Proceedings of the 2018 8th International Conference on Management, Education and Information (MEICI 2018)

Short Term Prediction of Electric Vehicle Charging Load Based on Optimized Genetic Algorithm

Authors
Tianyi Qu
Corresponding Author
Tianyi Qu
Available Online December 2018.
DOI
10.2991/meici-18.2018.123How to use a DOI?
Keywords
Electric vehicle; Load forecasting; Genetic algorithm; BP neural network
Abstract

With the continuous attention and promotion of electric vehicles, governments of electric vehicles have made great progress. However, due to the randomness and unpredictable nature of electric vehicle charging, it will have a certain impact on the power system. To effectively predict the charging load of electric vehicles can effectively alleviate the impact of electric vehicle charging on the distribution network to a certain extent. This paper proposes a method to predict the charging load of electric vehicles by using the genetic algorithm to optimize the numerical value and weight threshold of the number of the hidden layer units of the neural network structure, and compares it with the BP neural network prediction method. The experimental data show that the prediction method has higher prediction accuracy.

Copyright
© 2018, the Authors. Published by Atlantis Press.
Open Access
This is an open access article distributed under the CC BY-NC license (http://creativecommons.org/licenses/by-nc/4.0/).

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Volume Title
Proceedings of the 2018 8th International Conference on Management, Education and Information (MEICI 2018)
Series
Advances in Intelligent Systems Research
Publication Date
December 2018
ISBN
10.2991/meici-18.2018.123
ISSN
1951-6851
DOI
10.2991/meici-18.2018.123How to use a DOI?
Copyright
© 2018, the Authors. Published by Atlantis Press.
Open Access
This is an open access article distributed under the CC BY-NC license (http://creativecommons.org/licenses/by-nc/4.0/).

Cite this article

TY  - CONF
AU  - Tianyi Qu
PY  - 2018/12
DA  - 2018/12
TI  - Short Term Prediction of Electric Vehicle Charging Load Based on Optimized Genetic Algorithm
BT  - Proceedings of the 2018 8th International Conference on Management, Education and Information (MEICI 2018)
PB  - Atlantis Press
SP  - 625
EP  - 627
SN  - 1951-6851
UR  - https://doi.org/10.2991/meici-18.2018.123
DO  - 10.2991/meici-18.2018.123
ID  - Qu2018/12
ER  -