A Tensor Based Framework for Multi-Domain Communication Systems

The demand for mobile data is likely to grow at a pace more than envisaged in the coming years. Further, as applications such as the Internet of Things (IoT) come to fruition, there will be increased diversity in the types of devices demanding Internet connectivity and their requirements. Significan...

Full description

Bibliographic Details
Main Authors: Adithya Venugopal, Harry Leib
Format: Article
Language:English
Published: IEEE 2020-01-01
Series:IEEE Open Journal of the Communications Society
Subjects:
Online Access:https://ieeexplore.ieee.org/document/9064722/
id doaj-6956acd435e2426b923101ca0d424b08
record_format Article
spelling doaj-6956acd435e2426b923101ca0d424b082021-03-29T18:56:26ZengIEEEIEEE Open Journal of the Communications Society2644-125X2020-01-01160663310.1109/OJCOMS.2020.29875439064722A Tensor Based Framework for Multi-Domain Communication SystemsAdithya Venugopal0Harry Leib1Department of Electrical and Computer Engineering, McGill University, Montreal, CanadaDepartment of Electrical and Computer Engineering, McGill University, Montreal, CanadaThe demand for mobile data is likely to grow at a pace more than envisaged in the coming years. Further, as applications such as the Internet of Things (IoT) come to fruition, there will be increased diversity in the types of devices demanding Internet connectivity and their requirements. Significant increase in data rate requirements is also expected due to services such as Ultra High Definition (UHD) video streaming and cloud computing. To meet all these demands, physical layer waveform candidates for future generations of communications need to be robust and inherently capable of extending into multiple domains (space, time, frequency, users, transmission media, code etc.) to ensure efficient utilization of resources. Multiple domains can be innately integrated into the design process of modulation schemes by using tensors, which are multi-way arrays. This paper introduces a unified tensor framework, providing a foundation for multi-domain communication systems that can be used to represent, design and analyse schemes that span several domains. Transmitted signals are represented by N$ th order time function tensors which are coupled, using a system tensor of order N+M, with the received signals which are represented by another tensor of order M through the contracted convolution. We begin with the continuous time representation of the tensor system model and present both the strict multi-domain generalization of the Nyquist criterion for zero interference (inter-tensor and intra-tensor interference) as well as a relaxation. We present an equivalent discrete time system model, and as an example of using the tensor framework we derive tensor based linear equalization methods to combat multi-domain interference. An application to multi-user MIMO-GFDM illustrates the utility of this novel framework for derivation of joint domain signal processing techniques.https://ieeexplore.ieee.org/document/9064722/Linear equalizationMIMOmulti-domain communication systemstensor modellingwireless communication systems
collection DOAJ
language English
format Article
sources DOAJ
author Adithya Venugopal
Harry Leib
spellingShingle Adithya Venugopal
Harry Leib
A Tensor Based Framework for Multi-Domain Communication Systems
IEEE Open Journal of the Communications Society
Linear equalization
MIMO
multi-domain communication systems
tensor modelling
wireless communication systems
author_facet Adithya Venugopal
Harry Leib
author_sort Adithya Venugopal
title A Tensor Based Framework for Multi-Domain Communication Systems
title_short A Tensor Based Framework for Multi-Domain Communication Systems
title_full A Tensor Based Framework for Multi-Domain Communication Systems
title_fullStr A Tensor Based Framework for Multi-Domain Communication Systems
title_full_unstemmed A Tensor Based Framework for Multi-Domain Communication Systems
title_sort tensor based framework for multi-domain communication systems
publisher IEEE
series IEEE Open Journal of the Communications Society
issn 2644-125X
publishDate 2020-01-01
description The demand for mobile data is likely to grow at a pace more than envisaged in the coming years. Further, as applications such as the Internet of Things (IoT) come to fruition, there will be increased diversity in the types of devices demanding Internet connectivity and their requirements. Significant increase in data rate requirements is also expected due to services such as Ultra High Definition (UHD) video streaming and cloud computing. To meet all these demands, physical layer waveform candidates for future generations of communications need to be robust and inherently capable of extending into multiple domains (space, time, frequency, users, transmission media, code etc.) to ensure efficient utilization of resources. Multiple domains can be innately integrated into the design process of modulation schemes by using tensors, which are multi-way arrays. This paper introduces a unified tensor framework, providing a foundation for multi-domain communication systems that can be used to represent, design and analyse schemes that span several domains. Transmitted signals are represented by N$ th order time function tensors which are coupled, using a system tensor of order N+M, with the received signals which are represented by another tensor of order M through the contracted convolution. We begin with the continuous time representation of the tensor system model and present both the strict multi-domain generalization of the Nyquist criterion for zero interference (inter-tensor and intra-tensor interference) as well as a relaxation. We present an equivalent discrete time system model, and as an example of using the tensor framework we derive tensor based linear equalization methods to combat multi-domain interference. An application to multi-user MIMO-GFDM illustrates the utility of this novel framework for derivation of joint domain signal processing techniques.
topic Linear equalization
MIMO
multi-domain communication systems
tensor modelling
wireless communication systems
url https://ieeexplore.ieee.org/document/9064722/
work_keys_str_mv AT adithyavenugopal atensorbasedframeworkformultidomaincommunicationsystems
AT harryleib atensorbasedframeworkformultidomaincommunicationsystems
AT adithyavenugopal tensorbasedframeworkformultidomaincommunicationsystems
AT harryleib tensorbasedframeworkformultidomaincommunicationsystems
_version_ 1724196144227024896