SUBCARRIER SPACING SELECTION FOR SYNCHRONIZATION SIGNALS
20200028726 ยท 2020-01-23
Assignee
Inventors
Cpc classification
H04W24/08
ELECTRICITY
H04L5/0007
ELECTRICITY
H04L5/0053
ELECTRICITY
H04L27/2678
ELECTRICITY
H04W36/0016
ELECTRICITY
H04L27/2646
ELECTRICITY
H04L27/26025
ELECTRICITY
H04L27/2666
ELECTRICITY
H04L5/0048
ELECTRICITY
International classification
Abstract
A wireless communication device identifies a set of multiple different subcarrier spacings which are supported for transmission of synchronization signals. From the set of different subcarrier spacings, the wireless communication device selects a subset of one or more subcarrier spacings. Further, the wireless communication device receives signals from the wireless communication network. On the basis of the subcarrier spacings of the subset, the wireless communication device monitors the received signals for synchronization signals.
Claims
1. A method of enabling synchronization in a wireless communication network, the method comprising: a wireless communication device identifying a set of multiple different subcarrier spacings which are supported for transmission of synchronization signals; the wireless communication device selecting a subset of one or more subcarrier spacings from the set of different subcarrier spacings; the wireless communication device receiving signals from the wireless communication network; and on the basis of the subcarrier spacings of the subset, the wireless communication device monitoring the received signals for synchronization signals.
2. The method according to claim 1, wherein the wireless communication device selects the subset of subcarrier spacings based on a set of one or more frequency ranges in which the signals are received.
3. The method according to claim 1, wherein the wireless communication device selects the subset of subcarrier spacings based on a mapping of subcarrier spacings to frequency ranges.
4. The method according to claim 3, wherein the mapping is configurable by the wireless communication network.
5. The method according to claim 1, wherein the wireless communication device selects the subset of subcarrier spacings based on a priority order of subcarrier spacings.
6. The method according to claim 5, wherein the priority order is configurable by the wireless communication network.
7. The method according to claim 1, wherein the wireless communication device selects the subset of subcarrier spacings based on information received during preparation of a handover from a first base station to a second base station of the wireless communication network.
8. The method according to claim 1, wherein the wireless communication device detects the set of multiple different subcarrier spacings on the basis of the received signals.
9. The method according to claim 8, wherein the wireless communication device identifies the set of multiple different subcarrier spacings on the basis of lengths of cyclic prefixes of modulation symbols in the received signals.
10. The method according to claim 1, further comprising: based on the synchronization signals, the wireless communication device performing synchronization to a base station of the wireless communication network; and based on the subcarrier spacing used for transmission of the synchronization signals, the wireless communication device receiving system information indicating one or more subcarrier spacings supported by the base station.
11. A method of enabling synchronization in a wireless communication network, the method comprising: a base station of the wireless communication network identifying a set of multiple subcarrier spacings which are supported for transmission of synchronization signals; from the set of multiple different subcarrier spacings, the base station selecting a subset of one or more subcarrier spacings; and the base station transmitting synchronization signals on the basis of the subcarrier spacings of the subset.
12. The method according to claim 11, wherein the base station selects the subset of subcarrier spacings based on a set of one or more frequency ranges in which the base station is transmitting.
13. The method according to claim 11, wherein the base station selects the subset of subcarrier spacings based on a mapping of subcarrier spacings to frequency ranges.
14. The method according to claim 13, wherein the mapping is configurable.
15. The method according to claim 1, wherein the base station selects the subset of subcarrier spacings based on a priority order of subcarrier spacings.
16. The method according to claim 15, wherein the priority order is configurable.
17. The method according to claim 11, wherein the base station selects the subset of subcarrier spacings based on information received from another base station of the wireless communication network.
18. The method according to claim 11, further comprising: the base station transmitting signals based on at least one of the subcarrier spacings of the set, wherein for each of the transmitted signals a length of a cyclic prefix of modulation symbols based on the utilized subcarrier spacing.
19. The method according to claim 12, further comprising: based on the subcarrier spacing used for transmission of the synchronization signals, the base station transmitting system information indicating one or more subcarrier spacings supported by the base station.
20. The method according to claim 12, further comprising: the base station receiving information indicating one or more subcarrier spacings supported by a further base station; and depending on the received information, the base station controlling handover of a wireless communication device between the base station and the further base station.
21. A wireless communication device, comprising: a radio interface for connecting to a wireless communication network; and at least one processor, the at least one processor being configured to: identify a set of multiple different subcarrier spacings which are supported for transmission of synchronization signals; select a subset of one or more subcarrier spacings from the set of different subcarrier spacings; receive signals via the radio interface from the wireless communication network; and on the basis of the subcarrier spacings of the subset, monitor the received signals for synchronization signals.
22. The wireless communication device according to claim 21, wherein the at least one processor is configured to perform the operations of a method according to claim 1.
23. A base station, comprising: a radio interface configured to connect to one or more wireless communication devices; and at least one processor, the at least one processor being configured to: identify a set of multiple subcarrier spacings which are supported for transmission of synchronization signals; from the set of multiple different subcarrier spacings, select a subset of one or more subcarrier spacings; and via the radio interface transmit synchronization signals on the basis of the subcarrier spacings of the subset.
24. The base station according to claim 23, wherein the at least one processor is configured to perform the operations of a method according to claim 11.
25. A system, comprising: a base station according to claim 23; and the one or more wireless communication devices.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0041]
[0042]
[0043]
[0044]
[0045]
[0046]
[0047]
DETAILED DESCRIPTION OF EMBODIMENTS
[0048] In the following, exemplary embodiments of the invention will be described in more detail. It has to be understood that the following description is given only for the purpose of illustrating the principles of the invention and is not to be taken in a limiting sense. Rather, the scope of the invention is defined only by the appended claims and is not intended to be limited by the exemplary embodiments described hereinafter.
[0049] The illustrated embodiments relate to enabling synchronization in a wireless communication network, in particular to enabling synchronization of a wireless communication device, in the following also referred to as UE, to one or more base stations of the wireless communication network. The synchronization is assumed to be performed on the basis of synchronization signals. The synchronization typically involves time alignment of processes in the UE with processes in the base station, e.g., processes concerning transmission and reception of signals. For example, the synchronization may involve determination of a timing advance to be applied by the UE when transmitting signals to the base station. However, the synchronization may also involve other processes, such as adjustment of a local clock in the UE.
[0050] The wireless communication network is assumed to utilize a radio technology based on multi-frequency modulation, such as OFDM or SC-OFDM (Single Carrier OFDM), where modulation symbols are modulated to multiple subcarriers which are distributed according to a subcarrier spacing in the frequency domain. The utilized radio technology may for example be based on the LTE technology or the NR technology. This kind of modulation is also applied to the synchronization signals. The synchronization signals may for example correspond to a well-defined symbol sequence which is both known to the base station and to the UE, e.g., a Zadoff-Chu sequence.
[0051] Further, it is assumed that multiple subcarrier spacings are supported in the wireless communication network. In particular, multiple subcarrier spacings may be utilized simultaneously by neighboring base stations, by the same base station, and/or by the same UE. For example, the applied subcarrier spacing may depend on the frequency range utilized for the transmission of the signals. According to one example, in a lower frequency range, a denser subcarrier spacing could be applied than in a higher frequency range. A corresponding example of frequency range dependent subcarrier spacings is illustrated in
[0052] In the example of
[0053] As a general rule, even if multiple subcarrier spacings are supported in the wireless communication system, not all of them need to be supported or actually be applied by every base station of the wireless communication system. Rather, a given base station could apply only a subset of the supported subcarrier spacings, such as only the subcarrier spacings Fs1, Fs2, and Fs3 as illustrated in
[0054] Moreover, in the illustrated concepts it is assumed that not all subcarrier spacings which are applied for transmission of signals also need to be applied for transmission of synchronization signals. In the example of
[0055] As further illustrated in
[0056] It is noted that the assignment of subcarrier spacings to transmission of synchronization signals as shown in
[0057]
[0058] By scanning the signals 10 transmitted by the base stations, the UE 100 can identify which frequency range(s) is/are used by a certain base stations 200. For detecting the synchronization signals from the base stations 200, the UE 100 may process the signals 10 received from the base station 200 to decode a synchronization signal. For this purpose, the UE 100 may buffer the received signals 10 and attempt decoding on the basis of different subcarrier spacings, until decoding is successful.
[0059] In order to facilitate detection of the synchronization signals, the UE 100 selects certain subset of subcarrier spacings from a set of subcarrier spacings which are supported for transmission of the synchronization signals. As used herein, a subcarrier spacing supported for transmission of the synchronization signals is a subcarrier spacing which in the utilized radio technology is allowed to be applied for transmission of the synchronization signals, but does not necessarily need to be actually applied transmission of the synchronization signals. By selecting the subset of subcarrier spacings, the number of required decoding attempts for detecting the synchronization signals may be reduced. In some scenarios, it may even be possible to identify a single subcarrier spacing which is applied for the transmission of the synchronization signals.
[0060] In some scenarios, the UE 100 may also detect subcarrier spacings which are applied in the received signals, for example by performing multiple self-correlations of the received signal with a certain time window and time interval. The time window may be selected to correspond to a certain length of the cyclic prefix, and the time interval to the length of the modulation symbol. An example of a modulation symbol with a cyclic prefix is shown in
[0061] Once the subcarrier spacings applied in the received signals have been identified, e.g., one or more of Fs1, Fs2, Fs3, and Fs4, the UE 100 may proceed to determining which of these subcarrier spacings is applied transmission of the synchronization signals, i.e., determine the subset of the subcarrier spacings.
[0062] The selection of the subset of subcarrier spacings may be based on a mapping of the utilized frequency band to subcarrier spacings. For example, such mapping could define that in a certain frequency band (e.g., above 20 GHz), the above-subcarrier spacing Fs1 and the subcarrier spacing Fs1 are applied for the transmission of the synchronization signals, like illustrated in
[0063] In addition or as an alternative, the selection of the subset of subcarrier spacings may be based on a priority order of the subcarrier spacings. For example, such priority order be preconfigured in the UE 100 and the base stations 200, e.g., in accordance with a telecommunications standard. Further, the priority order could be configurable. For example, configuration of the base stations 200 with the mapping could be accomplished by a management system of the wireless communication network, and one of the base stations 200 could configure the UE 100 accordingly. By way of example, the priority order could define that the densest applied subcarrier spacing is to be applied for the transmission of the synchronization signals. Accordingly, the base station 200 could transmit the synchronization signals only using the subcarrier spacing, and the UE 100 could apply only this subcarrier spacing when monitoring the received signals for the synchronization signal.
[0064] The base stations 200 may apply corresponding rules when deciding which subcarrier spacing to apply for transmission of the synchronization signals, e.g., select a subset subcarrier spacings based on the utilized frequency ranges, a mapping of frequency ranges to subcarrier spacings, and/or a priority order of subcarrier spacings.
[0065] The UE 100 may also measure a power level of each detected subcarrier spacing and select the subset of subcarrier spacings depending on the measured power level. For example, the subset could then be selected to include the subcarrier spacing(s) with the highest measured power level.
[0066] This may for example be beneficial when the UE 100 is configured for high data rate services because it may facilitate connecting to a base station 200 offering a high radio channel quality.
[0067] In some scenarios, the UE 100 may select the subset of subcarrier spacings based on stored information on earlier utilized subcarrier spacings, e.g., information on the subcarrier spacings applied when the UE 100 was last connected to the wireless communication network. For example, when the UE 100 goes to idle mode or some other low-power mode and loses synchronization with the wireless communication network, it may store the currently applied subcarrier spacing(s), in particular those which are applied for the transmission of synchronization signals. When the UE 100 then needs to synchronize again, it may select the subset of subcarrier spacings for detection of the synchronization signals based on the stored information.
[0068] In some scenarios, the base stations 200 may coordinate the selection of the subcarrier spacings to be applied for the transmission of the synchronization signals. For this purpose, the base stations 200 may share information concerning the supported or the selected subcarrier spacings with other base stations 200, typically with neighboring base stations 200. This coordination may for example help when controlling a handover of the UE 100 between a source base station and a target base station. The source base station could select the target base station in such a way that it supports subcarrier spacings which are compatible with the UE 100. The sharing of the information may occur during handover preparation or at some other time, e.g., when setting up a connection between neighboring base stations 200. Further, the information could be shared indirectly via the UE 100, e.g., by the UE 100 detecting the subcarrier spacings applied by neighboring base stations 200 to the base station 200 it is connected to. For example, the UE 100 may provide corresponding measurement reports to the base station 200 it is connected to.
[0069] In some scenarios, the source base station can provide information to the UE 100 about subcarrier spacing utilized by neighbor base stations 200. This method could help the UE to quickly receive synchronization in the preparation of a handover. This information may be shared on an RRC (Radio Resource Control) level, i.e., with respect to the existing connection of the UE 100, or on a higher protocol level.
[0070] In some scenarios, information concerning the subcarrier spacings applied by a base station 200 may also be included in system information broadcasted by the base station 200. In this case, the system information can be transmitted on the basis of the same subcarrier spacing(s) that are selected for the transmission of the synchronization signals. The system information concerning the subcarrier spacings applied by the base station 200 may be transmitted in a continuous manner, e.g., with the same period as the synchronization signals.
[0071] In addition, some system information could also be transmitted based on all the utilized subcarrier spacings, including those which are not applied for transmission of synchronization signals. In the latter case, the transmitted system information may include specific information which is dedicated for the respective subcarrier spacing. For example, if in the example of
[0072] Further, the system information may also include information on an offset of the synchronization signal with respect to a center frequency of the set of subcarrier available for modulation. Specifically, if not all subcarriers available for modulation are utilized for the transmission of the synchronization signal, the subcarriers utilized for the transmission of the synchronization signal may be offset from the center frequency. This offset may be indicated in the system information, e.g., by one or more bits representing a channel raster index or a subcarrier index.
[0073]
[0074] At step 410, the wireless communication device identifies a set of multiple different subcarrier spacings which are supported for transmission of synchronization signals. The wireless communication device may identify the set of multiple different subcarrier spacings on the basis of information configured in the wireless communication device, e.g., in accordance with a telecommunications standard and/or in accordance with operator settings.
[0075] Further, the wireless communication device may identify the set of multiple different subcarrier spacings on the basis of the received signals. Specifically, the wireless communication device may identify the set of subcarrier spacings on the basis of lengths of modulation symbols in the received signals and/or on the basis of on the basis of lengths of cyclic prefixes of modulation symbols in the received signals.
[0076] At step 420, the wireless communication device selects a subset of one or more subcarrier spacings from the set of different subcarrier spacings.
[0077] The wireless communication device may select the subset of subcarrier spacings depending on a set of one or more frequency ranges in which the signals are received. An example of such dependency of the applied subcarrier spacings on the utilized frequency range or frequency ranges is illustrated in
[0078] Alternatively or in addition, the wireless communication device may select the subset of subcarrier spacings depending on a mapping of subcarrier spacings to frequency ranges. The mapping may be configurable by the wireless communication network, e.g., as part of operator settings.
[0079] Alternatively or in addition, the wireless communication device may select the subset of subcarrier spacings depending on a priority order of subcarrier spacings. The priority order may be configurable by the wireless communication network, e.g., as part of operator settings.
[0080] Alternatively or in addition, the wireless communication device may select the subset of subcarrier spacings depending on information received during preparation of a handover from a first base station to a second base station of the wireless communication network.
[0081] Further, the wireless communication device may select the subset of subcarrier spacings depending on power levels of received signals and/or depending on stored information concerning applied subcarrier spacings in earlier connections of the wireless communication device to the wireless communication network.
[0082] At step 430, the wireless communication device receives signals from the wireless communication network.
[0083] At step 440, the wireless communication device monitors the received signals for synchronization signals. This is accomplished on the basis of the subcarrier spacings of the subset selected at step 420. The wireless communication device may also monitor the power level received signals for each of the detected subcarrier spacings. The wireless communication device may then start the synchronization process with the subcarrier spacing that has highest power level.
[0084] Based on the synchronization signals, the wireless communication device may perform synchronization to a base station of the wireless communication network.
[0085] As illustrated by step 450, based on the subcarrier spacing used for transmission of the synchronization signals the wireless communication device may also receive system information. The received system information may indicate one or more subcarrier spacings supported by the base station. These subcarrier spacings may also include one or more subcarrier spacings which have not yet been identified by the wireless communication device and/or one or more subcarrier spacings which are not utilized for transmission of synchronization signals.
[0086]
[0087] At step 510, the base station identifies a set of multiple different subcarrier spacings which are supported for transmission of synchronization signals. The base station may identify the set of multiple different subcarrier spacings on the basis of information configured in the base station, e.g., in accordance with a telecommunications standard and/or in accordance with operator settings.
[0088] The base station may transmit signals based on at least one of the subcarrier spacings of the set in such a way that for each of the transmitted signals a length of modulation symbols and/or a length of a cyclic prefix of modulation symbols depends on the utilized subcarrier spacing, e.g., as explained in connection with
[0089] At step 520, the base station selects a subset of one or more subcarrier spacings from the set of multiple different subcarrier spacings.
[0090] The base station may select the set of subcarrier spacings depending on a set of one or more frequency ranges in which the base station is transmitting. An example of such dependency of the applied subcarrier spacings on the utilized frequency range or frequency ranges is illustrated in
[0091] Alternatively or in addition, the base station may select the subset of subcarrier spacings depending on a mapping of subcarrier spacings to frequency ranges. The mapping may be configurable, e.g., by the base station itself and/or through a management system of the wireless communication network.
[0092] Alternatively or in addition, the base station may select the subset of subcarrier spacings depending on a priority order of subcarrier spacings. The priority order may be configurable, e.g., by the base station itself and/or through a management system of the wireless communication network.
[0093] Alternatively or in addition, the base station may select the subset of subcarrier spacings depending on information received from another base station of the wireless communication network. The information may for example be received during preparation of a handover of a wireless communication device and/or when establishing a connection between the base station and the other base station. On the basis of the received information, the subcarrier spacings which are applied for transmission of the synchronization signals may be coordinated between different base stations. For example, such coordination may aim at configuring neighboring base stations to utilize the same or similar subcarrier spacings.
[0094] At step 530, the base station transmits synchronization signals on the basis of the subcarrier spacings of the subset selected at step 520.
[0095] At step 540, the base station may also transmit system information based on the subcarrier spacing used for transmission of the synchronization signals. The system information may indicate one or more subcarrier spacings supported by the base station. These subcarrier spacings may also include one or more subcarrier spacings which are not utilized for transmission of synchronization signals.
[0096] At step 550, the base station may receive information indicating one or more subcarrier spacings supported by a further base station. Depending on the received information, the base station may for example control handover of a wireless communication device between the base station and the further base station, as illustrated by step 560. For example, if the wireless communication device supports only certain subcarrier spacings, the further base station may be selected in such a way that at least one of these subcarrier spacings is supported. In other words, the handover may be controlled in such a way that wireless communication device and a target base station of the handover have at least one matching supported subcarrier spacing. The information received from the further base station may also be used for coordinating the selection of applied subcarrier spacings among neighboring base stations.
[0097] It is to be understood that the methods of
[0098] Further, it is noted that the method steps of
[0099]
[0100] As illustrated, the wireless communication device includes a radio interface 110. The wireless communication device may utilize the radio interface 110 for connecting to a wireless communication network, e.g., through a base station of the wireless communication network, such as one of the base stations 200.
[0101] Further, the wireless communication device is provided with one or more processors 140 and a memory 150. The radio interface 110 and the memory 150 are coupled to the processor(s) 140, e.g., using one or more internal bus systems of the wireless communication device.
[0102] The memory 150 includes program code modules 160, 170 with program code to be executed by the processor(s) 140. In the illustrated example, these program code modules include a communication control module 160 and a synchronization management module 170.
[0103] The communication control module 160 may implement functionalities of controlling wireless transmissions between the wireless communication device and the wireless communication network. The synchronization management module 170 may implement the above-described functionalities of selecting subcarrier spacings for detection of synchronization signals, e.g., according to the method of
[0104] It is to be understood that the structures as illustrated in
[0105]
[0106] As illustrated, the base station includes a radio interface 210. The base station may utilize the radio interface 210 for connecting to at least one wireless communication device, e.g., a UE such as the UE 100. Further, the base station may include a network interface 220. The base station may utilize the network interface 220 for connecting to other nodes of the wireless communication network, in particular to other base stations.
[0107] Further, the base station is provided with one or more processors 240 and a memory 250. The radio interface 210, the network interface 220, and the memory 250 are coupled to the processor(s) 240, e.g., using one or more internal bus systems of the base station.
[0108] The memory 250 includes program code modules 260, 270 with program code to be executed by the processor(s) 240. In the illustrated example, these program code modules include a communication control module 260 and a synchronization management module 270.
[0109] The communication control module 260 may implement functionalities of controlling wireless transmissions between a wireless communication device and the wireless communication network. The synchronization management module 270 may implement the above-described functionalities of selecting subcarrier spacings for transmission of synchronization signals, e.g., according to the method of
[0110] It is to be understood that the structures as illustrated in
[0111] It is to be understood that the concepts as explained above are susceptible to various modifications. For example, the concepts could be applied in connection with various kinds of wireless communication technologies and devices. Further, the concepts may be applied in connection with various types of synchronization signals and modulation schemes.