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智能油漆配色系统的改进BP算法
A Modified Back Propagation Algorithm for the Paint-color Matching System
【摘要】 BP算法具有数学意义明确、学习规则简单等优点,是前向多次神经网络的典型学习算法。但是,BP算法在学习过程中容易陷入局部最小问题。针对这一问题,提出一种修正Sigmoid函数的改进BP算法。实验证明,改进BP算法可以有效克服局部最小,显著提高收敛速度。
【Abstract】 The back propagation(BP)algorithm,which has advantages of clear mathematic significance and simple learn-ing rule,is a typical algorithm for multi-layer feedforward neural networks.However,during the learning phase,BP algo-rithm could have problem of convergence to local minima in the paint-color matching system.In this paper,a modified algorithm is presented.The main idea is to add a process of correcting sigmoid function,which ensures the new BP al-gorithm escape from local minima.Experimental results demonstrate improvements in term of escaping local minima and convergent speed.
【Key words】 back propagation algorithm; sigmoid function; local minima; convergent speed;
- 【文献出处】 计算机工程与应用 ,Computer Engineering and Applications , 编辑部邮箱 ,2003年26期
- 【分类号】TP18
- 【被引频次】19
- 【下载频次】138