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首页> 外文期刊>International Journal of Monitoring and Surveillance Technologies Research >Fuzzy Integration of Support Vector Regression Models for Anticipatory Control of Complex Energy Systems
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Fuzzy Integration of Support Vector Regression Models for Anticipatory Control of Complex Energy Systems

机译:复杂能源系统预测控制的支持向量回归模型的模糊积分

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Anticipatory control systems are a class of systems whose decisions are based on predictions for the future state of the system under monitoring. Anticipation denotes intelligence and is an inherent property of humans that make decisions by projecting in future. Likewise, intelligent systems equipped with predictive functions may be utilized for anticipating future states of complex systems, and therefore facilitate automated control decisions. Anticipatory control of complex energy systems is paramount to their normal and safe operation. In this paper a new intelligent methodology integrating fuzzy inference with support vector regression is introduced. The proposed methodology implements an anticipatory system aiming at controlling energy systems in a robust way. Initially, a set of support vector regressors is adopted for making predictions over critical system parameters. The predicted values are used as input to a two-stage fuzzy inference system that makes decisions regarding the state of the energy system. The inference system integrates the individual predictions at its first stage, and outputs a decision together with a certainty factor computed at its second stage. The certainty factor is an index of the significance of the decision. The proposed anticipatory control system is tested on a real-world set of data obtained from a complex energy system, describing the degradation of a turbine. Results exhibit the robustness of the proposed system in controlling complex energy systems.
机译:预期控制系统是一类系统,其决策基于对受监视系统的未来状态的预测。期望表示智慧,是人类通过未来的投影做出决策的固有属性。同样,配备有预测功能的智能系统可用于预测复杂系统的未来状态,因此有助于自动控制决策。复杂能源系统的预期控制对其正常和安全运行至关重要。本文介绍了一种新的将模糊推理与支持向量回归相结合的智能方法。所提出的方法实现了一种旨在以鲁棒的方式控制能源系统的预期系统。最初,采用一组支持向量回归器对关键系统参数进行预测。预测值用作两级模糊推理系统的输入,该系统可做出有关能源系统状态的决策。推理系统在其第一阶段集成各个预测,然后将决策以及在其第二阶段计算出的确定性因子一起输出。确定性因素是决策重要性的指标。在从复杂能源系统获得的描述涡轮机退化的真实数据集上测试了所提议的预期控制系统。结果显示了该系统在控制复杂能源系统中的鲁棒性。

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