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Construction Project Cost Estimation Based on Improved BP Neural Network

机译:基于改进BP神经网络的建设项目成本估算

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To determine investment and cost estimation scientifically and simplify the investment estimating preparation, an improved BP neural network estimation model with GA optimization is proposed, based on the learning process of standard BP neural network. Our scheme set initial weight and whitening positioning coefficient as genetic population. The coefficients are optimized according to the principle of GA optimization, to acquire optimized engineering cost estimation model. The training samples in the same group are used for training, to compare the computing results, error curve and training performance. The results verifies the reliability of improved BP neural network. The simulation based on practical case also indicates that optimized network model can realize rapid and accurate engineering estimation.
机译:为了科学地确定投资和成本估算,简化投资估算准备,基于标准BP神经网络的学习过程,提出了一种改进的BP神经网络估算模型,其具有GA优化。我们的方案将初始重量和白化定位系数设置为遗传群。根据GA优化的原理优化系数,以获取优化的工程成本估算模型。同一组中的培训样本用于培训,比较计算结果,错误曲线和培训性能。结果验证了改进的BP神经网络的可靠性。基于实际情况的仿真还指示优化的网络模型可以实现快速准确的工程估计。

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