DocumentCode
106124
Title
MIMO Zero-Forcing Performance Evaluation Using the Holonomic Gradient Method
Author
Siriteanu, Constantin ; Takemura, Akimichi ; Kuriki, Satoshi ; Hyundong Shin ; Koutschan, Christoph
Author_Institution
Dept. of Inf. Syst. Eng., Osaka Univ., Suita, Japan
Volume
14
Issue
4
fYear
2015
fDate
Apr-15
Firstpage
2322
Lastpage
2335
Abstract
For multiple-input-multiple-output (MIMO) spatial-multiplexing transmission, zero-forcing (ZF) detection is appealing because of its low complexity. Our recent MIMO ZF performance analysis for Rician-Rayleigh fading, which is relevant in heterogeneous networks, has yielded for the ZF outage probability and ergodic capacity infinite-series expressions. Because they arose from expanding the confluent hypergeometric function 1F1(·, ·, σ) around 0, they do not converge numerically at realistically high Rician K-factor values. Therefore, herein, we seek to take advantage of the fact that 1F1(·, ·, σ) satisfies a differential equation, i.e., it is a holonomic function. Holonomic functions can be computed by the holonomic gradient method (HGM), i.e., by numerically solving the satisfied differential equation. Thus, we first reveal that the moment generating function (m.g.f.) and probability density function (p.d.f.) of the ZF signal-to-noise ratio (SNR) are holonomic. Then, from the differential equation for 1F1(·, ·, σ), we deduce those satisfied by the SNR m.g.f. and p.d.f. and demonstrate that the HGM helps compute the p.d.f. accurately at practically relevant values of K. Finally, numerical integration of the SNR p.d.f. produced by HGM yields accurate ZF outage probability and ergodic capacity results.
Keywords
MIMO communication; Rayleigh channels; Rician channels; differential equations; performance evaluation; probability; signal detection; space division multiplexing; HGM; MGF; MIMO ZF performance analysis; MIMO zero-forcing performance evaluation; PDF; Rician K-factor values; Rician-Rayleigh fading; SNR; ZF detection; ZF outage probability; differential equation; ergodic capacity infinite-series expressions; heterogeneous networks; holonomic function; holonomic gradient method; hypergeometric function; moment generating function; multiple-input-multiple-output spatial-multiplexing transmission; probability density function; signal-to-noise ratio; Differential equations; Rayleigh channels; Rician channels; Signal to noise ratio; Wireless communication; Holonomic gradient method; MIMO; Rayleigh–Rician fading; Rayleigh???Rician fading; hypergeometric function; zero-forcing;
fLanguage
English
Journal_Title
Wireless Communications, IEEE Transactions on
Publisher
ieee
ISSN
1536-1276
Type
jour
DOI
10.1109/TWC.2014.2385075
Filename
6994868
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