DocumentCode :
3573748
Title :
Power quality data compression based on sparse representation and compressed sensing
Author :
Yue Shen ; Hanwen Zhang ; Guohai Liu ; Hui Liu ; Wei Xia ; Hongxuan Wu
Author_Institution :
Sch. of Electr. & Inf. Eng., Jiangsu Univ., Zhenjiang, China
fYear :
2014
Firstpage :
5561
Lastpage :
5566
Abstract :
A power quality data compression method combining compressive sampling with adaptive matching pursuit reconstruction based on compressed sampling theorem is presented to solve the massive power quality data collection, compression and storage problems. First, the original power quality data was sampled and compressed simultaneously by random matrix projection method based on compressed sampling theorem. Then the proposed adaptive matching pursuit reconstruction algorithm was used to achieve accurate power quality data reconstruction. The proposed method breaks through the traditional framework of data compression by merging compression into sampling process and could reconstruct original power quality data from the small amount of sampling points from the compressed data. Simulation shows the proposed CS-based power quality data compression method can not only reduce hardware requirements, but also increase the efficiency of data compression.
Keywords :
compressed sensing; data compression; iterative methods; signal reconstruction; signal representation; sparse matrices; time-frequency analysis; CS-based power quality data compression method; adaptive matching pursuit reconstruction algorithm; compressed sampling theorem; data storage problem; hardware requirement reduction; massive power quality data collection problem; power quality data reconstruction; random matrix projection method; Compressed sensing; Data compression; Educational institutions; Intelligent control; Matching pursuit algorithms; Power quality; Reconstruction algorithms; compressed sensing; data compression; power quality; reconstruction algorithm;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Intelligent Control and Automation (WCICA), 2014 11th World Congress on
Type :
conf
DOI :
10.1109/WCICA.2014.7053666
Filename :
7053666
Link To Document :
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