Renewable Energy Location in Disruption Situation by MCDM Method and Machine Learning

سال انتشار: 1402
نوع سند: مقاله ژورنالی
زبان: انگلیسی
مشاهده: 38

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شناسه ملی سند علمی:

JR_BGS-5-4_007

تاریخ نمایه سازی: 16 بهمن 1402

چکیده مقاله:

In times of disruption and uncertainties, identifying suitable locations for renewable energy projects becomes crucial. This paper explores the use of Multi-Criteria Decision-Making (MCDM) methods to determine optimal locations for renewable energy installations. The study aims to address challenges faced during disruption situations and provide insights into decision-making processes for renewable energy investments. A comprehensive review of the literature is conducted, followed by the application of MCDM techniques to evaluate potential locations. Numerical results demonstrate the effectiveness of the proposed approach, highlighting the importance of considering multiple criteria when making decisions related to renewable energy projects. The findings have implications for policymakers, investors, and stakeholders involved in the renewable energy sector.In times of disruption and uncertainties, identifying suitable locations for renewable energy projects becomes crucial. This paper explores the use of Multi-Criteria Decision-Making (MCDM) methods to determine optimal locations for renewable energy installations. The study aims to address challenges faced during disruption situations and provide insights into decision-making processes for renewable energy investments. A comprehensive review of the literature is conducted, followed by the application of MCDM techniques to evaluate potential locations. Numerical results demonstrate the effectiveness of the proposed approach, highlighting the importance of considering multiple criteria when making decisions related to renewable energy projects. The findings have implications for policymakers, investors, and stakeholders involved in the renewable energy sector.

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نویسندگان

Seyedkian Rezvanjou

Department of Engineering, California State University East Bay, Hayward, California, ۹۴۵۴۲

Mahyar Amini

Department of Industrial Engineering, Islamic Azad University, Tehran, Iran

Mohammad Bigham

Department of Civil Engineering, University of Houston, Houston, Texas, USA