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논문 리스트

2009
Wavelet Pair Noise Removal for Increasing the Classification Accuracy of a Remotely Sensed Image Wavelet Pair Noise Removal for Increasing the Classification Accuracy of a Remotely Sensed Image
대한원격탐사학회
진홍성, 최일수, 한동엽
논문정보
Publisher
대한원격탐사학회지
Issue Date
2009-06-30
Keywords
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Citation
-
Source
-
Journal Title
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Volume
25
Number
3
Start Page
215
End Page
223
DOI
ISSN
12256161
Abstract
The noise removal as a preprocessing was tried with various kinds of wavelet pairs. Wavelet transform for 2D images generally uses the same wavelets as basis functions in horizontal and vertical directions. A method with different wavelets was tried for each direction separately, which gives more precise interpretation of the classification. Total 486 pairs of wavelets from nine basis functions were tried to remove image noises. The classification accuracies before and after the noise removal were compared. Although all kinds of wavelet pairs showed the increased accuracies in classification, there were best and worst wavelet pairs depending on the data sets. Wavelet pairs with low energy percentage of LL band showed the high classification accuracy. A pattern was found in the results that very similar vertical accuracy was distributed for each horizontal ones. Since Haar is the shortest length filter, Haar could be a predictor wavelet to find the good wavelet pairs.

저자 정보

이름 소속
진홍성 수학과
최일수 빅데이터융합학과
한동엽 토목공학과