An investigation of the relationship between accuracy of customer baseline calculation and efficiency of Peak Time Rebate program

Saeed Mohajeryami, M. Doostan, Ailin Asadinejad
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引用次数: 17

Abstract

In this paper, the relationship between accuracy of Customer Baseline (CBL) calculation and efficiency of Peak Time Rebate (PTR) program for residential customers is investigated. To perform the analysis, well-established CBL calculation methods, HighXofY(NYISO), LowXofY, MidXofY, exponential moving average(ISONE) and regression are first introduced and then utilized to calculate the CBL. A dataset consisting of 262 residential customers is used for this analysis. In addition, the error analysis is performed using accuracy and bias metrics. Furthermore, to reach a valid conclusion about overall performance of CBL methods, an economic analysis of a PTR program is carried out. According to the results, in the case study, utility pays at least half of its revenue as a rebate merely due to the inaccuracy of CBL methods. In addition, it is shown that PTR causes a lot of inefficiencies in the residential sector because of the failure of CBL calculation methods to predict the customers load profile on event day.
客户基线计算精度与高峰时段返利效率关系的研究
本文研究了住宅用户用电高峰返利(PTR)计划效率与客户基线(CBL)计算精度之间的关系。为了进行分析,首先引入了成熟的CBL计算方法,即HighXofY(NYISO)、LowXofY、MidXofY、指数移动平均(ISONE)和回归,然后利用这些方法计算CBL。该分析使用了由262个住宅客户组成的数据集。此外,使用精度和偏差度量执行误差分析。此外,为了得出关于CBL方法总体性能的有效结论,对PTR计划进行了经济分析。根据结果,在案例研究中,由于CBL方法的不准确性,公用事业公司支付了至少一半的收入作为回扣。此外,由于CBL计算方法无法预测事件日客户负荷分布,PTR在住宅部门造成了许多低效率问题。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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