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SLIC Superpixels Compared to State-of-the-Art Superpixel Methods

IEEE Transactions on Pattern Analysis and Machine Intelligence · 2012 · Vol. 34(11) · pp. 2274–2282
Radhakrishna AchantaAnil ShajiKevin SmithAurélien LucchiPascal FuaSabine Süsstrunk

Abstract

Computer vision applications have come to rely increasingly on superpixels in recent years, but it is not always clear what constitutes a good superpixel algorithm. In an effort to understand the benefits and drawbacks of existing methods, we empirically compare five state-of-the-art superpixel algorithms for their ability to adhere to image boundaries, speed, memory efficiency, and their impact on segmentation performance. We then introduce a new superpixel algorithm, simple linear iterative clustering (SLIC), which adapts a k-means clustering approach to efficiently generate superpixels. Despite its simplicity, SLIC adheres to boundaries as well as or better than previous methods. At the same time, it is faster and more memory efficient, improves segmentation performance, and is straightforward to extend to supervoxel generation.

Medical Image Segmentation TechniquesRemote-Sensing Image ClassificationAdvanced Image and Video Retrieval TechniquesComputer scienceCluster analysisArtificial intelligenceSegmentationImage segmentationSimplicityPattern recognition (psychology)Image (mathematics)State (computer science)Algorithm

MeSH terms

AlgorithmsImage EnhancementImage Interpretation, Computer-AssistedPattern Recognition, AutomatedSensitivity and SpecificitySignal Processing, Computer-AssistedReproducibility of Results
Citations
8,985
FWCI
303.88
field-weighted impact
References
32
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