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What is K-SVD

Histopathological Image Analysis in Medical Decision Making
It is a dictionary learning algorithm for creating a dictionary for sparse representations based a singular value decomposition approach. K-SVD is a generality of the k-means clustering algorithm and singular value decomposition that works iteratively alternating between sparse coding the input data based on the current dictionary and updating the atoms in the dictionary that better fit the data.
Published in Chapter:
A Novel Approach of K-SVD-Based Algorithm for Image Denoising
Madhu Golla (VNR Vignana Jyothi Institute and Engineering and Technology, India) and Sudipta Rudra (VNR Vignana Jyothi Institute and Engineering and Technology, India)
Copyright: © 2019 |Pages: 27
DOI: 10.4018/978-1-5225-6316-7.ch007
Abstract
In recent years, denoising has played an important role in medical image analysis. Image denoising is still accepted as a challenge for researchers and image application developers in medical image applications. The idea is to denoise a microscopic image through over-complete dictionary learning using a k-means algorithm and singular value decomposition (K-SVD) based on pursuit methods. This approach is good in performance on the quality improvement of the medical images, but it has low computational speed with high computational complexity. In view of the above limitations, this chapter proposes a novel strategy for denoising insight phenomena of the K-SVD algorithm. In addition, the authors utilize the technology of improved dictionary learning of the image patches using heap sort mechanism followed by dictionary updating process. The experimental results validate that the proposed approach successfully reduced noise levels on various test image datasets. This has been found to be more accurate than the best in class denoising approaches.
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