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최대방전전류와 BiLTSM을 이용한 전력상태 예측 연구SoP Estimation based on Maximum Discharge Current using BiLSTM

Other Titles
SoP Estimation based on Maximum Discharge Current using BiLSTM
Authors
랄루무쿰바요니Angela C전일수김명식임완수
Issue Date
Apr-2020
Publisher
한국차세대컴퓨팅학회
Keywords
배터리관리시스템; 전력상태; 최대방전전류; 기계학습; Battery management system; state-of-power; maximum discharge current; machine learning
Citation
한국차세대컴퓨팅학회 논문지, v.16, no.4, pp 42 - 51
Pages
10
Journal Title
한국차세대컴퓨팅학회 논문지
Volume
16
Number
4
Start Page
42
End Page
51
URI
https://scholarworks.bwise.kr/kumoh/handle/2020.sw.kumoh/23911
ISSN
1975-681X
Abstract
An accurate SoC(state-of-charge) to estimate SoP(state-of-power) is the most remarkable technique for electric vehicles (EV). Hence, the estimation of battery state-of-charge prior to estimation of battery state-of-power requires more computation cost and time. This paper makes two contributions: (1) a data-driven SoP estimation method has been proposed to accurately capture the characteristics of the battery through the bidirectional long-short term memory algorithm, (2) the estimation of maximum discharge current based on voltage and SoC constraints using BiLSTM. The robustness of the proposed method has been verified by comparing the method with co-estimation and conventional method. The results show higher accuracy (approximately 24%) compared to the conventional state-of-power estimation method with 15.54 root-mean-square-error and faster computing time (approximately 66%) compared to co-estimation method with 2015 seconds calculation time, which made the proposed SoP estimation more efficient and reliable for the electric vehicles application.
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