A Novel Approach for Background Subtraction using Generalized Rayleigh Distribution

Abstract

Identification of the foreground objects in dynamic scenario video images is an exigent task, when compared to static scenes. In contrast to motionless images, video sequences offer more information concerning how items and circumstances change over time. Pixel based comparisons are carried out to categorize the foreground and the background based on frame difference methodology. In order to have more precise object identification, the threshold value is made static during both the cases, to improve the recognition accuracy, adaptive threshold values are estimated for both the methods. The current article also highlights a methodology using Generalized Rayleigh Distribution (GRD). Experimentation is conducted using benchmark video images and the derived outputs are evaluated using a quantitate approach.

Authors and Affiliations

Pavan Kumar Tadiparthi, Srinivas Yarramalle, Nagesh Vadaparthi

Keywords

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  • EP ID EP394218
  • DOI 10.14569/IJACSA.2018.090964
  • Views 90
  • Downloads 0

How To Cite

Pavan Kumar Tadiparthi, Srinivas Yarramalle, Nagesh Vadaparthi (2018). A Novel Approach for Background Subtraction using Generalized Rayleigh Distribution. International Journal of Advanced Computer Science & Applications, 9(9), 506-518. https://europub.co.uk/articles/-A-394218