Convergence Performance of Information Theoretic Similarity Measures for Robust Matching
Abstract: Image matching is an area of significant use in the medical field, as there is a need to match images captured with different modalities, to overcome the limitation that can occur when dealing with individual modalities. However, performing matching of multimodal images may not be a trivial task. Multimodality entails changes in brightness and contrast that might be an obstacle when performing a match using similarity measures. This study investigated the convergence performance of information-theoretic similarity measures. The similarity measures analysed in this study are mutual information (MI), the cross-cumulative residual entropy (CCRE), and the sum of conditional variances (SCV). To analyse the convergence performance of these measures, an experiment was conducted on one data set introducing the concept of multimodality, and two single images displaying a significant variation in texture. This was to investigate the impact of multimodality and variations in texture on the convergence performance of similarity measures. The experiment investigated the ability for similarity measures to find convergence on MRI and CT medical images after a displacement has occurred. The results of the experiment showed that the convergence performance of similarity measures varies depending on the texture on images. MI is best suitable in the context of high-textured images while CCRE is more applicable in low-textured images. The measure SCV is the most stable similarity measure as it is little affected by the variation in texture. The experiment also reveals that the convergence performance of the similarity measures identified in the case of unimodality, can be preserved in the context of multimodality. This study gives better awareness of the convergence performance of similarity measures. This could improve the use of similarity measures in the medical field which could yield better diagnosis of patients’ conditions.
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