DocumentCode
1930049
Title
Residual Enhanced Visual Vectors for on-device image matching
Author
Chen, David ; Tsai, Sam ; Chandrasekhar, Vijay ; Takacs, Gabriel ; Chen, Huizhong ; Vedantham, Ramakrishna ; Grzeszczuk, Radek ; Girod, Bernd
Author_Institution
Dept. of Electr. Eng., Stanford Univ., Stanford, CA, USA
fYear
2011
fDate
6-9 Nov. 2011
Firstpage
850
Lastpage
854
Abstract
Most mobile visual search (MVS) systems query a large database stored on a server. This paper presents a new architecture for searching a large database directly on a mobile device, which has numerous benefits for network-independent, low-latency, and privacy-protected image retrieval. A key challenge for on-device MVS is storing a memory-intensive database in the limited RAM of the mobile device. We design and implement a new compact global image signature called the Residual Enhanced Visual Vector (REVV) that is optimized for the local features typically used in MVS. REVV outperforms existing compact database representations in the MVS setting and attains similar retrieval accuracy in large-scale retrieval tests as a Vocabulary Tree that uses 26× more memory. The compactness of REVV consequently enables many database images to be queried on a mobile device.
Keywords
image matching; image retrieval; mobile computing; RAM; compact global image signature; database images; database query; large database searching; local features; memory-intensive database; mobile device; mobile visual search systems; network independent-low latency-privacy protected image retrieval; on-device image matching; residual enhanced visual vectors; vocabulary tree; Conferences; Feature extraction; Mobile handsets; Random access memory; Visual databases; Visualization;
fLanguage
English
Publisher
ieee
Conference_Titel
Signals, Systems and Computers (ASILOMAR), 2011 Conference Record of the Forty Fifth Asilomar Conference on
Conference_Location
Pacific Grove, CA
ISSN
1058-6393
Print_ISBN
978-1-4673-0321-7
Type
conf
DOI
10.1109/ACSSC.2011.6190128
Filename
6190128
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