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Complex Feature Recognition: A Bayesian Approach for Learning to Recognize Objects

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dc.creator Viola, Paul
dc.date 2004-10-04T14:15:44Z
dc.date 2004-10-04T14:15:44Z
dc.date 1996-11-01
dc.date.accessioned 2013-10-09T02:42:03Z
dc.date.available 2013-10-09T02:42:03Z
dc.date.issued 2013-10-09
dc.identifier AIM-1591
dc.identifier http://hdl.handle.net/1721.1/5940
dc.identifier.uri http://koha.mediu.edu.my:8181/xmlui/handle/1721
dc.description We have developed a new Bayesian framework for visual object recognition which is based on the insight that images of objects can be modeled as a conjunction of local features. This framework can be used to both derive an object recognition algorithm and an algorithm for learning the features themselves. The overall approach, called complex feature recognition or CFR, is unique for several reasons: it is broadly applicable to a wide range of object types, it makes constructing object models easy, it is capable of identifying either the class or the identity of an object, and it is computationally efficient--requiring time proportional to the size of the image. Instead of a single simple feature such as an edge, CFR uses a large set of complex features that are learned from experience with model objects. The response of a single complex feature contains much more class information than does a single edge. This significantly reduces the number of possible correspondences between the model and the image. In addition, CFR takes advantage of a type of image processing called 'oriented energy'. Oriented energy is used to efficiently pre-process the image to eliminate some of the difficulties associated with changes in lighting and pose.
dc.format 29 p.
dc.format 1626255 bytes
dc.format 694971 bytes
dc.format application/postscript
dc.format application/pdf
dc.language en_US
dc.relation AIM-1591
dc.subject AI
dc.subject MIT
dc.subject Artificial Intelligence
dc.subject statistical inference
dc.subject bayesian
dc.subject vision
dc.subject recognition
dc.title Complex Feature Recognition: A Bayesian Approach for Learning to Recognize Objects


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