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公开(公告)号:US20230186059A1
公开(公告)日:2023-06-15
申请号:US17547107
申请日:2021-12-09
Applicant: X Development LLC
Inventor: Sarah Ann Laszlo , Estefany Kelly Buchanan , Baihan Lin
CPC classification number: G06N3/061 , G06N3/0472
Abstract: In one aspect, there is provided a method performed by one or more data processing apparatus that includes obtaining a network input and processing the network input using a neural network to generate a network output that defines a prediction for the network input. The method further includes processing the network input using an encoding sub-network of the neural network to generate an embedding of the network input, processing the embedding of the network input using a brain hybridization sub-network of the neural network to generate an alternative embedding of the network input, and processing the alternative embedding of the network input using a decoding sub-network of the neural network to generate the network output that defines the prediction for the network input.
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公开(公告)号:US20230342589A1
公开(公告)日:2023-10-26
申请号:US17728398
申请日:2022-04-25
Applicant: X Development LLC
Inventor: Sarah Ann Laszlo , Julia Renee Watson , Garrett Raymond Honke , Estefany Kelly Buchanan , Hailey Anne Trier , Grayr Bleyan , Blair Armstrong , Rebecca Dawn Finzi
CPC classification number: G06N3/0454 , G06N20/20 , G06K9/6215 , G06K9/6227 , G06K9/6262
Abstract: Methods, systems, and apparatus, including computer programs encoded on a computer storage medium, for executing ensemble models that include multiple reservoir computing neural networks. One of the methods includes executing an ensemble model comprising a plurality of reservoir computing neural networks, the ensemble model having been trained by operations comprising, at each training stage in a sequence of training stages: obtaining a current ensemble model that comprises a plurality of current reservoir computing neural networks; determining a respective performance measure for each current reservoir computing neural network in the current ensemble model; determining one or more new reservoir computing neural networks to be added to the current ensemble model based on the performance measures for the current reservoir computing neural networks; and adding the new reservoir computing neural networks to the current ensemble model.
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