 7 through 9 may be used for interpreting the SchedulingRequestConfig IE 300.Table 7: SchedulingRequestConfig Field DescriptionsTable 8: SchedulingRequestToAddMod Field DescriptionsTable 9: SchedulingRequestld IE

[0042] Figure 4 illustrates an example of a SchedulingRequestResourceConfig IE400 in accordance with aspects of the present disclosure. Table 10 may be used to understand aspects of the SchedulingRequestResourceConfig IE 400.Table 10: SchedulingRequestResourceConfig Field Descriptions

[0043] In certain systems, a UE may be provided, by phy-Prioritylndex inSchedulingRequestResourceConfig, a priority index 0 or a priority index 1 for an SR. If the UE is not provided a priority index for SR, the priority index may be 0.

[0044] In some systems, cell search may be a procedure for a UE to acquire time and frequency synchronization with a cell and to detect a physical layer cell identity(ID) (PCI) of the cell. During cell search operations which may be carried out when aUE is powered ON, mobility in connected mode, idle mode mobility (e.g., reselections),inter-RAT mobility to NR system etc., the UE uses NR synchronization signals and PBCH to derive necessary information required to access the cell.

[0045] Similar to LTE, two types of synchronization signals may be defined for NR: primary synchronization signal (PSS) and secondary synchronization signal (SSS). The synchronization signal / physical broadcast channel (PBCH) block (SS / PBCH block) may consist of PSS, SSS, and / or PBCH. Synchronization signals may be used by a UE for reference signal received power (RSRP) and reference signal received quality (RSRQ) measurements.

[0046] In various systems, for a PCI: there may be 1008 unique PCIs defined in 5G NR - double of that in LTE (e.g., 504), 1008 NR PCIs may be divided into 336 unique PCI groups and each group may have three different identities, the PCI of a cell may be calculated using - NIDCell = 3 * NID(l) + NID(2) where NID(l) G {0, 1, ... ,335} and NID(2) G {0,1,2}, and the UE may derive a PCI group number NID(l) from SSS and a physical-layer identity NID(2) from PSS.

[0047] Figure 5 illustrates an example of a time and frequency structure 500 of a SS / PBCH block in accordance with aspects of the present disclosure. The time and frequency structure 500 includes PSS 502, PBCH 504, and SSS 506.

[0048] The PSS 502, the SSS 506, and the PBCH 504 may always be together in consecutive OFDM symbols. Each SS / PBCH block may occupy 4 OFDM symbols in the time domain and spread over 240 subcarriers (e.g., 20 resource blocks (RBs)) in the frequency domain. The PSS 502 may occupy a first OFDM symbol and span 127 subcarriers. The SSS 506 may be located in a third OFDM symbol and may span over 127 subcarriers. There may be 8 unused subcarriers below the SSS 506 and 9 unused subcarriers above the SSS 506. The PBCH 504 may occupy two full OFDM symbols (e.g., second and fourth) spanning 240 subcarriers and in the third OFDM symbol spanning 48 subcarriers below and above the SSS 506. This may result in the PBCH 504 occupying 576 subcarriers across three OFDM symbols (e.g., 240+48+48+240 = 576). The PBCH demodulation reference signal (DM-RS) may occupy 144 resource elements (REs) which is one-fourth of the total REs and the remaining amount of REs for the PBCH payload may be 432 REs (e.g., 576-144 = 432 REs).

[0049] The following may be a summary of frequency resources occupied by aSS / PBCH block: Table 11 summarizes resources within an SS / PBCH block for PSS,SSS, PBCH and DM-RS for PBCH, the complex-valued symbols corresponding to resource elements denoted as 'Set to O' in Table 11 are set to zero, and the location of PBCH DM-RS in Table 11 depends upon PCI (v = NIDcell mod 4) of the cell (PCI already determined by the UE using PSS / SSS).Table 11

[0050] SSB details in a time domain may be: each SS / PBCH block spans across 4OFDM symbols in the time domain, an SS / PBCH block is periodically transmitted with a periodicity of 5ms, 10ms, 20ms, 40ms, 80ms, or 160ms, while longer SS / PBCH block periodicities enhances network energy performance, the shorter periodicities facilitate faster cell search for UEs, and a UE may assume a default periodicity of 20 ms during initial cell search or idle mode mobility.

[0051] To enable beam-sweeping for PSS / SSS and PBCH, SS burst sets may be defined. An SS burst set may include a set of SS / PBCH blocks, where each SS / PBCHblock may be transmited on a different beam. Specifically, an SS burst set may include one or more SS / PBCH blocks, and SS / PBCH blocks in the SS burst set may be transmited in a time-division multiplexing fashion. An SS burst set may be confined to a 5 ms window and may either be located in a first-half or a second-half of a 10 ms radio frame. The network may set a SS / PBCH block periodicity via radio resource control (RRC) parameter ssb-PeriodicityServingCell which may have values in the following range {5ms, 10ms, 20ms, 40ms, 80ms, 160ms}. The maximum number of candidate SS / PBCH blocks (Lmax) within an SS burst set may depend on a carrier frequency / band as shown in Table 12.Table 12

[0052] Within a 5 ms half frame, a starting OFDM symbol index for a candidateSS / PBCH block within the SS burst set may depend upon a subcarrier spacing (SCS) and carrier frequency / band (e.g., as shown in Table 13).Table 13

[0053] When the network is not using beam forming, it may transmit only one SS / PBCH block and there may only be one SS / PBCH block starting position. In one example, a timing of candidate of SS / PBCH blocks within an SS burst set is illustrated in Figure 6 for the case of SCS = 15 kHz and a carrier frequency between 3 GHz and 6 GHz.

[0054] Figure 6 illustrates an example of a procedure 600 for MIB and / or SIB transmission flow in accordance with aspects of the present disclosure. In some implementations, the procedure 600 may implement, or be implemented by, aspects ofthe wireless communication system 100 as described with reference to Figure 1. The procedure 600 may include a UE 602 which may be an example of a UE 104 as described herein. The procedure 600 may also include a gNB 604 which may be an example of a NE 102 as described herein. In the following description of the procedure 600, the operations between the UE 602 and the gNB 604 may be transmitted in a different order than the example order shown, or the operations performed by the UE 602 and the gNB 604 may be performed in different orders or at different times. Some operations may also be omitted from the procedure 600, and other operations may be added to the procedure 600.

[0055] At 606, the gNB 604 may transmit, and the UE 602 may receive, a. At 608, the gNB 604 may transmit, and the UE 602 may receive, a SIB1. At 610, the gNB 604 may transmit, and the UE 602 may receive, one or more system information messages (e.g., periodically or aperiodically). At 612, the UE 602 may transmit, and the gNB 604 may receive, a system information request. At 614, the gNB 604 may transmit, and the UE 602 may receive, on request system information messages, for example, in response to the system information request.

[0056] In one example, an MIB may be: transmitted over BCH and / or PBCH - it should be noted that PBCH is transmitted as a part of SSB so it may be beneficial to understand SSB as much as possible, transmitted with the periodicity of 80 ms and within this 80 ms repetitive transmission may happen, for initial cell selection - the UE 602 may assume that half frames with SS / PBCH blocks occur with a periodicity of 2 frames, and / or include parameters that are required to decode SIB1.

[0057] Table 14 shows one example of an MIB.Table 14i n

[0058] In Table 14, subCarrierSpacingCommon may indicate the SCS for SIB1, Msg2 and / or Msg4 for initial access and system information (Sl)-messages.Interpretation of this value may vary with a frequency range as shown in Table 15.Table 15

[0059] Further, in Table 14, ssb-subcarrierOffset may correspond to k ssb which may indicate a frequency domain offset between SSB and an overall resource block grid in a number of subcarriers. If k ssb requires a value higher than 15, it may be represented by a combination of a PBCH data field and ssb-subcarrierOffset. Moreover, dmrs-TypeA -Position may indicate a position of a first downlink (DL) DM-RS. pdcchConfigSIBl may be used to determine a bandwidth for physical downlink control channel (PDCCH)ZSIB, a common ControlResourceSet (CORESET), a common search space, and necessary PDCCH parameters. This may correspond to RMSI-PDCCH- Config.

[0060] Certain embodiments found herein may define signaling transmitted by a UE to indicate a request for an on-demand SSB transmission by a network. It should be noted that the acronym SSB may be used to refer to an SS / PBCH block herein.

[0061] In the time domain, an SS / PBCH block may include 4 OFDM symbols, numbered in increasing order from 0 to 3 within the SS / PBCH block, where PSS, SSS, and PBCH with associated DM-RS are mapped to symbols.

[0062] In one embodiment, a UE may request an SSB transmission on a second cell by transmitting a PUCCH message on a first cell. In one implementation, a PUCCH requesting an SSB transmission is transmitted according to a PUCCH configuration. The PUCCH configuration may include or be associated with one or more of a PUCCHconfiguration identifier (ID), a periodicity and offset, a PUCCH resource configuration ID, and / or a PUCCH resource configuration. In one example, a dedicated PUCCH configuration may be configured for the SSB request. The periodicity and offset may determine the time instances when the corresponding PUCCH may be transmitted by a UE, or may determine the time instances when the corresponding PUCCH resources may be used for a PUCCH transmission by a UE.

[0063] In another implementation, the UE is configured with a first ID that indicates which PUCCH configuration to apply for transmitting a request for an SSB transmission. In one specific implementation, the first ID (e.g., a PUCCH configuration ID) is associated with a PUCCH configuration defined by a radio resource control (RRC) IE.

[0064] In certain implementations, a PUCCH configuration includes or is associated with a serving cell identifier so that depending for which serving cell a UE intends to request SSB transmission, a PUCCH is transmitted according to a corresponding PUCCH configuration. Specifically, the UE may be configured with the association such that a first PUCCH configuration or a first PUCCH ID is associated with a first serving cell (e.g., a first serving cell index), a second PUCCH configuration or a second PUCCH ID is associated with a second serving cell (e.g., a second serving cell index), and so forth. Consequently, a network element such as a gNB receiving PUCCH according to a PUCCH configuration may identify for which serving cell the SSB request is intended. In an implementation, the second cell is an SCell.

[0065] In some implementations, the PUCCH configuration may include:

[0066] A. At least one serving cell identifier (e.g., an SCell index) for which the UE is requesting SSB transmission. If multiple serving cell identifiers are included, the PUCCH resource configuration associates each serving cell identifier with an PUCCH ID (each of which may be different);

[0067] B. Whether the configuration is used to indicate a request for a full SSB or only parts thereof (e.g., one or more of PSS, SSS, PBCH, MIB, PBCH DM-RS, PBCH payload). A partial SS / PBCH block may include a subset of a full SS / PBCH block. For example, a partial SS / PBCH block may include one or more of PSS, SSS, PBCH, MIB, PBCH DM-RS, or PBCH payload, while a full SS / PBCH block may include each of the PSS, SSS, PBCH, MIB, PBCH DM-RS, or PBCH payload; and / or

[0068] C. An index indicating for which SSB block index requested the configuration is applicable (e.g., a UE may use this configuration only if it intends to request an SSB block index matching the index in the PUCCH configuration).

[0069] In various implementations, the PUCCH transmitted for requesting an SSB transmission may include SSB request assistance information (e.g., the assistance information may be transmitted jointly with a request for at least one transmission of at least one SS / PBCH block). This may particularly be applicable if the PUCCH for requesting an SSB transmission supports the transmission of more than two bits, such as PUCCH formats 2, 3, 4 in 5G NR. The SSB request assistance information may include:

[0070] A. At least one serving cell identifier (e.g., an SCell index) for which the UE is requesting SSB transmission;

[0071] B. A number of SSB transmissions that is being requested, and optionally a time pattern (e.g., a periodicity or offset between transmissions) if multiple SSB transmissions are being requested;

[0072] C. A start time when the UE is ready to receive the requested SSB transmission;

[0073] D. A time window (e.g., by a start time and an end time, or a start time and a duration) during which the UE is ready to receive the requested SSB transmission;

[0074] E. A periodicity after which the time window repeats. The periodicity may be calculated from either the start or end of the time window;

[0075] F. Whether a full SSB is requested or only parts thereof (e.g., one or more of PSS, SSS, PBCH, MIB, PBCH DM-RS, and PBCH payload);

[0076] G. The PBCH (e.g., MIB + information conveyed by PBCH DM-RS) configuration or parts thereof for the SCell that is available at the UE;

[0077] H. The subcarrier spacing that the UE is requesting for the SSB transmission, for an operating band allowing two subcarrier spacings, indicates whether the lower or higher of the two subcarrier spacings is requested;

[0078] I. An index of the SSB block being requested; and / or

[0079] J. Measurement values of the current serving cells for which the UE has received SSB recently (e.g., within a configured time prior to transmission and / or creation of the SSB request).

[0080] In one implementation, a PUCCH configuration or PUCCH resource configuration may be conveyed from a gNB to a UE as part of a serving cell configuration. In a specific implementation, the PUCCH configuration or PUCCH resource configuration may be conveyed with the serving cell configuration of the first cell (e.g., of the serving cell for which the PUCCH transmission is applicable).According to another specific implementation, the PUCCH configuration or PUCCH resource configuration is conveyed with the serving cell configuration of the first cell, and the serving cell configuration of the second cell associates an SSB request transmission for the second cell with the PUCCH configuration or PUCCH resource configuration conveyed with the serving cell configuration of the first cell (e.g., by indicating the first ID, a first cell ID and / or a PUCCH configuration ID).

[0081] In some implementations, after transmitting a PUCCH for requesting SSB, the UE may expect a message from a gNB confirming reception of the PUCCH or indicating the requested SSB transmission. The confirmation or indication of SSB transmission may be achieved by a downlink control information (DCI) transmitted by the gNB. The confirmation of PUCCH reception may be inferred by a UE from detecting a subsequent transmission of an SSB. For example, a successful reception of MIB by a UE may imply that the corresponding request was received successfully by a gNB. According to one implementation, a UE not receiving a reception confirmation or SSB transmission indication may repeat the transmission of PUCCH requesting an SSB.

[0082] In another implementation, the PUCCH configuration or PUCCH resource configuration for a PUCCH requesting SSB is conveyed from a gNB to a UE by a scheduling request (SR) configuration.

[0083] In certain implementations, a SR requesting an SSB transmission is transmitted according to an SR resource configuration. An SR resource configuration may determine physical layer resources on PUCCH where the UE may send the dedicated scheduling request. In one example, a dedicated SR resource configuration is configured for the SSB request. According to one implementation, a UE ignores configurations for a prohibit timer, a maximum number of SR transmissions, and / or apriority index (e.g., as respectively given by configuration parameters sr-ProhibitTimer, sr-TransMax, phy -Priority Index). In another implementation, these parameters may be set by the network element to a value indicating not applicable, disabled, or infinity.

[0084] In some implementations, the UE is configured with a first ID that indicates which SR configuration to apply for transmitting a request for an SSB transmission. According to a specific implementation, the first ID (e.g., schedulingRequestld) is associated with an SR configuration defined by an RRC IE SchedulingRequestConfig.

[0085] In various implementations, the UE is configured with a first ID that indicates which SR resource configuration to apply for transmitting a request for an SSB transmission. According to a specific implementation, the first ID (e.g., schedulingRequestld) is associated with a scheduling request resource configuration defined by an RRC information element SchedulingRequestResourceConfig.

[0086] In certain implementations, an SR configuration or SR resource configuration for requesting an SSB transmission includes or is associated with a serving cell identifier so that depending for which serving cell a UE intends to request SSB transmission, an SR is transmitted using a corresponding SR configuration. Specifically, the UE may be configured with the association, such that a first SR configuration or a first SR ID is associated with a first serving cell (e.g., a first serving cell index), a second SR configuration or a second SR ID is associated with a second serving cell (e.g., a second serving cell index), and so forth. Consequently, a network element such as a gNB receiving SR according to an SR configuration may identify for which serving cell the SSB request is intended. According to one implementation, the serving cell is an SCell.

[0087] In some implementations, the SR configuration or SR resource configuration may include:

[0088] A. At least one serving cell identifier (e.g., an SCell index) for which the UE is requesting SSB transmission. If multiple serving cell identifiers are included, the configuration associates each serving cell identifier with an SR ID (which may be different);

[0089] B. Whether the configuration is used to indicate a request for a full SSB or only parts thereof (e g., one or more of PSS, SSS, PBCH, MIB, PBCH DM-RS, PBCH payload); and / or

[0090] C. An index indicating for which SSB block index requested the configuration is applicable (e.g., a UE may use this configuration only if it intends to request an SSB block index matching the index in the configuration).

[0091] In one implementation, if the SSB request is indicated by an SR transmission, the SR transmission does not start an SR prohibit timer or affect a running SR prohibit timer. In another implementation, if the SSB request is indicated by an SR transmission, the SR transmission is performed even if any SR prohibit timer is running at the UE. According to some implementations, if the SSB request is indicated by an SR transmission, the SR transmission on PUCCH is not included in a discontinuous reception (DRX) active time. According to some implementations, if the SSB request is indicated by an SR transmission, then DRX active time is not started after the SR transmission. This has the benefit that a UE is not required to detect physical downlink control channels (PDCCH) after transmitting the SR on PUCCH.

[0092] In various implementations, if the PUCCH resource configuration is achieved through SR configuration, a corresponding PUCCH transmission cancels the corresponding pending SR.

[0093] In certain implementations, after transmitting a SR for requesting SSB, the UE may expect a message from a gNB confirming reception of the SR or indicating the requested SSB transmission. The confirmation or indication of SSB transmission may be achieved by a DCI transmitted by the gNB. The confirmation of SR reception may be inferred by a UE from detecting a subsequent transmission of an SSB. For example, a successful reception of MIB by a UE may imply that the corresponding request was received successfully by a gNB. According to one implementation, a UE not receiving a reception confirmation or SSB transmission indication may repeat the transmission of SR requesting SSB. According to another implementation, if the UE receives such a confirmation or indication of SSB transmission, the corresponding pending SR may be cancelled.

[0094] In one embodiment, a network configures measurement towards a UE and includes an indication corresponding to each included measurement object to indicatethat at least one cell (e.g., SCell, also which cell) the object is not transmitting SSB regularly. In another embodiment, a configuration may generally indicate an SSB request by a UE for the at least one cell (e.g., SCell, also which cell) that is enabled.

[0095] In one implementation, RRC, upon receiving a measurement configuration, may configure lower layers for measurement. The exact sequence of an actual measurement part, including the use of a gap pattern and a sequence of measurements of a measurement object may be left to UE implementation. Once it is determined that a certain frequency and / or SCell may be measured next, RRC may determine based on the received configuration if at least one cell (e.g., SCell) is not transmitting SSB regularly. Upon determining this, it may indicate a MAC layer to trigger SSB transmission for the measurement object, frequency, and / or SCell (e.g., by triggering an SR or PUCCH transmission).

[0096] Figure 7 illustrates an example of a UE 700 in accordance with aspects of the present disclosure. The UE 700 may include a processor 702, a memory 704, a controller 706, and a transceiver 708. The processor 702, the memory 704, the controller 706, or the transceiver 708, or various combinations thereof or various components thereof may be examples of means for performing various aspects of the present disclosure as described herein. These components may be coupled (e.g., operatively, communicatively, functionally, electronically, electrically) via one or more interfaces.

[0097] The processor 702, the memory 704, the controller 706, or the transceiver 708, or various combinations or components thereof may be implemented in hardware (e.g., circuitry). The hardware may include a processor, a digital signal processor (DSP), an application-specific integrated circuit (ASIC), or other programmable logic device, or any combination thereof configured as or otherwise supporting a means for performing the functions described in the present disclosure.

[0098] The processor 702 may include an intelligent hardware device (e.g., a general-purpose processor, a DSP, a CPU, an ASIC, a field programmable gate array (FPGA), or any combination thereof). In some implementations, the processor 702 may be configured to operate the memory 704. In some other implementations, the memory 704 may be integrated into the processor 702. The processor 702 may be configured toexecute computer-readable instructions stored in the memory 704 to cause the UE 700 to perform various functions of the present disclosure.

[0099] The memory 704 may include volatile or non-volatile memory. The memory 704 may store computer-readable, computer-executable code including instructions when executed by the processor 702 cause the UE 700 to perform various functions described herein. The code may be stored in a non-transitory computer-readable medium such the memory 704 or another type of memory. Computer-readable media includes both non-transitory computer storage media and communication media including any medium that facilitates transfer of a computer program from one place to another. A non-transitory storage medium may be any available medium that may be accessed by a general-purpose or special-purpose computer.

[0100] In some implementations, the processor 702 and the memory 704 coupled with the processor 702 may be configured to cause the UE 700 to perform one or more of the functions described herein (e.g., executing, by the processor 702, instructions stored in the memory 704). For example, the processor 702 may support wireless communication at the UE 700 in accordance with examples as disclosed herein. For example, the processor 702 coupled with the memory 704 may be configured to cause the UE 700 to generate a request for at least one transmission of at least one SS / PBCH block. In some examples, the processor 702 coupled with the memory 704 may be configured to cause the UE 700 to transmit, to a first serving cell, the request for the at least one transmission of the at least one SS / PBCH block from a second serving cell.

[0101] The controller 706 may manage input and output signals for the UE 700. The controller 706 may also manage peripherals not integrated into the UE 700. In some implementations, the controller 706 may utilize an operating system such as iOS®, ANDROID®, WINDOWS®, or other operating systems. In some implementations, the controller 706 may be implemented as part of the processor 702.

[0102] In some implementations, the UE 700 may include at least one transceiver 708. In some other implementations, the UE 700 may have more than one transceiver 708. The transceiver 708 may represent a wireless transceiver. The transceiver 708 may include one or more receiver chains 710, one or more transmitter chains 712, or a combination thereof.

[0103] A receiver chain 710 may be configured to receive signals (e.g., control information, data, packets) over a wireless medium. For example, the receiver chain 710 may include one or more antennas for receiving the signal over the air or wireless medium. The receiver chain 710 may include at least one amplifier (e.g., a low-noise amplifier (LNA)) configured to amplify the received signal. The receiver chain 710 may include at least one demodulator configured to demodulate the received signal and obtain the transmitted data by reversing the modulation technique applied during transmission of the signal. The receiver chain 710 may include at least one decoder for decoding and processing the demodulated signal to receive the transmitted data.

[0104] A transmitter chain 712 may be configured to generate and transmit signals (e.g., control information, data, packets). The transmitter chain 712 may include at least one modulator for modulating data onto a carrier signal, preparing the signal for transmission over a wireless medium. The at least one modulator may be configured to support one or more techniques such as amplitude modulation (AM), frequency modulation (FM), or digital modulation schemes like phase-shift keying (PSK) or quadrature amplitude modulation (QAM). The transmitter chain 712 may also include at least one power amplifier configured to amplify the modulated signal to an appropriate power level suitable for transmission over the wireless medium. The transmitter chain 712 may also include one or more antennas for transmitting the amplified signal into the air or wireless medium.

[0105] Figure 8 illustrates an example of a processor 800 in accordance with aspects of the present disclosure. The processor 800 may be an example of a processor configured to perform various operations in accordance with examples as described herein. The processor 800 may include a controller 802 configured to perform various operations in accordance with examples as described herein. The processor 800 may optionally include at least one memory 804, which may be, for example, an L1 / L2 / L3 cache. Additionally, or alternatively, the processor 800 may optionally include one or more arithmetic -logic units (ALUs) 806. One or more of these components may be in electronic communication or otherwise coupled (e.g., operatively, communicatively, functionally, electronically, electrically) via one or more interfaces (e.g., buses).

[0106] The processor 800 may be a processor chipset and include a protocol stack (e.g., a software stack) executed by the processor chipset to perform various operations(e.g., receiving, obtaining, retrieving, transmitting, outputting, forwarding, storing, determining, identifying, accessing, writing, reading) in accordance with examples as described herein. The processor chipset may include one or more cores, one or more caches (e.g., memory local to or included in the processor chipset (e.g., the processor 800) or other memory (e.g., random access memory (RAM), read-only memory (ROM), dynamic RAM (DRAM), synchronous dynamic RAM (SDRAM), static RAM (SRAM), ferroelectric RAM (FeRAM), magnetic RAM (MRAM), resistive RAM (RRAM), flash memory, phase change memory (PCM), and others).

[0107] The controller 802 may be configured to manage and coordinate various operations (e.g., signaling, receiving, obtaining, retrieving, transmitting, outputting, forwarding, storing, determining, identifying, accessing, writing, reading) of the processor 800 to cause the processor 800 to support various operations in accordance with examples as described herein. For example, the controller 802 may operate as a control unit of the processor 800, generating control signals that manage the operation of various components of the processor 800. These control signals include enabling or disabling functional units, selecting data paths, initiating memory access, and coordinating timing of operations.

[0108] The controller 802 may be configured to fetch (e.g., obtain, retrieve, receive) instructions from the memory 804 and determine subsequent instruction(s) to be executed to cause the processor 800 to support various operations in accordance with examples as described herein. The controller 802 may be configured to track memory address of instructions associated with the memory 804. The controller 802 may be configured to decode instructions to determine the operation to be performed and the operands involved. For example, the controller 802 may be configured to interpret the instruction and determine control signals to be output to other components of the processor 800 to cause the processor 800 to support various operations in accordance with examples as described herein. Additionally, or alternatively, the controller 802 may be configured to manage flow of data within the processor 800. The controller 802 may be configured to control transfer of data between registers, arithmetic logic units (ALUs), and other functional units of the processor 800.

[0109] The memory 804 may include one or more caches (e.g., memory local to or included in the processor 800 or other memory, such RAM, ROM, DRAM, SDRAM,SRAM, MRAM, flash memory, etc. In some implementations, the memory 804 may reside within or on a processor chipset (e.g., local to the processor 800). In some other implementations, the memory 804 may reside external to the processor chipset (e.g., remote to the processor 800).

[0110] The memory 804 may store computer-readable, computer-executable code including instructions that, when executed by the processor 800, cause the processor 800 to perform various functions described herein. The code may be stored in a non- transitory computer-readable medium such as system memory or another type of memory. The controller 802 and / or the processor 800 may be configured to execute computer-readable instructions stored in the memory 804 to cause the processor 800 to perform various functions. For example, the processor 800 and / or the controller 802 may be coupled with or to the memory 804, the processor 800, the controller 802, and the memory 804 may be configured to perform various functions described herein. In some examples, the processor 800 may include multiple processors and the memory 804 may include multiple memories. One or more of the multiple processors may be coupled with one or more of the multiple memories, which may, individually or collectively, be configured to perform various functions herein.

[0111] The one or more ALUs 806 may be configured to support various operations in accordance with examples as described herein. In some implementations, the one or more ALUs 806 may reside within or on a processor chipset (e.g., the processor 800). In some other implementations, the one or more ALUs 806 may reside external to the processor chipset (e.g., the processor 800). One or more ALUs 806 may perform one or more computations such as addition, subtraction, multiplication, and division on data. For example, one or more ALUs 806 may receive input operands and an operation code, which determines an operation to be executed. One or more ALUs 806 be configured with a variety of logical and arithmetic circuits, including adders, subtractors, shifters, and logic gates, to process and manipulate the data according to the operation. Additionally, or alternatively, the one or more ALUs 806 may support logical operations such as AND, OR, exclusive-OR (XOR), not-OR (NOR), and not-AND (NAND), enabling the one or more ALUs 806 to handle conditional operations, comparisons, and bitwise operations.

[0112] The processor 800 may support wireless communication in accordance with examples as disclosed herein. The processor 800 may be configured to or operable to support a means for: generating a request for at least one transmission of at least one SS / PBCH block, and transmitting, to a first serving cell, the request for the at least one transmission of the at least one SS / PBCH block from a second serving cell.

[0113] Figure 9 illustrates an example of a NE 900 in accordance with aspects of the present disclosure. The NE 900 may include a processor 902, a memory 904, a controller 906, and a transceiver 908. The processor 902, the memory 904, the controller 906, or the transceiver 908, or various combinations thereof or various components thereof may be examples of means for performing various aspects of the present disclosure as described herein. These components may be coupled (e.g., operatively, communicatively, functionally, electronically, electrically) via one or more interfaces.

[0114] The processor 902, the memory 904, the controller 906, or the transceiver 908, or various combinations or components thereof may be implemented in hardware (e.g., circuitry). The hardware may include a processor, a digital signal processor (DSP), an application-specific integrated circuit (ASIC), or other programmable logic device, or any combination thereof configured as or otherwise supporting a means for performing the functions described in the present disclosure.

[0115] The processor 902 may include an intelligent hardware device (e.g., a general-purpose processor, a DSP, a CPU, an ASIC, an FPGA, or any combination thereof). In some implementations, the processor 902 may be configured to operate the memory 904. In some other implementations, the memory 904 may be integrated into the processor 902. The processor 902 may be configured to execute computer-readable instructions stored in the memory 904 to cause the NE 900 to perform various functions of the present disclosure. For example, the processor 902 coupled with the memory 904 may be configured to cause the NE 900 to: receive a request for at least one transmission of at least one SS / PBCH block from a second base station of a second serving cell, and determine the second base station of the second serving cell based at least in part on the received request.

[0116] The memory 904 may include volatile or non-volatile memory. The memory 904 may store computer-readable, computer-executable code including instructionswhen executed by the processor 902 cause the NE 900 to perform various functions described herein. The code may be stored in a non-transitory computer-readable medium such the memory 904 or another type of memory. Computer-readable media includes both non-transitory computer storage media and communication media including any medium that facilitates transfer of a computer program from one place to another. A non-transitory storage medium may be any available medium that may be accessed by a general-purpose or special-purpose computer.

[0117] In some implementations, the processor 902 and the memory 904 coupled with the processor 902 may be configured to cause the NE 900 to perform one or more of the functions described herein (e.g., executing, by the processor 902, instructions stored in the memory 904). For example, the processor 902 may support wireless communication at the NE 900 in accordance with examples as disclosed herein.

[0118] The controller 906 may manage input and output signals for the NE 900. The controller 906 may also manage peripherals not integrated into the NE 900. In some implementations, the controller 906 may utilize an operating system such as iOS®, ANDROID®, WINDOWS®, or other operating systems. In some implementations, the controller 906 may be implemented as part of the processor 902.

[0119] In some implementations, the NE 900 may include at least one transceiver 908. In some other implementations, the NE 900 may have more than one transceiver 908. The transceiver 908 may represent a wireless transceiver. The transceiver 908 may include one or more receiver chains 910, one or more transmitter chains 912, or a combination thereof.

[0120] A receiver chain 910 may be configured to receive signals (e.g., control information, data, packets) over a wireless medium. For example, the receiver chain 910 may include one or more antennas for receive the signal over the air or wireless medium. The receiver chain 910 may include at least one amplifier (e.g., a low-noise amplifier (LNA)) configured to amplify the received signal. The receiver chain 910 may include at least one demodulator configured to demodulate the receive signal and obtain the transmitted data by reversing the modulation technique applied during transmission of the signal. The receiver chain 910 may include at least one decoder for decoding the processing the demodulated signal to receive the transmitted data.

[0121] A transmiter chain 912 may be configured to generate and transmit signals (e.g., control information, data, packets). The transmiter chain 912 may include at least one modulator for modulating data onto a carrier signal, preparing the signal for transmission over a wireless medium. The at least one modulator may be configured to support one or more techniques such as amplitude modulation (AM), frequency modulation (FM), or digital modulation schemes like phase-shift keying (PSK) or quadrature amplitude modulation (QAM). The transmiter chain 912 may also include at least one power amplifier configured to amplify the modulated signal to an appropriate power level suitable for transmission over the wireless medium. The transmiter chain 912 may also include one or more antennas for transmiting the amplified signal into the air or wireless medium.

[0122] Figure 10 illustrates a flowchart of a method 1000 in accordance with aspects of the present disclosure. The operations of the method 1000 may be implemented by a UE as described herein. In some implementations, a UE 700 may execute a set of instructions to control the function elements of a processor to perform the described functions.

[0123] At 1002, the method may include generating a request for at least one transmission of at least one SS / PBCH block. The operations of 1002 may be performed in accordance with examples as described herein. In some implementations, aspects of the operations of 1002 may be performed by a UE as described with reference to Figure 7.

[0124] At 1004, the method may include transmiting, to a first serving cell, the request for the at least one transmission of the at least one SS / PBCH block from a second serving cell. The operations of 1004 may be performed in accordance with examples as described herein. In some implementations, aspects of the operations of 1004 may be performed by a UE as described with reference to Figure 7.

[0125] Figure 11 illustrates a flowchart of another method 1100 in accordance with aspects of the present disclosure. The operations of the method 1100 may be implemented by a NE as described herein. In some implementations, aNE 900 may execute a set of instructions to control the function elements of a processor to perform the described functions.

[0126] At 1102, the method may include receiving a request for at least one transmission of at least one SS / PBCH block from a second base station of a second serving cell. The operations of 1102 may be performed in accordance with examples as described herein. In some implementations, aspects of the operations of 1102 may be performed by a NE as described with reference to Figure 9.

[0127] At 1104, the method may include determining the second base station of the second serving cell based at least in part on the received request. The operations of 1104 may be performed in accordance with examples as described herein. In some implementations, aspects of the operations of 1104 may be performed by a NE as described with reference to Figure 9.

[0128] It should be noted that the methods described herein describe possible implementations, and that the operations and the steps may be rearranged or otherwise modified and that other implementations are possible.

[0129] The description herein is provided to enable a person having ordinary skill in the art to make or use the disclosure. Various modifications to the disclosure will be apparent to a person having ordinary skill in the art, and the generic principles defined herein may be applied to other variations without departing from the scope of the disclosure. Thus, the disclosure is not limited to the examples and designs described herein but is to be accorded the broadest scope consistent with the principles and novel features disclosed herein.

Claims

CLAIMSWhat is claimed is:1 . A user equipment (UE), comprising: at least one memory; and at least one processor coupled with the at least one memory and configured to cause the UE to: generate a request for at least one transmission of at least one synchronization signal (SS)Zphysical broadcast channel (PBCH) block; and transmit, to a first serving cell, the request for the at least one transmission of the at least one SS / PBCH block from a second serving cell.

2. The UE of claim 1, wherein the at least one processor is configured to cause the UE to receive, from the second serving cell, the at least one SS / PBCH block based at least in part on the request, wherein the at least one SS / PBCH block comprises information associated with the second serving cell.

3. The UE of claim 1, wherein the at least one processor is configured to cause the UE to: transmit assistance information associated with the request, wherein the assistance information indicates one or more of: an identifier of the request for the at least one SS / PBCH block; an identifier of the second serving cell; a quantity of SS / PBCH block transmissions; a pattern for a set of SS / PBCH block transmissions; a start time for monitoring for the at least one SS / PBCH block; a duration for monitoring for the at least one SS / PBCH block; or whether the request for the at least S S / PBCH block corresponds to a partial SS / PBCH block or a full SS / PBCH block.

4. The UE of claim 3, wherein the assistance information is jointly transmitted with the request.

5. The UE of claim 1, wherein the at least one processor is configured to cause the UE to: receive a configuration that indicates one or more configured resources for transmission of scheduling request (SR) or one or more uplink resources for transmission of the request, wherein the request for the at least one transmission of the at least one SS / PBCH block is transmitted based at least in part on the received configuration.

6. The UE of claim 5, wherein the at least one processor is configured to cause the UE to ignore one or more parameters within the configuration, and wherein the one or more parameters comprise: a prohibit timer, a maximum number of transmission of SR, or a priority index for a transmission of SR.

7. The UE of claim 1, wherein the request for the at least one transmission of the at least one SS / PBCH block is transmitted on a configured scheduling request (SR) resource.

8. The UE of claim 1, wherein the at least one processor is configured to cause the UE to receive, after a transmission of the request, an indication from a network equipment (NE) acknowledging the request.

9. A method of a user equipment (UE), the method comprising: generating a request for at least one transmission of at least one synchronization signal (SS)Zphysical broadcast channel (PBCH) block; and transmitting, to a first serving cell, the request for the at least one transmission of the at least one SS / PBCH block from a second serving cell.

10. The method of claim 9, further comprising receiving, from the second serving cell, the at least one SS / PBCH block based at least in part on the request, wherein the at least one SS / PBCH block comprises information associated with the second serving cell.

11. The method of claim 9, further comprising: transmitting assistance information associated with the request, wherein the assistance information indicates one or more of: an identifier of the request for the at least one SS / PBCH block;an identifier of the second serving cell; a quantity of SS / PBCH block transmissions; a pattern for a set of SS / PBCH block transmissions; a start time for monitoring for the at least one SS / PBCH block; a duration for monitoring for the at least one SS / PBCH block; or whether the request for the at least S S / PBCH block corresponds to a partial SS / PBCH block or a full SS / PBCH block.

12. The method of claim 11, wherein the assistance information is jointly transmitted with the request.

13. The method of claim 9, further comprising: receiving a configuration that indicates one or more configured resources for transmission of scheduling request (SR) or one or more uplink resources for transmission of the request.

14. The method of claim 13, wherein the request for the at least one transmission of the at least one SS / PBCH block is transmitted based at least in part on the received configuration.

15. A first base station of a first serving cell, comprising: at least one memory; and at least one processor coupled with the at least one memory and configured to cause the first base station to: receive a request for at least one transmission of at least one synchronization signal (SS)Zphysical broadcast channel (PBCH) block from a second base station of a second serving cell; and determine the second base station of the second serving cell based at least in part on the received request.

16. The first base station of claim 16, wherein the at least one processor is configured to cause the first base station to: receive assistance information associated with the request, wherein the assistance information indicates one or more of: an identifier of the request for the at least one SS / PBCH block; an identifier of the second serving cell;a quantity of SS / PBCH block transmissions; a pattern for a set of SS / PBCH block transmissions; a start time for monitoring for the at least one SS / PBCH block; a duration for monitoring for the at least one SS / PBCH block; or whether the request for the at least S S / PBCH block corresponds to a partial SS / PBCH block or a full SS / PBCH block.

17. The first base station of claim 17, wherein the assistance information associated with the request is jointly received with the request.

18. The first base station of claim 16, wherein the first serving cell is a primary cell (PCell), and wherein the second serving cell is a secondary cell (SCell).

19. A method of a first base station of a first serving cell, the method comprising: receiving a request for at least one transmission of at least one synchronization signal (SS)Zphysical broadcast channel (PBCH) block from a second base station of a second serving cell; and determining the second base station of the second serving cell based at least in part on the received request.

20. The method of claim 19, further comprising: receiving assistance information associated with the request, wherein the assistance information indicates one or more of: an identifier of the request for the at least one SS / PBCH block; an identifier of the second serving cell; a quantity of SS / PBCH block transmissions; a pattern for a set of SS / PBCH block transmissions; a start time for monitoring for the at least one SS / PBCH block; a duration for monitoring for the at least one SS / PBCH block; or whether the request for the at least S S / PBCH block corresponds to a partialSS / PBCH block or a full SS / PBCH block.

Citation Information

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