2022
DOI: 10.1002/adts.202200128
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A Graph‐Based Lithium‐Ion Battery Parameter Estimation Approach to Produce Diverse Synthetic Data

Abstract: Energy dense lithium-ion batteries are extensively used in all portable electronic devices and in electric vehicles as well. State-of-charge estimation of these batteries has been of considerable commercial interest as this key metric can be construed as the available range in electric vehicles. State-of-charge is also important to ascertain the remaining usage time in battery powered devices. In this paper a graph neural network-based approach is employed to estimate key battery parameters such as, voltage, b… Show more

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Cited by 4 publications
(3 citation statements)
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“…where X k and Y k are the system state variable and the system observation output variable, respectively. U k−1 is input state vector; W k−1 is the process noise, V k is the measurement noise, A k−1 , B k−1 is the coefficient matrix of the state variable, C k , D k is the coefficient matrix of the output variable, as shown in Equation (10):…”
Section: Extended Kalman Particle Filter For Soc Estimationmentioning
confidence: 99%
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“…where X k and Y k are the system state variable and the system observation output variable, respectively. U k−1 is input state vector; W k−1 is the process noise, V k is the measurement noise, A k−1 , B k−1 is the coefficient matrix of the state variable, C k , D k is the coefficient matrix of the output variable, as shown in Equation (10):…”
Section: Extended Kalman Particle Filter For Soc Estimationmentioning
confidence: 99%
“…[6] Accurate state of charge (SOC) estimation is essential for the charge/discharge control and thermal management of BMS. [7,8] Currently, SOC estimation methods can be divided into three categories: direct measurement method, [9] data-driven method, [10] and model-driven method. [11,12] The Ampere hour DOI: 10.1002/adts.202301022 (AH) method estimates SOC by integrating the charge/discharge current, but it relies on accurate initial SOC information and is susceptible to error accumulation.…”
Section: Introductionmentioning
confidence: 99%
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