integrated circuits

By determining non-overlapping time intervals for power ramping and CCA during transient periods, the solution ensures reliable transmission in NR-U systems, addressing symbol corruption issues and maintaining quality of service.

JP7793022B2Active Publication Date: 2025-12-26PANASONIC INTELLECTUAL PROPERTY CORP OF AMERICA
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Patent Information

Application Number
JP2024193773
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2019-05-02
Filing Date
2024-11-05
Publication Date
2025-12-26
Estimated Expiration
2040-04-24

AI Technical Summary

Technical Problem

In unlicensed spectrum operation, the transient periods during power transitions in wireless communication systems, such as NR-U, can corrupt the first or last symbols of a transmission due to incomplete power ramping, affecting transmission reliability and quality of service.

Method used

The solution involves determining a time interval between the outer boundary of the transient period and the symbol for signal transmission, ensuring that Clear Channel Assessment (CCA) and power ramping do not overlap, with guard periods defined to accommodate transient periods, particularly for critical symbols, thereby ensuring reliable transmission.

Benefits of technology

This approach enhances transmission reliability by protecting critical symbols from transient period impacts, ensuring successful communication even in unlicensed spectrum environments.

✦ Generated by Eureka AI based on patent content.

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Abstract

To handle transition periods for user equipment (UE), a base station, and respective transmission / reception methods of the UE and the base station in an NR unlicensed operation or a similar system.SOLUTION: In a communication system, UE, during operation, determines, based on a type of transmission, a time interval between an outer boundary of a transition period for power ramping to start or end transmission and a symbol on which a signal included in the transmission is transmitted, during operation, transmits the signal on the symbol, where the time interval and a time window for clear channel assessment (CCA) is non-overlapping, the signal transmitted on the symbol is a first signal, the transmission includes a second symbol having a lower service requirement than the first symbol, and to increase the time interval, determines a time interval between the outer boundary of the transition period and a symbol on which the first signal is to be transmitted by swapping symbol positions of the first and second signals.SELECTED DRAWING: Figure 13
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Description

[Technical Field]

[0001] The present disclosure relates to transmitting and receiving signals in a communication system, and more particularly to methods and apparatus for such transmission and reception. [Background technology]

[0002] The 3rd Generation Partnership Project (3GPP) is working on technical specifications for next-generation cellular technology, also known as fifth generation (5G), which includes the "New Radio" (NR) radio access technology (RAT) operating in the frequency range from sub-1 GHz to millimeter wave bands. NR is the successor to the technologies represented by Long Term Evolution (LTE) and LTE Advanced (LTE-A).

[0003] For systems such as LTE, LTE-A, and NR, further modifications and options may facilitate efficient operation of the communication system as well as specific devices associated with the system. Summary of the Invention

[0004] One non-limiting and illustrative embodiment facilitates the transmission of reliable signals with high service demand in unlicensed spectrum.

[0005] In an embodiment, the technology disclosed herein features a user equipment (UE) having circuitry that, during operation, determines, based on a type of transmission, an outer boundary of a transient period for ramping power to start or end the transmission and a time interval between a symbol on which a signal included in the transmission is transmitted, and a transceiver that, during operation, transmits the signal on the symbol, wherein the time interval and a time window for Clear Channel Assessment (CCA) are non-overlapping.

[0006] It should be noted that the entire or specific embodiments may be realized as a system, a method, an integrated circuit, a computer program, a storage medium, or any combination thereof.

[0007] Further benefits and advantages of the disclosed embodiments will become apparent from the specification and drawings. Benefits and / or advantages may be obtained individually from various embodiments and features of the specification and drawings, which need not all be provided to obtain one or more of such benefits and / or advantages. [Brief explanation of the drawings]

[0008] In the following, exemplary embodiments are explained in more detail with reference to the accompanying drawings. [Figure 1] 1 illustrates an example architecture for a 3GPP NR system, including example user and control plane architectures for LTE eNBs, gNBs, and UEs. [Figure 2] 1 is a schematic diagram of frames, subframes and slots for different subcarrier spacings. [Figure 3] 10 is a graph showing a specific example of a transient period in NR. [Figure 4] 10 is a graph showing a specific example of a transient period in LTE-License-Assisted Access (LAA). [Figure 5] FIG. 1 is a schematic diagram of a schematic example of a CCA immediately prior to transmission. [Figure 6] FIG. 2 is a block diagram of a base station and a UE in accordance with some embodiments. [Figure 7] FIG. 2 is a block diagram showing a processing circuit of a base station. [Figure 8] FIG. 2 is a block diagram showing a processing circuit of the UE. [Figure 9] 1 is a flowchart of a transmission method for a communication device. [Figure 10] 1 is a schematic diagram of a transient period at the end and start of two subsequent transmissions. [Figure 11]Indicates the time interval (guard period) between the start / end of power ramping and the first / last symbol of the transmission. [Figure 12] Indicates the time interval (guard period) between the start / end of power ramping and the first / last symbol of the transmission. [Figure 13] Indicates the time interval (guard period) between the start / end of power ramping and the first / last symbol of the transmission. [Figure 14] FIG. 1 is a schematic diagram illustrating a failed CCA and guard period for a transmission. [Figure 15] FIG. 1 is a schematic diagram illustrating a successful CCA and guard period for a transmission. [Figure 16] 1 illustrates different guard periods for different types of signals. [Figure 17] 1 illustrates different guard periods for different types of signals. [Figure 18] 1 illustrates different guard periods for different types of signals. [Figure 19] 1 illustrates different guard periods for different types of signals. [Figure 20] 1 illustrates different guard periods for different types of signals. [Figure 21] 1 illustrates different guard periods for different types of signals. [Figure 22] 10 is a flowchart illustrating steps performed by a UE at the start of a transmission. [Figure 23] 10 is a flowchart illustrating another example of steps performed by a UE at the start of a transmission. [Figure 24A] 10 is a flowchart illustrating steps performed by a UE at the end of transmission. [Figure 24B] 10 is a flowchart illustrating steps performed by a UE at the end of transmission. [Figure 25] 1 is a flowchart illustrating a communication method for a base station and a UE. DETAILED DESCRIPTION OF THE INVENTION

[0009] FIG. 1 illustrates an exemplary embodiment of a communication system including a base station, a terminal, and a core network. Such a communication system may be a 3GPP system, such as NR, LTE, and / or UMTS. For example, as illustrated in FIG. 1, a base station (BS) may be a gNB (gNodeB, such as an NR base station) or an eNB (eNodeB, such as an LTE base station). However, the present disclosure is not limited to these 3GPP systems or any other systems. Even though the embodiments and example implementations are described using some terminology of a 3GPP system, the present disclosure is also applicable to any other communication system, in particular any cellular, wireless, and / or mobile system.

[0010] NR is planned to facilitate the provision of a single technical framework that addresses several defined usage scenarios, requirements, and deployment scenarios, including, for example, enhanced Mobile Broadband (eMBB), Ultra-Reliable Low-Latency Communications (URLLC), and massive Machine Type Communication (mMTC). For example, eMBB deployment scenarios may include indoor hotspots, dense urban, rural, urban macro, and high-speed deployments; URLLC deployment scenarios may include industrial control systems, mobile healthcare (remote monitoring, diagnosis, and treatment), real-time control of vehicles, and wide-area monitoring and control systems for smart grids; and mMTC may include scenarios with a large number of devices with non-time-critical data transfer, such as smart wearables and sensor networks. The services eMBB and URLLC are similar in that they both require very high bandwidth, but differ in that URLLC services require ultra-low latency. In NR, the physical layer may support multiple antenna operation based on time-frequency resources (e.g., orthogonal frequency division multiplexing (OFDM), similar to LTE).

[0011] A terminal is called a user equipment (UE) in LTE and NR. It may be a mobile device such as a wireless phone, a smartphone, a tablet computer, or a Universal Serial Bus (USB) stick with user equipment functionality. However, the term mobile device is not so limited; in general, a relay may have the functionality of such a mobile device, and a mobile device may also function as a relay.

[0012] A base station is a network node forming part of a network for providing services to terminals, for example, a base station is a network node that provides wireless access to terminals.

[0013] 3GPP is studying NR-based operation in unlicensed spectrum (NR-U) (see, e.g., 3GPP TR 38.889, Study on NR-based access to unlicensed spectrum, v16.0.0). NR-U may operate in sub-7 GHz bands at 5 GHz or 6 GHz. However, the present disclosure is not limited to a particular band and may also apply to, for example, the 52 GHz mmWave band.

[0014] The Listen-Before-Talk (LBT) procedure is defined as a mechanism by which a device, such as a base station or user equipment, applies a Clear Channel Assessment (CCA) check before using a channel. CCA utilizes at least energy detection to determine the presence or absence of other signals on the channel to determine whether the channel is occupied or clear, respectively. For example, European and Japanese regulations mandate the use of LBT in unlicensed bands. Apart from regulatory requirements, this carrier sensing via LBT is one method for fair sharing of unlicensed spectrum and is therefore considered a key feature for fair and friendly operation in unlicensed spectrum in a single global solution framework.

[0015] If the detected energy level exceeds the set CCA threshold (e.g., -73 dBm / MHz for Europe, see ETSI 301 893), the channel is considered occupied. Conversely, if the detected power level is below the set CCA threshold, the channel is considered free. If the channel is classified as free, the device is allowed to transmit immediately. The maximum transmission duration is limited to ensure fair resource sharing with other devices operating in the same band.

[0016] In unlicensed band operation, after acquiring a channel via LBT, the initiating device (e.g., a scheduling device such as an NR gNB or LTE eNB) can occupy the channel up to a maximum channel occupation time (COT). For example, depending on the LBT request, the maximum COT may be assumed to be 8 ms or 9 ms. For example, for a 15 kHz subcarrier spacing, a COT of 8 ms corresponds to 8 slots, and for a 30 kHz subcarrier spacing, it corresponds to 16 slots.

[0017] The initiating device (e.g., gNB) may share the acquired time-frequency resources with responding devices (e.g., one or more transmitting / receiving devices, such as UEs). Sharing the acquired time-frequency resources can enable flexible resource utilization between uplink (UL) and downlink (DL). For example, DL and UL resources can be reallocated based on traffic demands in each direction.

[0018] Furthermore, sharing of the acquired resources may enable UL transmission with one-shot LBT (without random backoff) in the COT acquired by the gNB. In particular, for the case where a UL transmission in a gNB-initiated COT is not followed by another DL transmission in the same COT, Cat-2 LBT is used to sense the channel before the UE performs a UL transmission, as captured in 3GPP TR 38.889, Study on NR-based access to unlicensed spectrum, v16.0.0, Table 7.2.1.3.1-3, which means that the duration of time the channel is sensed as idle before the UL transmission is deterministic.

[0019] Furthermore, semi-statically configured or periodic reference signal, signaling or data transmissions may be enabled by sharing the acquired time-frequency resources. For example, if a semi-statically configured UL transmission configured by higher layers is within the COT of the gNB, but the UL resources are not shared by the gNB, the UL transmission needs to be dropped.

[0020] However, COT can also be initiated by the UE instead of the gNB. In this case, the UE needs to perform LBT to ensure that the channel is not occupied by other devices before acquiring the channel for transmission. Compared to when the UE performs LBT within a COT already initiated by the gNB, the chance of collision is higher. Therefore, LBT needs to consider more uncertainty. For example, as captured in 3GPP TR 38.889, Study on NR-based access to unlicensed spectrum, v16.0.0, Table 7.2.1.3.1-4, if the UE wants to transmit PUSCH as the COT initiator, Cat-4 LBT needs to be performed, which means that LBT with random backoff with a variable-sized contention window is utilized (see Section 8.2, Channel Access Method, in 3GPP TR 38.889, Study on NR-based access to unlicensed spectrum, v16.0.). Essentially, the UE selects a random number N within the contention window. The size of the contention window is specified by the minimum and maximum values ​​of N. The UE can change the size of the contention window when it selects the random number N. The random number N is used in the LBT procedure to determine the duration of time the channel must be sensed as idle before the UE can transmit.

[0021] The CCA (Clear Channel Assessment) may be performed at the end of a slot, and the COT may have the first symbol (OFDM symbol) of the slot following the slot where the CCA is performed. However, different opportunities or times at which the initiating device may acquire the channel may be considered. For example, the opportunities may be once per symbol per second or twice per slot. Therefore, the CCA may also be performed at a symbol away from the end of the slot.

[0022] In slot-based scheduling or allocation, a slot corresponds to the timing granularity (Transmission Time Interval (TTI)) for the scheduling assignment. Generally, the TTI determines the timing granularity for the scheduling assignment. One TTI is the time interval over which a given signal is mapped to the physical layer. For example, conventionally, the TTI length is variable from 14 symbols (slot-based scheduling) to 2 symbols (non-slot-based scheduling). Downlink (DL) and uplink (UL) transmissions are specified to be organized into frames (10 ms duration) consisting of 10 subframes (1 ms duration). In slot-based transmission, as shown in Figure 2, subframes are further divided into slots, with the number of slots determined by the numerology / subcarrier spacing. Specified values ​​range from 10 slots per frame (1 slot per subframe) at 15 kHz subcarrier spacing to 80 slots per frame (8 slots per subframe) at 120 kHz subcarrier spacing. The number of OFDM symbols per slot is 14 for the normal cyclic prefix and 12 for the extended cyclic prefix (see sections 4.1 (Overall Frame Structure), 4.2 (Numerology), 4.3.1 (Frames and Subframes), and 4.3.2 (Slots) of 3GPP TS 38.211 V15.3.0, Physical Channels and Modulation, 2018-09). However, the allocation of time resources for transmission may also be non-slot-based. In particular, a TTI in a non-slot-based allocation may correspond to a minislot instead of a slot. That is, one or more minislots may be allocated to a requested transmission of data / control signaling. In a non-slot-based allocation, the minimum length of a TTI may be, for example, one or two OFDM symbols.

[0023] When a transmitting device, such as a UE transmitting an UL burst, starts transmitting a burst in the unlicensed spectrum, it may need to change the transmitter's radio frequency (RF) state. The transient period is the time required for the transmitter to change its RF state, such as powering from OFF to ON and ON to OFF.

[0024] During the transition period, the transmit power changes, increasing or decreasing from / to a value below the OFF power requirement threshold to / from a value above the ON power requirement threshold. The value of the transmit power during the transition period is not specified in the standard specification.

[0025] Instead, the maximum allowable transient period length is specified in the standard specifications. For example, in Frequency Range 1 (FR1), a UE can have a transient period of up to 10 us (see 3GPP TS 38.101-1 V15.5.0 (2019-03) User Equipment (UE) radio transmission and reception, Part 1: Range 1 Standalone (Release 15)). FR1 is the frequency range from 410 MHz to 7125 MHz, and uses subcarrier spacings (SCS) of 15 kHz, 30 kHz, and 60 kHz for the data channel. As an example of a transient period for NR UL transmission, a typical ON / OFF time mask for NR UL transmission in FR1 is shown in Figure 3 (see Figure 6.3.3.2-1 in 3GPP 38.101-1).

[0026] Additionally, in FR2, the UE can have a transient period of up to 5 us (see 3GPPTS 38.101-1 V15.5.0 (2019-03) User Equipment (UE) radio transmission and reception, Part 2: Range 1 Standalone (Release 15)). FR2 is the frequency range from 24250 MHz to 52600 MHz, and utilizes SCS 60 kHz and 120 kHz for data channels.

[0027] As mentioned above, for unlicensed operation, CCA needs to be performed in unlicensed operation. Furthermore, in a typical scenario, a device needs to perform CCA before any transmission. For an LTE-License-Assisted Access (LAA) system, a scheme for unlicensed operation is provided. LTE-LAA provides frame structures for licensed and unlicensed band operation, namely, Type 1 and 2 (licensed band operation) and Type 3 (unlicensed band operation), respectively.

[0028] On the other hand, type 3 frame configurations are dedicated to unlicensed operation. The subframe TTI and the general ON / OFF time mask for frame configuration type 3 are shown in Figure 4 (see 3GPP TS 36.101 V16.1.0 (2019-03) Evolved Universal Terrestrial Radio Access (E-UTRA); User Equipment (UE) radio transmission and reception, Fig. 6.3.4.1-1A). As can be seen from Figure 4 in the time mask for frame configuration type 3, the transient period is absorbed by the Tx (transmit / transmitter) burst (transmission in unlicensed spectrum) itself. Therefore, CCA can be performed outside the burst (e.g., during period t) without overlapping with the transient period in Figure 4. p It can be performed between

[0029] On the other hand, licensed band operation utilizes frame configuration type 1 or type 2, which are not applicable to unlicensed band operation for the following reason: Frame configuration type 1 is only applicable to FDD (Frequency Division Duplex) and therefore is not applicable to unlicensed band operation based on TDD (Time Division Duplex).

[0030] Furthermore, frame configuration type 2 is applicable to TDD, but provides a configuration with a fixed uplink and downlink ratio. Furthermore, such uplink-downlink configuration patterns are always specified for a duration of 10 subframes (see Table 4.2-2 Uplink-downlink configurations in 3GPP TS 36.211 v15.4.0). Therefore, type 2 is not suitable for unlicensed band operation (or unlicensed operation for short), where flexibility regarding the duration of channel occupancy is required, along with greater flexibility for transmission positions, e.g., UL and DL bursts. Another important factor that makes frame configuration type 2 inapplicable to unlicensed band operation is the lack of a time gap for performing CCA. In contrast, as shown in Figure 4, at the beginning of a subframe, the untransmitted gap is limited by the parameter t p and CCA is generated by t p This can be done later before the actual transmission.

[0031] If the time mask for frame structure type 3 from LTE-LAA is reused in NR-U, the front and rear symbols of a Tx burst will be subject to transient periods. The impact of transient periods on these symbols may be particularly relevant for NR-U operating with a higher / wider SCS corresponding to shorter symbol durations, or for bursts that start and / or end with high priority symbols requiring high reliability, such as reference symbols.

[0032] If CCA succeeds at the beginning of a symbol boundary and the Tx burst starts immediately, the first symbol of the burst will be affected by a transient period, as shown in Figure 5. As a result, the first symbol (or the signal transmitted in the first symbol) will be corrupted (e.g., the transmit power did not reach a sufficient strength and cannot be recovered at the receiver), affecting the reliability of transmission and reception in the communication system or the QoS of the communication system.

[0033] The present disclosure provides techniques for facilitating reliable transmission and reception. Techniques are provided for handling transient periods for unlicensed operation in NR or similar systems. Embodiments of the present disclosure feature communication devices, such as user equipment (UE), base stations (e.g., NR gNBs), and respective transmission and reception methods for the UE and communication devices, such as base stations.

[0034] As shown in FIG. 6, a UE 660 is provided that includes a transceiver 670 (or "UE transceiver") and circuitry 680 (or "UE circuitry"), and a base station 610 that includes a transceiver 620 (or "base station transceiver") and circuitry 630 (or "base station circuitry"). For example, the base station and the UE communicate with each other over a channel, such as a radio channel, in a communication system such as NR (or NR unlicensed). The UE 660 transmits and receives signals to the base station 610, and vice versa.

[0035] Hereinafter, the terms "circuitry" and "transceiver" encompass base station circuitry 630 and base station transceiver 620, as well as UE circuitry 680 and UE transceiver 670, unless the context or implicit reference indicates otherwise. Circuitry 630, 680 is processing circuitry, such as a processor. Transceivers 620, 670 comprise hardware components, such as one or more antennas, and software components that control the operation of the hardware components.

[0036] During operation, the circuitry determines, based on the type of transmission, the time interval (length) between the outer boundary of the transient period during which the transceiver performs power ramping to start or end a transmission and the symbol (symbol onto which signal or data is mapped) on which the signal contained in the transmission is transmitted. During operation, the transceiver 620, 670 performs transmission, where it transmits signals on (or within) symbols. The time intervals and time windows for CCA (Clear Channel Assessment) do not overlap. The length (duration) of the time interval or time intervals depends on the type of transmission.

[0037] The "outer boundary" is the boundary of the transition period where the power value passes the threshold for an "OFF" request, i.e., the earlier boundary if the transmit power is switched from OFF to ON state at the beginning of a transmission, or the later boundary if the transmit power is switched from ON to OFF at the end of a transmission / burst. Thus, for an OFF-to-ON transition period, the distance between the outer boundary and the symbol is the distance between the earlier boundary of the transition period and the earlier symbol boundary in time (beginning of the symbol). For an ON-to-OFF transition period, the distance between the outer boundary and the symbol is the distance between the later symbol boundary in time (end of the symbol) and the later boundary of the transition period.

[0038] A transmission may be a (Tx) burst in the unlicensed spectrum including one or more OFDM symbols, and a symbol is an OFDM symbol included in the transmission. As described, the CCA may be CCA for a transmission (i.e., a current transmission performed by the UE 660 or the base station 610) or a subsequent transmission performed after the current transmission by the base station 610 (DL burst), the UE 660, or another UE different from the UE 660. In particular, in the case of an OFF-to-ON transition period, the CCA is the CCA for the current transmission, and in the case of an ON-to-OFF transition period, the CCA is the CCA for the subsequent transmission.

[0039] The time window of the CCA refers to the duration over which the channel is actually measured. For example, as specified in Section 4.1.1 of 3GPP TS 37.213 v15.1.0 Physical layer procedures for shared spectrum channel access, the slot duration T sf (9 us) indicates that the eNB senses the channel during the slot duration and the power detected by the eNB for at least 4 us during the slot duration is greater than or equal to the energy detection threshold X ThreshIf it is less than T, it is considered idle. sf In other words, if the CCA is busy for only one slot of 9us, the duration T sf , the actual measurement window need only be 4 us. With this understanding, what is required to be non-overlapping is between the specified time interval and the actual measurement window for the CCA, instead of the full duration of the CCA, e.g., 4 us duration in the example above.

[0040] Also, as will be further described, the type of transmission includes the type of signal, such as a control signal, reference signal, preamble, or data signal, the symbol position of the specific type of signal within the transmission, and / or numerology characteristics, such as the SCS and its associated symbol length / duration. The transmission type may further include the duration of the transmission or burst.

[0041] An exemplary base station circuit 630 for determining the spacing between the outer boundary of the transient period and a symbol ("signal / boundary spacing determination circuit") is shown in FIG. 7. For example, the processing circuit 630 includes a spacing derivation circuit 732. The circuit 630 may further include a notification determination circuit 731. An exemplary signal / boundary spacing determination circuit 680 of the UE 660 is shown in FIG. 8. For example, the UE circuit 680 includes a spacing derivation circuit 882 and may further include a notification evaluation circuit 881.

[0042] Corresponding to the UE and base station described above, a transmission method and a reception method for a communication device such as a UE or a base station are disclosed, as shown in FIG. 9. The transmission method for the UE or base station includes a step S940 of determining, based on a type of transmission, a time interval between an outer boundary of a power ramping transient period for starting or ending the transmission and a symbol in which a signal included in the transmission is transmitted. The transmission method further includes a step S970 of transmitting the signal on a symbol, where the time interval does not overlap with a time window for CCA. The reception method includes a step of receiving the transmission rather than the step S970 of performing the transmission.

[0043] In the following, exemplary embodiments of the above-mentioned UE, base station, and respective corresponding communication methods (transmission and reception methods of the base station and the UE) are described. Unless explicitly stated or indicated by the context, the following description applies to the method and apparatus, the base station, and the UE.

[0044] In some embodiments, the symbol on which the signal is transmitted is located at the time boundary of the transmission, for example the signal is allocated to the first or last symbol of a Tx burst in the time direction.

[0045] For example, a "guard period" (or "offset" or "explicit transient period") may be defined or provided before or after a Tx burst boundary (a transmission time boundary that, if a signal is at the transmission time boundary, is also the time boundary of the symbol on which the signal is transmitted). In the time interval (or guard period, offset), no CCA measurements are performed. In this disclosure, the term "guard period" refers to a period during which power ramping for a burst may be performed, but no CCA (measurements) is performed, to protect the CCA results from effects caused by power ramping and, if necessary, to allow a symbol strength strong enough to ensure successful transmission / reception of critical symbols requiring high reliability.

[0046] Examples of time intervals / guard periods include a front guard period at the start boundary of a transmission and a rear guard period at the end boundary of a transmission.

[0047] On the other hand, a front guard period (or front offset / front explicit transient period) between the CCA for the (current) transmission and the start of the first symbol of the transmit / Tx burst is available to accommodate, at least in part, the OFF to ON power transient period (the OFF to ON transient period mentioned above).

[0048] On the other hand, a rearguard period (rear offset / rear explicit transient period) may be set between the end of the last symbol and the next (possible) CCA performed by a device in the communication system, and is available to accommodate at least a partial power transient period from ON to OFF (ON-OFF transient period).

[0049] An example where an ON to OFF transition period of a previous burst is followed by an OFF to ON transition period of an intended Tx burst is shown in Figure 10. As mentioned above, transmission of symbols that may contain important signals during the transition period may jeopardize successful transmission of the signal and, depending on the importance of the signal, such as a control or reference signal, may jeopardize successful transmission of the burst. To ensure successful transmission of the burst, a guard period at the beginning of the transmission where power is ramped on can be defined / configured.

[0050] Furthermore, as shown in Figure 10, if CCA before an intended transmission measures a certain amount of residual power due to the transient period of the previous transmission, the channel may be unnecessarily blocked due to the failed CCA. Thus, it can be appreciated that the transient period after a Tx burst in which transmit power is ramped off may also affect the CCA performed for subsequent transmissions. Thus, a time interval or guard period between the last symbol of a transmission and the outer boundary of the ON-to-OFF transient period that does not overlap with the CCA period or window for subsequent / future transmissions may facilitate CCA for future transmissions.

[0051] As mentioned above, the time interval or guard period depends on the type of transmission. For example, the length (duration) of the front and rear guard periods (or offset or explicit transition periods) may be determined by the type of channel / signal transmitted at the beginning and end (first and / or last symbol) of a Tx burst, respectively. Examples of guard periods of different lengths are shown in Figures 11 to 13. That is, the illustrated guard periods (time intervals between the outer boundary of the transition period and the first / last symbol of the burst) range from zero to a value greater than the length of the transition period. Thus, flexibility regarding service requirements can be provided, as shown by the following examples:

[0052] First, if the guard period is zero as shown in Figure 11, the transient period is absorbed by the Tx burst itself. On the other hand, in this case, there is no "transient overhead" due to the transient period. However, due to the guard period being zero, the first and / or last symbols may be corrupted as described above.

[0053] Second, when the guard period is non-zero but smaller than the transient period, as shown in Figure 12, the transient period is partially absorbed by the Tx burst and partially accommodated by the guard period. The guard period was previously referred to as the "explicit transient period," but in the example of Figure 12, the explicit transient period is equal to the portion of the transient period accommodated by the guard period. Correspondingly, the remaining portion of the transient period that is absorbed by the burst may be referred to as the "implicit transient period." A non-zero guard period that is smaller than the transient period may be associated with a moderate transient overhead and a moderate impact on the first / last symbols.

[0054] Third, if the guard period is equal to or greater than the transition period, the transition period will be completely outside the Tx burst, as shown in Figure 13. This will cause the largest overhead among the examples in Figures 11-13, but at the same time, it may be easier to provide good protection for the first / last symbols of the burst.

[0055] In the following, the cases of successful and unsuccessful CCA before the start of a Tx burst are explained with reference to Figures 14 and 15. On the other hand, if the CCA fails and the value of the time interval is greater than zero, the transceiver performs a new CCA attempt during operation, which finishes by the start time of the transition period, as shown in Figure 14. The transmission of the Tx burst is postponed to the next transmission opportunity with the new CCA (new attempt) having the remaining guard period. Thus, the time interval or time window in which the new CCA attempt is performed still does not overlap with the guard period. The time window or time interval for the earlier CCA attempt and the time interval / time window for the new CCA attempt may be different.

[0056] However, if the CCA for a transmission succeeds within the symbol guard period but the guard period is non-zero, the guard period still needs to be respected. Thus, in some embodiments, as illustrated by FIG. 15, if the CCA is successful and the time interval value is greater than 0, the transmission (Tx burst) is postponed from the first transmission opportunity at or after the end of the CCA window until the second transmission opportunity (e.g., the next transmission opportunity), where the time distance from the end of the CCA window to the second transmission opportunity is greater than or equal to the guard period. Furthermore, in some cases, even if the first CCA is successful, a new CCA needs to be performed before the second transmission opportunity. The purpose is to ensure that the channel is still free after shifting the transmission opportunity. However, typically, the second CCA may have a deterministic duration without a random backoff value so that it can be performed before the guard period of the second transmission opportunity.

[0057] In the following, some criteria for determining the length of the guard period are explained. For example, if the start or end symbol (the first and / or last symbol of a burst) is important (assigned an important signal), the guard period will have a longer duration for better protection. Otherwise, it may have a shorter duration to minimize or reduce overhead.

[0058] Here, a symbol may be "critical" if it has a high quality of service requirement, such as a reliability requirement, e.g., a symbol containing information necessary for receiving, demodulating, and / or decoding a burst. Thus, in some embodiments, the above-described types of transmissions include a service requirement for the type of signal (or type of channel) transmitted on the symbol, with a higher service requirement resulting in a longer guard period and a lower service requirement resulting in a shorter guard period.

[0059] For example, the service requirement is higher if the signal type is a control signal or reference signal, and lower if the signal type is a preamble or data signal. Therefore, the service requirement is higher (and therefore the guard period is longer) for symbols requiring a higher quality of service (priority / reliability) than for symbols requiring a lower quality of service. Some specific examples of the relationship between guard periods and signal / channel types with different service requirements are shown in Figures 16-20.

[0060] For example, as shown in Figures 16 and 17, if a Tx burst starts or ends with a control channel such as a PDCCH or PUCCH (Physical Downlink / Uplink Control Channel) occupying the first or last symbol or more symbols at the start or end of transmission, the frontguard and / or rearguard periods are determined to be large enough to accommodate the transient period either completely or in a sufficiently large part.

[0061] Similarly, when the guard period begins or ends with a reference signal such as a frontloaded Demodulation Reference Signal (DMRS), Sounding Reference Signal (SRS), or Channel State Information Reference Signal (CSI-RS) for a PDSCH or PUSCH (Physical Downlink / Uplink Shared Channel), the (front and / or rear) guard period is large enough to accommodate (fully or partially) the transient period, as can be seen from Figures 18 and 19. These figures show a typical configuration of RSs in an NR system, including a frontloaded DMRS at the beginning of a Tx burst. However, the present disclosure is also applicable to other RSs at the beginning and / or end of a burst than those shown in Figures 18 or 19, such as a CSI-RS or SRS at the beginning of a burst.

[0062] However, if a Tx burst is initiated by an NR-U preamble or a preamble-like signal, the front guard period may be, for example, zero (or a smaller value than the above case). One possible use case described is for automatic gain control (AGC) and / or synchronization adjustment, since the presence of a periodic signal such as SSB for the UE to keep track of AGC and synchronization is not guaranteed due to the uncertainty of LBT. Such a preamble design can be based on existing NR signals such as primary synchronization sequence (PSS), secondary synchronization sequence (SSS), DMRS, or CSI-RS with possible modifications or new signal designs. Even if the new preamble design is based on DMRS or CSI-RS, it is not expected to be used for channel estimation, since reception including channel estimation is not possible or reliable before the AGC and / or synchronization are properly adjusted. With this understanding, the service requirements for such a new preamble are lower than those for the reference signal used for channel estimation. Therefore, the guard period can be set to a smaller value or zero. This is illustrated in Figure 20, where an OFF to ON transition occurs within a burst at the start of the first symbol, which carries a signal similar to the preamble.

[0063] As mentioned above, according to the present disclosure, a transient period at the beginning or end of a burst can be subdivided into an "explicit transient period" and an "implicit transient period." An implicit transient period is a portion of the transient period absorbed by one or more start or end symbols at the beginning or end of a burst, and the value of the implicit transient period is equal to the "transient period minus the guard period."

[0064] Due to the above-mentioned relationship between guard periods and service requirements, the implicit transient period will be smaller for "important" symbols (such as control and reference signals) and larger for less important symbols (on which the success of the transmission does not depend), such as data (especially if sufficient redundancy is provided) or the preamble or preamble-like signals mentioned above.

[0065] The above examples provide examples in which the length of the guard period is based on service requirements, such as the required reliability of transmission of a certain signal type. Additionally or alternatively, in some embodiments, the type of transmission includes the subcarrier spacing (SCS) of the resource on which the transmission, including the signal, is carried out, and the time interval between the outer boundary and the symbol on which the signal is transmitted is shorter when the subcarrier spacing is narrower (smaller) and longer when the subcarrier spacing is wider. This is because, at a high level, the wider the SCS, the shorter the symbol duration. Consider the case where the specified time interval (also called the guard period) is zero. As a result, the transient period is absorbed by the symbol itself. Because the transient period does not change according to the SCS, for symbols with shorter durations (i.e., larger SCS), the proportion of the symbol duration corrupted by the transient period is greater compared to symbols with longer durations (i.e., smaller SCS). Therefore, a longer time interval (or guard period) is required for larger SCS cases.

[0066] Therefore, according to the above-mentioned relationship between SCS and guard period in some embodiments, the implicit transition period is larger for smaller SCS and smaller for larger SCS. Therefore, more reliable transmission of the start or end symbol of a Tx burst is also possible for numerologies with wide SCS with short symbol lengths.

[0067] Therefore, the rules or criteria based on which the guard period and implicit transition period are determined take into account the signal type and transmission type, including the service requirements for the SCS / numerology. These criteria may be combined or employed independently. For example, one criterion from the numerology criteria and the service requirement criteria may be applied, or these criteria (and possibly further criteria) may be combined. When combining criteria, one criterion may be used as a primary criterion and the other as a secondary criterion. For example, it may be specified or set for all SCSs above a certain threshold, sufficient to accommodate the entire transition period, while for smaller SCSs, a guard period value whose transition period depends on the signal type is used. Alternatively, the signal type may be employed as a primary criterion. In this case, for example, whenever the first or last symbol of a burst is an important symbol to which a signal such as DMRS or PDCCH / PUCCH is mapped, the guard period will accommodate the entire transition period.

[0068] In Table 1 below, possible exemplary and non-limiting values ​​of the guard period are shown for several different combinations of frequency range (FR1 or FR2) and their associated symbol durations, respectively. For example, the example shown in Figure 21 corresponds to SCS = 30 kHz in FR1, and PUSCH is mapped to the symbols including the first symbol. Here, as an exemplary value, the guard period is determined to be 5 us (instead of 10 us). [Table 1]

[0069] As described above, the time boundary of the transmission may be the start boundary of the transmission. And, in some embodiments, the UE transceiver 670 further receives notification of the start boundary of the transmission during operation, e.g., in a grant (e.g., a scheduling grant, such as a scheduling Downlink Control Information (DCI) indicating that the transmission is scheduled) or higher layer signaling (e.g., Radio Resource Control (RRC) signaling). During operation, the UE circuitry 680 first determines the length of the time interval (or guard period) and then determines the outer boundary of the transition period from the notified start boundary of the transmission and the length of the time interval. The UE transceiver 670 performs CCA on the transmission according to the above description of the CCA time window / interval, and then ramps power during the transition period that does not overlap with the CCA period / window to start the transmission. In this disclosure, "notification" refers to one or more indicators, such as a bitmap or bit field, representing a numerical value, such as the start position of a burst.

[0070] In the following, it is explained how the UE can know the duration of the guard period. It is assumed that the rule set defined and disclosed above, including the above criteria of e.g. numerology and / or service requirements, is known to both the UE and the base station / gNB, e.g. by a standard or specification.

[0071] For example, to start transmitting a Tx burst, the UE knows from the scheduling information the starting (symbol) position of the Tx burst and other information such as the SCS and / or whether the first symbol is an important symbol (e.g., DMRS or PDCCH). According to known and previously defined rules, the UE derives the length of the guard period. It is the responsibility of the scheduler (or scheduling entity) to create a sufficient gap for the CCA during which no transmission is performed.

[0072] Further details regarding an exemplary UE operation for starting a Tx burst including a PUSCH transmission are shown in FIG. 22. In step S2201, the UE receives an UL grant for the PUSCH, e.g., a 25 us Cat-2 LBT (Category 2 Listen Before Talk), including the starting (symbol) position of the Tx burst and a CCA request. According to a service request or rules such as SCS / numerology, the UE derives a guard period length in step S2202. From the guard period length and the starting symbol position of the uplink grant, the UE can determine the outer boundary of the transition period. Then, the UE performs CCA (step S2203). If the CCA is successful, the UE ramps the transmit power starting from the outer boundary of the transition period until it reaches the ON request, and then maintains the ON request (step S2204). During power ramp-up, it is checked whether the first complete symbol boundary has been reached (step S2205). Here, the beginning of the transition period (the "outer boundary") is assumed to be located between two symbol boundaries. If the first complete symbol boundary has not yet been reached, the UE continues ramping up power. However, if the first complete symbol boundary is reached, the UE starts transmitting a Tx burst (in this case, a PUSCH transmission). Depending on the length of the guard period and the transition period, the UE may still continue during PUSCH transmission. If CCA is not successful, the transmission is abandoned and a new CCA attempt may be performed as described above.

[0073] In the example of Figure 22 above, it is assumed that the transmission is a PUSCH transmission and the first symbol is a PUSCH symbol. The PUSCH is scheduled by a scheduling grant received by the UE from a base station. For various types of transmissions, which may include transmissions for which no dynamic grant in the downlink control channel needs to be received, such as configured grant-based PUSCH transmissions, the starting symbol position may be indicated to the UE from higher layer (RRC) signaling received from the base station.

[0074] The above-described methods utilized at the start of a Tx burst, such as a PUSCH transmission, may be considered implicit, since the start of the transient period is implicitly known from the rules known to the UE and the start of the transmission / Tx burst.

[0075] The start of the transition period may also be explicitly signaled, for example, in the scheduling information, in which case the CCA should be performed before the signaled start of the transition period.

[0076] Examples of explicit notification of the start position of a transition period by Downlink Control Information (DCI) are provided in Table 2. In these examples, the first symbol of a slot ("Sym 0") is extracted as a reference, with the beginning of the guard period indicated by a two-bit code point. However, Table 2 merely provides examples of explicit notification and is in no way intended to limit the present disclosure to a specific start position of a burst or transition / guard period. In contrast, a burst may start at a transmission opportunity that may be different from the first symbol of the slot. Furthermore, the present disclosure is applicable not only to slot-based allocation but also to non-slot-based allocation. [Table 2]

[0077] According to Table 2, when the UE is designated "00", the UE starts the first symbol of a Tx burst at symbol 0 of any slot. This means that the transition period is absorbed by symbol 0 itself. When the UE is designated "01", the UE starts the first (complete) symbol of a Tx burst at symbol 1 of any slot. The UE starts the transition period 16 us after the symbol 0 boundary. When the UE is designated "10", the UE starts the first symbol of a Tx burst at symbol 1 of any slot. The UE starts the transition period 25 us after the symbol 0 boundary. Finally, when the UE is designated "11", the UE starts the first (complete) symbol of a Tx burst at symbol 1 of any slot. The UE starts the transition period 25 us + TimeAdvance value after the symbol 0 boundary. An exemplary flowchart illustrating the steps performed at the start of a transmission in the case of explicit notification is shown in Figure 23, where steps S2301 and S2302 differ from Figure 22. The remaining steps S2303 to S2307 are similar to the corresponding steps shown in FIG.

[0078] In addition to the above example where the time boundary is a start boundary, in some embodiments, the time boundary is an end boundary of a transmission (the current transmission in which the signal is included). In such cases, the CCA may refer to a CCA for a later transmission that is different from the current transmission, possibly, but not necessarily, transmitted by a different communication device in the communication system, such as another UE (e.g., UL transmission) or a base station (DL transmission). During operation, the UE transceiver 670 receives notification of the start boundary and duration of the current transmission via a grant or higher layer signaling. During operation, the UE circuitry 680 derives the end boundary of the current transmission from the notified start boundary and duration of the current transmission and determines an inner boundary of the transition period that is located a distance from the end boundary of the current transmission that is the difference between the length of the transition period and the outer boundary of the transition period and the time interval between the symbols.

[0079] Thus, in addition to signaling the start boundary of a transmission (e.g., the position of the first symbol), the signaling also signals the duration of the transmission. For example, there may be two indicators (e.g., bit fields) in the scheduling grant / scheduling DCI or in higher layer signaling, one indicating the start boundary and the other indicating the duration. Both indicators may be included in the grant. However, there may be cases, for example, where an indicator of the start boundary of a transmission is included in the grant and an indicator of the duration is included in the higher layer signaling. Alternatively, a single bit field may represent both the start position and the length.

[0080] Therefore, to terminate the transmission of a Tx (uplink) burst (transmission including a signal), the UE knows where to start the transition period (i.e., where to start ramping down the power). In particular, based on the above-mentioned notification / indicator and the rules / criteria used to determine the length of the explicit guard period (or time interval), the UE can determine the start of the transition period. Furthermore, the length of the transition period is related to its own capabilities (such as the specific hardware and software of the UE) and is known to the UE because standard specifications already set limits on such transition periods, for example, according to the values ​​shown in Table 1. Then, the start of the guard period from ON to OFF can be determined as "start of transmission + length of transmission - implicit transition period," where the implicit transition period is equal to "transition period - guard period."

[0081] An example of steps performed by a UE at the end of UL transmission is shown in FIG. 24. First, in step S2401, the UE receives a PUSCH UL grant including the PUSCH length and an SCS indication (e.g., 15 kHz). As described above, the grant may further include an instruction to start transmission. Then, in step S2402, the UE determines the length of the rearguard period according to a known rule. For example, as shown in FIG. 1, it is determined that there is no guard period for the PUSCH and the 15 kHz SCS. In step S2403, the UE determines the start position of power ramping down to satisfy the guard period requirement. In this example, assuming that the transition period is 10 us and there is no guard period (0 guard period), the UE must start the 10 us transition period by the end of the last symbol. The UE then transmits the PUSCH. Until the start of the ON-to-OFF transition period, the UE transmits the PUSCH according to the ON power requirement (S2404). If it is determined that the start of the transition period for power ramping down has been reached (S2405), the UE ramps down the power (S2406) and transmits the remaining PUSCH symbols (which will overlap with the transition period if there is no guard period) in step S2407. If the UE powers off state / request has been reached (S2408), transmission is terminated (S2409).

[0082] In the above case, the UE operation in the case of uplink transmission from the UE to the base station has been described. For downlink transmission, the UE may receive a DL Tx burst from the beginning and follow scheduling information that informs the UE of the first complete symbol to start receiving the burst. Whether the first complete symbol includes a transition period (i.e., whether the transition period is before the first symbol) is transparent to the UE. Also, at the end of DL transmission, the UE may follow scheduling information that informs the UE of the last (complete) symbol to receive the Tx burst at the end. Whether the last symbol includes a transition period is transparent to the UE.

[0083] According to the above-mentioned UE operation, it may be provided that no special mapping (from coded bits or reference signals to physical resources) is required for the first and last symbols, regardless of whether the first / last symbols include a transition period.No special handling of the first and last symbols at the receiver side may be required, regardless of whether the first / last symbols include a transition period.

[0084] Above, an embodiment was described in which the time interval between the outer boundary of the transition period and the symbol on which the signal is transmitted corresponds to a guard period inserted before the first symbol or after the last symbol of a Tx burst. However, the present disclosure also covers an embodiment in which no guard period is inserted (the guard period is 0 regardless of the transmission type). In such an embodiment, a sufficiently large time interval between the start of the transition period and the symbol on which essential (important) signals / information are mapped can be achieved by not using the start and end symbols (the first and last symbols of the burst) to carry essential information such as reference signals or control information.

[0085] In the above disclosure, SCS / numerology and service requirements are named as the basis for the rules based on which guard periods are determined. Other requirements or criteria for transition periods, such as those applicable to licensed band usage, may be applied in addition to, in combination with, or on top of the rules described above. Thus, in some embodiments, the type of transmission includes the duration of the transmission, and shorter transmission durations result in longer guard periods, and longer transmission durations result in shorter guard periods. For example, a short transmission burst may require that the transition period be outside of the Tx burst.

[0086] Thus, in some embodiments, the signal transmitted on a symbol is a first signal, and the transmission includes a second symbol having a lower service requirement than the first symbol. The (UE or base station) circuitry 630, 680 determines the time interval between the outer boundary of the transition period and the symbol on which the first signal is transmitted by swapping the symbol positions of the first and second signals, thereby increasing the time interval. Thus, the interval between the outer boundary of the transition period and the symbol bearing the first signal is established by swapping (swaping / switching) the symbol positions, thereby moving the symbol bearing the first signal to an internal symbol position that is distant from or not adjacent to the outer boundary of the transition period. For example, for a data channel, if a Tx burst is originally intended to start or end with a required reference signal on the first or last symbol, the start or end symbol is swapped with, for example, the second symbol (or the second last symbol).

[0087] For example, the UE receives a flag from the base station in a grant or higher layer signaling indicating whether the symbol positions should be swapped, and if the transmission is an uplink transmission, the UE performs the symbol position swapping according to the flag. For DL ​​transmission, the base station performs the swapping, and the flag informs the UE which signals should be received (demodulated, decoded) at which symbols and in which order.

[0088] For example, the scheduling DCI may include a flag to instruct the UE to perform the reshuffling. The flag may be a one-bit flag indicating whether the reshuffling should be performed or there may be a separate bit for the start of a burst and the end of a burst. Alternatively, there may be multiple bits to indicate with which symbols the start symbol and / or the end symbol should be reshuffled, for example.

[0089] Some embodiments may be based on an agreement that a control channel should not be mapped to the start and / or end symbols, and the receiving device does not expect to receive and does not attempt to decode a control channel such as a PDCCH or PUCCH. For example, the agreement may be made by a standard (e.g., no control channel at the start / end symbols of a particular SCS) or may be configured. In case of such an agreement, a dedicated flag to indicate the swap may not need to be signaled.

[0090] In this disclosure, FR1 and FR2 are referred to as exemplary frequency bands for unlicensed operation in NR, and requirements for SCSs and transition periods may be provided. However, the techniques disclosed herein may also be applied to other frequency ranges, such as higher frequency bands. In certain cases, the transition period may have a duration longer than one symbol (e.g., in the case of a very large SCS). The techniques disclosed herein may also be applied to such cases. For example, for a large SCS, the guard period may be selected to be sufficiently large so that sufficient reliability is provided even for the second or last second symbol in a Tx burst. Alternatively, when replacing a required symbol with another symbol, the first symbol may be repositioned, for example, by the third or fourth symbol in the burst rather than the second symbol.

[0091] Some embodiments have been described in which the transmission is an uplink transmission from the UE to a base station. Exemplary method steps of an uplink transmission method are shown in FIG. 25. The base station determines (S2510) a notification of the start of a transmission, such as an uplink burst, and possibly the length of the transmission (e.g., number of symbols). The base station further transmits (S2520) the notification to the UE in a grant or higher layer signaling. The UE receives (S2530) the notification and, based on the notification and the rules for determining the guard period, determines the time interval between the signal in which the symbols are transmitted and the outer boundary, and accordingly performs the transmission to be received by the base station (S2580) (steps S940 and S970 of FIG. 9).

[0092] In general, this disclosure is applicable to uplink as well as downlink transmissions. For downlink transmissions, the base station (transmitting device) determines the boundaries of the transmission and the (inner and / or outer) boundaries of the guard period, sends notification of the start of the transmission and, if necessary, the duration of the transmission in higher layer signaling or scheduling DCI / assignment, performs CCA, and performs the transmission.

[0093] Furthermore, in this disclosure, any reference to performing a transmission (such as a burst, grant, signaling, etc.) by a transmitting device (UE or base station) means that the transmission can be received by a corresponding receiving device (base station or UE).

[0094] The present disclosure can be realized by software, hardware, or software interfacing with hardware. Each functional block used in the description of each embodiment above can be partially or entirely realized by an LSI such as an integrated circuit, and each process described in each embodiment can be partially or entirely controlled by the same LSI or a combination of LSIs. The LSI may be formed as an individual chip, or a single chip may be formed to include some or all of the functional blocks. The LSI may also include data input / output devices coupled thereto. Here, LSIs may be referred to as ICs, system LSIs, super LSIs, or ultra LSIs depending on their degree of integration. However, integrated circuits are not limited to LSIs and may be realized using dedicated circuits, general-purpose processors, or application-specific processors. Furthermore, FPGAs (Field Programmable Gate Arrays), which allow reconfiguration of the connections and settings of circuit cells arranged within an LSI or reconfigurable processors that can be programmed after fabrication, may also be used. The present disclosure can be realized using digital or analog processing. If future integrated circuit technologies replace LSI as a result of advances in semiconductor technology and other derivative technologies, functional blocks can be integrated using future integrated circuit technologies. Biotechnology is also applicable.

[0095] The present disclosure may be implemented by any type of apparatus, device or system having communication capabilities, referred to as a communications apparatus.

[0096] Some non-limiting examples of such communication devices include telephones (e.g., mobile (cell) phones, smartphones), tablets, personal computers (PCs) (e.g., laptops, desktops, netbooks), cameras (e.g., digital still / video cameras), digital players (digital audio / video players), wearable devices (e.g., wearable cameras, smart watches, tracking devices), game consoles, digital book readers, telehealth / telemedicine (remote health and remote medical) devices, and vehicles (e.g., automobiles, airplanes, ships) that provide communication capabilities, and various combinations thereof.

[0097] The communications apparatus is not limited to being portable or mobile, but may include any type of apparatus, device or system that is non-portable or fixed, such as smart home devices (e.g., appliances, lighting, smart meters, control panels), vending machines and any other "thing" in an "Internet of Things (IoT)" network.

[0098] Communications may include, for example, exchanging data via cellular systems, wireless LAN systems, satellite systems, and the like, as well as various combinations thereof.

[0099] A communications apparatus may include devices such as a controller or a sensor coupled to the communications device to perform the communications functions described in this disclosure. For example, a communications apparatus may include a controller or a sensor that generates control or data signals used by the communications device to perform the communications functions of the communications apparatus.

[0100] Communications equipment may also include infrastructure facilities such as base stations, access points, and any other equipment, device, or system that communicates with or controls equipment such as those in the above non-limiting examples.

[0101] There is provided a user equipment (UE) comprising: circuitry that, during operation, determines based on a type of transmission, an outer boundary of a transient period for ramping power to start or end the transmission and a time interval between a symbol on which a signal included in the transmission is transmitted; and a transceiver that, during operation, transmits the signal on the symbol, wherein the time interval and a time window for Clear Channel Assessment (CCA) are non-overlapping.

[0102] In some embodiments, the symbols at which the signal is transmitted are at the time boundaries of the transmission.

[0103] For example, the type of transmission includes a service requirement for the type of signal, and the time interval is longer if the service requirement is higher and shorter if the service requirement is lower.

[0104] For example, the service requirement may be higher if the type of the signal is a control signal or a reference signal, and lower if the type of the signal is a preamble or a data signal.

[0105] In some embodiments, the type of transmission includes a subcarrier spacing of a resource on which transmission including the signal is to be performed, and the time interval is shorter if the subcarrier spacing is narrower and longer if the subcarrier spacing is wider.

[0106] In some exemplary embodiments, the time boundary of the transmission is a start boundary, and the transceiver receives notification of the start boundary of the transmission in a grant or higher layer signaling during operation, the circuit determines an outer boundary of the transition period based on the notification and the time interval during operation, and the transceiver performs the CCA on the transmission during operation and ramps on the power during the transition period to start the transmission.

[0107] In some demonstrative embodiments, the signal is included in a current transmission, the CCA is a CCA for a subsequent transmission, the time boundary is an ending boundary of the current transmission, the transceiver receives notification of a start boundary and a duration of the current transmission in a grant or higher layer signaling during operation, the circuitry derives an ending boundary of the current transmission from the notified start boundary and duration of the current transmission during operation, and determines an inner boundary of the transient period that is located at a distance from the ending boundary of the current transmission that is a difference between a length of the transient period and the time interval. For example, if the CCA is successful and the value of the time interval is greater than zero, the transmission is postponed from a first transmission opportunity at an end of the CCA window to a second transmission opportunity, and the time distance from the end of the CCA window to the second transmission opportunity is greater than the time interval.

[0108] For example, if the CCA fails and the time interval value is greater than zero, the transceiver performs a new attempt of the CCA during operation that finishes by the start time of the transition period.

[0109] In some embodiments, the type of transmission includes a duration of the transmission, and the time interval is longer if the duration of the transmission is shorter and shorter if the duration of the transmission is longer.

[0110] For example, the signal transmitted on the symbol is a first signal, and the transmission includes a second symbol having a lower service requirement than the first symbol, and the circuit determines the time interval between the outer boundary of the transition period and the symbol on which the first signal is to be transmitted by swapping the symbol positions of the first signal and the second signal to increase the time interval during operation.

[0111] For example, the transceiver receives a flag in a grant or higher layer signaling during operation indicating whether the symbol positions should be swapped, and the circuitry performs the symbol position swapping according to the flag.

[0112] There is provided a user equipment (UE) comprising: circuitry that, during operation, determines, based on a type of transmission, an outer boundary of a transient period for ramping power to start or end the transmission and a time interval between a symbol on which a signal included in the transmission is transmitted; and a transceiver that, during operation, receives the signal on the symbol, wherein the time interval and a time window for Clear Channel Assessment (CCA) are non-overlapping.

[0113] In some embodiments, the symbol at which the signal is received is at a time boundary of the transmission.

[0114] For example, the type of transmission includes a service requirement for the type of signal, and the time interval is longer if the service requirement is higher and shorter if the service requirement is lower.

[0115] For example, the service requirement may be higher if the type of the signal is a control signal or a reference signal, and lower if the type of the signal is a preamble or a data signal.

[0116] In some embodiments, the type of transmission includes a subcarrier spacing of a resource on which transmission including the signal is to be performed, and the time interval is shorter if the subcarrier spacing is narrower and longer if the subcarrier spacing is wider.

[0117] For example, the type of transmission includes the duration of the transmission, and the time interval is longer if the duration of the transmission is shorter, and shorter if the duration of the transmission is longer.

[0118] For example, the signal received on the symbol is a first signal and the transmission includes a second symbol having a lower service requirement than the first symbol, and the circuit determines the time interval between the outer boundary of the transition period and the symbol on which the first signal is to be transmitted by swapping the symbol positions of the first signal and the second signal to increase the time interval during operation.

[0119] For example, the transceiver may receive a flag during operation in an allocation or higher layer signaling indicating whether the symbol positions should be swapped, and the signal is received with the symbol positions swapped in accordance with the flag.

[0120] There is further provided a base station comprising: circuitry that, during operation, determines based on a type of transmission, an outer boundary of a transient period for ramping power to start or end said transmission, and a time interval between a symbol on which a signal included in said transmission is transmitted; and a transceiver that, during operation, receives or transmits said signal on said symbol, wherein said time interval and a time window for Clear Channel Assessment (CCA) are non-overlapping.

[0121] In some embodiments, the symbols at which the signal is transmitted are at the time boundaries of the transmission.

[0122] For example, the type of transmission includes a service requirement for the type of signal, and the time interval is longer if the service requirement is higher and shorter if the service requirement is lower.

[0123] For example, the service requirement may be higher if the type of the signal is a control signal or a reference signal, and lower if the type of the signal is a preamble or a data signal.

[0124] In some embodiments, the type of transmission includes a subcarrier spacing of a resource on which transmission including the signal is to be performed, and the time interval is shorter if the subcarrier spacing is narrower and longer if the subcarrier spacing is wider.

[0125] In some exemplary embodiments, the time boundary of the transmission is a start boundary, and the transceiver determines during operation a notification of the start boundary of the transmission, based on which an outer boundary of the transient period can be derived, and the transceiver transmits during operation a notification of the start boundary of the transmission in a grant or higher layer signaling and receives the transmission according to the notification.

[0126] In some embodiments, the signal is included in a current transmission, the CCA is a CCA for a subsequent transmission, the time boundary is an end boundary of the current transmission, the transceiver determines a start boundary of the current transmission and a duration of the current transmission during operation, the transceiver transmits notification of the start boundary of the current transmission and the duration of the current transmission in a grant or higher layer signaling, and receives the transmission according to the notification.

[0127] In some embodiments, the type of transmission includes a duration of the transmission, and the time interval is longer if the duration of the transmission is shorter and shorter if the duration of the transmission is longer.

[0128] For example, the signal transmitted on the symbol is a first signal, and the transmission includes a second symbol having a lower service requirement than the first symbol, and the circuit determines the time interval between the outer boundary of the transition period and the symbol on which the first signal is to be transmitted by swapping the symbol positions of the first signal and the second signal to increase the time interval during operation.

[0129] For example, during operation, the transceiver may transmit a flag in a grant, assignment or higher layer signaling indicating whether the symbol positions should be swapped, and the transmission is received or performed with the symbol positions swapped according to the flag.

[0130] In summary, there are provided a user equipment (UE), a base station, and respective transmission / reception methods between the UE and the base station, the UE having circuitry that, during operation, determines, based on a type of transmission, an outer boundary of a transient period for ramping power to start or end said transmission, a time interval between a symbol on which a signal included in said transmission is transmitted, and a transceiver that, during operation, transmits said signal on said symbol, wherein said time interval and a time window for Clear Channel Assessment (CCA) are non-overlapping.

Claims

1. An integrated circuit for controlling processing in a user equipment (UE), the processing comprising: determining, based on a type of transmission, an outer boundary of a transient period for ramping power to start or end said transmission and a time interval between a symbol in which a signal included in said transmission is transmitted; transmitting said signals on said symbols; Including, the time interval and a time window for Clear Channel Assessment (CCA) are non-overlapping; the signal transmitted on the symbol is a first signal, and the transmission includes a second symbol having a lower service requirement than the first symbol; The integrated circuit wherein the processing determines the time interval between an outer boundary of the transition period and the symbol at which the first signal is to be transmitted by swapping symbol positions of the first and second signals to increase the time interval.

2. The integrated circuit of claim 1 , wherein the symbols at which the signal is transmitted are at time boundaries of the transmission.

Citation Information

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