Amplitude-Aided 1-Bit Compressive Sensing Over Noisy Wireless Sensor Networks
碩士 === 國立交通大學 === 電信工程研究所 === 103 === One-bit compressive sensing (CS) is known to particularly suited for resource-constrained wireless sensor networks (WSNs). In this paper, we consider 1-bit CS over noisy WSNs subject to channel-induced bit flipping errors, and propose an amplitude-aided signal r...
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ndltd-TW-103NCTU54350912019-05-15T22:33:37Z http://ndltd.ncl.edu.tw/handle/e4tad4 Amplitude-Aided 1-Bit Compressive Sensing Over Noisy Wireless Sensor Networks 利用振幅資訊之單一位元壓縮式感測 應用於分散式參數估計技術 Chen, Ching-Hsien 陳卿銜 碩士 國立交通大學 電信工程研究所 103 One-bit compressive sensing (CS) is known to particularly suited for resource-constrained wireless sensor networks (WSNs). In this paper, we consider 1-bit CS over noisy WSNs subject to channel-induced bit flipping errors, and propose an amplitude-aided signal reconstruction scheme, by which (i) the representation points of local binary quantizers are designed to minimize the loss of data fidelity caused by local sensing noise, quantization, and bit sign flipping, and (ii) the FC adopts the conventional -minimization method for sparse signal recovery using the decoded and de-mapped binary data. The representation points of binary quantizers are designed by minimizing the mean square error (MSE) of the net data mismatch, taking into account the distributions of the nonzero signal entries, local sensing noise, quantization error, and bit flipping; a simple closed-form solution is then obtained. Numerical simulations show that our method improves the estimation accuracy when SNR is low or the number of sensors is small, as compared to state-of-the-art 1-bit CS algorithms relying solely on the sign message for signal recovery. Wu, Jwo-Yuh 吳卓諭 2015 學位論文 ; thesis 62 zh-TW |
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碩士 === 國立交通大學 === 電信工程研究所 === 103 === One-bit compressive sensing (CS) is known to particularly suited for resource-constrained wireless sensor networks (WSNs). In this paper, we consider 1-bit CS over noisy WSNs subject to channel-induced bit flipping errors, and propose an amplitude-aided signal reconstruction scheme, by which (i) the representation points of local binary quantizers are designed to minimize the loss of data fidelity caused by local sensing noise, quantization, and bit sign flipping, and (ii) the FC adopts the conventional -minimization method for sparse signal recovery using the decoded and de-mapped binary data. The representation points of binary quantizers are designed by minimizing the mean square error (MSE) of the net data mismatch, taking into account the distributions of the nonzero signal entries, local sensing noise, quantization error, and bit flipping; a simple closed-form solution is then obtained. Numerical simulations show that our method improves the estimation accuracy when SNR is low or the number of sensors is small, as compared to state-of-the-art 1-bit CS algorithms relying solely on the sign message for signal recovery.
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author2 |
Wu, Jwo-Yuh |
author_facet |
Wu, Jwo-Yuh Chen, Ching-Hsien 陳卿銜 |
author |
Chen, Ching-Hsien 陳卿銜 |
spellingShingle |
Chen, Ching-Hsien 陳卿銜 Amplitude-Aided 1-Bit Compressive Sensing Over Noisy Wireless Sensor Networks |
author_sort |
Chen, Ching-Hsien |
title |
Amplitude-Aided 1-Bit Compressive Sensing Over Noisy Wireless Sensor Networks |
title_short |
Amplitude-Aided 1-Bit Compressive Sensing Over Noisy Wireless Sensor Networks |
title_full |
Amplitude-Aided 1-Bit Compressive Sensing Over Noisy Wireless Sensor Networks |
title_fullStr |
Amplitude-Aided 1-Bit Compressive Sensing Over Noisy Wireless Sensor Networks |
title_full_unstemmed |
Amplitude-Aided 1-Bit Compressive Sensing Over Noisy Wireless Sensor Networks |
title_sort |
amplitude-aided 1-bit compressive sensing over noisy wireless sensor networks |
publishDate |
2015 |
url |
http://ndltd.ncl.edu.tw/handle/e4tad4 |
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