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Linear Regression and Gradient Descent Method for Electricity Output Power Prediction

机译:线性回归和梯度下降法预测电力输出功率

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摘要

Regulating the power output for a power plant as demand for electricity fluctuates throughout the day is important for both economic purpose and the safety of the generator. In this work, gradient descent method together with regularization is investigated to study the electricity output related to vacuum level and temperature in the turbine. Ninety percent of the data was used to train the regression parameters while the remaining ten percent was used for validation. Final results showed that 99% accuracy could be obtained with this method. This opens a new window for electricity output prediction for power plants.
机译:随着电力需求全天波动,调节发电厂的功率输出对于经济目的和发电机安全都是重要的。在这项工作中,研究了梯度下降法和正则化方法,以研究与涡轮中的真空度和温度有关的电力输出。百分之九十的数据用于训练回归参数,其余百分之十用于验证。最终结果表明,使用该方法可获得99%的准确度。这为发电厂的电力输出预测打开了一个新窗口。

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