DocumentCode :
178314
Title :
Learning Flexible Binary Code for Linear Projection Based Hashing with Random Forest
Author :
Shuze Du ; Wei Zhang ; Shifeng Chen ; Yafei Wen
Author_Institution :
Chengdu Inst. of Comput. Applic., Chengdu, China
fYear :
2014
fDate :
24-28 Aug. 2014
Firstpage :
2685
Lastpage :
2690
Abstract :
Existing linear projection based hashing methods have witnessed many progresses in finding the approximate nearest neighbor(s) of a given query. They perform well when using a short code. But their code length depends on the original data dimension, thus their performance can not be further improved with higher number of bits for low dimensional data. In addition, in the case of high dimensional data, it is not a good choice to produce each bit by a sign function. In this paper, we propose a novel random forest based approach to cope with the above shortcomings. The bits are obtained by recording the paths when a point traversing each tree in the forest. Then we propose a new metric to calculate the similarity between any two codes. Experimental results on two large benchmark datasets show that our approach outperforms its counterparts and demonstrate its superiority over the existing state-of-the-art hashing methods for descriptor retrieval.
Keywords :
binary codes; decision trees; file organisation; image coding; image retrieval; learning (artificial intelligence); approximate nearest neighbors; code length; descriptor retrieval; flexible binary code learning; high dimensional data; linear projection-based hashing; low dimensional data; query processing; random forest; trees; Binary codes; Computational modeling; Encoding; Principal component analysis; Radio frequency; Vectors; Vegetation; approximate nearest neighbors; hash code; random forest;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Pattern Recognition (ICPR), 2014 22nd International Conference on
Conference_Location :
Stockholm
ISSN :
1051-4651
Type :
conf
DOI :
10.1109/ICPR.2014.464
Filename :
6977176
Link To Document :
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