Modulation and equalization in an orthonormal time-frequency shifting communications system
US-2016043835-A1 · Feb 11, 2016 · US
US11632270B2 · US · B2
| Field | Value |
|---|---|
| Publication number | US-11632270-B2 |
| Application number | US-201915733484-A |
| Country | US |
| Kind code | B2 |
| Filing date | Feb 7, 2019 |
| Priority date | Feb 8, 2018 |
| Publication date | Apr 18, 2023 |
| Grant date | Apr 18, 2023 |
A practical reading order for non-experts. Skip the full description unless you need deep technical detail.
What the patent document calls the invention.
A short plain-language summary of the technical disclosure.
Who owns or filed the patent and who is credited as inventor.
Filing, priority, publication, and grant dates set the timeline.
The legal scope of protection — read this for what is actually claimed.
Technology tags used to group this patent with similar filings.
Prior art links and similar publications in this corpus.
Official abstract text for this publication.
Device, methods and systems for aspects of channel estimation for orthogonal time frequency space (OTFS) modulation in wireless systems are described. In an aspect, a method for wireless communication may include receiving, using multiple receive antennas, from a number of user devices, non-orthogonal pilots wherein at least some transmissions of the non-orthogonal pilots from different user devices overlap in at least some time and frequency resources, estimating individual pilots from the number of user devices by computing a pilot separation filter for each antenna, and estimating the wireless channel at time and frequency resources used by the non-orthogonal pilots by filtering the receiving signal at the multiple receiver antennas.
Opening claim text (preview).
What is claimed is: 1. A wireless communication method, implementable by a base station, comprising: performing, by the base station, a channel training based on a reception of orthogonal pilots from multiple transmitting devices over a wireless channel, wherein the channel training includes determining a second order statistics of time variations in the wireless channel; constructing, based on the second order statistics, a precoding filter; and adding perturbation signals and applying the precoding filter to future transmissions to the multiple transmitting devices, wherein the perturbation signals minimize an expected error energy of the future transmissions at the multiple transmitting devices, and wherein the perturbation signals correspond to one or more perturbation vectors that take values on a coarse lattice in a two-dimensional plane defined by a delay dimension and a Doppler dimension. 2. The method of claim 1 , wherein the determining second order statistics includes, for each received subframe with orthogonal pilot, and for each of a plurality of receive antennas, determining an estimate of the wireless channel and computing a covariance matrix of the estimate as a function of time. 3. The method of claim 2 , wherein the estimate of the wireless channel is performed over an entire frequency band. 4. The method of claim 2 , wherein the determining the second order statistics includes: performing a principal component analysis in which a number of most dominant eigenvalues of the covariance matrix are used; and using an approximation of the covariance matrix based on the principal component analysis for determining the second order statistics. 5. The method of claim 4 , wherein the number of most dominant eigenvalues is equal to a number of reflectors in the wireless channel. 6. The method of claim 2 , further including computing a mean of the covariance matrix as a function of time. 7. The method of claim 2 , wherein the covariance matrix is gradually updated over time by removing a first column of a matrix representing the received orthogonal pilots and adding a new column to the matrix and re-computing the covariance matrix after adding the new column. 8. The method of claim 1 , further including implementing the method for each antenna of the multiple transmitting devices. 9. The method of claim 1 , wherein periodicity of occurrence of the orthogonal pilots is greater than an estimated time period over which the estimate of the wireless channel is constant. 10. The method of claim 1 , wherein at least a portion of the wireless channel is dedicated to transmission of non-orthogonal pilots for reception by a receiving wireless device. 11. A receiving wireless device implemented at a base station, the receiving wireless device comprising a processor configured to implement a method, the method comprising: performing a channel training at the receiving wireless device based on a reception of orthogonal pilots from multiple transmitting devices over a wireless channel, wherein the channel training includes determining second order statistics of time variations in the wireless channel; constructing, based on the second order statistics, a precoding filter; and adding perturbation signals and applying the precoding filter to future transmissions to the multiple transmitting devices, wherein the perturbation signals minimize an expected error energy of the future transmissions at the multiple transmitting devices, and wherein the perturbation signals correspond to one or more perturbation vectors that take values on a coarse lattice in a two-dimensional plane defined by a delay dimension and a Doppler dimension. 12. The receiving wireless device of claim 11 , wherein the determining second order statistics includes, for each received subframe with orthogonal pilot, and for each of a plurality of receive antennas, determining an estimate of the wireless channel and computing a covariance matrix of the estimate as a function of time. 13. The receiving wireless device of claim 12 , wherein the estimate of the wireless channel is performed over an entire frequency band. 14. The receiving wireless device of claim 12 , wherein the processor is further configured, as part of determining the second order statistics, for: performing principal component analysis in which a number of most dominant eigenvalues of the covariance matrix are used; and using an approximation of the covariance matrix based on the principal component analysis for determining the second order statistics. 15. The receiving wireless device of claim 14 , wherein the number of most dominant eigenvalues is equal to a number of reflectors in the wireless channel. 16. The receiving wireless device of claim 12 , wherein the processor is further configured for computing a mean of the covariance matrix as a function of time. 17. The receiving wireless device of claim 12 , wherein the covariance matrix is gradually updated over time by removing a first column of a matrix representing the received orthogonal pilots and adding a new column to the matrix and re-computing the covariance matrix after adding the new column. 18. The receiving wireless device of claim 11 , wherein the processor is further configured to implement the method for each antenna of the multiple transmitting devices. 19. The receiving wireless device of claim 11 , wherein periodicity of occurrence of the orthogonal pilots is greater than an estimated time period over which the estimate of the wireless channel is constant. 20. The receiving wireless device of claim 11 , wherein at least a portion of the wireless channel is dedicated to transmission of non-orthogonal pilots for reception by the receiving wireless device.
Multi-user MIMO systems · CPC title
of multiple channels · CPC title
Co-operative use of antennas of several sites, e.g. in co-ordinated multipoint or co-operative multiple-input multiple-output [MIMO] systems · CPC title
Eigen-space methods · CPC title
with extension to other symbols · CPC title
Related publications grouped by family.
Answers are generated from the same data shown on this page.