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Methods and apparatus for asynchronous and interactive machine learning using word embedding within text-based documents and multimodal documents
Methods and apparatus for asynchronous and interactive machine learning using word embedding within text-based documents and multimodal documents
A machine learning system continuously receives tag signals indicating membership relations between data objects from a data corpus and tag targets. The machine learning system is asynchronously and iteratively trained with the received tag signals to identify further data objects from the data corpus predicted to have a membership relation with the single tag target. The machine learning system constantly improves its predictive accuracy in short time by the continuous training of a backend machine learning model based on implicit and explicit tag signals gathered from a non-intrusive monitoring of user interactions during a review process of the data corpus.
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