GLOH
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Revision as of 01:56, 17 November 2021 by imported>Jslovo (update)
Feature detection |
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Edge detection |
Corner detection |
Blob detection |
Ridge detection |
Hough transform |
Structure tensor |
Affine invariant feature detection |
Feature description |
Scale space |
GLOH (Gradient Location and Orientation Histogram) is a robust image descriptor that can be used in computer vision tasks. It is a SIFT-like descriptor that considers more spatial regions for the histograms. An intermediate vector is computed from 17 location and 16 orientation bins, for a total of 272-dimensions. Principal components analysis (PCA) is then used to reduce the vector size to 128 (same size as SIFT descriptor vector).
See also
- Scale-invariant feature transform
- Speeded Up Robust Features
- LESH – Local Energy-based Shape Histogram
- Feature detection (computer vision)
References
Original source: https://en.wikipedia.org/wiki/GLOH.
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