Prioritized Two-Step Radio Access Channel (RACH) Method in New Radio (NR)

A prioritized two-step RACH method with enhanced power ramping and scaling factors addresses the lack of standardization in URLLC systems, improving latency and reliability for critical applications.

JP7811958B2Active Publication Date: 2026-02-06TELEFONAKTIEBOLAGET LM ERICSSON (PUBL)
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Patent Information

Application Number
JP2024002973
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2019-05-02
Filing Date
2024-01-12
Publication Date
2026-02-06
Estimated Expiration
2040-05-04

AI Technical Summary

Technical Problem

Existing wireless communication systems lack standardized methods for prioritizing two-step random access channel (RACH) signaling, particularly in ultra-reliable low-latency communications (URLLC) scenarios, which are crucial for applications like factory automation and remote driving, where latency and reliability are paramount.

Method used

Implementing a prioritized two-step RACH method with separate configurations for power ramping steps and back-off indicators, where the power ramping step size for the first configuration is larger than that of the second, and the scaling factor for the first configuration is tailored for contention-based or contention-free random access, ensuring higher priority for URLLC traffic.

Benefits of technology

Enhances the reliability and efficiency of URLLC communications by prioritizing two-step RACH, reducing latency and improving power utilization, thereby supporting critical applications with stringent latency and reliability requirements.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

To provide methods, network nodes and wireless devices of prioritized 2-step radio access (RACH) in new radio (NR).SOLUTION: In a network node, a method with processing circuitry comprises: transmitting a first configuration for prioritized 2-step random access (RA) signaling, where the first configuration includes at least a power ramping step and is configured separately from a second configuration for RA signaling; and performing the prioritized 2-step RA signaling based on the power ramping step of the first configuration.SELECTED DRAWING: Figure 10
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Description

[Technical Field]

[0001] Wireless communications, specifically prioritized two-step random access channel (RACH) signaling. [Background technology]

[0002] Ultra-reliable low latency communications (URLLC), two-step random access (RA) in New Radio (NR) Release 16 (i.e., 3rd Generation Partnership Project (3GPP) Release 16), and power reduction priority in NR Release 15 are described below. NR is also referred to as "5G."

[0003] URLLC Service Ultra-reliable low-latency communications (URLLC) is one of the categories of NR use cases. URLLC relates to services for latency-sensitive devices for applications such as factory automation, power distribution, and remote driving. URLLC may have stringent requirements for transmission reliability and latency; for example, 99.9999% reliability within 1 ms one-way latency may be required. In NR Release (Rel) 15 (also known as 3GPP Release 15), several new features and enhancements were introduced to support one or more of these requirements. In NR Rel-16, standardization work focused on further improving URLLC system performance and ensuring reliable and efficient coexistence of URLLC and other NR use cases.

[0004] One type of NR Internet of Things (NR-IoT) device may handle communications for multiple service types, e.g., periodic URLLC-type robot control messages, occasional alarm signals of URLLC type (for which periodic resources may need to be configured), occasional sensor data transmissions, occasional video transmissions, or other mobile broadband (MBB)-type traffic such as software updates. This may lead to a traffic mix that may be multiplexed by the wireless device for UL transmissions, i.e., communication traffic mix on multiple MAC logical channels with different priorities that may need to be configured.

[0005] When a mix of traffic coexists on a channel, URLLC type traffic may need to be treated with higher priority due to its low latency requirements, etc. For example, inter-wireless device prioritization, in which URLLC wireless device transmissions are prioritized over eMBB wireless device transmissions, is being studied for specification in 3GPP Rel-16. Additionally, intra-wireless device prioritization / multiplexing is also being specified in 3GPP Rel-16, in which URLLC transmissions can preempt eMBB transmissions of the same wireless device.

[0006] In addition to the control and data channels after the Radio Resource Control (RRC) connection, random access procedures to support high reliability and low latency traffic may also need to have priority treatment.

[0007] 2-step RA and 4-step RA in NR, i.e., normal / common RA signaling in NR 4-step RA procedure in NR A four-step approach may be used for the random access procedure, which is shown in Figure 1. In this approach, a wireless device detects a synchronization signal (SS) and decodes broadcasted system information, then transmits a PRACH preamble (Message 1) in the uplink. A network node (e.g., a gNB) replies with a RAR (Random Access Response, Message 2). The wireless device then transmits wireless device identification information (Message 3) on the PUSCH.

[0008] The wireless device transmits the PUSCH (Message 3) after receiving the timing advance command in the RAR, which allows the PUSCH to be received with timing accuracy within the cyclic prefix. Without this timing advance, a very large cyclic prefix (CP) may be required to be able to demodulate and detect the PUSCH unless the system is applied in cells with very small distances between the wireless device and the network node. Because NR may support larger cells, which entails the need to provide timing advance to the wireless device, a four-step approach may be required for the random access procedure.

[0009] Two-Step RACH Work Item for 3GPP Release 16 A two-step RACH work item was approved for further study.

[0010] Completing the initial access in only two steps is shown in FIG. 2 and described below. - Step 1: The wireless device sends a message A containing a random access preamble together with higher layer data such as an RRC connection request, possibly with some small payload on the PUSCH. Step 2: The network node sends a RAR (called message B) containing, among other things, a wireless device identifier allocation, timing advance information, and a contention resolution message.

[0011] Non-priority 4-step RACH The information element (IE) Random Access Channel (RACH)-ConfigGeneric can be used to specify random access parameters for both normal random access as well as beam failure recovery. TIFF0007811958000001.tif111170

[0012] If the 4-step RACH is not preferred, the power ramping step size follows the powerRampingStep in the RACH-ConfigGeneric IE. See the 3GPP Technical Specification (TS) 38.321 text below. 1>Set PREAMBLE_POWER_RAMPING_STEP to powerRampingStep. The scaling factor for the backoff indicator is set to 1. See the 3GPP TS38.321 text below. 1>Set SCALING_FACTOR_BI to 1. The backoff parameter values ​​are presented in Table 7.2-1 of 3GPP TS38.321, which is reproduced below. TIFF0007811958000002.tif100170

[0013] Prioritized 4-step RACH in NR Rel-15 (i.e., 3GPP Rel-15) In 3GPP Rel-15, a preferred RACH can be configured for a four-step RACH, which is applicable to a random access procedure initiated for beam failure recovery or for handover.

[0014] The IE RA-Prioritization may be used to set priority random access. TIFF0007811958000003.tif70170TIFF0007811958000004.tif46170

[0015] However, there is no standardization for a prioritized two-step RACH. Summary of the Invention

[0016] Some embodiments advantageously provide methods, systems, and apparatus for prioritized two-step random access channel (RACH) signaling.

[0017] The present disclosure provides a different method for prioritizing a two-step RACH msgA, where msgA consists of a random access preamble part and a PUSCH part.

[0018] According to one aspect of the present disclosure, there is provided a network node configured to communicate with a wireless device, the network node comprising: a processing circuit configured to: transmit a first configuration for prioritized two-step random access (RA) signaling, the first configuration including at least a power ramping step and configured separately from a second configuration for the RA signaling; and perform the prioritized two-step RA signaling based on the power ramping step of the first configuration.

[0019] According to one or more embodiments of this aspect, the power ramping step of the first setting has a power step size that is larger than the power step size of the second setting. According to one or more embodiments of this aspect, the RA signaling associated with the second setting is one of four-step RA signaling and two-step RA signaling. According to one or more embodiments of this aspect, the first setting for the prioritized two-step RA signaling includes a scaling factor for the back-off indicator. According to one or more embodiments of this aspect, the scaling factor associated with the first setting corresponds to the scaling factor configured for the four-step RA signaling. According to one or more embodiments of this aspect, the scaling factor associated with the first setting is configured to be implemented for at least one of contention-based random access, contention-free based random access in prioritized two-step RA signaling, and contention-based random access and contention-free random access in prioritized two-step RA signaling when contention-free random access is not supported by the prioritized two-step RA signaling.

[0020] According to one or more embodiments of this aspect, the first configuration is applied to a message, the message including one of a random access preamble portion, a random access preamble portion and a physical uplink shared channel (PUSCH) portion. According to one or more embodiments of this aspect, transmitting the first configuration corresponds to broadcasting the first configuration in a system information block (SIB). According to one or more embodiments of this aspect, the SIB includes the second configuration. According to one or more embodiments of this aspect, a power ramping step of the first configuration corresponds to a power step size for four-step RA signaling associated with the second configuration and is one of greater than a power step size for four-step RA signaling associated with the second configuration.

[0021] According to one or more embodiments of this aspect, the power ramping step of the first configuration reuses the power step size configured for the 4-step RA signaling associated with the second configuration. According to one or more embodiments of this aspect, the first configuration is configured for contention-free based random access and the second configuration is configured for contention-based random access. According to one or more embodiments of this aspect, the scaling factor of the first configuration corresponds to a time window for selecting a back-off time that is shorter than the time window for selecting a back-off time in the second configuration for RA signaling.

[0022] According to another aspect of the present disclosure, there is provided a wireless device configured to communicate with a network node, the wireless device comprising: The present invention comprises a processing circuit configured to receive a first configuration for prioritized two-step random access (RA) signaling, the first configuration including at least a power ramping step and configured separately from a second configuration for the RA signaling, and to perform prioritized two-step RA signaling based on the power ramping step of the first configuration.

[0023] According to one or more embodiments of this aspect, the power ramping step of the first setting has a power step size that is larger than the power step size of the second setting. According to one or more embodiments of this aspect, the RA signaling associated with the second setting is one of four-step RA signaling and two-step RA signaling. According to one or more embodiments of this aspect, the first setting for prioritized two-step RA signaling includes a scaling factor for the back-off indicator.

[0024] According to one or more embodiments of this aspect, the scaling factor associated with the first configuration corresponds to a scaling factor configured for 4-step RA signaling. According to one or more embodiments of this aspect, the scaling factor associated with the first configuration is configured to be implemented for at least one of contention-based random access when contention-free random access is not supported by prioritized 2-step RA signaling, contention-free based random access in prioritized 2-step RA signaling, and contention-based random access and contention-free random access in prioritized 2-step RA signaling. According to one or more embodiments of this aspect, the processing circuit is further configured to apply the first configuration to a message, the message including one of a random access preamble portion, a random access preamble portion and a physical uplink shared channel (PUSCH) portion.

[0025] According to one or more embodiments of this aspect, the first configuration is received in a broadcast of a system information block (SIB). According to one or more embodiments of this aspect, the SIB includes the second configuration. According to one or more embodiments of this aspect, a power ramping step of the first configuration corresponds to a power step size for 4-step RA signaling associated with the second configuration and is one of greater than a power step size for 4-step RA signaling associated with the second configuration. According to one or more embodiments of this aspect, the power ramping step of the first configuration reuses the power step size configured for 4-step RA signaling associated with the second configuration.

[0026] According to one or more embodiments of this aspect, the first configuration is configured for contention-free based random access and the second configuration is configured for contention-based random access. According to one or more embodiments of this aspect, the scaling factor of the first configuration corresponds to a time window for selecting a back-off time that is shorter than the time window for selecting a back-off time in the second configuration for RA signaling.

[0027] According to another aspect of the present disclosure, there is provided a method implemented by a network node configured to communicate with a wireless device, wherein a first configuration for prioritized two-step random access (RA) signaling is transmitted, the first configuration including at least a power ramping step and configured separately from a second configuration for the RA signaling, and the prioritized two-step RA signaling is performed based on the power ramping step of the first configuration.

[0028] According to one or more embodiments of this aspect, the power ramping step of the first setting has a power step size that is larger than the power step size of the second setting. According to one or more embodiments of this aspect, the RA signaling associated with the second setting is one of four-step RA signaling and two-step RA signaling. According to one or more embodiments of this aspect, the first setting for the prioritized two-step RA signaling includes a scaling factor for the back-off indicator. According to one or more embodiments of this aspect, the scaling factor associated with the first setting corresponds to the scaling factor configured for the four-step RA signaling.

[0029] According to one or more embodiments of this aspect, the scaling factor associated with the first configuration is configured to be implemented for at least one of contention-based random access when contention-free random access is not supported by prioritized two-step RA signaling, contention-free based random access in prioritized two-step RA signaling, and contention-based random access and contention-free random access in prioritized two-step RA signaling. According to one or more embodiments of this aspect, the first configuration is applied to a message, the message including one of a random access preamble portion, a random access preamble portion and a physical uplink shared channel (PUSCH) portion. According to one or more embodiments of this aspect, transmitting the first configuration corresponds to broadcasting the first configuration in a system information block (SIB).

[0030] According to one or more embodiments of this aspect, the SIB includes a second configuration. According to one or more embodiments of this aspect, a power ramping step of the first configuration corresponds to a power step size for 4-step RA signaling associated with the second configuration and is one of greater than a power step size for 4-step RA signaling associated with the second configuration. According to one or more embodiments of this aspect, the power ramping step of the first configuration reuses the power step size set for 4-step RA signaling associated with the second configuration.

[0031] According to one or more embodiments of this aspect, the first configuration is configured for contention-free based random access and the second configuration is configured for contention-based random access. According to one or more embodiments of this aspect, the scaling factor of the first configuration corresponds to a time window for selecting a back-off time that is shorter than the time window for selecting a back-off time in the second configuration for RA signaling.

[0032] According to another aspect of the present disclosure, there is provided a method implemented by a wireless device configured to communicate with a network node.

[0033] A first setting for prioritized two-step random access (RA) signaling is received, the first setting including at least a power ramping step and set separately from a second setting for the RA signaling, and the prioritized two-step RA signaling is implemented based on the power ramping step of the first setting.

[0034] According to one or more embodiments of this aspect, the power ramping step of the first setting has a power step size that is larger than the power step size of the second setting. According to one or more embodiments of this aspect, the RA signaling associated with the second setting is one of four-step RA signaling and two-step RA signaling. According to one or more embodiments of this aspect, the first setting for prioritized two-step RA signaling includes a scaling factor for the back-off indicator.

[0035] According to one or more embodiments of this aspect, the scaling factor associated with the first configuration corresponds to a scaling factor configured for 4-step RA signaling. According to one or more embodiments of this aspect, the scaling factor associated with the first configuration is configured to be implemented for at least one of contention-based random access when contention-free random access is not supported by prioritized 2-step RA signaling, contention-free based random access in prioritized 2-step RA signaling, and contention-based random access and contention-free random access in prioritized 2-step RA signaling. According to one or more embodiments of this aspect, the first configuration is applied to a message, the message including one of a random access preamble portion, a random access preamble portion and a physical uplink shared channel (PUSCH) portion.

[0036] According to one or more embodiments of this aspect, the first configuration is received in a broadcast of a system information block (SIB). According to one or more embodiments of this aspect, the SIB includes the second configuration. According to one or more embodiments of this aspect, a power ramping step of the first configuration corresponds to and is greater than a power step size for 4-step RA signaling associated with the second configuration.

[0037] According to one or more embodiments of this aspect, the power ramping step of the first configuration reuses the power step size configured for the 4-step RA signaling associated with the second configuration. According to one or more embodiments of this aspect, the first configuration is configured for contention-free based random access and the second configuration is configured for contention-based random access. According to one or more embodiments of this aspect, the scaling factor of the first configuration corresponds to a time window for selecting a back-off time that is shorter than the time window for selecting a back-off time in the second configuration for RA signaling.

[0038] A more complete understanding of the present embodiments, and their attendant advantages and features, will be more readily appreciated by reference to the following detailed description when considered in conjunction with the accompanying drawings, in which: [Brief explanation of the drawings]

[0039] [Figure 1] FIG. 1 is a signaling diagram of a four-step random access procedure. [Figure 2] FIG. 1 is a signaling diagram of a two-step initial access procedure. [Figure 3] 1 is a schematic diagram of an exemplary network architecture illustrating a communication system connected to a host computer through an intermediate network in accordance with principles of the present disclosure; [Figure 4]1 is a block diagram of a host computer communicating with a wireless device via a network node, at least partially over a wireless connection, in accordance with some embodiments of the present disclosure. FIG. [Figure 5] 1 is a flowchart illustrating an exemplary method implemented in a communication system including a host computer, a network node, and a wireless device for executing a client application on a wireless device, according to some embodiments of the present disclosure. [Figure 6] 1 is a flowchart illustrating an exemplary method implemented in a communication system including a host computer, a network node, and a wireless device for receiving user data at a wireless device, in accordance with some embodiments of the present disclosure. [Figure 7] 1 is a flowchart illustrating an exemplary method implemented in a communication system including a host computer, a network node, and a wireless device for receiving user data at a host computer from a wireless device, in accordance with some embodiments of the present disclosure. [Figure 8] 1 is a flowchart illustrating an exemplary method implemented in a communication system including a host computer, a network node, and a wireless device for receiving user data at a host computer, in accordance with some embodiments of the present disclosure. [Figure 9] 1 is a flowchart of an example process in a network node, in accordance with some embodiments of the present disclosure. [Figure 10] 10 is a flowchart of another example process in a network node, in accordance with some embodiments of the present disclosure. [Figure 11] 1 is a flowchart of an example process in a wireless device according to some embodiments of the present disclosure. [Figure 12] 10 is a flowchart of another example process in a wireless device according to some embodiments of the present disclosure. DETAILED DESCRIPTION OF THE INVENTION

[0040] Before describing the exemplary embodiments in detail, it should be noted that the embodiments reside primarily in a combination of device components and processing steps related to prioritized two-step random access channel (RACH) signaling. Accordingly, where appropriate, components are represented by conventional symbols in the drawings and only those specific details relevant to understanding the embodiments are shown, so as not to obscure the present disclosure with details that will be readily apparent to those skilled in the art having the benefit of the description herein. Like numbers refer to like elements throughout the description.

[0041] As used herein, relational terms such as “first” and “second,” “upper” and “lower,” etc., may be used merely to distinguish one entity or element from another, without necessarily requiring or implying any physical or logical relationship or order between such entities or elements. The terminology used herein is merely for the purpose of describing particular embodiments and is not intended to limit the concepts described herein. As used herein, the singular forms “a,” “an,” and “the” are intended to include the plural forms unless the context clearly dictates otherwise. Furthermore, as used herein, the terms “comprises,” “comprising,” “includes,” and / or “including” will be understood to specify the presence of stated features, integers, steps, operations, elements, and / or components, but do not exclude the presence or addition of one or more other features, integers, steps, operations, elements, components, and / or groups thereof.

[0042] In the embodiments described herein, joining terms such as "in communication with" may be used to indicate electrical or data communication that may be achieved, for example, by physical contact, induction, electromagnetic radiation, radio signaling, infrared signaling, or optical signaling. Those skilled in the art will appreciate that multiple components may interoperate and that modifications and variations are possible in achieving electrical and data communication.

[0043] In some embodiments described herein, the terms "coupled," "connected," and the like may be used herein to indicate a connection, although not necessarily a direct connection, and may include a wired and / or wireless connection.

[0044] The term "network node" as used herein may be any kind of network node provided in a wireless network, which may further comprise any of a base station (BS), radio base station, base transceiver station (BTS), base station controller (BSC), radio network controller (RNC), gNodeB (gNB), evolved node B (eNB or eNodeB), Node B, MSR radio node such as a multi-standard radio (MSR) BS, multi-cell / multicast coordination entity (MCE), integrated radio access backhaul (IAB) node, relay node, donor node controlled relay, radio access point (AP), transmission point, transmitting node, remote radio unit (RRU), remote radio head (RRH), core network node (e.g., mobility management entity (MME), self-organizing network (SON) node, coordination node, positioning node, MDT node, etc.), external node (e.g., third party node, node outside the current network), node in a distributed antenna system (DAS), spectrum access system (SAS) node, element management system (EMS), etc. The network node may also include test equipment. As used herein, the term "wireless node" may also be used to refer to a wireless device (WD) such as a wireless device (WD) or a wireless network node.

[0045] In some embodiments, the non-limiting terms wireless device (WD) or user equipment (UE) are used interchangeably. A WD herein may be any type of wireless device capable of communicating with a network node or another WD via wireless signals, such as a wireless device (WD). A WD may also be a wireless communication device, a target device, a device-to-device (D2D) WD, a machine-type WD or a WD capable of machine-to-machine communication (M2M), a low-cost and / or low-complexity WD, a sensor equipped with a WD, a tablet, a mobile terminal, a smartphone, a laptop embedded equipment (LEE), a laptop mounted equipment (LME), a USB dongle, a customer premises equipment (CPE), an Internet of Things (IoT) device, or a narrowband IoT (NB-IOT) device, etc.

[0046] Also, in some embodiments, the general term "radio network node" is used. The radio network node may be any type of radio network node, which may comprise a base station, a radio base station, a base transceiver station, a base station controller, a network controller, an RNC, an evolved Node B (eNB), a Node B, a gNB, a multi-cell / multicast coordination entity (MCE), an IAB node, a relay node, an access point, a radio access point, a remote radio unit (RRU), or a remote radio head (RRH).

[0047] The indication may generally explicitly and / or implicitly indicate the information that the indication represents and / or indicates. Implicit indications may be based, for example, on the location and / or resources used for transmission. Explicit indications may be based, for example, on parameterization, involving one or more parameters, one or more indexes, and / or one or more bit patterns representing the information.

[0048] Transmitting in the downlink may refer to transmission from a network or network node to a terminal. Transmitting in the uplink may refer to transmission from a terminal to a network or network node. Transmitting in the sidelink may refer to (direct) transmission from one terminal to another terminal. Uplink, downlink, and sidelink (e.g., sidelink transmission and reception) may be considered as communication directions. In some variations, uplink and downlink may also be used to describe wireless communication between network nodes, for example, for wireless backhaul and / or relay communication and / or (wireless) network communication, particularly communication terminating in such, e.g., between base stations or similar network nodes. Backhaul and / or relay communication and / or network communication may be considered to be implemented as a form of sidelink or uplink communication or the like.

[0049] Configuring a terminal or wireless device or node may involve instructing and / or causing the wireless device or node to change its configuration, e.g., at least one setting and / or register entry and / or operating mode. The terminal or wireless device or node may be adapted to configure itself, e.g., according to information or data in a memory of the terminal or wireless device. Configuring a node or terminal or wireless device by another device or node or network may refer to and / or include transmitting, by the other device or node or network, information and / or data and / or instructions, e.g., assignment data and / or scheduling data and / or scheduling grants (which may also be and / or include configuration data), to the wireless device or node. Configuring a terminal may include sending assignment / configuration data to the terminal that indicates which modulation and / or coding to use. A terminal may be configured with and / or for scheduling data and / or configured to use scheduled and / or assigned uplink resources, e.g., for transmission, and / or to use scheduled and / or assigned downlink resources, e.g., for reception. The uplink and / or downlink resources may be scheduled and / or provided with assignment or configuration data.

[0050] It should be noted that while terminology from one particular wireless system, such as 3GPP LTE and / or New Radio (NR), may be used in this disclosure, this should not be considered to limit the scope of this disclosure to only the aforementioned systems. Other wireless systems, including but not limited to Wideband Code Division Multiple Access (WCDMA), Worldwide Interoperability for Microwave Access (WiMax), Ultra Mobile Broadband (UMB), and Global System for Mobile Communications (GSM), may also benefit from utilizing the ideas covered within this disclosure.

[0051] It should be further noted that functionality described herein as being performed by a wireless device or network node may be distributed over multiple wireless devices and / or network nodes. In other words, it is contemplated that the functionality of the network nodes and wireless devices described herein is not limited to implementation by a single physical device, but may in fact be distributed among several physical devices.

[0052] Unless otherwise specified, all terms (including technical and scientific terms) used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this disclosure belongs. It will be further understood that the terms used herein should be interpreted as having a meaning in accordance with the meaning of those terms in the context of this specification and related art, and should not be interpreted in an idealized or overly formal sense unless expressly so defined herein.

[0053]

[0004] Embodiments disclosed herein provide prioritized two-step random access channel (RACH) signaling. Referring again to the drawings, where like elements are referred to by like reference numerals, FIG. 3 shows a schematic diagram of a communication system 10, such as a 3GPP-type cellular network that may support standards such as LTE and / or NR (5G), comprising an access network 12, such as a wireless access network, and a core network 14, according to one embodiment. The access network 12 comprises multiple network nodes 16a, 16b, 16c (collectively referred to as network nodes 16), such as NBs, eNBs, gNBs, or other types of wireless access points, each defining a corresponding coverage area 18a, 18b, 18c (collectively referred to as coverage area 18). Each network node 16a, 16b, 16c can be connected to the core network 14 over a wired or wireless connection 20. A first wireless device (WD) 22a located in coverage area 18a is configured to wirelessly connect to or be paged by corresponding network node 16c. A second WD 22b in coverage area 18b is wirelessly connectable to corresponding network node 16a. While multiple WDs 22a, 22b (collectively referred to as wireless devices 22) are shown in this example, the disclosed embodiments are equally applicable to situations where only one WD is in a coverage area or connects to a corresponding network node 16a. For convenience, only two WDs 22 and three network nodes 16 are shown, but it should be noted that a communication system may include more WDs 22 and network nodes 16.

[0054] It is also contemplated that the WD 22 may be in simultaneous and / or configured to communicate separately with more than one network node 16 and more than one type of network node 16. For example, the WD 22 may have dual connectivity with a network node 16 supporting LTE and the same or different network node 16 supporting NR. As an example, the WD 22 may be in communication with an eNB for LTE / E-UTRAN and a gNB for NR / NG-RAN.

[0055] The communication system 10 may itself be connected to a host computer 24, which may be embodied in hardware and / or software as a standalone server, a cloud-implemented server, a distributed server, or as a processing resource in a server farm. The host computer 24 may be owned or controlled by a service provider, or may be operated by or on behalf of the service provider. Connections 26, 28 between the communication system 10 and the host computer 24 may extend directly from the core network 14 to the host computer 24 or may extend through an optional intermediate network 30. The intermediate network 30 may be one of a public network, a private network, or a hosted network, or a combination of two or more thereof. The intermediate network 30, if present, may be a backbone network or the Internet. In some embodiments, the intermediate network 30 may comprise two or more subnetworks (not shown).

[0056] The communication system of FIG. 3 as a whole enables connectivity between one of the connected WDs 22a, 22b and the host computer 24. The connectivity may be described as an over-the-top (OTT) connection. The host computer 24 and the connected WDs 22a, 22b are configured to communicate data and / or signaling via the OTT connection, using the access network 12, the core network 14, any intermediate networks 30, and possible further infrastructure (not shown) as intermediaries. The OTT connection may be transparent in that at least some of the participating communication devices through which the OTT connection passes are unaware of the routing of the uplink and downlink communications. For example, the network node 16 may not, or need not, be informed regarding the past routing of incoming downlink communications involving data originating from the host computer 24 that is to be forwarded (e.g., handed over) to the connected WD 22a. Similarly, the network node 16 need not be aware of the future routing of outgoing uplink communications originating from the WD 22a and destined for the host computer 24.

[0057] The network node 16 is configured to include a random access channel (RACH) unit 32 configured to perform one or more network node 16 functions as described herein, such as with respect to prioritized two-step random access channel (RACH) signaling. As used herein, RACH signaling corresponds to RA signaling. The wireless device 22 is configured to include a random access (RA) unit 34 configured to perform one or more wireless device 22 functions as described herein, such as with respect to prioritized two-step random access channel (RACH) signaling.

[0058] An exemplary implementation of the WD 22, network node 16, and host computer 24 described in the previous paragraph, according to one embodiment, will now be described with reference to FIG. 4. In communication system 10, host computer 24 comprises hardware (HW) 38 including a communication interface 40 configured to set up and maintain wired or wireless connections with interfaces of different communication devices of communication system 10. Host computer 24 further comprises processing circuitry 42, which may have storage and / or processing capabilities. Processing circuitry 42 may include a processor 44 and memory 46. In particular, in addition to or instead of a processor and memory, such as a central processing unit, processing circuitry 42 may comprise integrated circuits for processing and / or control, e.g., one or more processors and / or processor cores and / or FPGAs (field programmable gate arrays) and / or ASICs (application-specific integrated circuits), adapted to execute instructions. The processor 44 may be configured to access (e.g., write to and / or read from) the memory 46, which may include any type of volatile and / or non-volatile memory, such as cache and / or buffer memory and / or RAM (random access memory) and / or ROM (read only memory) and / or optical memory and / or EPROM (erasable programmable read only memory).

[0059] Processing circuitry 42 may be configured to control any of the methods and / or processes described herein and / or cause such methods and / or processes to be performed by, for example, host computer 24. Processor 44 corresponds to one or more processors 44 for performing the host computer 24 functions described herein. Host computer 24 includes memory 46 configured to store data, programmatic software code, and / or other information described herein. In some embodiments, software 48 and / or host application 50 may include instructions that, when executed by processor 44 and / or processing circuitry 42, cause processor 44 and / or processing circuitry 42 to perform the processes described herein with respect to host computer 24. The instructions may be software associated with host computer 24.

[0060] Software 48 may be executable by processing circuitry 42. Software 48 includes host application 50. Host application 50 may be operable to provide services to remote users, such as WD 22, connecting via an OTT connection 52 that terminates at WD 22 and host computer 24. In providing services to remote users, host application 50 may provide user data that is transmitted using OTT connection 52. "User data" may be data and information, as described herein as implementing described functionality. In one embodiment, host computer 24 may be configured to provide control and functionality to a service provider and may be operated by or on behalf of the service provider. Processing circuitry 42 of host computer 24 may enable host computer 24 to observe, monitor, control, transmit to, and / or receive from network node 16 and / or wireless device 22. The processing circuitry 42 of the host computer 24 may include an information unit 54 configured to enable the service provider to process, receive, transmit, forward, relay, store, etc., information relating to and / or associated with prioritized two-step random access channel (RACH) signaling.

[0061] The communication system 10 further includes a network node 16 provided therein, the network node 16 including hardware 58 that enables the network node 16 to communicate with the host computer 24 and the WD 22. The hardware 58 may include a communication interface 60 for setting up and maintaining wired or wireless connections with interfaces of different communication devices of the communication system 10, as well as a wireless interface 62 for setting up and maintaining at least a wireless connection 64 with the WD 22 located within the coverage area 18 served by the network node 16. The wireless interface 62 may be formed as or include, for example, one or more RF transmitters, one or more RF receivers, and / or one or more RF transceivers. The communication interface 60 may be configured to facilitate a connection 66 to the host computer 24. The connection 66 may be direct, or the connection 66 may pass through the core network 14 of the communication system 10 and / or one or more intermediate networks 30 external to the communication system 10.

[0062] In the embodiment shown, the hardware 58 of the network node 16 further includes processing circuitry 68. The processing circuitry 68 may include a processor 70 and a memory 72. In particular, in addition to or instead of a processor and memory, such as a central processing unit, the processing circuitry 68 may comprise integrated circuits for processing and / or control, e.g., one or more processors and / or processor cores and / or FPGAs (field programmable gate arrays) and / or ASICs (application-specific integrated circuits), adapted to execute instructions. The processor 70 may be configured to access (e.g., write to and / or read from) the memory 72, which may include any type of volatile and / or non-volatile memory, e.g., cache and / or buffer memory and / or RAM (random access memory) and / or ROM (read-only memory) and / or optical memory and / or EPROM (erasable programmable read-only memory).

[0063] Thus, network node 16 further has software 74 stored, for example, internally in memory 72 or stored in external memory (e.g., a database, storage array, network storage device, etc.) accessible by network node 16 via an external connection. Software 74 may be executable by processing circuitry 68. Processing circuitry 68 may be configured to control any of the methods and / or processes described herein and / or cause such methods and / or processes to be performed, for example, by network node 16. Processor 70 corresponds to one or more processors 70 for performing network node 16 functions described herein. Memory 72 is configured to store data, programmatic software code, and / or other information described herein. In some embodiments, software 74 may include instructions that, when executed by processor 70 and / or processing circuitry 68, cause processor 70 and / or processing circuitry 68 to perform processes described herein with respect to network node 16. For example, the processing circuitry 68 of the network node 16 may include a RACH unit 32 configured to perform one or more network node 16 functions described herein, such as with respect to prioritized two-step random access channel (RACH) signaling.

[0064] The communication system 10 further includes the previously mentioned WD 22. The WD 22 may have hardware 80 that may include a wireless interface 82 configured to set up and maintain a wireless connection 64 with a network node 16 that serves the coverage area 18 in which the WD 22 is currently located. The wireless interface 82 may be formed as or include, for example, one or more RF transmitters, one or more RF receivers, and / or one or more RF transceivers.

[0065] The hardware 80 of the WD 22 further includes processing circuitry 84. The processing circuitry 84 may include a processor 86 and a memory 88. In particular, in addition to or instead of a processor and memory such as a central processing unit, the processing circuitry 84 may comprise integrated circuits for processing and / or control, e.g., one or more processors and / or processor cores and / or FPGAs (field programmable gate arrays) and / or ASICs (application-specific integrated circuits) adapted to execute instructions. The processor 86 may be configured to access (e.g., write to and / or read from) the memory 88, which may include any type of volatile and / or non-volatile memory, e.g., cache and / or buffer memory and / or RAM (random access memory) and / or ROM (read-only memory) and / or optical memory and / or EPROM (erasable programmable read-only memory).

[0066] Thus, the WD 22 may further comprise software 90, which may be stored, for example, in memory 88 in the WD 22 or in an external memory accessible by the WD 22 (e.g., a database, a storage array, a network storage device, etc.). The software 90 may be executable by the processing circuitry 84. The software 90 may include a client application 92. The client application 92 may be operable to provide services to a human or non-human user via the WD 22 with the support of the host computer 24. On the host computer 24, a running host application 50 may communicate with the running client application 92 via an OTT connection 52 that terminates at the WD 22 and the host computer 24. In providing services to the user, the client application 92 may receive request data from the host application 50 and provide user data in response to the request data. The OTT connection 52 may transfer both the request data and the user data. The client application 92 may interact with the user to generate the user data that the client application 92 provides.

[0067] The processing circuitry 84 may be configured to control any of the methods and / or processes described herein and / or to cause such methods and / or processes to be performed, for example, by the WD 22. The processor 86 corresponds to one or more processors 86 for performing the WD 22 functions described herein. The WD 22 includes a memory 88 configured to store data, programmatic software code, and / or other information described herein. In some embodiments, the software 90 and / or client application 92 may include instructions that, when executed by the processor 86 and / or processing circuitry 84, cause the processor 86 and / or processing circuitry 84 to perform the processes described herein with respect to the WD 22. For example, the processing circuitry 84 of the wireless device 22 may include an RA unit 34 configured to perform one or more wireless device 22 functions as described herein, such as with respect to prioritized two-step random access channel (RACH) signaling.

[0068] In some embodiments, the internal workings of network node 16, WD 22, and host computer 24 may be as shown in FIG. 4, and separately, the surrounding network topology may be that of FIG.

[0069] 4, OTT connection 52 is depicted abstractly to show communication between host computer 24 and wireless device 22 via network nodes 16, without explicit reference to intermediary devices and the precise routing of messages through those devices. The network infrastructure may determine the routing, and the network infrastructure may be configured to hide the routing from WD 22, the service provider operating host computer 24, or both. While OTT connection 52 is active, the network infrastructure may also make decisions to dynamically change the routing (e.g., based on load balancing considerations or reconfiguration of the network).

[0070] The wireless connection 64 between the WD 22 and the network node 16 follows the teachings of the embodiments described throughout this disclosure. One or more of the various embodiments improve the performance of the OTT service provided to the WD 22 using the OTT connection 52, of which the wireless connection 64 may form the final segment. More precisely, the teachings of some of these embodiments may improve data rate, latency, and / or power consumption, thereby providing benefits such as reduced user latency, relaxed limits on file size, better responsiveness, extended battery life, etc.

[0071] In some embodiments, measurement procedures may be provided for the purpose of monitoring data rates, latency, and other factors that one or more embodiments improve upon. There may further be optional network functionality for reconfiguring the OTT connection 52 between the host computer 24 and the WD 22 in response to fluctuations in the measurement results. The measurement procedures and / or the network functionality for reconfiguring the OTT connection 52 may be implemented in the software 48 of the host computer 24 or in the software 90 of the WD 22, or both. In embodiments, sensors (not shown) may be deployed in or associated with the communication devices through which the OTT connection 52 passes, and the sensors may participate in the measurement procedures by providing values ​​of the monitored quantities exemplified above or other physical quantities from which the software 48, 90 may calculate or estimate the monitored quantities. The reconfiguration of the OTT connection 52 may include changes to message formats, retransmission settings, preferred routing, etc., and the reconfiguration need not affect the network node 16, and the reconfiguration may be unknown or imperceptible to the network node 16. Some such procedures and functionality may be known and practiced in the art. In some embodiments, the measurements may involve proprietary WD signaling that facilitates host computer 24 measurements of throughput, propagation time, latency, etc. In some embodiments, the measurements may be implemented in that software 48, 90 causes messages, particularly empty or "dummy" messages, to be sent using OTT connection 52 while software 48, 90 monitors propagation time, errors, etc.

[0072] Thus, in some embodiments, host computer 24 includes processing circuitry 42 configured to provide user data and a communications interface 40 configured to forward the user data to the cellular network for transmission to WD 22. In some embodiments, the cellular network also includes network node 16 having a wireless interface 62. In some embodiments, network node 16 is configured to implement, and / or processing circuitry 68 of network node 16 is configured to implement, the functions and / or methods described herein for preparing / initiating / maintaining / supporting / terminating transmissions to WD 22 and / or preparing / terminating / maintaining / supporting / terminating in receipt of transmissions from WD 22.

[0073] In some embodiments, host computer 24 includes processing circuitry 42 and communications interface 40 configured to receive user data originating from transmissions from WD 22 to network node 16. In some embodiments, WD 22 is configured to implement and / or comprises a wireless interface 82 and / or processing circuitry 84 configured to implement the functions and / or methods described herein for preparing / initiating / maintaining / supporting / terminating transmissions to network node 16 and / or preparing / terminating / maintaining / supporting / terminating in reception of transmissions from network node 16.

[0074] 3 and 4 depict various “units,” such as RACH unit 32 and RA unit 34, as being within respective processors, it is contemplated that these units may be implemented such that portions of the units are stored in corresponding memories within the processing circuitry. In other words, the units may be implemented in hardware or a combination of hardware and software within the processing circuitry. Note that implementations of the present disclosure may be performed without the use of OTT functionality. In other words, implementations of the embodiments described herein do not require the inclusion of host computer 24 and connection 28.

[0075] 5 is a flowchart illustrating an exemplary method implemented in a communication system, such as the communication systems of FIGS. 3 and 4, according to one embodiment. The communication system may include a host computer 24, a network node 16, and a WD 22, which may be as described with reference to FIG. 4. In a first step of the method, the host computer 24 provides user data (block S100). In an optional sub-step of the first step, the host computer 24 provides the user data by executing a host application, such as host application 50 (block S102). In a second step, the host computer 24 initiates a transmission carrying the user data to the WD 22 (block S104). In an optional third step, the network node 16 transmits the user data carried in the transmission initiated by the host computer 24 to the WD 22 (block S106), in accordance with the teachings of the embodiments described throughout this disclosure. In an optional fourth step, the WD 22 executes a client application, such as client application 92, associated with the host application 50 executed by the host computer 24 (block S108).

[0076] 6 is a flowchart illustrating an exemplary method implemented in a communication system, such as the communication system of FIG. 3, according to one embodiment. The communication system may include a host computer 24, a network node 16, and a WD 22, which may be as described with reference to FIGS. 3 and 4. In a first step of the method, the host computer 24 provides user data (block S110). In an optional sub-step (not shown), the host computer 24 provides the user data by executing a host application, such as host application 50. In a second step, the host computer 24 initiates a transmission carrying the user data to the WD 22 (block S112). The transmission may proceed via the network node 16 in accordance with the teachings of the embodiments described throughout this disclosure. In an optional third step, the WD 22 receives the user data carried in the transmission (block S114).

[0077] 7 is a flowchart illustrating an exemplary method implemented in a communication system, such as the communication system of FIG. 3, according to one embodiment. The communication system may include a host computer 24, a network node 16, and a WD 22, which may be those described with reference to FIGS. 3 and 4. In an optional first step of the method, the WD 22 receives input data provided by the host computer 24 (block S116). In an optional sub-step of the first step, the WD 22 executes a client application 92, which provides user data in response to the received input data provided by the host computer 24 (block S118). Additionally or alternatively, in an optional second step, the WD 22 provides the user data (block S120). In an optional sub-step of the second step, the WD provides the user data by executing a client application, such as the client application 92 (block S122). In providing the user data, the executed client application 92 may further take into account user input received from a user. Regardless of the particular manner in which the user data was provided, in an optional third substep, WD 22 may initiate transmission of the user data to host computer 24 (block S124). In a fourth step of the method, host computer 24 receives the user data transmitted from WD 22 (block S126) in accordance with the teachings of the embodiments described throughout this disclosure.

[0078] 8 is a flowchart illustrating an exemplary method implemented in a communication system, such as the communication system of FIG. 3, according to one embodiment. The communication system may include a host computer 24, a network node 16, and a WD 22, which may be as described with reference to FIGS. 3 and 4. In an optional first step of the method, the network node 16 receives user data from the WD 22 (block S128), in accordance with the teachings of embodiments described throughout this disclosure. In an optional second step, the network node 16 initiates transmission of the received user data to the host computer 24 (block S130). In a third step, the host computer 24 receives the user data carried in a transmission initiated by the network node 16 (block S132).

[0079] 9 is a flowchart of an example process in network node 16, in accordance with some embodiments of the disclosure. One or more blocks and / or functions performed by network node 16 may be performed by one or more elements of network node 16, such as by RACH unit 32 in processing circuitry 68, processor 70, air interface 62, etc. In one or more embodiments, network node 16, such as via one or more of processing circuitry 68, processor 70, RACH unit 32, communication interface 60, and air interface 62, is configured to participate in prioritized two-step random access channel (RACH) signaling (block S134) as described herein.

[0080] According to one or more embodiments, the prioritized two-step RACH signaling includes message A and message B, where message A includes a random access preamble portion and an uplink shared channel portion. According to one or more embodiments, the prioritized two-step RACH signaling corresponds to a power ramping configuration separate from the four-step RACH signaling, where the prioritized two-step RACH signaling uses a larger power step size than the four-step RACH signaling. According to one or more embodiments, the prioritized two-step RACH signaling uses a different power step size than the non-prioritized two-step RACH signaling and the four-step RACH signaling. According to one or more embodiments, the prioritized two-step RACH signaling is associated with a power back-off time that is scaled based at least in part on the back-off timing used in the four-step contention-free radio access.

[0081] 10 is a flowchart of another example process in network node 16, in accordance with some embodiments of the present disclosure. One or more blocks and / or functions performed by network node 16 may be performed by one or more elements of network node 16, such as by RACH unit 32 in processing circuitry 68, processor 70, radio interface 62, etc. In one or more embodiments, network node 16, such as via one or more of processing circuitry 68, processor 70, RACH unit 32, communication interface 60, and radio interface 62, is configured to transmit (block S136) a first configuration for prioritized two-step random access (RA) signaling, as described herein, the first configuration including at least a power ramping step and configured separately from a second configuration for RA signaling. In one or more embodiments, the network node 16, such as via one or more of the processing circuitry 68, the processor 70, the RACH unit 32, the communication interface 60 and the radio interface 62, is configured to perform prioritized two-step RA signaling (block S138) based on the power ramping steps of the first configuration as described herein.

[0082] According to one or more embodiments, the power ramping step of the first configuration has a power step size that is larger than the power step size of the second configuration. According to one or more embodiments, the RA signaling associated with the second configuration is one of 4-step RA signaling and 2-step RA signaling. According to one or more embodiments, the first configuration for prioritized 2-step RA signaling includes a scaling factor for the back-off indicator.

[0083] According to one or more embodiments, the scaling factor associated with the first configuration corresponds to a scaling factor configured for 4-step RA signaling. According to one or more embodiments, the scaling factor associated with the first configuration is configured to be implemented for at least one of contention-based random access when contention-free random access is not supported by prioritized 2-step RA signaling, contention-free based random access in prioritized 2-step RA signaling, and contention-based random access and contention-free random access in prioritized 2-step RA signaling. According to one or more embodiments, the first configuration is applied to a message, the message including one of a random access preamble portion, a random access preamble portion and a physical uplink shared channel (PUSCH) portion.

[0084] According to one or more embodiments, transmitting the first configuration corresponds to broadcasting the first configuration in a system information block (SIB). According to one or more embodiments, the SIB includes the second configuration. According to one or more embodiments, a power ramping step of the first configuration is one of corresponding to and greater than a power step size for 4-step RA signaling associated with the second configuration.

[0085] According to one or more embodiments, the power ramping step of the first configuration reuses the power step size configured for the 4-step RA signaling associated with the second configuration. According to one or more embodiments, the first configuration is configured for contention-free based random access and the second configuration is configured for contention-based random access. According to one or more embodiments, the scaling factor of the first configuration corresponds to a time window for selecting a back-off time that is shorter than the time window for selecting a back-off time in the second configuration for RA signaling.

[0086] 11 is a flowchart of an example process in wireless device 22, in accordance with some embodiments of the present disclosure. One or more blocks and / or functions performed by wireless device 22 may be performed by one or more elements of wireless device 22, such as by RA unit 34 in processing circuitry 84, processor 86, air interface 82, etc. In one or more embodiments, the wireless device, such as via one or more of processing circuitry 84, RA unit 34, processor 86, and air interface 82, is configured to participate in prioritized two-step random access channel (RACH) signaling to perform a random access procedure (block S140), as described herein.

[0087] According to one or more embodiments, the prioritized two-step RACH signaling includes message A and message B, where message A includes a random access preamble portion and an uplink shared channel portion. According to one or more embodiments, the prioritized two-step RACH signaling corresponds to a power ramping configuration separate from the four-step RACH signaling, where the prioritized two-step RACH signaling uses a larger power step size than the four-step RACH signaling. According to one or more embodiments, the prioritized two-step RACH signaling uses a different power step size than the non-prioritized two-step RACH signaling and the four-step RACH signaling. According to one or more embodiments, the prioritized two-step RACH signaling is associated with a power back-off time that is scaled based at least in part on the back-off timing used in the four-step contention-free radio access.

[0088] 12 is a flowchart of another exemplary process in wireless device 22, in accordance with some embodiments of the present disclosure. One or more blocks and / or functions performed by wireless device 22 may be performed by one or more elements of wireless device 22, such as by RA unit 34 in processing circuitry 84, processor 86, air interface 82, etc. In one or more embodiments, the wireless device is configured to receive (block S142) a first configuration for prioritized two-step random access (RA) signaling, as described herein, the first configuration including at least a power ramping step and configured separately from a second configuration for RA signaling. In one or more embodiments, the wireless device 22 is configured (block S144) to perform prioritized two-step RA signaling based on the power ramping step of the first configuration, as described herein, such as via one or more of processing circuitry 84, RA unit 34, processor 86, and air interface 82.

[0089] According to one or more embodiments, the power ramping step of the first setting has a power step size that is larger than the power step size of the second setting. According to one or more embodiments, the RA signaling associated with the second setting is one of four-step RA signaling and two-step RA signaling. According to one or more embodiments, the first setting for the prioritized two-step RA signaling includes a scaling factor for the backoff indicator. According to one or more embodiments, the scaling factor associated with the first setting corresponds to the scaling factor configured for the four-step RA signaling.

[0090] According to one or more embodiments, the scaling factor associated with the first setting is configured to be implemented for at least one of contention-based random access when contention-free random access is not supported by prioritized two-step RA signaling, contention-free based random access in prioritized two-step RA signaling, and contention-based random access and contention-free random access in prioritized two-step RA signaling. According to one or more embodiments, the processing circuit 84 is further configured to apply the first setting to a message, the message including one of a random access preamble portion, a random access preamble portion and a physical uplink shared channel (PUSCH) portion. According to one or more embodiments, the first setting is received in a broadcast of a system information block (SIB).

[0091] According to one or more embodiments, the SIB includes a second configuration. According to one or more embodiments, the power ramping step of the first configuration corresponds to one of a power step size for 4-step RA signaling associated with the second configuration and a power step size greater than the power step size for 4-step RA signaling associated with the second configuration. According to one or more embodiments, the power ramping step of the first configuration reuses the power step size configured for 4-step RA signaling associated with the second configuration. According to one or more embodiments, the first configuration is configured for contention-free based random access, and the second configuration is configured for contention-based random access. According to one or more embodiments, the scaling factor of the first configuration corresponds to a time window for selecting a back-off time that is shorter than the time window for selecting a back-off time in the second configuration for RA signaling.

[0092] Having generally described configurations for prioritized two-step random access channel (RACH) signaling, details about these configurations, functions, and processes are provided below, which may be implemented by the network node 16, the wireless device 22, and / or the host computer 24. In particular, as described herein, two-step RA configuration is provided / configured separately from four-step RA, such that power / BI configuration may be prioritized for two-step RACH / RA. In one or more embodiments, the prioritized two-step RA includes one or more of dedicated higher power, lower latency, etc., when compared to at least one of the prioritized four-step RA and the existing / non-prioritized four-step RA and non-prioritized two-step RA with common power ramping steps and common backoff indications. In one or more embodiments, the non-prioritized two-step RACH / RA signaling corresponds to normal / common two-step RACH / RA signaling that is not configured with the prioritization parameters described herein.

[0093] In one or more embodiments, RA is used interchangeably with RACH, for example, such that 4-step RA and 4-step RA signaling may correspond to 4-step RACH and 4-step RACH signaling, and vice versa. In one or more embodiments, 2-step RA signaling includes msgA:preamble and / or msgA:PUSCH and msgB, and the teachings described herein apply to some or all of the prioritized 2-step RA signaling. In one or more embodiments, 4-step RA signaling includes msg1 through msg4.

[0094] One or more methods described herein advantageously provide a priority RACH for a two-step RACH msgA, where msgA consists of a random access preamble (ie, PRACH) portion and a PUSCH portion.

[0095] Power ramping of msgA in two-step RA on RACH Separate power ramping for msgA in 2-step RA and msg1 in 4-step RA In one embodiment, a separate setting of the power ramping step size for the two-step RA is applied by the network node 16 and / or the wireless device 22, which may allow for a larger power ramping step size. Because the two-step RACH may be used by the wireless device 22, such as via the RA unit 34, which desires faster random access (RA) success (e.g., a successful random access procedure), the power ramping for the two-step RA may be set separately from the power ramping for the four-step RACH, such as by the network node 16. The separate setting may allow the two-step RA to use a power ramping step size that is larger than the power ramping step size of the four-step RACH. As used herein, power ramping step size, power step size, and step size may be used interchangeably.

[0096] Because the target received power of the preamble scales linearly with the power ramping size step (e.g., as described in wireless device protocols such as in 3GPP TS38.321), larger power ramping step sizes are allowed to be implemented at higher transmit power levels for the two-step RACH, for both the preamble and PUSCH portions. 1> Set PREAMBLE_RECEIVED_TARGET_POWER to preambleReceivedTargetPower+DELTA_PREAMBLE+(PREAMBLE_POWER_RAMPING_COUNTER-1)*PREAMBLE_POWER_RAMPING_STEP. An example of specifying the RRC configuration of a two-step RACH in the common IE RACH-ConfigGeneric when a "high-priority" two-step is targeted to the wireless device 22 in all RRC states is shown below. RACH-ConfigGeneric information element, where the bold part may indicate a modification of an existing standard. TIFF0007811958000005.tif120170

[0097] In other words, normal / existing / common RA signaling may include the "powerRampingStep" and "ra-ResponseWindow" indicated above, and prioritized 2-step RA signaling includes "powerRampingStepHighPriority" and / or "scalingFactorBI".

[0098] Another example of specifying the RRC configuration of the two-step RACH in the dedicated IE RACH-ConfigDedicated when "high-prio" two-step for contention-based random access (CBRA) for handover (HO) is shown below. CBRA may generally refer to the case where resources used for msg1 or msgA transmission are randomly selected from a set of resources by the wireless device 22. Contention-free random access (CFRA) may generally refer to the case where resources for msg1 or msgA transmission are allocated in dedicated signaling by the network node 16 before the wireless device 22 starts transmitting msg1 or msgA. RACH-ConfigDedicated information element, where the bold part may indicate a change to an existing standard. TIFF0007811958000006.tif161170

[0099] In another embodiment, only the high-priority power ramping step size may be set separately for the two-step RA. In one or more embodiments, the priority power ramping step size is applied to the msgA preamble portion, or to both the msgA preamble portion and the msgA PUSCH portion. For example, in some embodiments, sometimes a msgA with only a preamble portion is used, which is the preamble selected by the wireless device 22, and this may not be able to be mapped onto the PUSCH portion due to PUSCH resources not being available. In one or more embodiments, one or more RACH configurations may be signaled to the wireless device 22 by the network node 16, such as over the air interface 62. In one or more embodiments, the one or more RACH configurations are stored in memory 88 of the wireless device 22.

[0100] The 2-step RACH may be configured with a power ramping step size that is larger than the power ramping step size of the 4-step RACH. TIFF0007811958000007.tif12170

[0101] Reuse the step size specified for the 4-step RA In one or more embodiments, to avoid introducing additional signaling overhead, the normal (i.e., non-preferred) power ramping step size and the preferred power ramping step size used for the four-step RA may also be used by the two-step RA by the network node 16 and / or wireless device 22.

[0102] In one or more embodiments, only the high priority step size may always be used by the two-step RA by the wireless device 22 and / or network node 16, which may be either a contention-based RA or a contention-free RA if supported (CFRA may or may not be supported by the two-step RA).

[0103] In one or more embodiments, the wireless device 22 and / or network node 16 uses a normal (non-priority) power ramping step size with contention-based two-step random access, and a high priority step size is used with contention-based random access.

[0104] In one or more embodiments, the wireless device 22 and / or the network node 16 may only use normal power ramping step sizes with contention-based two-step RA, and contention-free random access may not be supported by two-step RA.

[0105] In one or more embodiments, when the logical channel priority of the data for this logical channel (LCH) or a logical channel belonging to this logical channel group (LCG) to be transmitted is high, e.g., URLLC, only the high priority power ramping step size may be used in the wireless device 22, such as via the processing circuitry 84 for implementing a two-step RA.

[0106] In one or more embodiments, when the logical channel priority of the data for the logical channel (LCH) to be transmitted or the logical channels belonging to this logical channel group (LCG) is in accordance with the configured setting, only the high priority power ramping step size is used in the wireless device 22, such as via the processing circuitry 84 for implementing the two-step RA.

[0107] The step size in one or more embodiments above may be the step size for the msgA preamble part and / or the step size for the msgA PUSCH part.

[0108] Preferred backoff time for 2-step RA The two-step contention-based RA may use a scaled version of the timing used for the four-step contention-free RA. In one or more embodiments, the two-step RACH may be configured by the network node 16 via the processing circuitry 68 and / or the RACH unit 32 with a scaling factor for the backoff indicator such that the window for selecting a random backoff time is shorter.

[0109] In some embodiments, the scaling factor may correspond to and / or be based at least in part on one or more of the following: - Scaling factor set for 4-step RA - Separately set scaling factor In some embodiments, the scaling factor may correspond to and / or be based at least in part on one or more of the following: - Contention-based RA only if CFRA is not supported by two-step RA. - Only conflict-free RA in 2-step RA - Both contention-based and contention-free RA in two-step RA This allows the wireless device 22 to more quickly perform a subsequent msgA attempt, such as via the processing circuitry 84 and / or the RA unit 34, if a previous msgA was not successful in achieving attachment. The normalized code may be as follows: scalingFactorBI ENUMERATED{0,dot25,dot5,dot75} OPTIONAL, --Need R

[0110] A separate timing table is used for certain short durations involved In one or more embodiments, a separate timing table may be introduced for backoff timing settings for two-step RA. The timing table may be stored in memory 72 of network node 16 and / or memory 88 of wireless device 22. For example, some small values ​​(compared to other values ​​in the existing table) may be included in the table to prioritize backoff of two-step RA. TIFF0007811958000008.tif101170

[0111] Therefore, the present disclosure provides a preferred RACH for a two-step RACH msgA, where msgA consists of a random access preamble part and a PUSCH part.

[0112] Some examples Example A1. A network node 16 configured to communicate with a wireless device 22 (WD22), the network node 16 comprising: Participates in prioritized two-step random access channel (RACH) signaling The network node 16 is configured to and / or comprises a wireless interface 62 configured to do so and / or comprises processing circuitry 68 configured to do so.

[0113] Example A2. The network node 16 of example A1, wherein the prioritized two-step RACH signaling includes message A and message B, where message A includes a random access preamble portion and an uplink shared channel portion.

[0114] Example A3. The network node 16 of example A1, wherein the prioritized 2-step RACH signaling corresponds to a separate power ramping configuration than the 4-step RACH signaling, and wherein the prioritized 2-step RACH signaling uses a larger power step size than the 4-step RACH signaling.

[0115] Example A4. The network node 16 of example A1, wherein prioritized 2-step RACH signaling uses a different power step size than non-prioritized 2-step RACH signaling and 4-step RACH signaling.

[0116] Example A5. The network node 16 of example A1, wherein the prioritized two-step RACH signaling is associated with a power back-off time that is scaled based at least in part on the back-off timing used in four-step contention-free radio access.

[0117] Example B1. A method implemented in a network node 16 configured to communicate with a wireless device 22, the method including participating in prioritized two-step random access channel (RACH) signaling.

[0118] Example B2. The method of Example B1, wherein the prioritized two-step RACH signaling includes a message A and a message B, and message A includes a random access preamble portion and an uplink shared channel portion.

[0119] Example B3. The method of Example B1, wherein the prioritized 2-step RACH signaling corresponds to a separate power ramping configuration than the 4-step RACH signaling, and wherein the prioritized 2-step RACH signaling uses a larger power step size than the 4-step RACH signaling.

[0120] Example B4. The method of Example B1, wherein prioritized 2-step RACH signaling uses a different power step size than non-prioritized 2-step RACH signaling and 4-step RACH signaling.

[0121] Example B5. The method of Example B1, wherein the prioritized 2-step RACH signaling is associated with a power back-off time that is scaled based at least in part on the back-off timing used in 4-step contention-free wireless access.

[0122] Example C1. A wireless device 22 (WD22) configured to communicate with a network node 16, wherein the WD22 is configured to participate in prioritized two-step random access channel (RACH) signaling for performing a random access procedure, and / or comprises a wireless interface 82 configured to do so, and / or comprises processing circuitry 84 configured to do so.

[0123] Example C2. WD22 of example C1, wherein the prioritized two-step RACH signaling includes message A and message B, and message A includes a random access preamble portion and an uplink shared channel portion.

[0124] Example C3. WD22 as in Example C1, wherein the preferred 2-step RACH signaling corresponds to a separate power ramping configuration than the 4-step RACH signaling, and wherein the preferred 2-step RACH signaling uses a larger power step size than the 4-step RACH signaling.

[0125] Example C4. WD22 as in example C1, wherein prioritized 2-step RACH signaling uses a different power step size than non-prioritized 2-step RACH signaling and 4-step RACH signaling.

[0126] Example C5. WD22 of Example C1, wherein the prioritized 2-step RACH signaling is associated with a power back-off time that is scaled based at least in part on the back-off timing used in 4-step contention-free wireless access.

[0127] Example D1. A method implemented in a wireless device 22 (WD22), the method including participating in prioritized two-step random access channel (RACH) signaling to perform a random access procedure.

[0128] Example D2. The method of example D1, wherein the prioritized two-step RACH signaling includes message A and message B, and message A includes a random access preamble portion and an uplink shared channel portion.

[0129] Example D3. The method of Example D1, wherein the prioritized 2-step RACH signaling corresponds to a separate power ramping configuration than the 4-step RACH signaling, and wherein the prioritized 2-step RACH signaling uses a larger power step size than the 4-step RACH signaling.

[0130] Example D4. The method of example D1, wherein prioritized 2-step RACH signaling uses a different power step size than non-prioritized 2-step RACH signaling and 4-step RACH signaling.

[0131] Example D5. The method of Example D1, wherein the prioritized 2-step RACH signaling is associated with a power back-off time that is scaled based at least in part on the back-off timing used in 4-step contention-free wireless access.

[0132] As will be appreciated by those skilled in the art, the concepts described herein may be embodied as a method, a data processing system, a computer program product, and / or a computer storage medium storing an executable computer program. Accordingly, the concepts described herein may take the form of an entirely hardware embodiment, an entirely software embodiment, or an embodiment combining software and hardware aspects, all of which may be generally referred to herein as a “circuit” or “module.” Any process, step, action, and / or function described herein may be performed by and / or associated with a corresponding module, which may be implemented in software and / or firmware and / or hardware. Furthermore, the present disclosure may take the form of a computer program product on a tangible computer-usable storage medium having computer program code embodied in the medium that can be executed by a computer. Any suitable tangible computer-readable medium may be utilized, including a hard disk, a CD-ROM, an electronic storage device, an optical storage device, or a magnetic storage device.

[0133] Some embodiments have been described herein with reference to flowchart illustrations and / or block diagrams of methods, systems, and computer program products. It will be understood that each block of the flowchart illustrations and / or block diagrams, and combinations of blocks in the flowchart illustrations and / or block diagrams, can be implemented by computer program instructions. These computer program instructions can be provided to a processor of a general-purpose computer (to thereby create a special-purpose computer), a special-purpose computer, or other programmable data processing apparatus to create a machine, such that the instructions, executing via the processor of the computer or other programmable data processing apparatus, create means for implementing the functions / acts specified in one or more blocks of the flowchart illustrations and / or block diagrams.

[0134] These computer program instructions may also be stored in a computer-readable memory or storage medium that can direct a computer or other programmable data processing apparatus to function in a particular manner, such that the instructions stored in the computer-readable memory create an article of manufacture that includes instruction means that implement the functions / acts specified in one or more blocks of the flowcharts and / or block diagrams.

[0135] Computer program instructions may also be loaded into a computer or other programmable data processing apparatus to cause a series of operational steps to be performed on the computer or other programmable apparatus to create a computer-implemented process, whereby the instructions executing on the computer or other programmable apparatus provide steps for implementing the functions / acts specified in one or more blocks of the flowcharts and / or block diagrams.

[0136] It should be understood that the functions / acts noted in the blocks may occur out of the order noted in the operational illustrations. For example, two blocks shown in succession may in fact be executed substantially concurrently, or the blocks may sometimes be executed in the reverse order, depending on the functions / acts involved. While some of the figures include arrows on communication paths to indicate the primary direction of communication, it should be understood that communication may occur in the opposite direction to that of the illustrated arrows.

[0137] Computer program code for performing operations of the concepts described herein may be written in an object-oriented programming language such as Java or C++. However, computer program code for performing operations of the present disclosure may also be written in conventional procedural programming languages, such as the "C" programming language. The program code may execute entirely on the user's computer, partially on the user's computer, as a standalone software package, partially on the user's computer and partially on a remote computer, or entirely on a remote computer. In the latter scenario, the remote computer may be connected to the user's computer through a local area network (LAN) or wide area network (WAN), or the connection may be to an external computer (e.g., through the Internet using an Internet Service Provider).

[0138] Many different embodiments have been disclosed herein with reference to the above description and drawings. It will be understood that literally describing and illustrating every combination and subcombination of these embodiments would be unduly repetitive and unclear. Accordingly, all embodiments may be combined in any manner and / or combination, and the specification, including the drawings, should be construed as constituting a complete written description of all combinations and subcombinations of the embodiments described herein, and of all combinations and subcombinations of the modes and processes for making and using them, and is intended to support any claim to any such combination or subcombination.

[0139] Abbreviations that may be used in the foregoing description include the following: CBRA Contention-Based Random Access CFRA Contention-Free Random Access DFTS-OFDM Discrete Fourier Transform-Orthogonal Frequency Demultiplexing MA multiple access NR new radio NW Network OFDM Orthogonal Frequency Demultiplexing PO PUSCH Occasion PRACH Physical Random Access Channel PUSCH Physical Uplink Shared Channel RA Random Access RACH Random Access Channel RAR Random Access Response RO PRACH occasion (or RACH occasion) RU Resource Unit SCS Subcarrier Spacing SIB1 System Information Block Type 1 TF Timing and Frequency URLLC Ultra-reliable low latency communication

[0140] It will be appreciated by those skilled in the art that the embodiments described herein are not limited to what has been particularly shown and described herein above. Further, unless otherwise noted above, it should be noted that all of the accompanying drawings are not to scale. Various modifications and variations are possible in light of the above teachings without departing from the scope of the following claims.

Claims

1. 1. A method implemented by a network node (16) configured to communicate with a wireless device (16), the method comprising: transmitting (S136) a first configuration for prioritized two-step random access (RA) signaling, the first configuration including at least a power ramping step for power ramping of a preamble portion and a physical uplink shared channel (PUSCH) portion of a message A (msgA) of the prioritized two-step RA signaling, the first configuration being configured separately from a second configuration for four-step RA signaling; performing the prioritized two-step RA signaling based on the power ramping step of the first configuration (S138); Including, The method, wherein the power ramping step of the first setting has a power step size that is greater than a power step size of the second setting.

2. The method of claim 1 , wherein the first configuration for prioritized two-step RA signaling includes a scaling factor for a back-off indicator.

3. The method of claim 2 , wherein the scaling factor associated with the first configuration corresponds to a scaling factor configured for four-step RA signaling.

4. 4. The method of claim 2, wherein the scaling factor of the first configuration corresponds to a time window for selecting a back-off time that is shorter than a time window for selecting a back-off time in the second configuration for the four-step RA signaling.

5. 1. A method implemented by a wireless device (22) configured to communicate with a network node (16), the method comprising: receiving (S142) a first configuration for prioritized two-step random access (RA) signaling, the first configuration including at least a power ramping step for power ramping of a preamble portion and a physical uplink shared channel (PUSCH) portion of a message A (msgA) of the prioritized two-step RA signaling, the first configuration being configured separately from a second configuration for four-step RA signaling; performing prioritized two-step RA signaling based on the power ramping step of the first configuration (S144); Including, The method, wherein the power ramping step of the first setting has a power step size that is greater than a power step size of the second setting.

6. The method of claim 5 , wherein the first configuration for prioritized two-step RA signaling includes a scaling factor for a back-off indicator.

7. The method of claim 6 , wherein the scaling factor associated with the first configuration corresponds to a scaling factor configured for four-step RA signaling.

8. 8. The method of claim 6 or 7, wherein the scaling factor of the first configuration corresponds to a time window for selecting a back-off time that is shorter than a time window for selecting a back-off time in the second configuration for the four-step RA signaling.

9. A network node (16) configured to communicate with a wireless device (22), said network node (16) comprising: transmitting a first configuration for prioritized two-step random access (RA) signaling, the first configuration including power ramping steps for power ramping of at least a preamble portion and a physical uplink shared channel (PUSCH) portion of a message A (msgA) of the prioritized two-step RA signaling, the first configuration being configured separately from a second configuration for four-step RA signaling; performing the prioritized two-step RA signaling based on the power ramping step of the first configuration; and a processing circuit (68) configured to: Equipped with A network node (16) wherein the power ramping step of the first setting has a power step size that is greater than a power step size of the second setting.

10. A network node (16) according to claim 9, comprising processing circuitry (68) configured to carry out the method according to any one of claims 2 to 4.

11. A wireless device (22) configured to communicate with a network node (16), said wireless device (22) comprising: receiving a first configuration for prioritized two-step random access (RA) signaling, the first configuration including power ramping steps for power ramping of at least a preamble portion and a physical uplink shared channel (PUSCH) portion of a message A (msgA) of the prioritized two-step RA signaling, the first configuration being configured separately from a second configuration for four-step RA signaling; performing prioritized two-step RA signaling based on the power ramping step of the first configuration; and a processing circuit (84) configured to: Equipped with A wireless device (22) wherein the power ramping steps of the first setting have a power step size that is greater than a power step size of the second setting.

12. A wireless device (22) according to claim 11, comprising processing circuitry (84) configured to carry out the method according to any one of claims 6 to 8.

Citation Information

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