a no-reference image blur metric based on the cumulative probability of blur detection (cpbd)...

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A No-Reference Image Blur Metric Based on

theCumulative Probability

of Blur Detection (CPBD)

Niranjan D. Narvekar and Lina J. Karam, Senior Member, IEEE

Introdution

This paper deals with no-reference image quality assessment targeted towards blur distortions.

We propose an improved no-reference blur metric which utilizes the concept of just noticeable blur (JNB) together with a cumulative probability of blur detection.

Introdution

Proposed No-Reference Objective Blur Metric

= 1 – exp( - ) ………………..(1)

………………..(2)

= ……………….(3)

Proposed No-Reference Objective Blur Metric

Performance Results

Performance Results

LIVE TID2008

Test Sets IVC Toyama

consist of various Gaussian blurred and JPEG2000-compressed images

Performance Results

………………..(4)

PCC (Pearson correlation coefficient)SROCC (Spearman rank-order correlation)RMSE (root mean squared prediction error)MAE (mean absolute prediction error) OR (outlier ratio)

Performance Results

Performance Results

Performance Results

Conclusion

It is shown that the proposed metric exhibits consistently a good performance across blur types (Gaussian blur and JPEG2000 blur) and across databases as compared with existing sharpness/blur metrics.

Possible directions of research include extending the metric for assessing blur in videos and 3-D visual content .

Conclusion

Thanks for your attention !!!

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