Combinatorial Geometry for Shape Representation and Indexing

نویسنده

  • Stefan Carlsson
چکیده

Combinatorial geometry is the study of order and incidence properties of groups of geometric features. Ordering properties for point sets in 2-D and 3-D can be seen as a generalization of ordering properties in 1-D and incidences are conngurations of features that are non-generic such as collinearity of points. By deening qualitative shape properties using combinatorial geometry we get a common framework for metric and qualitative representations. Order and incidence form a natural hierarchy together with metric representations in terms of increasing abstraction Metric ==> Order ==> Incidence The problem of recognition can be structured in a similar hierarchy ranging from the recognition of speciic objects from speciic viewpoints ,using calibrated cameras to that of calibration free, view independent recognition of generic objects. Order and incidence relations have invariance properties that make them especially interesting for general recognition problems. We present an algorithm for 3-D object hypothesis generation from single images. The combinatorial properties of triplets of line segments are used to deene an index to a model library. This library consists of line segment triplets for object model views. Every indexing of a model triplet by an image triplet is accumulated into a matching matrix between image and model line segments. From this matrix we can evaluate the strength of an hypothesis that a speciic object is present. Visual object recognition in its most general form is the problem of deciding the presence in the scene of an object of a certain class using information from a single or multiple images. By using geometric shape as a descriptor in 2-D and 3-D, recognition can be made independent of illumination to a large degree. This is not the only cause of variation of the appearance of an object however. The main problem of shape based recognition is due to the fact that an object of a certain class can project to diierent image shapes mainly due to: { class variation { view variation { camera parameter variation ?

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تاریخ انتشار 1996