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Complex discriminant features for object classification

机译:对象分类的复杂判别特征

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A new algorithm for the design of complex features, to be used in the discriminant saliency approach to object classification, is presented. The algorithm consists of sequential rotations of an initial basis of simple features, so as to maximize the discriminant power of the feature set for image classification. Discrimination is measured in an information theoretic sense. The proposed algorithm has lower complexity than popular techniques for learning parts, and is evaluated on classification tasks from the PASCAL challenge. It is shown that complex features consistently outperform simple features.
机译:介绍了一种新的复杂特征的算法,以用于对象分类的判别显着性方法。该算法由简单特征的初始基础的顺序旋转组成,以最大化用于图像分类的特征集的判别力。在信息理论意义上测量歧视。该算法的复杂性较低,而是用于学习零件的流行技术,并在帕斯卡挑战中评估了分类任务。结果表明,复杂的功能始终如一地优于简单的功能。

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