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Filtering of map images by context tree modeling Pavel Kopylov and Pasi Fränti UNIVERSITY OF JOENSUU DEPARTMENT OF COMPUTER SCIENCE FINLAND.

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Presentation on theme: "Filtering of map images by context tree modeling Pavel Kopylov and Pasi Fränti UNIVERSITY OF JOENSUU DEPARTMENT OF COMPUTER SCIENCE FINLAND."— Presentation transcript:

1 Filtering of map images by context tree modeling Pavel Kopylov and Pasi Fränti UNIVERSITY OF JOENSUU DEPARTMENT OF COMPUTER SCIENCE FINLAND

2 Noisy map images Original image (4 colors) Distorted image (1931 colors) Noise can originate from scanning, changing resolution, lossy JPEG compression.

3 Context-based filter Estimate pixel probability relatively to context Neighborhood configuration defined by a local template

4 Sample statistics (part 1)

5 Sample statistics (part 2)

6 Example

7 Context tree

8 Context tree construction

9 Test material

10 Experiments Apply impulsive or content-dependent noise to the original image. Apply filtering. Compare performance: Euclidean distance between two color samples in uniform L*a*b* (CIELAB) space

11 Impulsive noise

12 Content-dependent noise

13 Impulsive noise OriginalNoisy Context treeVector Median

14 Content-dependent noise OriginalNoisy Context treeVector Median

15 Example OriginalVector MedianContext tree

16 Impulsive noise OriginalVector MedianContext tree

17 Content-dependent noise OriginalVector MedianContext tree

18 Conclusions Capable of utilizing larger neighborhood than fixed-size template. The method outperforms vector median filter when noise level <25%. Tree construction requires extensive amount of memory; future work is needed to optimize this part.


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