Multi-stream faster-than-nyquist transmission using bandwidth partitioning

US10243632B2 · US · B2

Patent metadata
FieldValue
Publication numberUS-10243632-B2
Application numberUS-201515565687-A
CountryUS
Kind codeB2
Filing dateApr 15, 2015
Priority dateApr 15, 2015
Publication dateMar 26, 2019
Grant dateMar 26, 2019

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Abstract

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The present disclosure generally relates to the field of Faster-Than-Nyquist Signaling More specifically, the present disclosure relates to a technique of supporting Faster-Than-Nyquist transmission of data in a Multiple Input Multiple Output environment. A method embodiment comprises: forming two or more spatial data streams from data to be transmitted in the MIMO environment; partitioning a frequency band available for transmission of the data in the MIMO environment over the two or more spatial data streams into two or more sub-bands; and processing each of the two or more spatial data streams using FTN sampling.

First claim

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The invention claimed is: 1. A method of supporting Faster-Than-Nyquist (FTN) transmission of data in a Multiple Input Multiple Output (MIMO) environment, the method comprising: forming two or more spatial data streams from the data to be transmitted in the MIMO environment; partitioning a frequency band, available for the transmission of the data in the MIMO environment over the two or more spatial data streams, into two or more sub-bands, wherein a number of the two or more spatial data streams is equal to a number of the two or more partitioned sub-bands; allocating one of the two or more partitioned sub-bands to each of the two or more spatial data streams; processing each of the two or more spatial data streams using FTN sampling; and transmitting each of the two or more spatial data streams over the two or more partitioned sub-bands, wherein transmitting over the two or more partitioned sub-bands results in reduction of interference between the two or more spatial data streams, thereby utilizing spectrum leakage to increase capacity of a communication system in the MIMO environment. 2. The method of claim 1 , wherein the two or more partitioned sub-bands have an equal bandwidth, respectively. 3. The method of claim 1 , wherein the method further comprises precoding the two or more spatial data streams based on information about properties of a MIMO channel of the MIMO environment. 4. A non-transitory computer-readable recording medium comprising a computer program, wherein the computer program comprises program code portions for causing the method of claim 1 to be performed when the computer program is run on a computer system. 5. A method of supporting reception of data transmitted Faster-Than-Nyquist (FTN) in a Multiple Input Multiple Output (MIMO) environment, the method comprising: receiving two or more spatial data streams that are processed using FTN sampling, wherein the two or more spatial data streams are formed from the data to be transmitted in the MIMO environment, wherein a frequency band available for the transmission of the data in the MIMO environment is partitioned over the two or more spatial data streams into two or more sub-bands, wherein a number of the two or more spatial data streams is equal to a number of the two or more partitioned sub-bands, wherein one of the two or more partitioned sub-bands is allocated to each of the two or more spatial data streams, and wherein the transmission of the two or more spatial data streams over the two or more partitioned sub-bands results in reduction of interference between the two or more spatial data streams, thereby utilizing spectrum leakage to increase capacity of a communication system in the MIMO environment; determining a received signal from the two or more received spatial data streams; and determining the transmitted data from the received signal. 6. The method of claim 5 , wherein the transmitted data is determined by using the following equation y=Ga+G 1/2 w, where G is a matrix determined from FTN pulses for sampling the transmitted data, a is the transmitted data, and w is Gaussian noise. 7. A method of Faster-Than-Nyquist (FTN) transmission of data in a Multiple Input Multiple Output (MIMO) environment, the method comprising: forming two or more spatial data streams from the data to be transmitted in the MIMO environment; partitioning a frequency band, available for the transmission of the data in the MIMO environment over the two or more spatial data streams, into two or more sub-bands, wherein a number of the two or more spatial data streams is equal to a number of the two or more partitioned sub-bands; allocating one of the two or more partitioned sub-bands to each of the two or more spatial data streams; processing each of the two or more spatial data streams using FTN sampling; transmitting each of the two or more spatial data streams over the two or more partitioned sub-bands, wherein transmitting over the two or more partitioned sub-bands results in reduction of interference between the two or more spatial data streams, thereby utilizing spectrum leakage to increase capacity of a communication system in the MIMO environment; receiving the two or more spatial data streams; determining a received signal from the two or more received spatial data streams; and determining the transmitted data from the received signal. 8. An apparatus for supporting Faster-Than-Nyquist (FTN) transmission of data in a Multiple Input Multiple Output (MIMO) environment, the apparatus comprising one or more processors configured to: form two or more spatial data streams from the data to be transmitted in the MIMO environment; partition a frequency band, available for the transmission of the data in the MIMO environment over the two or more spatial data streams, into two or more sub-bands, wherein a number of the two or more spatial data streams is equal to a number of the two or more partitioned sub-bands; allocate one of the two or more partitioned sub-bands to each of the two or more spatial data streams; process each of the two or more spatial data streams using FTN sampling; and transmit each of the two or more spatial data streams over the two or more partitioned sub-bands, wherein the transmission over the two or more partitioned sub-bands results in reduction of interference between the two or more spatial data streams, thereby utilizing spectrum leakage to increase capacity of a communication system in the MIMO environment. 9. An apparatus for supporting reception of data transmitted Faster-Than-Nyquist (FTN) in a Multiple Input Multiple Output (MIMO) environment, the apparatus comprising one or more processors configured to: receive two or more spatial data streams that are processed using FTN sampling, wherein the two or more spatial data streams are formed from the data to be transmitted in the MIMO environment, wherein a frequency band available for the transmission of the data in the MIMO environment is partitioned over the two or more spatial data streams into two or more sub-bands, wherein a number of the two or more spatial data streams is equal to a number of the two or more partitioned sub-bands, wherein one of the two or more partitioned sub-bands is allocated to each of the two or more spatial data streams, and wherein the transmission of the two or more spatial data streams over the two or more partitioned sub-bands results in reduction of interference between the two or more spatial data streams, thereby utilizing spectrum leakage to increase capacity of a communication system in the MIMO environment; determine a received signal from the two or more received spatial data streams; and determine the transmitted data from the received signal.

Assignees

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Classifications

  • by correlative coding, e.g. partial response coding or echo modulation coding {transmitters and receivers for partial response systems (transversal equalizers at the transmitter end H04L25/03343)} · CPC title

  • transmission using multiple-input and multiple-output channels · CPC title

  • Arrangements at the transmitter end · CPC title

  • of weighted versions of same signal · CPC title

  • for beam forming · CPC title

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What does patent US10243632B2 cover?
The present disclosure generally relates to the field of Faster-Than-Nyquist Signaling More specifically, the present disclosure relates to a technique of supporting Faster-Than-Nyquist transmission of data in a Multiple Input Multiple Output environment. A method embodiment comprises: forming two or more spatial data streams from data to be transmitted in the MIMO environment; partitioning a f…
Who is the assignee on this patent?
Ericsson Telefon Ab L M
What technology area does this patent fall under?
Primary CPC classification H04B7/0456. Mapped technology areas include Electricity.
When was this patent published?
Publication date Tue Mar 26 2019 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 1 related publication on this page (citations in our corpus or others sharing the same primary CPC).