Publication | Open Access
Quantum-inspired Neural Network for Conversational Emotion Recognition
50
Citations
27
References
2021
Year
EngineeringMachine LearningAffective NeuroscienceQuantum MeasurementMultimodal Sentiment AnalysisSocial SciencesQuantum ComputingData ScienceQuantum Optimization AlgorithmQuantum Machine LearningAffective ComputingQuantum ScienceComplete SpanNovel PerspectiveQuantum AlgorithmComputer ScienceDeep LearningQuantum-inspired Neural NetworkEmotion Recognition
We provide a novel perspective on conversational emotion recognition by drawing an analogy between the task and a complete span of quantum measurement. We characterize different steps of quantum measurement in the process of recognizing speakers' emotions in conversation, and stitch them up with a quantum-like neural network. The quantum-like layers are implemented by complex-valued operations to ensure an authentic adoption of quantum concepts, which naturally enables conversational context modeling and multimodal fusion. We borrow an existing algorithm to learn the complex-valued network weights, so that the quantum-like procedure is conducted in a data-driven manner. Our model is comparable to state-of-the-art approaches on two benchmarking datasets, and provide a quantum view to understand conversational emotion recognition.
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