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国家CIMS工程技术中心的仿真支撑环境 被引量:1
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作者 肖田元 熊光楞 苟剑波 《高技术通讯》 CAS CSCD 1994年第5期6-11,共6页
介绍了国家CIMS工程技术中心(CIMSERC)业已完成的仿真支撑环境。它由三部分组成,即用于CIMS横向集成及支持生产计划与控制的一体化制造仿真软件IMSS,用于CIMS纵向集成的递阶控制仿真器AHCSE,及支持C... 介绍了国家CIMS工程技术中心(CIMSERC)业已完成的仿真支撑环境。它由三部分组成,即用于CIMS横向集成及支持生产计划与控制的一体化制造仿真软件IMSS,用于CIMS纵向集成的递阶控制仿真器AHCSE,及支持CAD/CAPP/CAM与加工过程集成的加工过程仿真器MPS。从功能、关键技术及性能评价三方面分别对各部分进行了介绍。 展开更多
关键词 仿真支撑环境 计算机 CIMS
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Evaluation of the k-nearest neighbor method for forecasting the influent characteristics of wastewater treatment plant 被引量:4
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作者 Minsoo KIM Yejin KIM +2 位作者 Hyosoo KIM Wenhua PIAO Changwon KIM 《Frontiers of Environmental Science & Engineering》 SCIE EI CAS CSCD 2016年第2期299-310,共12页
The k-nearest neighbor (k-NN) method was evaluated to predict the influent flow rate and four water qualities, namely chemical oxygen demand (COD), suspended solid (SS), total nitrogen (T-N) and total phosphor... The k-nearest neighbor (k-NN) method was evaluated to predict the influent flow rate and four water qualities, namely chemical oxygen demand (COD), suspended solid (SS), total nitrogen (T-N) and total phosphorus (T-P) at a wastewater treatment plant (WWTP). The search range and approach for determining the number of nearest neighbors (NNs) under dry and wet weather conditions were initially optimized based on the root mean square error (RMSE). The optimum search range for considering data size was one year. The square root-based (SR) approach was superior to the distance factor-based (DF) approach in determining the appropriate number of NNs. However, the results for both approaches varied slightly depending on the water quality and the weather conditions. The influent flow rate was accurately predicted within one standard deviation of measured values. Influent water qualities were well predicted with the mean absolute percentage error (MAPE) under both wet and dry weather conditions. For the seven-day prediction, the difference in predictive accuracy was less than 5% in dry weather conditions and slightly worse in wet weather conditions. Overall, the k-NN method was verified to be useful for predicting WWTP influent characteristics. 展开更多
关键词 influent wastewater prediction data-drivenmodel k-nearest neighbor method (k-NN)
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