Literature DB >> 34307639

Using Prosodic and Lexical Information for Learning Utterance-level Behaviors in Psychotherapy.

Karan Singla1, Zhuohao Chen1, Nikolaos Flemotomos1, James Gibson1, Dogan Can1, David C Atkins2, Shrikanth Narayanan1.   

Abstract

In this paper, we present an approach for predicting utterance level behaviors in psychotherapy sessions using both speech and lexical features. We train long short term memory (LSTM) networks with an attention mechanism using words, both manually and automatically transcribed, and prosodic features, at the word level, to predict the annotated behaviors. We demonstrate that prosodic features provide discriminative information relevant to the behavior task and show that they improve prediction when fused with automatically derived lexical features. Additionally, we investigate the weights of the attention mechanism to determine words and prosodic patterns which are of importance to the behavior prediction task.

Keywords:  behavioral signal processing; mutlimodal learning; prosody

Year:  2018        PMID: 34307639      PMCID: PMC8297805          DOI: 10.21437/interspeech.2018-2551

Source DB:  PubMed          Journal:  Interspeech        ISSN: 2308-457X


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