RTL Implementation of image compression techniques in WSN

The Wireless sensor networks have limitations regarding data redundancy, power and require high bandwidth when used for multimedia data. Image compression methods overcome these problems. Non-negative Matrix Factorization (NMF) method is useful in approximating high dimensional data where the data has non-negative components. Another way of the NMF, called Projective Nonnegative Matrix Factorization is used for learning spatially localized visual patterns.Simulation results show the comparison between SVD NMF, PNMF compression schemes. Compressed images are transmitted from base station to cluster head node and received from ordinary nodes. The station takes on the image restoration. Image quality, compression ratio, signal to noise ratio and energy consumption are the essential metrics measured for compression performance.  In this paper, the compression methods are designed using   Matlab.The parameters like PSNR,the total node energy consumption  are calculated.RTL schematic of NMF SVD, PNMF methods is generated by using Verilog HDL.

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