Invention Grant
- Patent Title: General machine learning model, and model file generation and parsing method
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Application No.: US17130469Application Date: 2020-12-22
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Publication No.: US11036480B2Publication Date: 2021-06-15
- Inventor: Weijian Du , Linyang Wu , Xunyu Chen
- Applicant: Shanghai Cambricon Information Technology Co., Ltd.
- Applicant Address: CN Pudong New Area
- Assignee: Shanghai Cambricon Information Technology Co., Ltd.
- Current Assignee: Shanghai Cambricon Information Technology Co., Ltd.
- Current Assignee Address: CN Pudong New Area
- Agency: Getech Law LLC
- Agent Jun Ye
- Priority: CN201810588623.3 20180608
- Main IPC: G06N20/00
- IPC: G06N20/00 ; G06F8/35 ; G06F8/41 ; G06F8/10

Abstract:
Disclosed are a general machine learning model generation method and apparatus, and a computer device and a storage medium. The method comprises: acquiring task parameters of a machine learning task (S1201); performing classification processing on the task parameters to obtain task instructions and model parameters (S1202); aggregating the task instructions and the model parameters according to a data type to obtain stack data and heap data (S1203); and integrating the stack data and the heap data to obtain a general machine learning model (S1204). By means of the method, compiled results of a corresponding general model in the running of an algorithm can be directly executed, which avoids repetitive compilation, thus greatly improving the efficiency of machine learning algorithm implementation and shortening the time from compilation to obtaining execution results.
Public/Granted literature
- US20210109729A1 GENERAL MACHINE LEARNING MODEL, AND MODEL FILE GENERATION AND PARSING METHOD Public/Granted day:2021-04-15
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