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US20180097771A1 - Device, Network, and Method for Communications with Spatial-specific Sensing - Google Patents

Device, Network, and Method for Communications with Spatial-specific Sensing
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Publication number
US20180097771A1
US20180097771A1US15/809,603US201715809603AUS2018097771A1US 20180097771 A1US20180097771 A1US 20180097771A1US 201715809603 AUS201715809603 AUS 201715809603AUS 2018097771 A1US2018097771 A1US 2018097771A1
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Prior art keywords
spatial
transmission
channel
node
pattern
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Abandoned
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US15/809,603
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Jialing Liu
Weimin Xiao
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FutureWei Technologies Inc
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FutureWei Technologies Inc
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Priority to US15/809,603priorityCriticalpatent/US20180097771A1/en
Publication of US20180097771A1publicationCriticalpatent/US20180097771A1/en
Priority to US17/455,787prioritypatent/US11909704B2/en
Abandonedlegal-statusCriticalCurrent

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Abstract

A device, a network, and a method for wireless communication are provided. In an embodiment, the method, performed by a first communication node, includes generating at least one of a spatial-specific receiving pattern and a first spatial-specific processing pattern, receiving a waveform signal from one or more second nodes in accordance with the at least one of the spatial-specific receiving pattern or the first spatial-specific processing pattern, determining a second spatial-specific processing pattern and a channel status of a channel, wherein the channel status of the channel is according to the at least one of the spatial-specific receiving pattern and the second spatial-specific processing pattern and transmitting a signal along a transmission direction, wherein the transmission direction is in accordance with the at least one of the spatial-specific receiving pattern and the second spatial-specific processing pattern.

Description

Claims (20)

What is claimed is:
1. A method for wireless communications by a first communication node in a network, the method comprising:
generating, by the first communication node, at least one of a spatial-specific receiving pattern and a first spatial-specific processing pattern;
receiving, by the first communication node, a waveform signal from one or more second nodes in accordance with the at least one of the spatial-specific receiving pattern or the first spatial-specific processing pattern;
determining, by the first communication node, a second spatial-specific processing pattern and a channel status of a channel, wherein the channel status of the channel is according to the at least one of the spatial-specific receiving pattern and the second spatial-specific processing pattern; and
transmitting, by the first communication node, a signal along a transmission direction, wherein the transmission direction is in accordance with the at least one of the spatial-specific receiving pattern and the second spatial-specific processing pattern.
2. The method ofclaim 1, further comprising sensing, by the first communication node, in a sensing direction, wherein the sensing direction is associated with the transmission direction.
3. The method ofclaim 2, wherein the sensing direction is along the transmission direction.
4. The method ofclaim 2, wherein the sensing direction is along a direction opposite of the transmission direction.
5. The method ofclaim 1, wherein the waveform signal comprises a superposition of transmissions from the one or more second nodes.
6. The method ofclaim 1, wherein the channel status of the channel is determined by comparing a decision variable against a decision threshold, and wherein the channel is considered idle along the transmission direction when the decision variable is smaller than the decision threshold.
7. The method ofclaim 6, wherein the decision threshold is determined based on at least one of the factors of a transmission power of the transmission, a frequency band for the transmission, or the transmission direction.
8. The method ofclaim 1, wherein the spatial-specific receiving pattern is associated with a receiver beam direction and a set of receiver phase shift values applied to receiver analog phase shifters.
9. The method ofclaim 1, wherein the first spatial-specific processing pattern is a first receiver combining vector or combining matrix associated with a first precoding vector/matrix of the transmission direction applied in the digital domain.
10. The method ofclaim 9, wherein the second spatial-specific processing pattern is a second receiver combining vector or combining matrix associated with a second precoding vector/matrix of the transmission direction applied in the digital domain.
11. A first communication node comprising:
a processor; and
a non-transitory computer readable storage medium storing programming for execution by the processor, the programming including instructions to:
generate at least one of a spatial-specific receiving pattern and a first spatial-specific processing pattern;
receive a waveform signal from one or more second nodes in accordance with the at least one of the spatial-specific receiving pattern or the first spatial-specific processing pattern;
determine a second spatial-specific processing pattern and a channel status of a channel, wherein the channel status of the channel is according to the at least one of the spatial-specific receiving pattern and the second spatial-specific processing pattern; and
transmit a signal along a transmission direction, wherein the transmission direction is in accordance with the at least one of the spatial-specific receiving pattern and the second spatial-specific processing pattern.
12. The first communication node ofclaim 11, wherein the instructions further comprise to sense in a sensing direction, wherein the sensing direction is associated with the transmission direction.
13. The first communication node ofclaim 12, wherein the sensing direction is along the transmission direction.
14. The first communication node ofclaim 12, wherein the sensing direction is along a direction opposite of the transmission direction.
15. The first communication node ofclaim 11, wherein the waveform signal comprises a superposition of transmissions from the one or more second nodes.
16. The first communication node ofclaim 11, wherein the channel status of the channel is determined by comparing a decision variable against a decision threshold, and wherein the channel is considered idle along the transmission direction when the decision variable is smaller than the decision threshold.
17. The first communication node ofclaim 16, wherein the decision threshold is determined based on at least one of the factors of a transmission power of the transmission, a frequency band for the transmission, or the transmission direction.
18. The first communication node ofclaim 11, wherein the spatial-specific receiving pattern is associated with a receiver beam direction and a set of receiver phase shift values applied to receiver analog phase shifters.
19. The first communication node ofclaim 11, wherein the first spatial-specific processing pattern is a first receiver combining vector or combining matrix associated with a first precoding vector/matrix of the transmission direction applied in the digital domain.
20. The first communication node ofclaim 19, wherein the second spatial-specific processing pattern is a second receiver combining vector or combining matrix associated with a second precoding vector/matrix of the transmission direction applied in the digital domain.
US15/809,6032014-07-292017-11-10Device, Network, and Method for Communications with Spatial-specific SensingAbandonedUS20180097771A1 (en)

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US15/809,603US20180097771A1 (en)2014-07-292017-11-10Device, Network, and Method for Communications with Spatial-specific Sensing
US17/455,787US11909704B2 (en)2014-07-292021-11-19Device, network, and method for communications with spatial-specific sensing

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US201462030457P2014-07-292014-07-29
US14/810,299US9847962B2 (en)2014-07-292015-07-27Device, network, and method for communications with spatial-specific sensing
US15/809,603US20180097771A1 (en)2014-07-292017-11-10Device, Network, and Method for Communications with Spatial-specific Sensing

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US14/810,299ContinuationUS9847962B2 (en)2014-07-292015-07-27Device, network, and method for communications with spatial-specific sensing

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US17/455,787ContinuationUS11909704B2 (en)2014-07-292021-11-19Device, network, and method for communications with spatial-specific sensing

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US20180097771A1true US20180097771A1 (en)2018-04-05

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US14/810,299Active2035-10-26US9847962B2 (en)2014-07-292015-07-27Device, network, and method for communications with spatial-specific sensing
US15/809,603AbandonedUS20180097771A1 (en)2014-07-292017-11-10Device, Network, and Method for Communications with Spatial-specific Sensing
US17/455,787Active2035-12-14US11909704B2 (en)2014-07-292021-11-19Device, network, and method for communications with spatial-specific sensing

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EP (2)EP3800962A1 (en)
CN (2)CN110365460B (en)
AU (1)AU2015296114B2 (en)
CA (1)CA2956576C (en)
WO (1)WO2016015650A1 (en)

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CN106664723B (en)2019-07-12
CN106664723A (en)2017-05-10
EP3162158A4 (en)2017-07-05
CA2956576C (en)2021-08-31
EP3800962A1 (en)2021-04-07
US20160037560A1 (en)2016-02-04
CN110365460A (en)2019-10-22
US20220078156A1 (en)2022-03-10
US11909704B2 (en)2024-02-20
EP3162158B1 (en)2020-10-21
AU2015296114B2 (en)2018-05-10
EP3162158A1 (en)2017-05-03
AU2015296114A1 (en)2017-02-23
CN110365460B (en)2021-02-23
CA2956576A1 (en)2016-02-04
US9847962B2 (en)2017-12-19
WO2016015650A1 (en)2016-02-04

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