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Can We Trust AI? Towards Practical Implementation and Theoretical Analysis in Trustworthy Machine Learning

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서명/저자사항Can We Trust AI? Towards Practical Implementation and Theoretical Analysis in Trustworthy Machine Learning.
개인저자Xu, Kaidi.
단체저자명Northeastern University. Electrical and Computer Engineering.
발행사항[S.l.]: Northeastern University., 2021.
발행사항Ann Arbor: ProQuest Dissertations & Theses, 2021.
형태사항116 p.
기본자료 저록Dissertations Abstracts International 83-02B.
Dissertation Abstract International
ISBN9798535511139
학위논문주기Thesis (Ph.D.)--Northeastern University, 2021.
일반주기 Source: Dissertations Abstracts International, Volume: 83-02, Section: B.
Advisor: Lin, Xue.
이용제한사항This item must not be sold to any third party vendors.
일반주제명Computer engineering.
Computer science.
Information technology.
Artificial intelligence.
Sparsity.
Internships.
Deep learning.
Datasets.
Success.
Dissertations & theses.
Noise.
Advisors.
Defense.
Performance evaluation.
COVID-19.
Power.
Experiments.
Neural networks.
Medical research.
Classification.
Linear programming.
Natural language processing.
Methods.
Algorithms.
Ablation.
언어영어
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