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公开(公告)号:US12175734B2
公开(公告)日:2024-12-24
申请号:US16969072
申请日:2019-02-11
Applicant: RENSSELAER POLYTECHNIC INSTITUTE
Inventor: Ge Wang , Daniel David Harrison , Xun Jia , Klaus Mueller
IPC: G01N33/48 , A61B5/00 , G06F18/214 , G06N3/04 , G06N3/08 , G06N3/10 , G06N20/00 , G06T11/00 , G06V10/82
Abstract: In some embodiments, a method of machine learning includes identifying, by an auto encoder network, a simulator feature based, at least in part, on a received first simulator data set and an emulator feature based, at least in part, on a received first emulator data set. The method further includes determining, by a synthesis control circuitry, a synthesized feature based, at least in part, on the simulator feature and based, at least in part, on the emulator feature; and generating, by the auto encoder network, an intermediate data set based, at least in part, on a second simulator data set and including the synthesized feature. Some embodiments of the method further include determining, by a generative artificial neural network, a synthesized data set based, at least in part, on the intermediate data set and based, at least in part, on an objective function.
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公开(公告)号:US20210035340A1
公开(公告)日:2021-02-04
申请号:US16969072
申请日:2019-02-11
Applicant: RENSSELAER POLYTECHNIC INSTITUTE
Inventor: Ge Wang , Daniel David Harrison , Xun Jia , Klaus Mueller
Abstract: In some embodiments, a method of machine learning includes identifying, by an auto encoder network, a simulator feature based, at least in part, on a received first simulator data set and an emulator feature based, at least in part, on a received first emulator data set. The method further includes determining, by a synthesis control circuitry, a synthesized feature based, at least in part, on the simulator feature and based, at least in part, on the emulator feature; and generating, by the auto encoder network, an intermediate data set based, at least in part, on a second simulator data set and including the synthesized feature. Some embodiments of the method further include determining, by a generative artificial neural network, a synthesized data set based, at least in part, on the intermediate data set and based, at least in part, on an objective function.
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