Forecasting and Simulation for Electrical Power System and Load Distribution in Taif – Saudi Arabia

O. Taylan, Zayed A. Alharthi
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Abstract

Monitoring electrical power system and clarifying the way of electricity flow is a difficult task, that might cause electricity cuts because of the increasing loads of grids. In recent years, the observations showed that electric loads in Taif city have increased significantly due to the population growth and large urbanization. These causes require a good monitoring and analyzing system intensively to maintain continuity and reliability of electrical service. Machine learning and dynamic programming approaches will be employed for forecasting the distribution of power load and optimization of Electrical Power System in Taif City to avoid the unexpected problems in electrical network before they have occurred. The other goal is to facilitate monitoring of the electrical power system in Taif city and clarify the electricity flow from Makkah to Taif and then to other neighboring districts. The results and findings of the study will be evaluated using the methods of error calculation and ranking and presented in detail.
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台湾-沙乌地阿拉伯电力系统及负荷分布预测与仿真
对电力系统进行监测,明确电力流向是一项艰巨的任务,由于电网负荷的不断增加,可能会导致停电。近年来的观察表明,由于人口增长和大规模城市化,塔伊夫市的电力负荷显著增加。这些原因需要一个良好的监测和分析系统,以保持电力服务的连续性和可靠性。将采用机器学习和动态规划方法对泰阜市电力负荷分布进行预测,优化电力系统,避免电网出现意外问题。另一个目标是促进对塔伊夫市电力系统的监测,并澄清从麦加到塔伊夫再到其他邻近地区的电力流动情况。本研究的结果和发现将采用误差计算和排名的方法进行评估,并详细介绍。
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