AWS re:Invent 2019: Build accurate training datasets with Amazon SageMaker Ground Truth (AIM308)
Published on Dec 05, 2019
Successful machine learning models are built on high-quality training datasets. Typically, the task of data labeling is distributed across a large number of humans, adding significant overhead and cost. This session explains how Amazon SageMaker Ground Truth reduces cost and complexity using techniques designed to improve labeling accuracy and reduce human effort. We walk through best practices for building highly accurate training datasets and discuss how you can use Amazon SageMaker Ground Truth to implement them.
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AWS re:Invent 2019: Security for ML environments w/ Amazon SageMaker, featuring Vanguard (AIM327-R1)
53:51
56:46
AWS re:Invent 2019: Build accurate training datasets with Amazon SageMaker Ground Truth (AIM308)
56:46
19:08
AWS re:Invent 2019: Drive transformation through machine learning with Amazon SageMaker (DEM27-S)
19:08