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A Unified Statistical and Information Theoretic Framework for Multi-modal Image Registration

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dc.creator Zollei, Lilla
dc.creator Fisher, John
dc.creator Wells, William
dc.date 2004-10-08T20:43:13Z
dc.date 2004-10-08T20:43:13Z
dc.date 2004-04-28
dc.date.accessioned 2013-10-09T02:46:42Z
dc.date.available 2013-10-09T02:46:42Z
dc.date.issued 2013-10-09
dc.identifier AIM-2004-011
dc.identifier http://hdl.handle.net/1721.1/6738
dc.identifier.uri http://koha.mediu.edu.my:8181/xmlui/handle/1721
dc.description We formulate and interpret several multi-modal registration methods in the context of a unified statistical and information theoretic framework. A unified interpretation clarifies the implicit assumptions of each method yielding a better understanding of their relative strengths and weaknesses. Additionally, we discuss a generative statistical model from which we derive a novel analysis tool, the "auto-information function", as a means of assessing and exploiting the common spatial dependencies inherent in multi-modal imagery. We analytically derive useful properties of the "auto-information" as well as verify them empirically on multi-modal imagery. Among the useful aspects of the "auto-information function" is that it can be computed from imaging modalities independently and it allows one to decompose the search space of registration problems.
dc.format 21 p.
dc.format 2760680 bytes
dc.format 531001 bytes
dc.format application/postscript
dc.format application/pdf
dc.language en_US
dc.relation AIM-2004-011
dc.subject AI
dc.subject registration
dc.subject information theory
dc.subject unified framework
dc.title A Unified Statistical and Information Theoretic Framework for Multi-modal Image Registration


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