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Bootstrapping Conversational Agents With Weak Supervision
[article]
2018
arXiv
pre-print
Many conversational agents in the market today follow a standard bot development framework which requires training intent classifiers to recognize user input. The need to create a proper set of training examples is often the bottleneck in the development process. In many occasions agent developers have access to historical chat logs that can provide a good quantity as well as coverage of training examples. However, the cost of labeling them with tens to hundreds of intents often prohibits
arXiv:1812.06176v1
fatcat:fujpriekzrhh7jfgyz5spyp4ny