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公开(公告)号:US20230091374A1
公开(公告)日:2023-03-23
申请号:US17802060
申请日:2020-02-24
Applicant: Google LLC
Inventor: Qifei Wang , Alexander Kuznetsov , Alec Michael Go , Grace Chu , Eunyoung Kim , Feng Yang , Andrew Gerald Howard , Jeffrey M. Gilbert
IPC: G06V30/413 , G06V10/22
Abstract: The present disclosure is directed to object and/or character recognition for use in applications such as computer vision. Advantages of the present disclosure include lightweight functionality that can be used on devices such as smart phones. Aspects of the present disclosure include a sequential architecture where a lightweight machine-learned model can receive an image, detect whether an object is present in one or more regions of the image, and generate an output based on the detection. This output can be applied as a filter to remove image data that can be neglected for more memory intensive machine-learned models applied downstream.
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公开(公告)号:US20230267307A1
公开(公告)日:2023-08-24
申请号:US18014314
申请日:2020-07-23
Applicant: Google LLC
Inventor: Qifei Wang , Junjie Ke , Grace Chu , Gabriel Mintzer Bender , Luciano Sbaiz , Feng Yang , Andrew Gerald Howard , Alec Michael Go , Jeffrey M. Gilbert , Peyman Milanfar , Joshua William Charles Greaves
Abstract: Systems and methods of the present disclosure are directed to a method for generating a machine-learned multitask model configured to perform tasks. The method can include obtaining a machine-learned multitask search model comprising candidate nodes. The method can include obtaining tasks and machine-learned task controller models associated with the tasks. As an example, for a task, the method can include using the task controller model to route a subset of the candidate nodes in a machine-learned task submodel for the corresponding task. The method can include inputting task input data to the task submodel to obtain a task output. The method can include generating, using the task output, a feedback value based on an objective function. The method can include adjusting parameters of the task controller model based on the feedback value.
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