Frequency Domain Digital Image Segmentation based on a Modified kMeans

Abstract

The segmentation of image is the basic thing for understanding the images whether it is a color image or gray scale image. It is used in the various image processing applications, computer vision, etc. In this thesis work we have used multiple clustering approaches to segment the image in our initial step like Normalized cut, kMeans, and Mean shift. The main aim was to obtain feature extraction, to reduce convergence, to reduce computation time, and to overcome the over segmentation caused by the noise, also incorrect spread of intensity. Hence the optimal solution has been derived through the Modified kMeans through which the feature extraction and the separation of overlapping objects were evaluated by making use of wavelet transform and computation time was reduced by considering approximation band coefficients of DWT contribution in an image through which overall performance was improved. Proposed work has been implemented in MATLAB environment.

Authors and Affiliations

Divya, Mr. Pawan Kumar Mishra

Keywords

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  • EP ID EP748317
  • DOI 10.21276/ijircst.2017.5.4.4
  • Views 35
  • Downloads 0

How To Cite

Divya, Mr. Pawan Kumar Mishra (2017). Frequency Domain Digital Image Segmentation based on a Modified kMeans. International Journal of Innovative Research in Computer Science and Technology, 5(4), -. https://europub.co.uk./articles/-A-748317