Trellis and Convolutional Precoding for Transmitter- Based Interference Presubtraction
- 18 July 2005
- journal article
- Published by Institute of Electrical and Electronics Engineers (IEEE) in IEEE Transactions on Communications
- Vol. 53 (7) , 1220-1230
- https://doi.org/10.1109/tcomm.2005.851605
Abstract
This paper studies the combination of practical trellis and convolution codes with Tomlinson-Harashima precoding (THP) for the presubtraction of multiuser interference that is known at the transmitter but not known at the receiver. It is well known that a straightforward application of THP suffers power, modulo, and shaping losses. This paper proposes generalizations of THP that recover some of these losses. At a high signal-to-noise ratio (SNR), the precoding loss is dominated by the shaping loss, which is about 1.53 dB. To recover shaping loss, a trellis-shaping technique is developed that takes into account the knowledge of a noncausal interfering sequence, rather than just the instantaneous interference. At rates of 2 and 3 bits per transmission, trellis shaping is shown to be able to recover almost all of the 1.53-dB shaping loss. At a low SNR, the precoding loss is dominated by power and modulo losses, which can be as large as 3-4 dB. To recover these losses, a technique that incorporates partial interference presubtraction (PIP) within convolutional decoding is developed. At rates of 0.5 and 0.25 bits per transmission, PIP is able to recover 1-1.5 dB of the power loss. For intermediate SNR channels, a combination of the two schemes is shown to recover both power and shaping losses.Keywords
This publication has 20 references indexed in Scilit:
- Duality, achievable rates, and sum-rate capacity of gaussian mimo broadcast channelsIEEE Transactions on Information Theory, 2003
- Sum capacity of the vector Gaussian broadcast channel and uplink–downlink dualityIEEE Transactions on Information Theory, 2003
- Factor graphs and the sum-product algorithmIEEE Transactions on Information Theory, 2001
- Achievable rates for Tomlinson-Harashima precodingIEEE Transactions on Information Theory, 1998
- The intersymbol interference channel: lower bounds on capacity and channel precoding lossIEEE Transactions on Information Theory, 1996
- Trellis-coded vector quantizationIEEE Transactions on Information Theory, 1991
- Multidimensional constellations. II. Voronoi constellationsIEEE Journal on Selected Areas in Communications, 1989
- A fast encoding method for lattice codes and quantizersIEEE Transactions on Information Theory, 1983
- Writing on dirty paper (Corresp.)IEEE Transactions on Information Theory, 1983
- New automatic equaliser employing modulo arithmeticElectronics Letters, 1971