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首页> 外文期刊>IEEE Transactions on Pattern Analysis and Machine Intelligence >Learning texture discrimination rules in a multiresolution system
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Learning texture discrimination rules in a multiresolution system

机译:在多分辨率系统中学习纹理识别规则

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摘要

We describe a texture analysis system in which informative discrimination rules are learned from a multiresolution representation of time textured input. The system incorporates unsupervised and supervised learning via statistical machine learning and rule-based neural networks, respectively. The textured input is represented in the frequency-orientation space via a log-Gabor pyramidal decomposition. In the unsupervised learning stage a statistical clustering scheme is used for the quantization of the feature-vector attributes. A supervised stage follows in which labeling of the textured map is achieved using a rule-based network. Simulation results for the texture classification task are given. An application of the system to real-world problems is demonstrated.
机译:我们描述了一种纹理分析系统,其中从时间纹理输入的多分辨率表示中学习了信息判别规则。该系统分别通过统计机器学习和基于规则的神经网络结合了无监督和监督学习。纹理化输入通过对数Gabor金字塔分解在频率方向空间中表示。在无监督学习阶段,统计聚类方案用于特征向量属性的量化。接下来是有监督的阶段,其中使用基于规则的网络来实现纹理图的标记。给出了纹理分类任务的仿真结果。演示了该系统在实际问题中的应用。

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