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OBJECT RECOGNIZER AND DETECTOR FOR TWO-DIMENSIONAL IMAGES USING BAYESIAN NETWORK BASED CLASSIFIER
OBJECT RECOGNIZER AND DETECTOR FOR TWO-DIMENSIONAL IMAGES USING BAYESIAN NETWORK BASED CLASSIFIER
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机译:基于贝叶斯网络分类器的二维图像对象识别器和检测器
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摘要
System and method for determining a classifier to discriminate between two classes—object or non-object. The classifier may be used by an object detection program to detect presence of a 3D object in a 2D image. The overall classifier is constructed of a sequence of classifiers, where each such classifier is based on a ratio of two graphical probability models. A discreet-valued variable representation at each node in a Bayesian network by a two-stage process of tree-structured vector quantization is discussed. The overall classifier may be part of an object detector program that is trained to automatically detect different types of 3D objects. Computationally efficient statistical methods to evaluate overall classifiers are disclosed. The Bayesian network-based classifier may also be used to determine if two observations belong to the same category.
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