Superpixels and Polygons Using Simple Non-iterative Clustering

Radhakrishna Achanta(École Polytechnique Fédérale de Lausanne), Sabine Süsstrunk(École Polytechnique Fédérale de Lausanne)
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July 1, 2017
Cited by 476Open Access
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Abstract

We present an improved version of the Simple Linear Iterative Clustering (SLIC) superpixel segmentation. Unlike SLIC, our algorithm is non-iterative, enforces connectivity from the start, requires lesser memory, and is faster. Relying on the superpixel boundaries obtained using our algorithm, we also present a polygonal partitioning algorithm. We demonstrate that our superpixels as well as the polygonal partitioning are superior to the respective state-of-the-art algorithms on quantitative benchmarks.


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