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Associative memory based on ratio learning for real time skin color detection

机译:基于比率学习的联想记忆用于实时肤色检测

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A novel approach for skin color modeling using ratio rule learning algorithm is proposed in this paper. The learning algorithm is applied to a real time skin color detection application. The neural network learn, based on the degree of similarity between the relative magnitudes of the output of each neuron with respect to that of all other neurons. The activation/threshold function of the network is determined by the statistical characteristic of the input patterns. Theoretical analysis has shown that the network is able to learn and recall the trained patterns without much problem. It is shown mathematically that the network system is stable and converges in all circumstances for the trained patterns. The network utilizes the ratio-learning algorithm for modeling the characteristic of skin color in the RGB space as a linear attractor. The skin color will converge to a line of attraction. The new technique is applied to images captured by a surveillance camera and it is observed that the skin color model is capable of processing 420/spl times/315 resolution images of 24-bit color at 30 frames per second in a dual Xeon 2.2 GHz CPU workstation running Windows 2000.
机译:提出了一种新的基于比例规则学习算法的肤色建模方法。该学习算法被应用于实时肤色检测应用。神经网络基于每个神经元输出相对于所有其他神经元的相对幅度之间的相似程度来学习。网络的激活/阈值功能由输入模式的统计特性确定。理论分析表明,该网络能够学习和回忆训练出的模式而没有太大的问题。从数学上表明,对于训练的模式,网络系统是稳定的,并且在所有情况下都可以收敛。该网络利用比率学习算法将RGB空间中的肤色特征建模为线性吸引子。肤色会收敛成一条吸引线。这项新技术应用于监视摄像机捕获的图像,并且可以观察到肤色模型能够在双Xeon 2.2 GHz CPU中以每秒30帧的速度处理420 / spl次/ 315分辨率的24位彩色图像。运行Windows 2000的工作站。

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