JSAI2024

Presentation information

Organized Session

Organized Session » OS-19

[2L5-OS-19a] OS-19

Wed. May 29, 2024 3:30 PM - 5:10 PM Room L (Room 52)

オーガナイザ:磯部 祥尚(産業技術総合研究所)、中島 震(放送大学・国立情報学研究所)、小林 健一(富士通株式会社)

3:30 PM - 3:50 PM

[2L5-OS-19a-01] Safety quality management methods in the development of AI modules

〇Takaaki Namba1, Tamao Okamoto1, Yoshihiro Nakabo2, Yasushi Sumi2, Bong-Keun Kim2, Kiyoshi Fujiwara2, Takuya Ogure2 (1. AIST / Panasonic Holdings Corp., 2. AIST)

Keywords:Quality, Assessment, Machine Learning, Guideline, Safety

Quality management in the development of AI modules is important due to social demands (laws / regulations / standards / guidelines). However, the methodology has not yet been established. Therefore, we have developed AI quality assessment sheets to clarify how to assess AI safety (harm to humans, economic loss), usefulness, fairness, privacy, and AI security, and to support management. In this paper, we present AI quality assessment sheets based on the "Machine Learning Quality Management Guidelines" as a specific quality assessment method focusing on the development process and AI-specific quality characteristics. Our method enables sharing achieved quality among stakeholders and giving concrete explanations to society as evidence. It is also useful for clarifying ordering conditions, identifying problems, improving the quality,and presenting high-quality added value. We expect that this effort will assist the concretization of quality management methods and accelerate problem solving for "Responsible AI".

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