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Hybrid System for Mobile Image Recognition through Convolutional Neural Networks and Discrete Graphical Models

机译:卷积神经网络和离散图形模型混合的移动图像识别系统

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A system is presented which combines deep neural networks with discrete inference techniques for the successful recognition of an image. Th'e system presented builds upon the classical sliding window method but applied in parallel over an entire input image. The result is discretized by treating each classified window as a node in a markov random field and applying a minimization of its associated energy levels. Two important benefits are observed with this system: a gain in performance by virtue of the system's parallel nature, and an improvement in the localization precision due to the inherent connectivity between classified windows.
机译:提出了一种将深层神经网络与离散推理技术相结合的系统,以成功识别图像。提出的系统基于经典的滑动窗口方法,但在整个输入图像上并行应用。通过将每个分类的窗口视为马尔可夫随机字段中的一个节点,并对其相关的能级进行最小化,从而离散化结果。使用该系统观察到两个重要的好处:由于系统的并行性而获得的性能提高,以及由于分类窗口之间固有的连通性而提高了定位精度。

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