2018
ACL
ACL 2018
Mixed Feelings: Natural Text Generation with Variable, Coexistent Affective Categories
Abstract
AbstractConversational agents, having the goal of natural language generation, must rely on language models which can integrate emotion into their responses. Recent projects outline models which can produce emotional sentences, but unlike human language, they tend to be restricted to one affective category out of a few. To my knowledge, none allow for the intentional coexistence of multiple emotions on the word or sentence level. Building on prior research which allows for variation in the intensity of a singular emotion, this research proposal outlines an LSTM (Long Short-Term Memory) language model which allows for variation in multiple emotions simultaneously.
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Trend Setter
— Language Modeling
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Keyword Pioneer
— conversational agent
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Cross-Pollinator
— Artificial Intelligence, Computer Science, Machine Learning, Natural Language Processing, Speech & Audio
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Interdisciplinary Bridge
— Artificial Intelligence and Deep Learning and Machine Learning and Natural Language Processing
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Hot Topic Early Bird
— affective computing
Authors
Topics
Natural Language Processing > Generation > Language Modeling
Natural Language Processing > Generation > Text Generation
Machine Learning > Learning Types > Representation Learning
Deep Learning > Learning Types > Representation Learning
Artificial Intelligence > Core AI > Natural Language Generation