DocumentCode :
1758770
Title :
Physical Layer Data Fusion Via Distributed Co-Phasing With General Signal Constellations
Author :
Manesh, A. ; Murthy, Chandra R. ; Annavajjala, Ramesh
Author_Institution :
Dept. of Electr. Commun. Eng., Indian Inst. of Sci., Bangalore, India
Volume :
63
Issue :
17
fYear :
2015
fDate :
Sept.1, 2015
Firstpage :
4660
Lastpage :
4672
Abstract :
This paper studies a pilot-assisted physical layer data fusion technique known as Distributed Co-Phasing (DCP). In this two-phase scheme, the sensors first estimate the channel to the fusion center (FC) using pilots sent by the latter; and then they simultaneously transmit their common data by pre-rotating them by the estimated channel phase, thereby achieving physical layer data fusion. First, by analyzing the symmetric mutual information of the system, it is shown that the use of higher order constellations (HOC) can improve the throughput of DCP compared to the binary signaling considered heretofore. Using an HOC in the DCP setting requires the estimation of the composite DCP channel at the FC for data decoding. To this end, two blind algorithms are proposed: (1) power method, and (2) modified K-means algorithm. The latter algorithm is shown to be computationally efficient and converges significantly faster than the conventional K-means algorithm. Analytical expressions for the probability of error are derived, and it is found that even at moderate to low SNRs, the modified K-means algorithm achieves a probability of error comparable to that achievable with a perfect channel estimate at the FC, while requiring no pilot symbols to be transmitted from the sensor nodes. Also, the problem of signal corruption due to imperfect DCP is investigated, and constellation shaping to minimize the probability of signal corruption is proposed and analyzed. The analysis is validated, and the promising performance of DCP for energy-efficient physical layer data fusion is illustrated, using Monte Carlo simulations.
Keywords :
Monte Carlo methods; channel estimation; decoding; error statistics; sensor fusion; wireless channels; wireless sensor networks; FC; HOC; Monte Carlo simulation; SNR; blind algorithm; composite DCP channel estimation; data decoding; distributed cophasing; error probability; fusion center; general signal constellation; higher order constellation; modified K-means algorithm; pilot-assisted energy-efficient physical layer data fusion technique; power method; signal corruption probability minimization; symmetric mutual information; wireless sensor network; Channel estimation; Constellation diagram; Data integration; Sensors; Signal processing algorithms; Synchronization; Wireless sensor networks; $K$ -means algorithm; Distributed co-phasing; Nakagami-$m$ fading; data fusion; mutual information; sensor networks;
fLanguage :
English
Journal_Title :
Signal Processing, IEEE Transactions on
Publisher :
ieee
ISSN :
1053-587X
Type :
jour
DOI :
10.1109/TSP.2015.2442954
Filename :
7120185
Link To Document :
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