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Neurally Inspired Object Tracking System

机译:神经启发的对象跟踪系统

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Object tracking is useful in applications like computer-aided medical diagnosis, video editing, visual surveillance etc. Commonly used approaches usually involve the use of filter (e.g. Kalman filter) to predict the location of the object in next image frame. Such approaches actually borrow ideas from signal theory and are limited to applications where dynamic model is known. In this paper, a flexible and reliable estimation algorithm using wavelet network (or wavenet) is proposed to build an object tracking system. This system simulates the perception of motion that occurs in primates. Neural-based filters will be used for color, shape and motion analysis. Experimental results show that object can be tracked accurately without fixing any dynamic model compare with commonly used Kalman filter.
机译:对象跟踪在计算机辅助医学诊断,视频编辑,视觉监控等应用中有用。常用的方法通常涉及使用过滤器(例如卡尔曼滤波器)来预测下一个图像帧中对象的位置。这种方法实际上借用信号理论借用思想,并且仅限于已知动态模型的应用。在本文中,提出了一种使用小波网络(或波老节)的灵活可靠的估计算法来构建对象跟踪系统。该系统模拟了灵长类动物中发生的运动的感知。神经基过滤器将用于颜色,形状和运动分析。实验结果表明,可以准确地跟踪对象,而无需固定与常用的卡尔曼滤波器相比的任何动态模型。

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