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Autori principali: Wang, Jieyi, Huang, Yue, Liu, Zeming, Xu, Dexuan, Wang, Chuan, Shi, Xiaoming, Guan, Ruiyuan, Wang, Hongxing, Yue, Weihua, Huang, Yu
Natura: Preprint
Pubblicazione: 2024
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Accesso online:https://arxiv.org/abs/2412.16674
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author Wang, Jieyi
Huang, Yue
Liu, Zeming
Xu, Dexuan
Wang, Chuan
Shi, Xiaoming
Guan, Ruiyuan
Wang, Hongxing
Yue, Weihua
Huang, Yu
author_facet Wang, Jieyi
Huang, Yue
Liu, Zeming
Xu, Dexuan
Wang, Chuan
Shi, Xiaoming
Guan, Ruiyuan
Wang, Hongxing
Yue, Weihua
Huang, Yu
contents Online psychological counseling dialogue systems are trending, offering a convenient and accessible alternative to traditional in-person therapy. However, existing psychological counseling dialogue systems mainly focus on basic empathetic dialogue or QA with minimal professional knowledge and without goal guidance. In many real-world counseling scenarios, clients often seek multi-type help, such as diagnosis, consultation, therapy, console, and common questions, but existing dialogue systems struggle to combine different dialogue types naturally. In this paper, we identify this challenge as how to construct mixed-type dialogue systems for psychological counseling that enable clients to clarify their goals before proceeding with counseling. To mitigate the challenge, we collect a mixed-type counseling dialogues corpus termed STAMPsy, covering five dialogue types, task-oriented dialogue for diagnosis, knowledge-grounded dialogue, conversational recommendation, empathetic dialogue, and question answering, over 5,000 conversations. Moreover, spatiotemporal-aware knowledge enables systems to have world awareness and has been proven to affect one's mental health. Therefore, we link dialogues in STAMPsy to spatiotemporal state and propose a spatiotemporal-aware mixed-type psychological counseling dataset. Additionally, we build baselines on STAMPsy and develop an iterative self-feedback psychological dialogue generation framework, named Self-STAMPsy. Results indicate that clarifying dialogue goals in advance and utilizing spatiotemporal states are effective.
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id arxiv_https___arxiv_org_abs_2412_16674
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle STAMPsy: Towards SpatioTemporal-Aware Mixed-Type Dialogues for Psychological Counseling
Wang, Jieyi
Huang, Yue
Liu, Zeming
Xu, Dexuan
Wang, Chuan
Shi, Xiaoming
Guan, Ruiyuan
Wang, Hongxing
Yue, Weihua
Huang, Yu
Artificial Intelligence
Online psychological counseling dialogue systems are trending, offering a convenient and accessible alternative to traditional in-person therapy. However, existing psychological counseling dialogue systems mainly focus on basic empathetic dialogue or QA with minimal professional knowledge and without goal guidance. In many real-world counseling scenarios, clients often seek multi-type help, such as diagnosis, consultation, therapy, console, and common questions, but existing dialogue systems struggle to combine different dialogue types naturally. In this paper, we identify this challenge as how to construct mixed-type dialogue systems for psychological counseling that enable clients to clarify their goals before proceeding with counseling. To mitigate the challenge, we collect a mixed-type counseling dialogues corpus termed STAMPsy, covering five dialogue types, task-oriented dialogue for diagnosis, knowledge-grounded dialogue, conversational recommendation, empathetic dialogue, and question answering, over 5,000 conversations. Moreover, spatiotemporal-aware knowledge enables systems to have world awareness and has been proven to affect one's mental health. Therefore, we link dialogues in STAMPsy to spatiotemporal state and propose a spatiotemporal-aware mixed-type psychological counseling dataset. Additionally, we build baselines on STAMPsy and develop an iterative self-feedback psychological dialogue generation framework, named Self-STAMPsy. Results indicate that clarifying dialogue goals in advance and utilizing spatiotemporal states are effective.
title STAMPsy: Towards SpatioTemporal-Aware Mixed-Type Dialogues for Psychological Counseling
topic Artificial Intelligence
url https://arxiv.org/abs/2412.16674