Invention Grant
- Patent Title: Parallel development and deployment for machine learning models
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Application No.: US16597477Application Date: 2019-10-09
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Publication No.: US11468366B2Publication Date: 2022-10-11
- Inventor: Bin Qin , Farooq Azam , Denis Malov
- Applicant: SAP SE
- Applicant Address: DE Walldorf
- Assignee: SAP SE
- Current Assignee: SAP SE
- Current Assignee Address: DE Walldorf
- Agency: Schwegman Lundberg & Woessner, P.A.
- Main IPC: G06N3/08
- IPC: G06N3/08 ; G06N20/00 ; G06N3/04

Abstract:
Example systems and methods of developing a learning model are presented. In one example, a sample data set to train a first learning algorithm is accessed. A number of states for each input of the sample data set is determined. A subset of the inputs is selected, and the sample data set is partitioned into a number of partitions equal to a combined number of states of the selected inputs. A second learning algorithm is created for each of the partitions, wherein each second learning algorithm receives the unselected inputs. Each of the second learning algorithms is assigned to a processor and trained using the samples of the partition corresponding to that algorithm. Decision logic is generated to direct each of a plurality of operational data units as input to one of the second learning algorithms based on states of the selected inputs of the operational data unit.
Public/Granted literature
- US20200042899A1 Parallel Development and Deployment for Machine Learning Models Public/Granted day:2020-02-06
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