NCAICLHCLGApr 12, 2022

Deep Annotation of Therapeutic Working Alliance in Psychotherapy

arXiv:2204.05522v118 citationsh-index: 40
Originality Incremental advance
AI Analysis

This provides a method for real-time feedback to therapists on conversation quality in psychotherapy, addressing a domain-specific need in clinical psychiatry.

The authors tackled the problem of estimating therapeutic working alliance from psychotherapy sessions by proposing a framework that uses deep embeddings (Doc2Vec and SentenceBERT) to infer alliance from session transcripts at turn-level resolution, demonstrating effectiveness in mapping patient-therapist alignment trajectories in a dataset of over 950 sessions across anxiety, depression, schizophrenia, and suicidal patients.

The therapeutic working alliance is an important predictor of the outcome of the psychotherapy treatment. In practice, the working alliance is estimated from a set of scoring questionnaires in an inventory that both the patient and the therapists fill out. In this work, we propose an analytical framework of directly inferring the therapeutic working alliance from the natural language within the psychotherapy sessions in a turn-level resolution with deep embeddings such as the Doc2Vec and SentenceBERT models. The transcript of each psychotherapy session can be transcribed and generated in real-time from the session speech recordings, and these embedded dialogues are compared with the distributed representations of the statements in the working alliance inventory. We demonstrate, in a real-world dataset with over 950 sessions of psychotherapy treatments in anxiety, depression, schizophrenia and suicidal patients, the effectiveness of this method in mapping out trajectories of patient-therapist alignment and the interpretability that can offer insights in clinical psychiatry. We believe such a framework can be provide timely feedback to the therapist regarding the quality of the conversation in interview sessions.

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