DocumentCode :
259531
Title :
Large Area Cell Based Image Localization
Author :
Zhai, Andrew ; Clements, Matthew ; Zakhor, Avideh
Author_Institution :
Signetron Inc., UC Berkeley, Berkeley, CA, USA
fYear :
2014
fDate :
10-12 Dec. 2014
Firstpage :
357
Lastpage :
362
Abstract :
We present a memory scalable image localization system that uses distributed kd-trees created on overlapping geographic cells using a database of 10 million Google Street View images for an area of approximately 10,000 square kilometers in Taiwan. Given a collection of images over a region of interest (ROI), we generate a database by dynamically creating geographic cells that are optimized so that each cell contains roughly the same number of images. We then create kd-trees for each cell from SIFT features extracted from the images in that cell. When querying the system, we run traditional feature matching on each cell and pool the results for each cell to rerank with a geometric constraint. The key idea is the subdivisions of the ROI into overlapping geographic cells, allowing our system to scale to 10 million images and to efficiently utilize prior query location information when available. We evaluate our system on a test set of 29 geo-tagged images, not from Google Street View, taken throughout Taiwan with various resolutions, aspect ratios, and qualities. We also evaluate our system on a set of 97 images without geo-tag data.
Keywords :
feature extraction; image matching; image resolution; transforms; Google Street View image resolution; SIFT feature extraction; Taiwan; distributed kd-trees; feature matching; geographic cell overlapping; image resolution; large area cell based image localization; memory scalable image localization system; Feature extraction; Google; Image databases; Random access memory; Roads; Visualization; image matching; image retrieval; visual landmark recognition; image localization;;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Multimedia (ISM), 2014 IEEE International Symposium on
Conference_Location :
Taichung
Print_ISBN :
978-1-4799-4312-8
Type :
conf
DOI :
10.1109/ISM.2014.79
Filename :
7033051
Link To Document :
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