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Intelligent Cost Modeling Based on Soft Computing for Avionics Systems

Intelligent Cost Modeling Based on Soft Computing for Avionics Systems
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摘要 In parametric cost estimating, objections to using statistical Cost Estimating Relationships (CERs) and parametric models include problems of low statistical significance due to limited data points, biases in the underlying data, and lack of robustness. Soft Computing (SC) technologies are used for building intelligent cost models. The SC models are systemically evaluated based on their training and prediction of the historical cost data of airborne avionics systems. Results indicating the strengths and weakness of each model are presented. In general, the intelligent cost models have higher prediction precision, better data adaptability, and stronger self-learning capability than the regression CERs. In parametric cost estimating, objections to using statistical Cost Estimating Relationships (CERs) and parametric models include problems of low statistical significance due to limited data points, biases in the underlying data, and lack of robustness. Soft Computing (SC) technologies are used for building intelligent cost models. The SC models are systemically evaluated based on their training and prediction of the historical cost data of airborne avionics systems. Results indicating the strengths and weakness of each model are presented. In general, the intelligent cost models have higher prediction precision, better data adaptability, and stronger self-learning capability than the regression CERs.
出处 《Journal of Electronic Science and Technology of China》 2006年第2期136-143,共8页 中国电子科技(英文版)
关键词 avionics system Soft Computing (SC) parametric cost estimation intelligent model avionics system Soft Computing (SC) parametric cost estimation intelligent model
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