Superpixels and Polygons Using Simple Non-iterative Clustering
Radhakrishna Achanta(École Polytechnique Fédérale de Lausanne), Sabine Süsstrunk(École Polytechnique Fédérale de Lausanne)
Cited by 476Open Access
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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