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Principle of least action in dynamically configured image analysis systems

机译:动态配置图像分析系统中最小操作原理

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We propose and justify the development of neural network architectures for training image analysis systems with a dynamically configurable calculation structure. The proposed systems, trained in accordance with the principle of least action, are useful for increasing the processing speed of large amounts of data and can help overcome other shortcomings of deep architectures. The problem of image classification is considered in detail, the solution of which reduces to training a network agent that operates in an environment of classifiers and indirectly perceives images through them. The proposed approach can be used to create algorithms in systems for automatic image analysis, where the critical characteristic is the average processing time of one frame, for example, in systems for image indexing based on their content. (C) 2020 Optical Society of America
机译:我们提出了一种用动态可配置的计算结构训练图像分析系统的神经网络架构的开发。 拟议的系统根据最小行动原理训练,可用于提高大量数据的处理速度,并有助于克服深层架构的其他缺点。 详细考虑了图像分类的问题,其解决方案减少以训练在分类器环境中运行的网络代理,并间接地通过它们感知图像。 所提出的方法可用于在系统中创建用于自动图像分析的系统中的算法,其中临界特性是一个帧的平均处理时间,例如,基于其内容的图像索引系统。 (c)2020美国光学学会

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