DocumentCode :
2554010
Title :
Image Description Using Scale-Space Edge Pixel Directions Histogram
Author :
Pinheiro, António M G
Author_Institution :
Univ. da Beira Interior, Covilha
fYear :
2007
fDate :
17-18 Dec. 2007
Firstpage :
211
Lastpage :
218
Abstract :
Edge directions histograms are widely used as an image descriptor for image retrieval and recognition applications. Edges represent textures and are also representative of the image shapes. In this work a histogram of the edge pixel directions is defined for image description. The edges detected with the canny algorithm will be described in two different scales in four directions. In the lower scale the image is divided into 16 sub-images, and a descriptor with 64 bins results. In the higher scale, as no image division is done because only the most important image features will be present, 4 bins result. A total of 68 bins are used to describe the image in scale-space. Images will be compared using the Euclidean distance between histograms. The provided results will be compared with the ones that result from the use of the histogram in the low scale only. Improved classification using the nearest class mean and neural networks will be used. A higher level semantic annotation, based on this low level descriptor that results from the multiscale image analysis, will be extracted.
Keywords :
edge detection; image classification; image representation; image resolution; image retrieval; image texture; neural nets; Euclidean distance; edge detection; edge direction histogram; higher level semantic annotation; image classification; image descriptor; image recognition; image retrieval; image texture representation; multiscale image analysis; nearest class mean; neural network; scale-space edge pixel direction histogram; Histograms; Image color analysis; Image edge detection; Image recognition; Image texture analysis; MPEG 7 Standard; Multimedia databases; Neural networks; Pixel; Shape;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Semantic Media Adaptation and Personalization, Second International Workshop on
Conference_Location :
Uxbridge
Print_ISBN :
0-7695-3040-0
Type :
conf
DOI :
10.1109/SMAP.2007.25
Filename :
4414412
Link To Document :
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