Invention Grant
- Patent Title: Systems and methods for out-of-distribution classification
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Application No.: US16877333Application Date: 2020-05-18
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Publication No.: US11537899B2Publication Date: 2022-12-27
- Inventor: Govardana Sachithanandam Ramachandran , Ka Chun Au , Shashank Harinath , Wenhao Liu , Alexis Roos , Caiming Xiong
- Applicant: salesforce.com, inc.
- Applicant Address: US CA San Francisco
- Assignee: salesforce.com, inc.
- Current Assignee: salesforce.com, inc.
- Current Assignee Address: US CA San Francisco
- Agency: Haynes and Boone LLP
- Main IPC: G06N3/08
- IPC: G06N3/08 ; G06N20/00 ; G06K9/62 ; G06N20/10 ; G06F17/18 ; G06V10/75

Abstract:
An embodiment proposed herein uses sparsification techniques to train the neural network with a high feature dimension that may yield desirable in-domain detection accuracy but may prune away dimensions in the output that are less important. Specifically, a sparsification vector is generated based on Gaussian distribution (or other probabilistic distribution) and is used to multiply with the higher dimension output to reduce the number of feature dimensions. The pruned output may be then used for the neural network to learn the sparsification vector. In this way, out-of-distribution detection accuracy can be improved.
Public/Granted literature
- US20210150366A1 Systems and Methods for Out-of-Distribution Classification Public/Granted day:2021-05-20
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