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A Novel Medical Image Fusion Scheme Employing Sparse Representation and dual PCNN in the NSCT Domain

Publication Type : Conference Paper

Publisher : IEEE

Source : 2016 IEEE Region 10 Conference (TENCON), Singapore, 2016, pp. 2147-2151

Url : https://ieeexplore.ieee.org/document/7848406

Campus : Amritapuri

Year : 2016

Abstract : With the advent of emerging technologies in the field of biomedical imaging, multi-modality images which reflect different levels of information about imaging area are available. Medical image fusion deals with the problem of integrating complementary information from different modality images into a composite image which provides precise and specific information for clinical diagnosis and better treatment planning. This paper proposes a novel method for combining multi-modality images in the nonsubsampled contourlet domain (NSCT). A sparse representation based approach is adopted for low frequency band fusion and high frequency subbands are fused based on adaptive dual channel pulse coupled neural network (PCNN). The fused image is then reconstructed by performing inverse NSCT. Subjective and objective evaluations proved the effectiveness of the proposed method.

Cite this Research Publication : Anisha Mohammed, K. L. Nisha, and P. S. Sathidevi, "A Novel Medical Image Fusion Scheme Employing Sparse Representation and dual PCNN in the NSCT Domain," 2016 IEEE Region 10 Conference (TENCON), Singapore, 2016, pp. 2147-2151.

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