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Multiresolution gray-scale and rotation invariant texture classification with local binary patterns

Timo OjalaMatti PietikäinenTopi Mäenpää

Abstract

Presents a theoretically very simple, yet efficient, multiresolution approach to gray-scale and rotation invariant texture classification based on local binary patterns and nonparametric discrimination of sample and prototype distributions. The method is based on recognizing that certain local binary patterns, termed "uniform," are fundamental properties of local image texture and their occurrence histogram is proven to be a very powerful texture feature. We derive a generalized gray-scale and rotation invariant operator presentation that allows for detecting the "uniform" patterns for any quantization of the angular space and for any spatial resolution and presents a method for combining multiple operators for multiresolution analysis. The proposed approach is very robust in terms of gray-scale variations since the operator is, by definition, invariant against any monotonic transformation of the gray scale. Another advantage is computational simplicity as the operator can be realized with a few operations in a small neighborhood and a lookup table. Experimental results demonstrate that good discrimination can be achieved with the occurrence statistics of simple rotation invariant local binary patterns.

Image Retrieval and Classification TechniquesAdvanced Image and Video Retrieval TechniquesMedical Image Segmentation TechniquesPattern recognition (psychology)Artificial intelligenceMathematicsLocal binary patternsHistogramInvariant (physics)Binary numberScale invarianceAlgorithmComputer science

Funding

  • University of Bristol
  • Academy of Finland
Citations
15,129
FWCI
24.98
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References
Information theory and statistics
Journal of the Franklin Institute · 1959 · 7,216 citations
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