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Related Experiment Video

Updated: Apr 19, 2026

Author Spotlight: Optimization of Airflow Velocities in Battery Cooling Systems for Enhanced Thermal Performance and Reduced Energy Consumption
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Generating imperceptible adversarial examples via low-frequency aware transfer attacks on battery management systems.

Kyeongseo Min1,2, Yeseo Joo1,2, Jiho Hong1,2

  • 1Department of Industrial and Systems Engineering, Dongguk University-Seoul, Seoul, 04620, Republic of Korea.

Scientific Reports
|April 17, 2026
PubMed
Summary

Deep learning models for battery health estimation are vulnerable to adversarial attacks. This study introduces a novel attack exploiting frequency information to reveal security risks in battery management systems.

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Area of Science:

  • Electrical Engineering
  • Computer Science
  • Artificial Intelligence

Background:

  • Deep learning models are crucial for state-of-health (SoH) estimation in lithium-ion battery management systems (BMS).
  • These models face security risks due to susceptibility to adversarial attacks, potentially causing misdiagnosis and increased maintenance.
  • The practical robustness of these models against adversarial perturbations is not well understood.

Purpose of the Study:

  • To develop a novel adversarial attack to assess the security risks of deep learning models in BMS.
  • To evaluate model robustness in scenarios with limited or no access to model information.
  • To understand potential vulnerabilities in real-world BMS applications.

Main Methods:

  • Developed a novel adversarial attack targeting deep learning models for SoH estimation.
  • Exploited frequency information within signals to capture unique SoH characteristics.
  • Generated adversarial examples by manipulating low-frequency signal components while preserving signal relationships.
  • Assessed model robustness in black-box scenarios (inaccessible model information).

Main Results:

  • Demonstrated the effectiveness of the proposed adversarial attack in uncovering risks.
  • Showcased the ability to generate imperceptible adversarial examples.
  • Highlighted the vulnerability of SoH estimation models to targeted frequency manipulation.
  • Provided insights into the practical security implications for BMS.

Conclusions:

  • Deep learning models in BMS are susceptible to novel adversarial attacks that exploit frequency characteristics.
  • The developed attack effectively reveals potential security risks in practical, information-limited scenarios.
  • Further research is needed to enhance the robustness of BMS against such adversarial threats.