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公开(公告)号:US20230267363A1
公开(公告)日:2023-08-24
申请号:US17666076
申请日:2022-02-07
Applicant: Lemon Inc.
Inventor: Yingxiang YANG , Tianyi LIU , Taiqing WANG , Chong WANG , Zhihan XIONG
Abstract: Embodiments of the present disclosure relate to machine learning with periodic data. According to embodiments of the present disclosure, a feature representation of an input data sample is obtained from a prediction model. First Fourier coefficients for a first component in a Fourier expansion are determined by applying the feature representation into a first mapping model, and second Fourier coefficients for a second component in the Fourier expansion are determined by applying the feature representation into a second mapping model. A Fourier expansion result is determined based on the first Fourier coefficients and the second Fourier coefficients in the Fourier expansion, and a prediction result for the input data sample is determined based on the Fourier expansion result.