首页> 外文会议>Conference on image processing: Algorithms and systems VII; 20090119-20, 22; San Jose, CA(US) >Principle and design of a dynamic neural network for efficient and accurate recognition of a time-varying object based on its static patterns and its dynamic pattern-variations
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Principle and design of a dynamic neural network for efficient and accurate recognition of a time-varying object based on its static patterns and its dynamic pattern-variations

机译:动态神经网络的原理和设计,用于基于时态对象的静态模式和动态模式变化来高效,准确地识别

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Based on our research in the last 17 years (with 68 papers published) on the subject of artificial neural network studied from the point of view of N-dimension geometry, a novel neural network system, the dynamic neural network, is proposed here for detecting an unknown moving (or time-varying) object such that the object will not only be detected by its static images, but also by the way it moves if this object follows a constant moving pattern. The system is designed to identify the unknown object by comparing a few time-separated snapshots of the object to a few standard moving objects learned or memorized in the system. The identification is determined by a user entered accuracy control. It could be very accurate, yet still be quite robust and quite fast in identification (e.g., identification in real-time) because of the simplicity of the algorithm. It is different from most other neural network systems because it employs the ND geometrical concept.
机译:基于我们从N维几何学角度对人工神经网络进行的近17年研究(已发表68篇论文),在此提出了一种新的神经网络系统,即动态神经网络,用于检测未知的移动(或随时间变化)的对象,这样,如果该对象遵循恒定的移动模式,则不仅可以通过其静态图像检测到该对象,还可以通过该对象的移动方式来检测该对象。该系统旨在通过将对象的一些按时间分隔的快照与系统中学习或存储的一些标准移动对象进行比较,来识别未知对象。标识由用户输入的精度控件确定。由于该算法的简单性,它可​​能非常准确,但是仍然很健壮并且在识别(例如,实时识别)中非常快。它与大多数其他神经网络系统不同,因为它采用了ND几何概念。

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