TEMP: Cost-Aware Two-Stage Energy Management for Electrical Vehicles Empowered by Blockchain

被引:0
作者
Cai, Ting [1 ,2 ]
Li, Xiang [1 ]
Wang, Yifei [1 ]
Zhang, You [1 ]
Ye, Zhiwei [1 ]
He, Qiyi [1 ]
Li, Xiaoli [3 ]
Zhang, Yuquan [4 ]
Hung, Patrick C. K. [5 ]
机构
[1] Hubei Univ Technol, Sch Comp Sci, Wuhan 430068, Peoples R China
[2] Hubei Univ, Key Lab Intelligent Sensing Syst & Secur, Minist Educ, Wuhan 430062, Peoples R China
[3] Hubei Univ Arts & Sci, Comp Sch, Xiangyang 441053, Peoples R China
[4] Wuhan Fiberhome Tech Serv Co Ltd, Dept Technol, Wuhan 430205, Peoples R China
[5] Ontario Tech Univ, Fac Business & Informat Technol, Oshawa, ON L1G 0C5, Canada
来源
IEEE INTERNET OF THINGS JOURNAL | 2024年 / 11卷 / 23期
关键词
Costs; Energy management; Vehicle-to-grid; Optimal scheduling; Blockchains; Security; Charging stations; Ant colony optimization (ACO); blockchain; electric vehicles (EVs); energy management; proximal policy optimization (PPO); OPTIMIZATION; INTERNET; THINGS;
D O I
10.1109/JIOT.2024.3445601
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
Developing effective platforms for economic energy management is considered a pivotal issue in the field of electric vehicles (EVs). To implement a cost-effective energy management platform (EMP), developers must overcome two major challenges. The first challenge lies in the environmental dynamic nature, such as EV location, energy price fluctuations, storage levels, and parking availability at charging stations. This causes most traditional one-shot optimizations to fail. The second challenge pertains to the lack of regulation in EV energy exchanges. To address these challenges, we propose a cost-aware two-stage EMP based on blockchain and deep reinforcement learning (DRL), namely, TEMP. Specifically, TEMP first develops a sharding-based blockchain energy management framework, which guarantees trust, security, privacy, traceability, and accountability without the need for intermediaries. Then, considering the complex and high-dimensional environment, TEMP devises a two-stage cooperative scheduling scheme by combining ant colony optimization (ACO) with proximal policy optimization (PPO) to enhance learning effectiveness. Evaluations show that TEMP outperforms the two state-of-the-art baselines by 12.3% and 4.4% in terms of long-term profits while reducing costs by 6.7% and 2.8%, respectively. Moreover, energy transaction efficiency can be ensured when the EV number of blockchain networks is gradually increased.
引用
收藏
页码:38246 / 38261
页数:16
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