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Pixel-level based micro-feature extraction

机译:基于像素级的微特征提取

摘要

Techniques are disclosed for extracting micro-features at a pixel-level based on characteristics of one or more images. Importantly, the extraction is unsupervised, i.e., performed independent of any training data that defines particular objects, allowing a behavior-recognition system to forgo a training phase and for object classification to proceed without being constrained by specific object definitions. A micro-feature extractor that does not require training data is adaptive and self-trains while performing the extraction. The extracted micro-features are represented as a micro-feature vector that may be input to a micro-classifier which groups objects into object type clusters based on the micro-feature vectors.
机译:公开了用于基于一个或多个图像的特征在像素水平上提取微特征的技术。重要的是,提取是不受监督的,即,与定义特定对象的任何训练数据无关地执行提取,从而允许行为识别系统放弃训练阶段,并继续进行对象分类而不受特定对象定义的限制。不需要训练数据的微特征提取器是自适应的,可以在执行提取时进行自我训练。所提取的微特征被表示为微特征向量,其可以被输入到微分类器,该微分类器基于微特征向量将对象分组为对象类型簇。

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