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Image Sequences Filtering Using a New Fuzzy Algorithm Based On Triangular Membership Function

Mahmoud Saeidi, Leila Chehreghani Anzabi, Mahmoud Khaleghi

보안공학연구지원센터(IJSIP) International Journal of Signal Processing, Image Processing and Pattern Recognition vol.2 no.2 2009.06 pp.75-90

※ 원문제공기관과의 협약기간이 종료되어 열람이 제한될 수 있습니다.

image sequences. Our proposed algorithm uses adaptive weights based on a triangular membership function: Symmetrical, Continuous Function. In this algorithm median filter is used to suppress noise. Experimental results show when the images are corrupted by highdensity Salt and Pepper noise, our fuzzy based algorithm for noise filtering of image sequences, is much more effective in suppressing noise and preserving edges than the previously reported algorithms such as [1-13]. Indeed, assigned weights to noisy pixels are very adaptive so that it well makes use of correlation of pixels. On the other hand, the motion estimation methods are erroneous and in high-density noise they may degrade the filter performance. Therefore, our proposed fuzzy algorithm doesn’t need any estimation of motion trajectory. The proposed algorithm admissibly removes noise without having any knowledge of Salt and Pepper noise density.

2

Filtering of spatially invariant image sequences with one desired process

Oh, Youngin

[Kisti 연계] 제어로봇시스템학회 제어로봇시스템학회 학술대회논문집 1992 pp.520-525

※ 협약을 통해 무료로 제공되는 자료로, 원문이용 방식은 연계기관의 정책을 따르고 있습니다.

원문보기

This paper reports several mathematical properties of the filter vector developed for processing linearly-additive spatially-invariant image sequences. In this filtering of an image sequence into a single filtered image, the information about the image components originally distributed over the entire sequence is compressed into the one new image in a way that the desired component is enhanced and the undesired (interfering) components and noise are suppressed.

 
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