Transmitter (Tx) power utilization for dual uplink (UL) carrier aggregation (CA) on each band

By recognizing and controlling UE transmit power per band based on reported capabilities, the method addresses the limitation of UE power in current standards, enhancing network coverage and capacity through optimized scheduling.

JP7778155B2Active Publication Date: 2025-12-01NOKIA TECHNOLOGIES OY
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Patent Information

Application Number
JP2023558198
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2021-03-31
Filing Date
2022-03-29
Publication Date
2025-12-01
Estimated Expiration
2042-03-29

AI Technical Summary

Technical Problem

Current wireless communication standards limit user equipment (UE) transmit power during uplink carrier aggregation, preventing full utilization of hardware capabilities, which affects network coverage and capacity.

Method used

A method for a network device to recognize UE's per-band capabilities and control UL power based on reported UE capabilities, allowing operation at full power in each band, indicated by a field in the UE capability report.

Benefits of technology

Enables the network to optimize scheduling and maximize UE device capabilities, increasing coverage and capacity of UL carrier aggregation.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

Various techniques are provided for a method, which includes receiving, at a network device, from a user equipment (UE), an indication of a UE capability to support a maximum power per band of a radio band combination (BC) used by the UE, determining whether the UE supports the maximum power per band of the radio BC based on the indication of the UE capability, and in response to determining that the UE supports the maximum power per band of the radio BC, determining a total UE transmit power based on a sum of the maximum powers for each band in the radio BC.
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Description

[Technical Field]

[0001] Related Applications This application claims priority to and is a continuation of U.S. patent application Ser. No. 17 / 301,370, entitled "EXPLOITATION OF TRANSMITTER (TX) POWER FOR EACH BAND DUAL UP‐LINK (UL) CARRIER AGGREGATION (CA)," filed on March 31, 2021, the disclosure of which is incorporated herein by reference in its entirety.

[0002] The present description relates to wireless communications. [Background technology]

[0003] A communication system may be a facility that enables communication between two or more nodes or devices, such as fixed or mobile communication devices. Signals may be transmitted over wired or wireless carriers.

[0004] An example of a wireless cellular communication system is the architecture standardized by the Third Generation Partnership Project (3GPP). Recent developments in this field are often referred to as the Long Term Evolution (LTE) of the Universal Mobile Telecommunications System (UMTS) radio access technology. E-UTRA (Evolved UMTS Terrestrial Radio Access) is the air interface of the upgrade path for mobile networks of 3GPP's Long Term Evolution (LTE). In LTE, base stations or access points (APs), referred to as enhanced nodes (eNBs) APs, provide wireless access within a coverage area or cell. In LTE, mobile devices or mobile stations are referred to as user equipment (UE). LTE has included numerous improvements or developments, and aspects of LTE continue to improve.

[0005] The development of 5G New Radio (NR), like the previous evolution of 3G and 4G wireless networks, is part of the ongoing mobile broadband evolution process to meet 5G requirements. 5G targets emerging use cases in addition to mobile broadband. The goal of 5G is to bring significant improvements in wireless performance, which may include new levels of data rate, latency, reliability, and security. 5G NR may also scale to efficiently connect the massive Internet of Things (IoT) and deliver new types of mission-critical services. For example, Ultra-Reliable Low-Latency Communications (URLLC) devices may require high reliability and very low latency. Summary of the Invention

[0006] In a typical aspect, a device, system, non-transitory computer-readable medium (storing computer-executable program code that can be executed on a computer system), and / or method may perform a process by a method that includes indicating support for maximum power based on a per-band power class (PC) of a radio band combination (BC) that includes two or more uplink carriers from a user equipment (UE) to a network device, and applying the maximum UE transmission according to the per-band PC for each band in the radio BC in uplink power control.

[0007] Implementations may include one or more of the following features. For example, the UE may support uplink carrier aggregation (CA). The radio BC may support two or more uplink CAs. The method may further include indicating, from the UE to the network device, a per-band PC for each band in the radio BC. Indicating support for a per-band based maximum power indicates that the UE may be capable of operating at full power in each uplink band. If a radio band includes two or more uplink carriers, the total power may be limited to the PC of the associated radio bands.

[0008] In a typical aspect, the device, system, non-transitory computer-readable medium (storing computer-executable program code that can be executed on a computer system), and / or method may perform a process by a method that includes receiving, at a network device, from a user equipment (UE), an indication of the UE's capability to support a maximum power per band of a radio band combination (BC) used by the UE; determining, based on the UE capability indication, whether the UE supports the maximum power per band of the radio BC; and, in response to determining that the UE supports the maximum power per band of the radio BC, determining a total UE transmit power based on a sum of the maximum powers for each band in the radio BC.

[0009] Embodiments may include one or more of the following features. For example, the indication of the UE capability to support maximum power per band may indicate that the UE supports uplink carrier aggregation (CA). The radio BC may support two or more uplink CAs. The indication of the UE capability to support maximum power per band may indicate that the UE is capable of operating at full power in each uplink band. The indication of the UE capability to support maximum power per band may indicate that the UE is capable of operating at full power in each uplink band. The indication of the UE capability to support maximum power per band may indicate that the UE is capable of operating at full power in each uplink band. The indication of the UE capability to support maximum power per band may indicate that the UE is capable of operating at full power in each uplink band. The indication of the UE capability to support maximum power per band may indicate that the UE is capable of operating at full power in each uplink band. The method may further include receiving a per band PC for each band in the radio BC from the UE.

[0010] The method may further include calculating a maximum allowed UE transmit power for each band based on a maximum power class associated with a corresponding band of the radio BC, and applying the maximum UE transmit power for each band in uplink power control without considering the per-BC power class of the radio BC. An indication of the UE capability to support the per-band maximum power of the radio BC used by the UE may be included in the UE power capability report, and if the indication of the UE capability to support the per-band maximum power of the radio BC used by the UE is not included in the UE power capability report, the uplink power control is based on default power control. If the radio band includes two or more uplink carriers, the total power may be limited to the PC of the associated radio band.

[0011] The method may further include relaxing the configured lower limit of the aggregate of maximum output power as a delta value equal to the sum of the maximum powers for each band in the radio BC minus the maximum value of one of the respective NR bands or intra-band NR CA UE power classes in the corresponding band configuration. The method may further include relaxing the configured lower limit of the aggregate of maximum output power by replacing the UL power class for UL CA with the maximum value of one of the respective NR bands or intra-band NR CA UE power classes for UL CA. The method may further include relaxing the configured lower limit of the aggregate of maximum output power for UL inter-band CA by replacing the UL power class for UL CA instead of the sum in a formula for determining the lower limit formula with the UL power class for UL CA.

[0012] The details of one or more example embodiments are set forth in the accompanying drawings and the description below. Other features will be apparent from the description and drawings, and from the claims. [Brief explanation of the drawings]

[0013] [Figure 1] 1 is a block diagram of a wireless network according to an example embodiment. [Figure 2] FIG. 2 is a block diagram of a signal flow according to an exemplary embodiment. [Figure 3] FIG. 10 is yet another block diagram of a signal flow according to an exemplary embodiment. [Figure 4] 1 is a flow diagram illustrating a method for controlling uplink (UL) power according to an example embodiment. [Figure 5] 1 illustrates a block diagram of a method for controlling uplink (UL) power according to an example embodiment. [Figure 6] 1 illustrates a block diagram of a method for controlling uplink (UL) power according to an example embodiment. [Figure 7] FIG. 1 is a block diagram of a radio station or radio node (e.g., an AP, BS, gNB, RAN node, relay node, UE or user device, network node, network entity, DU, CU-CP, CU-CP, ..., or other node) according to an example embodiment. DETAILED DESCRIPTION OF THE INVENTION

[0014] Figure 1 is a block diagram of a wireless network 130 according to an example embodiment. In the wireless network 130 of Figure 1, user devices 131, 132, 133, and 135, which may also be referred to as mobile stations (MSs) or user equipment (UEs), may be connected to (and in communication with) a base station (BS) 134, which may also be referred to as an access point (AP), enhanced Node B (eNB), BS, next generation Node B (gNB), next generation enhanced Node B (ng-eNB), or network node. The terms "user device" and "user equipment (UE)" may be used interchangeably. A BS may also include a RAN (Radio Access Network) node, i.e., may be referred to as a RAN node, and may include a portion of a BS or a portion of a RAN node (e.g., in the case of a split BS, may include a centralized unit (CU) and / or a distributed unit (DU), etc.). At least some of the functionality of a BS (e.g., access point (AP), base station (BS), or (e)Node B (eNB), BS, RAN node) may also be performed by any node, server, or host that may be operatively connected to a transceiver, such as a remote radio head. BS (or AP) 134 provides radio coverage within cell 136, which also includes radio coverage for user devices (or UEs) 131, 132, 133, and 135. While only four user devices (or UEs) are shown as connecting to or belonging to BS 134, any number of user devices may be provided. BS 134 is also connected to core network 150 via an S1 interface or NG interface 151. This is just one simple example of a radio network, and others may be used.

[0015] A base station (e.g., BS 134) is an example of a radio access network (RAN) node in a wireless network. A BS (or RAN node) may be or include (i.e., alternatively referred to as) an access point (AP), gNB, eNB, or part of an AP, gNB, eNB (e.g., a centralized unit (CU) and / or distributed unit (DU) in the case of a split BS or split gNB), or other network node. For example, a BS (or gNB) may include a distributed unit (DU) network entity, such as a gNB-distributed unit (gNB-DU), and a centralized unit (CU) that may control multiple DUs. In some cases, for example, the centralized unit (CU) may be split or separated into a control plane entity, such as a gNB centralized (or central) unit control plane (gNB-CU-CP), and a user plane entity, such as a gNB centralized (or central) unit user plane (gNB-CU-UP). For example, the CU sub-entities (gNB-CU-CP, gNB-CU-UP) may be provided as different logical entities or different software entities (e.g., as independent or separate software entities that communicate), which may run or be provided on the same hardware or server, in the cloud, etc., or may be provided on different, e.g., physically independent, hardware, systems, or servers, or may run on different systems, hardware, or servers.

[0016] As described above, in a gNB / BS split architecture, the gNB's functionality may be split between a DU and a CU. A distributed unit (DU) may provide or establish wireless communication with one or more UEs. Thus, a DU may provide one or more cells and enable a UE to communicate with and / or establish a connection to the DU to receive wireless services, such as enabling the UE to transmit or receive data. A centralized (or central) unit (CU) may provide control and / or data plane functions for one or more connected DUs, including, for example, gNB control of user data transfer, mobility control, radio access network sharing, positioning, session management, etc., but excluding functions exclusively assigned to the DU. The CU may control the operation of the DUs (e.g., the CU communicates with one or more DUs) via a fronthaul (Fs) interface.

[0017] According to illustrative examples, typically, a BS node (e.g., BS, eNB, gNB, CU / DU, . . .) or a Radio Access Network (RAN) may be part of a mobile communication system. The RAN (Radio Access Network) may include one or more BS or RAN nodes that implement radio access technologies, e.g., to enable one or more UEs to access a network or a core network. Thus, for example, a RAN (RAN node such as a BS or gNB) may reside between one or more user devices or UEs and the core network. According to exemplary embodiments, each RAN node (e.g., BS, eNB, gNB, CU / DU, . . .) or BS may provide one or more wireless communication services to one or more UEs or user devices, e.g., to enable the UEs to wirelessly access the network via the RAN node.

[0018] Each RAN node or BS may perform or provide wireless communication services, such as enabling UEs or user devices to establish a wireless connection to the RAN node and transmitting and / or receiving data to one or more of the UEs. The RAN node (e.g., BS, eNB, gNB, CU / DU, etc.) may, for example, forward data received from the network or core network to the UE and / or forward data received from the UE to the network or core network after establishing a connection to the UE. The RAN node (e.g., BS, eNB, gNB, CU / DU, etc.) may perform a wide variety of other wireless functions or services, such as broadcasting control information (e.g., system information) to UEs, paging UEs when there is data to deliver to the UE, assisting UEs in handover between cells, scheduling resources for uplink data transmissions from and downlink data transmissions to the UE(s), and transmitting control information to configure one or more UEs. These are just a few examples of one or more functions that a RAN node or BS may perform. The base station may also be the DU (Distributed Unit) part of an IAB (Integrated Radio Access Backhaul) node (also known as a relay node), which facilitates the access link connection(s) of the IAB node.

[0019] A user device (e.g., user terminal, user equipment (UE), mobile terminal, handheld wireless device) may refer to a portable computing device, including a wireless mobile communication device that operates with or without a subscriber identity module (SIM) (which may be referred to as a generic SIM), including, by way of example and not limitation, a mobile station (MS), a mobile phone, a cell phone, a smartphone, a personal digital assistant (PDA), a handset, a device that uses a wireless modem (such as an alarm device or a measurement device), a laptop and / or touchscreen computer, a tablet, a phablet, a game console, a notebook, a vehicle, a sensor, and a multimedia device, or any other wireless device. It should be understood that a user device may be (or include) a device that is mostly uplink-only, such as, for example, a camera or video camera that loads images or video clips into the network. A user device may also be the MT (mobile termination) portion of an IAB (integrated radio access backhaul) node (also known as a relay node). The MT facilitates the backhaul connection of the IAB node.

[0020] In LTE (as an illustrative example), the core network 150 may be referred to as an Evolved Packet Core (EPC), which may include a mobility management entity (MME) that may handle or assist mobility / handover of user devices between BSs, one or more gateways that may forward data and control signals between the BSs and a packet data network or the Internet, and other control functions or blocks. Other types of wireless networks, such as 5G (which may be referred to as New Radio (NR)), may also include a core network (e.g., which may be referred to as 5GC for 5G / NR).

[0021] Additionally, by way of illustrative example, various exemplary embodiments or techniques described herein may be applied to various types of user devices or data service types, or to user devices on which multiple applications, which may be of different data service types, may be executed. New Radio (5G) developments may support many different applications or many different data service types, such as machine type communications (MTC), enhanced machine type communications (eMTC), massive MTC (mMTC), Internet of Things (IoT) and / or narrowband IoT user devices, enhanced mobile broadband (eMBB), and ultra-reliable and low-latency communications (URLLC). Many of these emerging 5G (NR) related applications may typically require higher performance than traditional radio networks.

[0022] The IoT may refer to an ever-growing group of objects that may have Internet or network connectivity, and these objects may send and receive information to other network devices. For example, many sensor-type applications or devices may monitor physical conditions or status and send reports to a server or other network devices, for example, upon the occurrence of an event. Machine-type communication (MTC, or machine-to-machine communication) may be characterized by fully automated data generation, exchange, processing, and action, for example, between intelligent machines, with or without human intervention. Enhanced mobile broadband (eMBB) may support much higher data rates than those currently available with LTE. Ultra-reliable low-latency communication (URLLC) is a new data service type or new usage scenario that may be supported for new radio (5G) systems.

[0023] This enables emerging applications and services such as industrial automation, autonomous driving services, vehicle safety services, and e-health services. As an illustrative example, 3GPP aims to provide reliable connections equivalent to a block error rate (BLER) of 10-5 and a maximum U-Plane (user / data plane) latency of 1 ms. Thus, for example, a URLLC user device / UE may require a significantly lower block error rate than other types of user devices / UE, as well as low latency (with or without the need for concurrent high reliability). Thus, for example, a URLLC UE (or a URLLC application on a UE) may require much shorter latency compared to an eMBB UE (or an eMBB application running on a UE).

[0024] Various exemplary embodiments may be applied to a wide variety of wireless technologies or wireless networks, such as LTE, LTE-A, 5G (New Radio (NR)), cmWave, and / or mmWave band networks, IoT, MTC, eMTC, mMTC, eMBB, URLLC, or any other wireless network or wireless technology. These exemplary networks, technologies, or data service types are provided as illustrative examples only.

[0025] Initially, the LTE specifications included Power Class 3 (23 dBm, hereafter referred to as PC3). Subsequently, Power Class 2 (26 dBm, hereafter referred to as PC2) was introduced in many TDD bands for single-band operation. As the PC2 specification for single bands became stable in 3GPP, PC2 began to be applied to band combinations such as inter-band CA and dual connectivity. Dual connectivity was also created as a generalization of carrier aggregation, and most aspects of CA (e.g., UL power) can also be applied to DC (sometimes generally referred to as multi-connectivity). Demand for PC2 originally came from operators whose primary bands were TDD bands. Now, more operators are requesting the use of PC2 in their operating bands because the higher UE transmit power available significantly improves network coverage and capacity.

[0026] In current standards, power classes (PCs) are defined so that the PCs can limit a UE's ability to fully utilize its hardware capabilities in certain cases. For example, current specifications limit the UE's hardware capabilities to transmit at the maximum allowed power during uplink (UL) inter-band carrier aggregation (CA). Table 1 shows an exemplary UE PC2 standard for UL inter-band CA. Table 1 shows that even if the sum of the powers of carrier x and carrier y exceeds 26 dBm, such as 27.8 dBm in both cases b and c and 29 dBm in case d, the total power is limited to 26 dBm, which is the UE power class for UL inter-band CA. [Table 1]

[0027] A solution to the above problem may be to enable a network device to recognize that it can control the UE's UL power per band based on the UE's capabilities. In other words, the UE may report its PC-related capabilities to the network device to indicate that the UE can operate at full power in each UL band. The network device may control the UE power based on the reported PC-related UE capabilities for the band configuration used. A field may be added to the UE capability report to indicate that the UE can operate at full power in each UL band. If the field is not present in the UE capability report, the network may assume that the UE is not capable (and / or currently undesirable) of operating at full power in each UL band simultaneously.

[0028] From the UE's perspective, if the UE does not indicate to the network in its UE capability report that it is capable of operating at full power for the UL CA (and MR-DC) band configuration (sometimes referred to as UE capability fullPowerUL-CA in this document) and / or if the UE does not report a PC, a default PC (per band configuration) may be used. For example, a default PC (per band configuration) (e.g., in NR RRC, UE capability BandCombination::powerClass-v1530 or BandCombination::ue-PowerClass-v1610) may be applied. If the UE does not indicate to the network in its UE capability report that it is capable of operating at full power for the UL CA (and MR-DC) band configuration (e.g., fullPowerUL-CA) and the UE reports a PC for the UL CA band configuration, the reported PC may be applied. If the UE indicates to the network in its UE capability report that it is capable of operating at full power for the UL CA (and MR-DC) band configuration (e.g., fullPowerUL-CA), the UE indication suggests that the network device can control the UE power based on the reported PC-related per-band capability.

[0029] From the network's perspective, if there is no field indicating that the UE can operate at full power for the UL CA (and MR-DC) band configuration (e.g., fullPowerUL-CA), the network considers the UE's PC to be the default. For example, for the PC for UL CA, PC3 or PC can be explicitly signaled. Thus, the network can control each of the UE's band powers by considering the power allocation for each band within the total power for UL CA. If there is a field indicating that the UE can operate at full power for the UL CA (and MR-DC) band configuration (e.g., fullPowerUL-CA), the network can ignore the per-BC PC for UL CA, if signaled, and use only the per-band PC to control each of the UE's band powers, regardless of the per-BC power allocation.

[0030] Furthermore, if a field is present indicating that the UE is capable of operating at full power for the UL CA (and MR-DC) band configuration (e.g., fullPowerUL-CA), the PC for UL CA consists of the sum of the respective PCs for each band applicable to single-band operation. Alternatively, the UE can report additional PCs for each band in the UE Capability Report for the UL CA band configuration, which is understood to override any legacy (per band or per BC) PC signaling that may limit power.

[0031] Some advantages of the above solution may be that the exemplary embodiment can be extended to apply to UL CA as well as MR-DC. The network may be configured to maximize the UE's actual device capabilities, thereby increasing the coverage and capacity of UL CA / MR-DC. Furthermore, the network may reduce the need to update network software for newly defined PCs every time a new PC is introduced. Network operators may maximize the UE's power capabilities, giving UE / chipset vendors greater freedom in UE design. UEs with better hardware designs may operate according to the power they can achieve during UL inter-band CA mode within the network. The introduction of a technique to indicate the power class of each individual NR band for UL inter-band CA may enable the network to know the maximum achievable power per band for UL inter-band CA. Therefore, the exemplary embodiment may enable the network to optimize scheduling based on individual power.

[0032] FIG. 2 is a block diagram of a signal flow according to an example embodiment. As shown in FIG. 2, the signal flow includes communication between a UE 205 and a network device 210. The UE 205 communicates a UE capability report (e.g., via a message or signal) to the network device 210 (215). For example, the UE capability report may include power class (PC) information. The PC information may include a PC per band. For example, the PC information may include a PC (e.g., PC2 and / or PC3) for each band (e.g., Band A and / or Band B). Additionally, the PC information may include a PC per band combination (BC) for the UL CA. For example, the PC information may include a PC per BC (e.g., PC2 and / or PC3). If the PC information does not include a PC per BC, the default PC per BC may be PC3.

[0033] According to an example embodiment, the PC information may include a field indicating that the UE 205 is capable of operating at full power in each UL band, which may indicate that the UE 205 is capable of operating at full power for the UL CA (and MR-DC) band configuration (sometimes denoted as fullPowerUL-CA).

[0034] If this field is included, the network device 210 can control UL power for each band separately (220). In an exemplary embodiment, the network device 210 can determine the power class of the UE 205 as the sum of the respective NR band and / or intra-band NR CA power classes that the UE 205 supports in the individual bands and / or intra-band CA of this band combination. If a band includes more than one UL component carrier, the total power is limited to the PC of the associated band. If this field is not present, the power class of this band combination (BC) can be the reported power class, as specified, for example, in 3GPP TS38.101-1 and 3GPP TS38.101-3.

[0035] The network device 210 signals (e.g., by message or signal) the CA power per band to the UE 205 (225). The CA power per band may be a PC per BC (e.g., PC2 and / or PC3, etc.) communicated as PC information. As described above, the power class of the UE 205 may be the sum of each NR band and / or intra-band NR CA power class that the UE 205 supports in the individual bands and / or intra-band CA of this band combination. The UE 205 may then operate at a separate maximum UL CA power for each band (230). The maximum UL CA power may be the PC for the associated band reported by the UE. If a band includes more than one UL component carrier (e.g., intra-band CA), the total power may be limited to the PC for the associated band reported by the UE.

[0036] FIG. 3 is yet another block diagram of a signal flow according to an example embodiment. As shown in FIG. 3, the signal flow includes communication between the UE 205 and the network device 210. The signal flow may correspond to signaling of a UE capability report. The network device 210 communicates (310) a UE capability inquiry (e.g., via a message or signal). The UE capability inquiry may be a request for UE capability information. The UE capability inquiry may be communicated when the UE 205 becomes radio resource control (RRC) connected (305). The UE capability inquiry may be an RRC message communicated during the initial RRC registration process and / or at any time during the RRC connected state. The UE capability inquiry may include a maximum number of component carriers, for which the network device 210 requires a supported CA band configuration and a non-CA band that the UE supports.

[0037] The UE 205 may compile (or generate) UE capabilities including at least supported bands and band combinations (BCs). The UE capabilities may include RF capabilities including at least power capabilities. The power capabilities may be band capabilities or band combination capabilities. The power capabilities may include power class (PC) information for frequency bands or carrier aggregation (CA) or dual connectivity (DC) band combinations.

[0038] In response to the UE capability inquiry, the UE 205 communicates UE capability information (e.g., via a message or signal) to the network device 210 (320). The network device then determines a UE power class (PC) based on the UE capabilities (325). As discussed in more detail above, in an exemplary embodiment, the network device 210 may determine the UE 205's power class as the sum of each NR band and / or intra-band NR CA power class supported by the UE 205 in the individual bands and / or intra-band CAs of this band configuration. If a band includes more than one UL component carrier, the total power is limited to the PC of the associated band. If this field is not present, the power class of this band configuration (BC) may be the reported power class, as specified, for example, in 3GPP TS38.101-1 and 3GPP TS38.101-3.

[0039] FIG. 4 is a flow diagram illustrating a method for controlling uplink (UL) power according to an exemplary embodiment. As shown in FIG. 4, in step S405, an uplink (UL) carrier aggregation (CA) power capability report is received. For example, the UE may communicate the UE capability report to a network device (e.g., via a message or signal). The UE capability report may include power class (PC) information. The PC information may include a per-band PC. The PC information may include a PC (e.g., PC2 and / or PC3) for each band (e.g., Band A and / or Band B). Furthermore, the PC information may include a per-band combination (BC) PC for UL CA. The PC information may include a per-BC PC (e.g., PC2 and / or PC3). If the PC information does not include a per-BC PC, the default per-BC PC may be PC3. According to an exemplary embodiment, the PC information may include a field indicating that the UE is capable of operating at full power in each UL band. This field may indicate that the UE is capable of operating at full power for the UL CA (and MR-DC) band configuration (sometimes denoted as fullPowerUL-CA).

[0040] In step S410, it is determined whether the report includes a field indicating that the UE is capable of operating at full power in each UL band (e.g., fullPowerUL-CA). If the report does not include a field indicating that the UE is capable of operating at full power in each UL band, processing continues to step S415. Alternatively, if the report includes a field indicating that the UE is capable of operating at full power in each UL band, processing continues to step S425.

[0041] In step S415, the UL power is controlled based on both the total uplink power and the UL power allocation for each band in the PC for the UL CA. For example, the UL power may be the maximum UE power associated with the PC (e.g., PC2 or PC3) according to the per-band UL power allocation, and only one of the per-band UL powers may be maximum. Note that both UL powers per band may be maximum only if the PC for the UL CA is equal to the sum of the PCs per band in the CA. The UL power may be a linear value of the PC. As mentioned above, the PC may be standard-based. Then, in step S420, the UE is signaled to control the UL power based on the total UL power and the UL power for each band. For example, the UE power control is communicated (e.g., in a message or signal) to the UE.

[0042] In step S425, the UL power for each band is controlled separately. For example, the UL power class for UL CA may be determined as the sum of the respective NR band and / or intra-band NR CA power classes supported by the UE in the individual bands and / or intra-band CA of this band combination. Furthermore, the UL power class for UL CA may be determined using (or based on) the maximum output power specified in 3GPP TS38.101-1 or 3GPP TS38.101-3, which may allow the lower limit of the configured total maximum output power to be relaxed as an equal delta value associated with the aforementioned sum minus the maximum value of each NR band and / or intra-band NR CA UE power class in this band configuration. In other words, the lower limit of the configured total maximum output power is relaxed by replacing the UL power class for UL CA with the maximum value of one of the respective NR band or intra-band NR CA UE power classes for UL CA.

[0043] The UE may operate at a separate maximum UL CA power for each band. The maximum UL CA power may be the PC for the associated band reported by the UE. If a band includes more than one UL component carrier (e.g., intra-band CA), the total power may be limited to the PC for the associated band reported by the UE. Next, in step S430, the UE is signaled to control the UL power for each band separately. For example, the maximum UL CA power for each band is communicated to the UE (e.g., in a message or signal) without considering power allocation.

[0044] In an exemplary embodiment, in a formula for determining an upper limit of the total set maximum output power, the aforementioned sum is replaced with the UL power class for UL CA, while in a formula for determining a lower limit of the total set maximum output power, the maximum of the respective NR band and / or intra-band NR CA UE power classes for UL CA is replaced with the UL power class for UL CA. In other words, by substituting the UL power class for UL CA for the UL power class for UL CA instead of the sum in the formula for determining the lower limit formula, the lower limit of the total set maximum output power for UL inter-band CA is relaxed. In another exemplary embodiment, in a formula for determining an upper limit of the total set maximum output power, the aforementioned sum is replaced with the UL power class for UL CA, while in a formula for determining a lower limit of the total set maximum output power, the UL power class for UL CA is retained. In other words, by substituting the UL power class for UL CA for the UL power class for UL CA instead of the sum in the formula for determining the lower limit formula, the lower limit of the total set maximum output power for UL inter-band CA is relaxed.

[0045] An exemplary embodiment can be mathematically explained: For example, in uplink inter-band carrier aggregation with one serving cell c per operating band, where the same slot-symbol pattern is used in all aggregated serving cells, it can be: P CMAX_L =MIN{10log 10 ΣMIN[p EMAX,c / (Δt C,c ),p PowerClass,c / (MAX(mpr c ,a-mpr c ) Δt C,c Δt IB,c Δt RxSRS,c ),p PowerClass,c / pmpr c ],P EMAX,CA ,P PowerClass,CA -ΔT Full}, P CMAX_H=MIN{10log 10 Σp EMAX,c ,P EMAX,CA ,P PowerClass,CA}, p EMAX,c is the P given by the IE P‐Max of the serving cell c. EMAX,c is a linear value of p PowerClass,c is the linear value of the maximum UE power for serving cell c as specified in Table 6.2.1-1 of 3GPP TS38.101-1, without taking into account the tolerance. If the fullPowerUL‐CA field is not present, P PowerClass,CA is the maximum UE power as specified in Table 6.2A.1.3-1 of 3GPP TS38.101-1, without taking into account the tolerances as specified in Table 6.2A.1.3-1 of 3GPP TS38.101-1. p PowerClass,CA is P PowerClass,CA is a linear value of If the fullPowerUL‐CA field exists, p PowerClass,CA =Σp PowerClass,c is. Δt Full is Δt Full =Σp PowerClass,c -MAX(p PowerClass,c ) ΔT Full is a linear value of ΔT when the fullPowerUL‐CA field is present. Full applies.

[0046] Example 1 5 is a block diagram of a method for controlling uplink (UL) power according to an example embodiment. Operation S505 includes indicating support for maximum power based on per-band power classes (PCs) of radio band combinations (BCs) including two or more uplink carriers from a user equipment (UE) to a network device. Operation S510 includes applying, in the uplink power control, the maximum UE transmission according to the per-band PCs for each band in the radio BCs.

[0047] Example 2. 2. The method of embodiment 1, wherein uplink carrier aggregation (CA) is supported by the UE.

[0048] Example 3 3. The method of embodiment 2, wherein the wireless BC supports two or more uplink CAs.

[0049] Example 4. The method according to any one of embodiments 1 to 3, further comprising indicating the per-band PC for each band in the wireless BC from the UE to the network device.

[0050] Example 5. 5. The method of any one of examples 1 to 4, wherein the indicating support for the maximum power on a per band basis indicates that the UE is capable of operating at full power in each uplink band.

[0051] Example 6 The method according to any one of embodiments 1 to 5, wherein if a radio band includes two or more uplink carriers, the total power is limited to the PC of the associated radio band.

[0052] Example 7 6 is a block diagram of a method for controlling uplink (UL) power according to an example embodiment. Operation 705 includes receiving, at a network device, from a user equipment (UE) an indication of the UE's capability to support a maximum power per band of a radio band combination (BC) used by the UE. Operation 710 includes determining, based on the indication of the UE capability, whether the UE supports the maximum power per band of the radio BC. Operation 715 includes, in response to determining that the UE supports the maximum power per band of the radio BC, determining a total UE transmit power based on a sum of the maximum powers for each band in the radio BC.

[0053] Example 8 8. The method of embodiment 7, wherein the indication of the UE capability to support maximum power per band indicates that uplink carrier aggregation (CA) is supported by the UE.

[0054] Example 9. The method of Examples 7 and 8, wherein the wireless BC supports two or more uplink CAs.

[0055] Example 10. The method according to any one of examples 7 to 9, wherein the indication of the UE capability to support maximum power per band indicates that the UE can operate at full power in each uplink band.

[0056] Example 11 The method according to any one of embodiments 7 to 10, wherein the indication of the UE capability to support maximum power per band indicates that the UE can operate at full power in each uplink band.

[0057] Example 12 The method according to any one of examples 7 to 11, wherein the indication of the UE capability to support maximum power per band indicates that the UE can operate at full power in each uplink band.

[0058] Example 13 The method according to any one of examples 7 to 12, wherein the indication of the UE capability to support maximum power per band indicates that the UE can operate at full power in each uplink band.

[0059] Example 14. The method according to any one of embodiments 7 to 13, further comprising receiving, from the UE, the per-band PC for each band in the wireless BC.

[0060] Example 15. The method according to any one of Examples 7 to 14, further comprising: calculating a maximum allowed UE transmit power for each band based on a maximum power class associated with a corresponding band of the radio BC; and applying the maximum UE transmit power for each band in uplink power control without considering the per-BC power class for the radio BC.

[0061] Example 16. The method according to any one of Examples 7 to 15, wherein the indication of the UE capability to support the maximum power per band of the radio BC used by the UE is included in a UE power capability report, and if the UE power capability report does not include the indication of the UE capability to support the maximum power per band for the radio BC used by the UE, the uplink power control is based on default power control.

[0062] Example 17. The method according to any one of embodiments 7 to 16, wherein if a radio band includes two or more uplink carriers, the total power is limited to the PC for the associated radio band.

[0063] Example 18. The method of any one of Examples 7 to 17, further comprising relaxing the lower limit of the total set maximum output power as a delta value equal to the sum of the maximum powers for each band in the radio BC minus the maximum value of one of the respective NR bands or intra-band NR CA UE power classes in the corresponding band configuration.

[0064] Example 19. The method of any one of Examples 7 to 18, further comprising relaxing a set lower limit on the aggregate maximum output power by replacing the UL power class for the UL CA with the maximum value of one of the respective NR band or intra-band NR CA UE power classes for the UL CA.

[0065] Example 20. The method of any one of Examples 7 to 19, further comprising relaxing the lower limit of the total set maximum output power for UL inter-band CAs by substituting the UL power class for the UL CAs instead of the sum in the formula for determining the lower limit with the UL power class for the UL CAs.

[0066] Example 21. A non-transitory computer-readable storage medium comprising instructions stored thereon, the instructions being configured, when executed by at least one processor, to cause a computing system to perform a method according to any one of Examples 1 to 20.

[0067] Example 22. An apparatus comprising means for carrying out the method according to any one of Examples 1 to 20.

[0068] Example 23. An apparatus comprising at least one processor and at least one memory containing computer program code, wherein the at least one memory and the computer program code, together with the at least one processor, are configured to cause the apparatus to perform a method described in at least any one of Examples 1 to 20.

[0069] 7 is a block diagram of a radio station 700 or radio node or network node 700 according to an example embodiment. According to an example embodiment, the radio node or radio station or network node 700 may include, for example, one or more of an AP, BS, gNB, RAN node, relay node, UE or user device, network node, network entity, DU, CU-CP, CU-UP, ..., or other node.

[0070] The wireless station 700 may include, for example, one or more (e.g., two as shown in FIG. 7) radio frequency (RF) transceivers or wireless transceivers 702A, 702B, each including a transmitter for transmitting signals and a receiver for receiving signals. The wireless station also includes a processor or control unit / entity (controller) 704 for executing instructions or software and controlling the transmission and reception of signals, and a memory 706 for storing data and / or instructions.

[0071] The processor 704 may also perform decisions or determinations, generate frames, packets, or messages for transmission, decode received frames or messages for further processing, and other tasks or functions described herein. The processor 704, which may be a baseband processor, may, for example, generate messages, packets, frames, or other signals for transmission via the wireless transceiver 702 (702A or 702B). The processor 704 may control the transmission of signals or messages over a wireless network and may control the reception of signals or messages, etc. over the wireless network (e.g., after being downconverted by the wireless transceiver 702). The processor 704 may be programmable and capable of executing software or other instructions stored in memory or other computer media to perform various tasks and functions described above, such as one or more of the tasks or methods described above. The processor 704 may, for example, be (or include) hardware, programmable logic, a programmable processor executing software or firmware, and / or any combination thereof. Using other terminology, the processor 704 and the transceiver 702 may collectively be considered, for example, a wireless transmitter / receiver system.

[0072] Further, with reference to FIG. 7, controller (or processor) 708 may execute software and instructions to provide overall control of station 700, to provide control of other systems not shown in FIG. 7, such as control of input / output devices (e.g., display, keypad), and / or to execute software for one or more applications that may be provided in wireless station 700, such as an email program, an audio / video application, a word processor, a voice-over-IP application, or other applications or software.

[0073] Additionally, a storage medium may be provided that includes stored instructions that, when executed by a controller or processor, may cause processor 704, or another controller or processor, to perform one or more of the functions or tasks described above.

[0074] According to another exemplary embodiment, the RF or wireless transceiver(s) 702A / 702B may receive signals or data and / or transmit signals or data, and the processor 704 (and possibly the transceivers 702A / 702B) may control the RF or wireless transceiver 702A or 702B to receive, transmit, broadcast, or transmit signals or data.

[0075] However, the exemplary embodiments are not limited to the systems given as examples, and those skilled in the art can apply the solutions to other communication systems. Another example of a suitable communication system is a 5G system. The network architecture of 5G is expected to be very similar to that of LTE-Advanced. 5G may use multiple-input multiple-output (MIMO) antennas, many more base stations or nodes than LTE (the so-called small cell concept), including macro sites operating in conjunction with smaller stations, and possibly employ different radio technologies for better coverage and increased data rates.

[0076] It should be understood that future networks will likely utilize network function virtualization (NFV), which is a network architecture concept that proposes virtualizing network node functions into "building blocks" or entities that can be operatively connected or linked together to provide services. A virtualized network function (VNF) may comprise one or more virtual machines that run computer program code using standard or generic-type servers instead of customized hardware. Cloud computing or data storage may also be utilized. In wireless communications, this may mean that node operations may be performed, at least in part, on a server, host, or node operatively connected to a remote radio head. It is also possible that node operations may be distributed across multiple servers, nodes, or hosts. It should also be understood that the division of labor between core network operations and base station operations may differ from, or even not exist, as in, LTE.

[0077] Exemplary embodiments of the various techniques described herein may be implemented in digital electronic circuitry, or in computer hardware, firmware, software, or combinations of these. Exemplary embodiments may be implemented as a computer program product, i.e., a computer program tangibly embodied in an information medium, e.g., a machine-readable storage device or a propagated signal, for execution by or control the operation of a data processing device, e.g., a programmable processor, a computer, or multiple computers. Embodiments may also be provided on a computer-readable medium or computer-readable storage medium, which may be a non-transitory medium. Embodiments of the various techniques may also include embodiments provided via a transitory signal or medium and / or embodiments of programs and / or software downloadable via the Internet or other network(s), wired and / or wireless networks. Furthermore, embodiments may be provided via machine-type communications (MTC) and the Internet of Things (IoT).

[0078] The computer program may be in source code form, object code form, or some intermediate form, and may be stored on some kind of carrier, distribution medium, or computer-readable medium, which may be any entity or device capable of carrying a program. Such carriers include, for example, recording media, computer memory, read-only memory, optical and / or electrical carrier signals, telecommunications signals, and software distribution packages. The computer program may be executed on a single electronic digital computer, or distributed among several computers, depending on the processing power required.

[0079] Additionally, exemplary embodiments of the various techniques described herein may use cyber-physical systems (CPSs), which are systems that coordinate computational elements to control physical entities. CPSs may enable the realization and utilization of a large number of interconnected ICT devices (sensors, actuators, processor microcontrollers, etc.) embedded in physical objects in various locations. Mobile cyber-physical systems, in which the physical systems of interest have inherent mobility, are a subcategory of cyber-physical systems. Examples of mobile physical systems include mobile robotic devices and mobile electronic devices carried by humans or animals. The increasing popularity of smartphones has led to increased interest in the field of mobile cyber-physical systems. Accordingly, various embodiments of the techniques described herein may be provided via one or more of these technologies.

[0080] Computer programs such as the aforementioned computer program(s) may be written in any type of programming language, including compiled or interpreted languages, and may be implemented in any form, including a stand-alone program or a module, component, subroutine, or other unit or portion thereof, suitable for use in a computing environment. A computer program may be implemented to be executed on one computer or on multiple computers located at a single site or distributed across multiple sites and interconnected by a communication network.

[0081] Method steps may be performed by one or more programmable processors executing computer programs or computer program portions that perform functions by processing input data and generating output. Method steps may also be performed by, and an apparatus may be implemented as, special purpose logic circuitry, such as an FPGA (Field Programmable Gate Array) or an ASIC (Application Specific Integrated Circuit).

[0082] Processors suitable for executing a computer program include, by way of example, both general-purpose and special-purpose microprocessors, and any one or more processors of any kind of digital computer, chip, or chipset. Typically, a processor receives instructions and data from a read-only memory or a random-access memory, or both. Elements of a computer may include at least one processor for executing instructions and one or more memory devices for storing instructions and data. Typically, a computer will also include one or more mass storage devices for storing data, such as magnetic, magneto-optical, or optical disks, or be operatively connected to receive data from, transfer data to, or both of, the one or more mass storage devices. Suitable information media for embodying computer program instructions and data include all forms of non-volatile memory, including, by way of example, semiconductor memory devices such as EPROM, EEPROM, and flash memory devices; magnetic disks, such as internal hard disks or removable disks; magneto-optical disks; and CD-ROM and DVD-ROM disks. The processor and memory may be supplemented by, or incorporated in, special-purpose logic circuitry.

[0083] To provide for interaction with a user, embodiments may be implemented on a computer having a display device, such as a cathode ray tube (CRT) or liquid crystal display (LCD) monitor, for displaying information to a user, and a user interface, such as a keyboard and a pointing device, such as a mouse or trackball, for allowing the user to enter computer input. Other types of devices may be used to provide for interaction with a user as well; for example, feedback provided to the user may be any form of sensory feedback, such as visual feedback, auditory feedback, or tactile feedback, and input from the user may be received in any form, including voice input, speech input, or tactile input.

[0084] Exemplary embodiments may be implemented in a computing system including back-end components, such as a data server, or middleware components, such as an application server, or front-end components, such as a client computer having a graphical user interface or web browser that allows a user to interact with the embodiments, or any combination of such back-end, middleware, or front-end components. The components may be interconnected by any form or medium of digital data communication, e.g., a communications network. Examples of communications networks include local area networks (LANs) and wide area networks (WANs), such as the Internet.

[0085] While certain features of the described embodiments have been illustrated as set forth herein, numerous modifications, substitutions, changes, and equivalents will occur to those skilled in the art. It is therefore to be understood that the appended claims are intended to cover all such modifications and variations that fall within the true spirit of the various embodiments.

Claims

1. A user equipment (UE), at least one processor; At least one memory, which when executed by the at least one processor, causes the UE to Indicating support for maximum power per band for a radio band combination (BC) including two or more uplink carriers from the UE to a network device; operating at a maximum UE transmit power (PCMAX) across the two or more uplink carriers, wherein an upper limit value (PCMAX_H) for PCMAX and a lower limit value (PCMAX_L) for PCMAX are each determined using a sum of per-band power classes (PC) for each of the radio bands in the radio BC; at least one memory storing instructions for causing the A user equipment (UE) comprising:

2. 10. The UE of claim 1, wherein uplink carrier aggregation (ULCA) is supported by the UE.

3. The UE of claim 2 , wherein the radio BC supports two or more uplink carrier aggregations (ULCAs).

4. The instructions, when executed by the at least one processor, cause the UE to: indicating, from the UE to the network device, the per-band PC for each band in the wireless BC; The UE of claim 1 , further comprising:

5. 10. The UE of claim 1, wherein the indicating support for the maximum power on a per band basis indicates that the UE is capable of operating at full power in each uplink band.

6. 1. A network device, comprising: at least one processor; at least one memory that, when executed by the at least one processor, causes the network device to receiving, from a user equipment (UE), an indication of UE capability to support a maximum power per band for a radio band combination (BC) including two or more uplink carriers used by the UE; determining whether the UE supports a maximum power per band for the radio BC based on the indication of the UE capability; In response to determining that the UE supports a per-band maximum power for the radio BC, determining a maximum UE transmit power (PCMAX) across the two or more uplink carriers, wherein an upper limit value (PCMAX_H) for PCMAX and a lower limit value (PCMAX_L) for PCMAX are each determined using a sum of per-band power classes (PC) for each of the radio bands in the radio BC; at least one memory storing instructions for causing the A network device comprising:

7. 7. The network device of claim 6, wherein the indication of a UE capability to support maximum power per band indicates that uplink carrier aggregation (ULCA) is supported by the UE.

8. The network device of claim 7 , wherein the wireless BC supports two or more uplink carrier aggregations (ULCAs).

9. 7. The network device of claim 6, wherein the indication of UE capability to support maximum power per band indicates that the UE is capable of operating at full power in each uplink band.

10. When executed by the at least one processor, the network device: receiving, from the UE, a per-band power class for each band in the radio BC; The network device of claim 6 , further comprising instructions to:

11. When executed by the at least one processor, the network device: calculating a maximum allowed UE transmit power for each band based on a maximum power class associated with the corresponding band for the radio BC; In uplink power control, applying the maximum power for each band without considering the per-band power class for the radio base station; The network device of claim 6 , further comprising instructions to further execute:

12. the indication of the UE capability to support the maximum power per band for the radio BC used by the UE is included in a UE power capability report; If the UE power capability report does not include the indication of the UE capability to support the maximum power per band for the radio BC used by the UE, uplink power control is based on default power control. The network device of claim 6 .

13. When executed by the at least one processor, the network device: Relaxing the lower limit of the total configured maximum output power as a delta value equal to the sum of the maximum power of each band in the radio BC minus the maximum value of one of each NR band or intra-band NR CA UE power class in the corresponding band configuration; The network device of claim 6 , further comprising instructions to further execute:

14. When executed by the at least one processor, the network device: Relaxing the configured lower limit on the aggregate maximum output power by replacing the UL power class for an uplink carrier aggregation (UL CA) with the maximum value of one of the respective NR band or intra-band NR CA UE power classes for the uplink carrier aggregation (UL CA); The network device of claim 6 , further comprising instructions to further execute:

15. When executed by the at least one processor, the network device: relaxing a lower limit on the aggregate of configured maximum output power for uplink carrier aggregation (UL inter-band CA) by substituting the UL power class for the uplink carrier aggregation (UL CA) instead of the sum in a formula for determining the lower limit with the UL power class for the UL CA; The network device of claim 14 , further comprising instructions to:

16. A non-transitory computer-readable storage medium having stored thereon instructions that, when executed by at least one processor, receiving, at a network device, from a user equipment (UE), an indication of a UE capability of supporting a maximum power per band for a radio band combination (BC) including two or more uplink carriers used by the UE; determining whether the UE supports a maximum power per band for the radio BC based on the indication of the UE capability; In response to determining that the UE supports a maximum power per band for the radio BC, determining a maximum UE transmit power (PCMAX) across the two or more uplink carriers, wherein an upper limit value (PCMAX_H) for PCMAX and a lower limit value (PCMAX_L) for PCMAX are each determined using a sum of per-band power classes for each of the radio bands in the radio BC; A non-transitory computer-readable storage medium configured to cause a computing system to execute the method.

17. 17. The non-transitory computer-readable storage medium of claim 16, wherein the indication of a UE capability to support maximum power per band indicates that uplink carrier aggregation (ULCA) is supported by the UE.

18. the indication of the UE capability to support the maximum power per band for the radio BC used by the UE is included in a UE power capability report; If the UE power capability report does not include the indication of the UE capability to support the maximum power per band for the radio BC used by the UE, uplink power control is based on default power control.

17. The non-transitory computer-readable storage medium of claim 16.

19. 1. A method comprising: Indicating support for maximum power per band for a radio band combination (BC) including two or more uplink carriers from a user equipment (UE) to a network device; operating at a maximum UE transmit power (PCMAX) across the two or more uplink carriers, wherein an upper limit value (PCMAX_H) for PCMAX and a lower limit value (PCMAX_L) for PCMAX are each determined using a sum of per-band power classes (PC) for each of the radio bands in the radio BC; A method comprising:

20. 20. The method of claim 19, wherein uplink carrier aggregation (ULCA) is supported by the UE.

21. The method of claim 20 , wherein the wireless BC supports two or more uplink CAs.

22. 20. The method of claim 19, further comprising indicating the per-band PC for each band in the wireless BC from the UE to the network device.

23. 20. The method of claim 19, wherein the indicating support for the maximum power on a per band basis indicates that the UE is capable of operating at full power in each uplink band.

Citation Information

Patent Citations

  • User device and transmission power control method

    JP2020048002A