The present disclosure relates to communication device and methods, in particular for WLAN communication in a multilink (ML) environment.
Multilink is very appealing to achieve high throughput and/or low latency. The idea is to combine two or more links between two stations (STAs) for data transmission. A first link may be implemented on a first channel, within e.g. a 5 GHz band, whereas the second link may be implemented on a second channel, within e.g. a 6 GHz band. A device that supports multiple links may also be called multilink device (MLD), which may be an access point (AP) MLD or non-AP (or STA) MLD. Each link between an AP MLD (also called second communication device herein) and a non-AP MLD (also called first communication device herein) is established between an AP STA and a non-AP STA. Thus, an AP MLD may comprise one or more AP STAs and a non-AP MLD may comprise one or more non-AP STAs.
A drawback of the multilink concept is that multiple radios or RF chains are needed which makes the devices expensive. This is particularly a problem for non-AP MLDs which generally have more constraints regarding implementation costs than AP MLDs.
In an enhanced single radio concept one radio is used that can be split The single radio can have two operation modes, a full operation mode and a partial operation mode. At a receiving device, e.g. a non-AP MLD, in the full operation mode a first link of the two links between two communication devices is disabled and a second link of the two links commonly uses RF chains of both links for the communication between the communication devices. In the partial operation mode, both links use the respectively assigned spatial stream and bandwidth for the communication between the communication devices. However, when switching between the operation modes a switching delay appears.
The “background” description provided herein is for the purpose of generally presenting the context of the disclosure. Work of the presently named inventor(s), to the extent it is described in this background section, as well as aspects of the description which may not otherwise qualify as prior art at the time of filing, are neither expressly nor impliedly admitted as prior art against the present disclosure.
It is an object to provide communication devices and methods that deal with the switching delay, in particular to efficiently use the period of the switching delay. It is a further object to provide a corresponding computer program for implementing the communication methods and a non-transitory computer-readable recording medium for implementing the communication methods.
According to an aspect there is provided a first communication device configured to communicate with a second communication device via two links, the first communication device comprising circuitry configured to
According to a further aspect there is provided a second communication device configured to communicate with a first communication device via two links, the second communication device comprising circuitry configured to
According to still further aspects corresponding communication methods, a computer program comprising program means for causing a computer to carry out the steps of the methods disclosed herein, when said computer program is carried out on a computer, as well as a non-transitory computer-readable recording medium that stores therein a computer program product, which, when executed by a processor, causes the methods disclosed herein to be performed are provided.
Embodiments are defined in the dependent claims. It shall be understood that the disclosed methods, the disclosed computer program and the disclosed computer-readable recording medium have similar and/or identical further embodiments as the claimed communication device and as defined in the dependent claims and/or disclosed herein.
One of the aspects of the disclosure is to provide channel access principles and rules that reflect a non-zero transition time between two different operation modes. The proposed rules are applicable for unlicensed band, consider medium access protection to avoid overlapping transmissions, and are compliant with general channel access rules of Wireless LAN. In embodiments implicit and explicit signaling methods are provided.
In the full operation mode, in the first communication device, a first link of the two links is disabled (i.e. switched off) and a second link of the two links commonly uses RF chains of both links, in particular commonly uses the bandwidths and/or spatial streams of both links, for the communication with the second communication device. In the partial operation mode each link uses its RF chain, in particular a respective subset of the spatial streams and/or bandwidths of both links, for the communication with the second communication device.
In the full operation mode, in the second communication device, a first link of the two links is disabled (i.e. switched off) or used for a third communication device (i.e. to communication with a third communication device), and a second link of the two links uses at least the same number (e.g. twice the number) of RF chains as used in partial operation mode, in particular uses at least the same bandwidths (e.g. twice the bandwidths) and/or at least the same number of spatial streams (e.g. twice the number of spatial streams) as used in partial operation mode, for the communication with the second communication device. In the partial operation mode, the first link is disabled or used for a third communication device and the second link uses one or more RF chains for the communication with the first communication device, in particular a respective subset of the spatial streams and/or bandwidths of both links, for the communication with the second communication device.
According to the present disclosure, the communication devices and method consider the existing switching delay of the first communication device, in particular by compensating the switching delay or limiting the impact of the switching delay on the communication between the communication devices and the moment of accessing a link. As provided in an embodiment, the moment of switching between the full operation mode and the partial operation mode and/or the moment of accessing the second link in the full operation mode may be controlled based on the length of the switching delay.
The foregoing paragraphs have been provided by way of general introduction, and are not intended to limit the scope of the following claims. The described embodiments, together with further advantages, will be best understood by reference to the following detailed description taken in conjunction with the accompanying drawings.
A more complete appreciation of the disclosure and many of the attendant advantages thereof will be readily obtained as the same becomes better understood by reference to the following detailed description when considered in connection with the accompanying drawings, wherein:
As mentioned above, an enhanced single radio non-AP MLD (a first communication device, e.g. a station STA) makes use of one radio that can be split, i.e. the radio can have two operation modes. First, it can act as a regular radio (=full operation mode), i.e. it may transmit and/or receive data with any PPDU (physical protocol data unit) types including any type of data, control, and/or management frames, different bandwidth, different modulation coding schemes (MCS) and/or spatial streams according to the IEEE 802.11ax or IEEE 802.11be standard amendment or IEEE 802.11 standard. Second, it can act as a partial radio (=partial operation mode), i.e. it may receive control frames contained in a single PPDU type modulated with limited set of modulation coding schemes (MCS) and/or spatial streams. Partial operation particularly covers the reception of ready-to-send (RTS) and/or multi-user RTS (MU-RTS) frame and carrier clear assessment (CCA) operation. In another embodiment, it is assumed that partial operation includes reception of data and/or management frames on top. In a further embodiment, transmission of control frames and/or reception of data and/or management frames on top is assumed.
If the enhanced single radio is configured to operate in full operation mode on one link, all other links are disabled (turned off), i.e. it may neither transmit nor receive on these links. The enhanced single radio may however be in partial operation mode on various links. As an implementation example, the number of spatial streams in full operation mode is N times the spatial streams in partial operation mode over N links. Thus, the spatial streams are split over different links for partial operation and are combined to one link for full operation.
Referring now to the drawings, wherein like reference numerals designate identical or corresponding parts throughout the several views,
In another embodiment of the first communication device (generally having the same components as shown in
The components of the transmitter architecture 200 and the receiver architecture 100 of the first communication device, except for the antennas, may generally be implemented in hard- and/or software. For instance, in one implementation a common circuitry or processor or computer may be used rather than separate hardware components. In an implementation an appropriately programmed processor or computer may realize these communication devices.
According to the present disclosure, in the first communication device, the operation modes are used as follows: In the full operation mode a first link of the two links is disabled and a second link of the two links commonly uses RF chains of both links (e.g. commonly uses the bandwidths and/or spatial streams of both links) for the communication with the second communication device. In the partial operation mode, each link uses its RF chain (e.g. a respective subset of the spatial streams (i.e. one of two spatial streams of the enhanced radio) and/or bandwidths (i.e. part of the total bandwidth of the enhanced radio) of both links) for the communication with the second communication device. In particular, for bandwidth, in partial operation mode fA and fB are tuned to center frequency of each link and in full operation mode, either fA or fB is tuned such that its bandwidth lies adjacent to the bandwidth of the selected link. For spatial stream, in partial operation mode fA and fB are tuned to center frequency of each link, and in full operation mode either fA or fB is tuned to fB or fA, i.e. fA=fB and fB stays as it is, or fA stays as it is and fA=fB.
According to the present disclosure, in the second communication device, the operation modes are used as follows: In the full operation mode a first link of the two links is disabled or used for a third communication device and a second link of the two links uses at least the same number (e.g. twice the number) of RF chains as used in partial operation mode for the communication with the first communication device. In the partial operation mode, the first link is disabled or used for a third communication device and the second link uses one or more RF chains for the communication with the first communication device. In other words, the second communication device can have concurrent radios, i.e. in the full operation mode the first link may be either disabled (if second communication device is of type single radio) or used for something else (if the second communication device has concurrent radios). In partial mode the second communication device does not do anything on the first link. If it has concurrent radios, it may serve another STA. If it is of type single radio, it turns off the first link since there is nothing to transmit at all.
For example, the non-AP MLD uses one RF chain in partial operation mode and two RF chains in full operation mode and the AP MLD would like to use link 2 for data communication. Thus, referring to
For
For example, the non-AP MLD uses one RF chain in partial operation mode and two RF chains in full operation mode and AP MLD would like to use link 2 for data communication. Thus, referring to
In other words, if there are two links, in an embodiment n partial operation mode the AP MLD may use one or more RF chains and in full operation mode the AP MLD may use twice the number of RF chains as used in partial operation mode, i.e. two or more RF chains (an even number). The other link may be used for communication with another (third) communication device. If there are more than two links, the AP MLD may use at least twice (e.g. three times) the number of RF chains in full operation mode as used in partial operation mode. In an embodiment, in full operation mode the AP MLD uses a number of RF chains that corresponds to the number of links on which the non-AP MLD can operate.
The operation illustrated in
Furthermore, while operating on a single link, i.e. full operation mode, the non-AP MLD cannot receive frames on the non-operative links. Thus, rules are defined according to the present disclosure when to access the non-operative links after a single radio phase.
A first issue is indicated in
On top of that, the operation illustrated in
It is noted that switching the link has an effect for both links: The first link is immediately turned off. The second link stays all the time in partial operation mode until the switching delay passed. After that it is in full operation mode. Switching to full operation mode is a constraint to the fact that no frame is currently transmitted. This implies that the digital base band processor does not consider the output of the RF chain of the previously first link.
If the transmit queue that holds the data to be transmitted is short, it may be considered if a PPDU split provides an advantage in terms of transmit time. Thus, a PPDU split is preferably considered when the following equation is fulfilled:
TXTIME(PPDUpartial)>TXTIME(1st PPDUpartial)+SIFS+TXTIME(2nd PPDUfull)
Hence, according to this embodiment, a first part of a frame exchange (in particular a data unit, such as a PPDU) is transmitted or received in partial operation mode before a switching time or the completion of switching from the partial operation mode into the full operation mode a second part of said frame exchange is transmitted or received in full operation mode after the completion of switching from the partial operation mode into the full operation mode.
Hence, according to this embodiment, before and/or after transmission or receipt of the first part 12a of the frame exchange, allocation information (e.g. the NAV setting) indicating an allocation period for which the second link is allocated to the first and second communication devices for data communication is transmitted.
The re-transmission of a CTS frame or the transmission of an ACK frame for the purpose of distributing the NAV setting in full operation mode may be avoided, when the partial operation mode partially includes the full operation mode. Assuming that transmit antennas serve sufficiently different polarizations, e.g. orthogonal (horizontal and vertical) or quasi-orthogonal polarization leading to a sufficient cross attenuation, the spatial separation provided by the channel is very high. Thus, the protection in partial operation mode protects only one polarization and redistribution of the NAV in full operation mode is preferred.
However, if the transmit antennas serve orthogonal linear combinations of different (e.g. orthogonal (horizontal and vertical) or quasi-orthogonal) polarizations, transmission with a single transmit antenna covers both polarizations but with reduced power for each polarization. Nonetheless, the difference to full operation mode is less compared to transmission on a single polarization. While typical polarization discrimination is about 20 dB, the power loss when using a linear combination is about 3 dB if the transmit power is equally split between polarizations.
The initiator of the data transfer, i.e. the one that initially transmitted an RTS frame 10 in partial operation mode, shall transmit another RTS frame 16 in full operation mode, i.e. with increased bandwidth, if the new part of the bandwidth was detected as idle for a time interval of PIFS (priority inter frame spacing) before transmitting the RTS frame 16 in full operation mode.
The responder of the data transfer, i.e. the one that initially transmitted a CTS frame 11 in partial operation mode, shall transmit another CTS frame 17 in full operation mode, i.e. with increased bandwidth, if the new part of the bandwidth was detected as idle for a time interval of PIFS before transmitting the CTS frame 17 in full operation mode and if it has previously received a RTS frame 16 in full operation mode.
After the RTS/CTS exchange in full operation mode, data transfer may start (or continue) in full operation mode, i.e. the second part 12b of the data unit may be transmitted with increased bandwidth. If at least one of the RTS frame 16 or the CTS frame 17 was transmitted in partial operation mode, the data transfer shall use the bandwidth of he partial operation mode.
While this embodiment has been illustrated in
Alternatively, on top of channel detection as idle PIFS before transmitting the RTS or CTS frames 16, 17, a NAV equal to zero at the initiator and/or responder of the new bandwidth part may additionally be considered.
Consequently, the non-AP MLD switches to full operation on link 2. The following behavior holds for the “Listen for PPDUs or frame exchange” phase within
Hence, in an implementation of this embodiment the second link is switched to full operation mode after receipt of allocation period information (in this example NAV 1) on the first link, the allocation period information indicating that the first link is allocated to a third communication device for data communication. Subsequently, the first link is switched to partial operation mode an advance period before the end of the allocation period, the advance period corresponding to the switching delay 20 or 20′ or a longer time period.
It may be useful for the AP MLD to know what type of operation the non-AP MLD currently applies. This information may be transferred via frames sent by the non-AP MLD. It may either be done by signaling within a frame or by implicit detection, as will be explained below.
If the last ACK frame 13 of a frame exchange transmitted by either the non-AP or AP MLD is sent such that the partial operation mode is sufficient, the non-AP MLD may switch to partial operation mode on that link. As can be seen in
Hence, according to this embodiment, after data reception on the second link is completed, it is switched into the partial operation mode on the second link and acknowledgement information acknowledging receipt of the data is transmitted on the second link in the partial operation mode. Preferably, the acknowledgement information is transmitted with a lower code rate and/or a more robust modulation than the data rate and modulation used for reception of the data.
In the following the behavior of a non-AP MLD when initiating the data transfer will be explained.
A preferred operation for the non-AP MLD is to choose that link for an uplink transmission on which it was in full or partial operation mode before. By doing so, it avoids the observing period and may access the channel faster. In
Hence, according to this embodiment the non-AP MLD listens, after switching from full operation mode into partial operation mode, for allocation information transmitted by a third communication device, on the link that has been disabled while the first communication device has been in the previous full operation mode, before accessing said link for data transmission, the allocation information indicating an allocation period for which said link is allocated to a third communication device for data communication.
Here, “NAV of link 1” 31 may be signaled within the data frame 12, for example as part of the PPDU header, as a frame, as a subframe or as part of the MPDU header (e.g. A-Control subfield). Further,
Hence, according to this embodiment the non-AP MLD listens on the second link to allocation information indicating an allocation period (e.g. a NAV) for which the first link is allocated to a third communication device for data communication. Hereby, the allocation period may be longer than the switching delay or a predetermined time period.
An operation switch request may need to be transmitted by the AP STA to the peer non-AP STA. Such a signaling may be part of an RTS frame as explained above. Similarly, such a signaling may be also part of a CTS frame or a CTS-to-self indication as well as in any data frame. As each non-AP MLD has a specific link switch delay which is unknown to the AP, each non-AP MLD shall announce its switching delay to the AP MLD, e.g. during a setup phase, for instance within an association request.
In the first case (
Alternatively, an implicit signaling can be done. The non-AP MLD uses for any transmission the TX parameters that it currently supports, even though they may not be needed.
The AP-MLD wants to initiate a transmission on link 2 and transmits an indication for transmission initiation (e.g. RTS). Under the assumption that the TX parameter in partial operation mode is 1×1 MIMO, whereas it is 2×2 MIMO in full operation mode, both spatial streams are indicated by SS1 and SS2 in
The AP-MLD transmits the RTS frame 10, 10′ in duplicated mode, which means that the information on both spatial streams SS1 and SS2 is essentially duplicated but may have slightly different settings for the receiver PHY to differentiate the streams. As the non-AP MLD is in partial operation mode at the point in time of transmission of the CTS frame 11, it can use only one spatial stream, e.g. SS1 in the example shown in
Once the non-AP MLD responds (e.g. with an ACK frame) and it is in full operation mode, it either transmits the response frame in duplicated mode (e.g. ACK frames 32, 32′) on both spatial streams or in wideband mode (ACK frame 32″), i.e. using both spatial streams jointly. The AP MLD detects that the second spatial stream is used and concludes that the non-AP MLD is in full operation mode at the point in time of transmission. In the following, AP MLD and non-AP MLD use both spatial streams or wideband operation for the rest of the transmission opportunity, i.e. for transmitting the data 12 until the last frame (the second ACK frame 13) has been transmitted.
In other words, the non-AP MLD transmits with 2×2 MIMO as soon as it is in full operation mode even if 2×2 MIMO is not needed. This implies that spatial duplication may be required (e.g. for the first ACK frame 32, 32′), i.e. duplication of same information on spatial resources. By analysis of the received PPDU type, e.g. one or two transmit antennas applied, the AP-MLD detects the supported operation mode.
Hence, according to this embodiment the mode of operation is implicitly signaled to the second communication device after reception of a switching request frame by transmitting a frame in partial operation mode if the operation mode is partial operation mode or by transmitting a frame in full operation mode, wherein the information contained in the frame is duplicated or non-duplicated over the RF chains of both links if the operation mode is full operation mode.
According to the present disclosure rules for operation of a single radio STA in a multi-link environment with non-negligible link switching delay are provided by one or more of transmission in partial operation, rules for transition to full operation mode, control frame padding, predictive link switch, early link switch, and minimum observation period. Further, options for implicit and explicit signaling are provided. The present disclosure thus provides for an efficient use or compensation of the switching delay, in particular to avoid a loss of time for waiting for the switching delay to pass or to avoid any loss of information in the communication between the communication devices.
Thus, the foregoing discussion discloses and describes merely exemplary embodiments of the present disclosure. As will be understood by those skilled in the art, the present disclosure may be embodied in other specific forms without departing from the spirit or essential characteristics thereof. Accordingly, the disclosure of the present disclosure is intended to be illustrative, but not limiting of the scope of the disclosure, as well as other claims. The disclosure, including any readily discernible variants of the teachings herein, defines, in part, the scope of the foregoing claim terminology such that no inventive subject matter is dedicated to the public.
In the claims, the word “comprising” does not exclude other elements or steps, and the indefinite article “a” or “an” does not exclude a plurality. A single element or other unit may fulfill the functions of several items recited in the claims. The mere fact that certain measures are recited in mutually different dependent claims does not indicate that a combination of these measures cannot be used to advantage.
In so far as embodiments of the disclosure have been described as being implemented, at least in part, by software-controlled data processing apparatus, it will be appreciated that a non-transitory machine-readable medium carrying such software, such as an optical disk, a magnetic disk, semiconductor memory or the like, is also considered to represent an embodiment of the present disclosure. Further, such a software may also be distributed in other forms, such as via the Internet or other wired or wireless telecommunication systems.
The elements of the disclosed devices, apparatus and systems may be implemented by corresponding hardware and/or software elements, for instance appropriated circuits or circuitry. A circuit is a structural assemblage of electronic components including conventional circuit elements, integrated circuits including application specific integrated circuits, standard integrated circuits, application specific standard products, and field programmable gate arrays. Further, a circuit includes central processing units, graphics processing units, and microprocessors which are programmed or configured according to software code. A circuit does not include pure software, although a circuit includes the above-described hardware executing software. A circuit or circuitry may be implemented by a single device or unit or multiple devices or units, or chipset(s), or processor(s).
It follows a list of further embodiments of the disclosed subject matter:
1. First communication device configured to communicate with a second communication device via two links, the first communication device comprising circuitry configured to
switch between a full operation mode and a partial operation mode,
wherein in the full operation mode a first link of the two links is disabled and a second link of the two links commonly uses RF chains of both links for the communication with the second communication device and
wherein in the partial operation mode each link uses its RF chain for the communication with the second communication device; and
control the moment of switching between the full operation mode and the partial operation mode and/or the moment of accessing the second link in the full operation mode under consideration of a switching delay indicating a delay between the initiation of switching between the full operation mode and the partial operation mode and the completion of the switching.
2. First communication device as defined in embodiment 1,
wherein the circuitry is configured to control the moment of switching between the full operation mode and the partial operation mode and/or the moment of accessing the second link in the full operation mode based on the length of the switching delay.
3. First communication device as defined in any one of the preceding embodiments, wherein the circuitry is configured to delay switching into the full operation mode on the second link until transmission of a frame that is currently ongoing at the end of the switching delay has been completed.
4. First communication device as defined in any one of the preceding embodiments, wherein the circuitry is configured to transmit and/or receive a first part of a frame exchange in partial operation mode before a switching time or the completion of switching from the partial operation mode into the full operation mode and to transmit and/or receive a second part of said frame exchange in full operation mode after the completion of switching from the partial operation mode into the full operation mode.
5. First communication device as defined in embodiment 4,
wherein the circuitry is configured to receive a first part of a data unit in partial operation mode before a switching time or the completion of switching from the partial operation mode into the full operation mode and to receive a second part of the data unit in full operation mode after the completion of switching from the partial operation mode into the full operation mode.
6. First communication device as defined in embodiment 4 or 5,
wherein the circuitry is configured to transmit, before and/or after transmission or receipt of the first part of the frame exchange, allocation information indicating an allocation period for which the second link is allocated to the first and second communication devices for data communication.
7. First communication device as defined in embodiment 6,
further comprising two antennas, each antenna comprising one or more antenna elements, wherein a first antenna is configured to transmit and/or receive with a first linear combination of a first and a second polarization and the second antenna is configured to transmit and/or receive with a second linear combination of a first and second polarization different from the first linear combination.
8. First communication device as defined in any one of embodiments 4 to 7,
wherein the circuitry is configured to receive in full operation mode, after completion of the first part of the frame exchange, a bandwidth change request frame or a ready-to-send, RTS, frame and to transmit in full operation mode, after receipt of the bandwidth change request frame or the RTS frame, a bandwidth change acknowledge frame or a clear-to-send, CTS, frame.
9. First communication device as defined in any one of the preceding embodiments, wherein the circuitry is configured to
receive a switching request frame in the partial operation mode, the switching request frame indicating that the first communication device shall switch into the full operation mode,
initiate switching into the full operation mode,
receive padding data in the partial operation mode before switching into the full operation mode is completed, and
transmit a switching confirmation frame in the full operation mode after the switching into the full operation mode has been completed.
10. First communication device as defined in any one of the preceding embodiments, wherein the circuitry is configured to
switch the second link to full operation mode after receipt of allocation period information on the first link, the allocation period information indicating that the first link is allocated to a third communication device for data communication, and
switch the first link to partial operation mode an advance period before the end of the allocation period, the advance period corresponding to the switching delay or a longer time period.
11. First communication device as defined in any one of the preceding embodiments, wherein the circuitry is configured to switch, after data reception on the second link is completed, into the partial operation mode on the second link and to transmit acknowledgement information acknowledging receipt of the data on the second link in the partial operation mode.
12. First communication device as defined in embodiment 11,
wherein the circuitry is configured to transmit the acknowledgement information with a lower code rate and/or a more robust modulation than the data rate and modulation used for reception of the data.
13. First communication device as defined in any one of the preceding embodiments, wherein the circuitry is configured to listen, after switching from full operation mode into partial operation mode, for allocation information transmitted by a third communication device, on the link that has been disabled while the first communication device has been in the previous full operation mode, before accessing said link for data transmission, the allocation information indicating an allocation period for which said link is allocated to a third communication device for data communication.
14. First communication device as defined in any one of the preceding embodiments, wherein the circuitry is configured to listen on the second link to allocation information indicating an allocation period for which the first link is allocated to a third communication device for data communication.
15. First communication device as defined in embodiment 14,
wherein the allocation period is longer than the switching delay or a predetermined time period.
16. First communication device as defined in any one of the preceding embodiments, wherein the circuitry is configured to explicitly signal the switching delay to the second communication device and/or to receive confirmation from the second communication device to apply the full operation mode.
17. First communication device as defined in any one of the preceding embodiments, wherein the circuitry is configured to implicitly signal its mode of operation to the second communication device after reception of a switching request frame by transmitting
a frame in partial operation mode if the operation mode is partial operation mode or
a frame in full operation mode, wherein the information contained in the frame is duplicated or non-duplicated over the RF chains of both links if the operation mode is full operation mode.
18. First communication device as defined in any one of the preceding embodiments, wherein in the full operation mode the first link is disabled and the second link commonly uses the bandwidths and/or spatial streams of both links for the communication with the second communication device and wherein in the partial operation mode each link uses a respective subset of the spatial streams and/or bandwidths of both links for the communication with the second communication device.
19. First communication device as defined in any one of the preceding embodiments, wherein the first communication device is configured to communicate with the second communication device via three or more links,
wherein in the full operation mode all links except for the second link of the three or more links are disabled and the second link of the three or more links commonly uses RF chains of two or more links for the communication with the second communication device.
20. Second communication device configured to communicate with a first communication device via two links, the second communication device comprising circuitry configured to
switch between a full operation mode and a partial operation mode,
wherein in the full operation mode a first link of the two links is disabled or used for a third communication device and a second link of the two links uses at least the same number of RF chains as used in partial operation mode for the communication with the first communication device and
wherein in the partial operation mode the first link is disabled or used for a third communication device and the second link uses one or more RF chains for the communication with the first communication device; and
control the transmission of data and/or control information to the first communication device under consideration of a switching delay of the first communication device, the switching delay indicating a delay between the initiation of switching between the full operation mode and the partial operation mode and the completion of the switching.
21. Second communication device as defined in embodiment 20,
wherein the circuitry is configured to transmit and/or receive a first part of a frame exchange in partial operation mode before a switching time or the completion of switching from the partial operation mode into the full operation mode and to transmit and/or receive a second part of said frame exchange in full operation mode after the completion of switching from the partial operation mode into the full operation mode.
22. Second communication device as defined in any one of embodiments 20 to 21, further comprising two antennas, each antenna comprising one or more antenna elements, wherein a first antenna is configured to transmit and/or receive with a first linear combination of a first and a second polarization and the second antenna is configured to transmit and/or receive with a second linear combination of a first and second polarization different from the first linear combination.
23. Second communication device as defined in embodiment 21,
wherein the circuitry is configured to
transmit in full operation mode, after completion of the first part of the frame exchange, a bandwidth change request frame or a ready-to-send, RTS, frame,
receive in full operation mode, after transmission of the bandwidth change request frame or a RTS frame, a bandwidth change acknowledge frame or a clear-to-send, CTS, frame, and,
after having received a bandwidth change acknowledge frame or a CTS frame, transmit frames in full operation mode only when the bandwidth change acknowledge frame or the CTS frame has been received in full operation mode and otherwise continue to transmit frames in partial operation mode.
24. Second communication device as defined in any one of embodiments 20 to 23, wherein the circuitry is configured to
transmit a switching request frame in the partial operation mode, the switching request frame indicating that the first communication device shall switch into the full operation mode,
transmit padding data in the partial operation mode before switching of the first communication device into the full operation mode is completed, and
receive a switching confirmation frame in the full operation mode after the switching into the full operation mode has been completed.
25 Second communication device as defined in embodiment 24,
wherein the circuitry is configured to transmit the padding data as part of the switching request frame.
26. Second communication device as defined in embodiment 24 or 25,
wherein the circuitry is configured to set the length of the padding data such that it covers at least the switching delay plus a short inter frame space.
27. Second communication device as defined in any one of embodiments 20 to 26,
wherein the circuitry is configured to transmit, on the second link, allocation information indicating an allocation period for which the first link is allocated to one or more third communication devices for data communication.
28. Second communication device as defined in any one of embodiments 20 to 27,
wherein the circuitry is configured to receive an explicit signaling that signals the switching delay from the first communication device.
29. Second communication device as defined in any one of embodiments 20 to 28,
wherein the circuitry is configured to receive an implicit signaling that signals the mode of operation of the first communication device by receiving
a frame in partial operation mode to indicate that the mode of operation is partial operation mode or by
a frame in full operation mode, wherein the information contained in frame is duplicated or non-duplicated over the RF chains of both links to indicate the mode of operation is full operation mode.
30. First communication method of a first communication device configured to communicate with a second communication device via two links, the first communication method comprising
switching between a full operation mode and a partial operation mode,
wherein in the full operation mode a first link of the two links is disabled and a second link of the two links commonly uses RF chains of both links for the communication with the second communication device and
wherein in the partial operation mode each link uses its RF chain for the communication with the second communication device; and
controlling the moment of switching between the full operation mode and the partial operation mode and/or the moment of accessing the second link in the full operation mode under consideration of a switching delay indicating a delay between the initiation of switching between the full operation mode and the partial operation mode and the completion of the switching.
31. Second communication method of a second communication device configured to communicate with a first communication device via two links, the second communication method comprising
switching between a full operation mode and a partial operation mode,
wherein in the full operation mode a first link of the two links is disabled or used for a third communication device and a second link of the two links uses at least the same number of RF chains as used in partial operation mode for the communication with the first communication device and
wherein in the partial operation mode the first link is disabled or used for a third communication device and the second link uses one or more RF chains for the communication with the first communication device; and
controlling the transmission of data and/or control information to the first communication device under consideration of a switching delay of the first communication device, the switching delay indicating a delay between the initiation of switching between the full operation mode and the partial operation mode and the completion of the switching.
32. A non-transitory computer-readable recording medium that stores therein a computer program product, which, when executed by a processor, causes the method according to embodiment 30 or 31 to be performed.
33. A computer program comprising program code means for causing a computer to perform the steps of said method according to embodiment 30 or 31 when said computer program is carried out on a computer.
Number | Date | Country | Kind |
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20189403.7 | Aug 2020 | EP | regional |
Filing Document | Filing Date | Country | Kind |
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PCT/EP2021/071069 | 7/27/2021 | WO |