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A Method on Land Cover Classification by Combining Unsupervised Algorithm and Training Data
- Source :
- Geocarto International. 14:15-20
- Publication Year :
- 1999
- Publisher :
- Informa UK Limited, 1999.
-
Abstract
- In this paper, a method on land cover identifying by combining unsupervised algorithm and training data (CUT) was developed. The procedures of land cover classification by using the CUT method are: (a) to carry out remotely sensed image classification by using an unsupervised algorithm (e.g. ISODATA unsupervised classification) to make a land cover classification map, MAP1, with n classes, where n is much greater than the proposed number of land cover classes, m, in the study area; (b) to collect training data for each of the proposed m classes; (c) to make a mask by using training data sets and statistically compute MAP1; (d) to assign the class h in MAP1 to class c in the final classification map, MAP2, if and only if the number of pixels in class c is with the maximum ratio at the statistic. The CUT method was also used to produce a land cover classification map in a test area, Ansan City of Korea, with Thematic Mapper (TM) data acquired by Landsatā5. The accuracy analysis on the classificatio...
- Subjects :
- Pixel
Contextual image classification
business.industry
Carry (arithmetic)
Geography, Planning and Development
Pattern recognition
Land cover
computer.software_genre
Class (biology)
Multispectral pattern recognition
Geography
Thematic Mapper
Data mining
Artificial intelligence
business
computer
Statistic
Water Science and Technology
Subjects
Details
- ISSN :
- 17520762 and 10106049
- Volume :
- 14
- Database :
- OpenAIRE
- Journal :
- Geocarto International
- Accession number :
- edsair.doi...........2ab5f6a77bc3ac655adfe567cd1b1d73