Keypoint-Based Foreground-Background Image Segmentation

Jaroslav Venjarski, L'uboš Likó, Šimon Tibenský, Marek Vančo, Gregor Rozinaj · 2024

This article centers on foreground-background image segmentation techniques, with a particular focus on applications using two shifted or highly similar images. Our work critically examines prevalent image processing methodologies, leading to the development and implementation of an innovative algorithm for more precise segmentation. We initially unpack the concepts of image segmentation and stereo vision, setting the stage for an in-depth exploration of various segmentation methods and techniques. Our investigation reveals that synergistic combinations of methods frequently produce more refined outcomes. We subsequently propose a practical solution, juxtaposing our approach with pre-existing alternatives to delineate its comparative strengths, weaknesses, and unique attributes.

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