Method and apparatus of beam training for MIMO operation

US9246571B2 · US · B2

Patent metadata
FieldValue
Publication numberUS-9246571-B2
Application numberUS-201514699789-A
CountryUS
Kind codeB2
Filing dateApr 29, 2015
Priority dateMay 22, 2012
Publication dateJan 26, 2016
Grant dateJan 26, 2016

How to read this patent

A practical reading order for non-experts. Skip the full description unless you need deep technical detail.

  1. Title

    What the patent document calls the invention.

  2. Abstract

    A short plain-language summary of the technical disclosure.

  3. Assignees and inventors

    Who owns or filed the patent and who is credited as inventor.

  4. Key dates

    Filing, priority, publication, and grant dates set the timeline.

  5. First independent claim

    The legal scope of protection — read this for what is actually claimed.

  6. CPC / IPC classifications

    Technology tags used to group this patent with similar filings.

  7. Citations and related patents

    Prior art links and similar publications in this corpus.

Abstract

Official abstract text for this publication.

The disclosed invention provides an efficient method for beam training to enable spatial multiplexing MIMO operation and spatial combining in a wireless network. The invention discloses a simple and efficient beam-training algorithm and protocol for MIMO operation that operates in high SNR condition for reliable MIMO operation. In one novel aspect, the best MIMO beam combinations are determined after TX sector sweeping and RX sector sweeping. In addition, the selection criteria includes not only signal quality, but also considers mutual interference and leakage among multiple MIMO spatial streams to improve overall MIMO performance.

First claim

Opening claim text (preview).

What is claimed is: 1. An initiator device, comprising: a transceiver that communicates a beam-training message that initiates a multiple input and multiple output (MIMO) training procedure in a wireless network, the transceiver comprises a transmitter; the transmitter is configured to transmit training packets using all TX sectors during TX sector sweeping and in response obtaining a set of selected TX sectors, each of the TX sectors corresponds to a specific TX antenna beam, the transmitter is further configured to transmit training packets using omni-direction antenna pattern during RX sector sweeping and in response obtaining a set of selected RX sectors, and each of the RX sectors corresponds to a specific RX antenna beam; a processor is configured to start MIMO beam combination training based on the selected TX and RX sectors by the transmitter being configured to transmit training packets using the selected TX sectors, each of the MIMO beam combinations includes one of the selected TX sectors and one of the selected RX sectors; and a MIMO encoder is configured to obtain one or more best MIMO beam combinations for multiple MIMO spatial streams, each of the best MIMO beam combinations is selected based on the results of the MIMO beam combination training. 2. The initiator of claim 1 , wherein the beam-training message comprises parameters including a number of the TX sectors, a number of the RX sectors, a number of the MIMO spatial streams, and a number of the beam combinations. 3. The initiator of claim 1 , wherein the selected TX and RX sectors are determined based on signal to noise ratios (SNRs). 4. The initiator of claim 1 , wherein the best MIMO beam combinations are determined based on signal to noise plus interference ratios (SNIRs). 5. The initiator of claim 1 , wherein the beam combination training involves sweeping the selected TX sectors and the selected RX sectors together. 6. A responder device, comprising: a transceiver that communicates a beam-training message that initiates a multiple input and multiple output (MIMO) training procedure in a wireless network, the transceiver comprises a receiver; the receiver is configured to receive training packets using omni-direction antenna pattern during TX sector sweeping and in response determine a set of selected TX sectors, each of the TX sectors corresponds to a specific TX antenna beam, the receiver is further configured to receive training packets using all RX sectors during RX sector sweeping and in response determine a set of selected RX sectors, each of the RX sectors corresponds to a specific RX antenna beam; a processor is configured to start MIMO beam combination training based on the selected TX and RX sectors by the receiver being further configured to receive training packets from the selected TX sectors using the selected RX sectors, each of the MIMO beam combinations includes one of the selected TX sectors and one of the selected RX sectors; and a MIMO encoder is configured to determine one or more best MIMO beam combinations for multiple MIMO spatial streams based on the results of the MIMO beam combination training. 7. The responder of claim 6 , wherein the beam-training message comprises parameters including a number of the TX sectors, a number of the RX sectors, a number of the MIMO spatial streams, and a number of the beam combinations. 8. The responder of claim 6 , wherein the selected TX and RX sectors are determined based on signal to noise ratios (SNRs). 9. The responder of claim 6 , wherein the best MIMO beam combinations are determined based on signal to noise plus interference ratios (SNIRs). 10. The responder of claim 6 , wherein the training packets during the RX sector sweeping are transmitted with an omni-direction antenna pattern. 11. An initiator device, comprising: a transceiver that communicates a beam-training message that initiates a multiple input and multiple output (MIMO) training procedure in a wireless network, the transceiver comprises a transmitter; the transmitter is configured to transmit training packets using all TX sectors during TX sector sweeping and in response obtaining a set of selected TX sectors, each of the TX sectors corresponds to a specific TX antenna beam, the transmitter is further configured to transmit training packets using the selected TX sectors during RX sector sweeping and in response obtaining a set of selected RX sectors corresponding to each of the selected TX sectors, each of the RX sectors corresponds to a specific RX antenna beam; and a MIMO encoder is configured to determine one or more best MIMO beam combinations for multiple MIMO spatial streams based on signal to noise plus interference ratios (SNIRs) of the MIMO beam combinations, each of the MIMO beam combinations includes one of the selected TX sectors and one of the selected RX sectors, and the sets of selected TX and RX sectors are determined based on signal to noise ratios (SNRs). 12. The initiator of claim 11 , wherein the beam-training message comprises parameters including a number of the TX sectors, a number of the RX sectors, a number of the MIMO spatial streams, and a number of the beam combinations. 13. The initiator of claim 11 , wherein the training packets during the RX sector sweeping are repeated for all of the RX sectors for each of the selected TX sectors. 14. A responder device, comprising: a transceiver that communicates a beam-training message that initiates a multiple input and multiple output (MIMO) training procedure in a wireless network, the transceiver comprises a receiver; the receiver that receives is configured to receive training packets using omni-direction antenna pattern during TX sector sweeping and in response determine a set of selected TX sectors, each TX sector corresponds to a specific TX antenna beam, the receiver is further configured to receive training packets using all RX sectors during RX sector sweeping and in response determining a set of selected RX sectors corresponding to each selected TX sector, each RX sector corresponds to a specific RX antenna beam; and a MIMO encoder is configured to determine one or more best MIMO beam combinations from the selected TX and RX sectors for multiple MIMO spatial streams based on signal to noise plus interference ratios (SNIRs) of the MIMO beam combinations, each of the MIMO beam combinations includes one of the selected TX sectors and one of the selected RX sectors, and the sets of selected TX and RX sectors are determined based on signal to noise ratios (SNRs). 15. The responder of claim 14 , wherein the beam-training message comprises parameters including a number of the TX sectors, a number of the RX sectors, a number of the MIMO spatial streams, and a number of the beam combinations. 16. The responder of claim 14 , wherein the training packets during the RX sector sweeping are transmitted using each of the selected TX sectors.

Assignees

Inventors

Classifications

  • Selecting one or more beams from a plurality of beams, e.g. beam training, management or sweeping · CPC title

  • H04B7/088Primary

    using beam selection · CPC title

  • using beam selection · CPC title

  • Feedback systems · CPC title

  • using best eigenmode, e.g. beam forming or beam steering · CPC title

Patent family

Related publications grouped by family.

External sources

Frequently asked questions

Answers are generated from the same data shown on this page.

What does patent US9246571B2 cover?
The disclosed invention provides an efficient method for beam training to enable spatial multiplexing MIMO operation and spatial combining in a wireless network. The invention discloses a simple and efficient beam-training algorithm and protocol for MIMO operation that operates in high SNR condition for reliable MIMO operation. In one novel aspect, the best MIMO beam combinations are determined…
Who is the assignee on this patent?
Mediatek Singapore Pte Ltd
What technology area does this patent fall under?
Primary CPC classification H04B7/088. Mapped technology areas include Electricity.
When was this patent published?
Publication date Tue Jan 26 2016 00:00:00 GMT+0000 (Coordinated Universal Time) (B2). Legal status and post-grant events are not shown on this page.
What related patents are in patentsdb?
We list 8 related publications on this page (citations in our corpus or others sharing the same primary CPC).