DocumentCode
1353031
Title
Impulse radio ultra-wideband ranging based on maximum likelihood estimation
Author
Zhan, Hai ; Ayadi, Jaouhar ; Farserotu, John ; Le Boudec, J.-Y.
Author_Institution
Wireless Commun. Sect., Centre Suisse d´´Electron. et de Microtech. S.A., Neuchatel, Switzerland
Volume
8
Issue
12
fYear
2009
fDate
12/1/2009 12:00:00 AM
Firstpage
5852
Lastpage
5861
Abstract
We propose a high-resolution ranging algorithm for impulse radio (IR) ultra-WideBand (UWB) communication systems in additive white Gaussian noise. We formulate the ranging problem as a maximum- likelihood (ML) estimation problem for the channel delays and amplitudes at the receiver. Then we translate the obtained delay estimates into an estimate of the distance. The ML estimation problem is a non-linear problem and is hard to solve. Some previous works focus on finding alternative estimation procedures, for example by denoising. In contrast, we tackle the ML estimation problem directly. First, we use the same transformation as the first step of Iterative quadratic maximum likelihood (IQML) and we transform the ML problem into another optimization problem that avoids the estimation of the amplitude coefficients. Second, we solve the remaining optimization problem with a gradient descent approach (pseudo-quadratic maximum likelihood (PQML) algorithm). To demonstrate the good performance of the proposed estimator, we present the numerical evaluations under the IEEE 802.15.4a channel model. We show that our algorithm performs significantly better than previously published heuristics. We also derive a reduced complexity version of the algorithm algorithm, which will be implemented on the Xinlix field-programmable gate array (FPGA) board in the future. We test the approach in a real weak line of sight (LOS) propagation environment and obtained good accuracy for the ranging.
Keywords
AWGN channels; field programmable gate arrays; maximum likelihood estimation; ultra wideband communication; Xinlix field-programmable gate array; additive white Gaussian noise; channel delays; impulse radio ultra-WideBand communication systems; impulse radio ultra-wideband ranging; line of sight propagation environment; maximum likelihood estimation; pseudo-quadratic maximum likelihood algorithm; quadratic maximum likelihood; Additive white noise; Amplitude estimation; Delay estimation; Field programmable gate arrays; Iterative algorithms; Maximum likelihood estimation; Noise reduction; Receivers; Testing; Ultra wideband technology; Maximum likelihood, pseudo-quadratic maximum likelihood, IR, UWB, ranging;
fLanguage
English
Journal_Title
Wireless Communications, IEEE Transactions on
Publisher
ieee
ISSN
1536-1276
Type
jour
DOI
10.1109/TWC.2009.12.080748
Filename
5351705
Link To Document