DocumentCode
1486177
Title
A change detection method for remotely sensed multispectral and multitemporal images using 3-D segmentation
Author
Yamamoto, Takahiro ; Hanaizumi, Hiroshi ; Chino, Shinji
Author_Institution
Div. of Eng., Hosei Univ., Tokyo, Japan
Volume
39
Issue
5
fYear
2001
fDate
5/1/2001 12:00:00 AM
Firstpage
976
Lastpage
985
Abstract
A new method is proposed fur detection of the temporal changes using three-dimensional (3D) segmentation. The method is a kind of clustering methods for temporal changes. In the method, multitemporal images form a image block in 3D space; x-y plane and time axis. The image block is first divided into spatially uniform sub-blocks by applying binary division process. The division rule is based on the statistical t-test using Mahalanobis distance between spatial coefficient vectors of a local regression model fitted to neighboring sub-blocks to be divided. The divided sub-blocks are then merged into clusters using a clustering technique. The block-based processing, like the spatial segmentation technique, is very effective in reduction of apparent changes due to noise. Temporal change is detected as a boundary perpendicular to the time axis in the segmentation result. The proposed method is successfully applied to actual multitemporal and multispectral LANDSAT/TM images
Keywords
geophysical signal processing; geophysical techniques; image segmentation; image sequences; multidimensional signal processing; terrain mapping; 3D segmentation; LANDSAT; Mahalanobis distance; TM; change detection; clustering; geophysical measurement technique; image segmentation; image sequence; land surface; local regression model; multispectral remote sensing; multitemporal image; optical imaging; spatial coefficient vector; temporal change; terrain mapping; three dimensional segmentation; Clustering methods; Image analysis; Image segmentation; Image sensors; Monitoring; Multispectral imaging; Noise reduction; Remote sensing; Satellites; Urban areas;
fLanguage
English
Journal_Title
Geoscience and Remote Sensing, IEEE Transactions on
Publisher
ieee
ISSN
0196-2892
Type
jour
DOI
10.1109/36.921415
Filename
921415
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