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A Novel Framework for Distress Detection through an Automated Speech Processing System

机译:通过自动语音处理系统进行遇险检测的新框架

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Based on our ongoing work, this work in progress project aims to develop an automated system to detect distress in people to enable early referral for interventions to target anxiety and depression, to mitigate suicidal ideation and to improve adherence to treatment. The project will utilize either use existing voice data to assess people into various scales of distress, or will collect voice data as per existing standards of distress measurement, to develop basic computing algorithms required to detect various attributes associated with distress, detected through a person's voice in a telephone call to a helpline. This will be then matched with the already available psychological assessment instruments such as the Distress Thermometer for these persons. In order to trigger interventions, organizational contexts are essential as interventions rely on the type of distress. Therefore, the model will be tested on various organizational settings such as the Police, Emergency and Health along with the Distress detection instruments normally used in a psychological assessment for accuracy and validation. The outcome of the project will culminate in a fully automated integrated system, and will save significant resources to organizations. The translation of the project will be realized in step-change improvements to quality of life within the gamut of public policy.
机译:在我们正在进行的工作的基础上,该正在进行的项目旨在开发一种自动系统,以检测人们的困扰,使他们能够尽早转介针对焦虑和抑郁的干预措施,以减轻自杀念头并提高对治疗的依从性。该项目将利用现有的语音数据评估人们陷入各种困扰的程度,或者根据现有的遇险测量标准收集语音数据,以开发检测通过人的语音检测到的与遇难相关的各种属性所需的基本计算算法。拨打热线电话。然后,将与这些人已经可用的心理评估工具(如遇险温度计)相匹配。为了触发干预,组织环境是必不可少的,因为干预依赖于困扰的类型。因此,将在各种组织机构(例如警察,紧急情况和卫生部门)以及通常在心理评估中使用的遇险检测工具(用于准确性和验证)上对模型进行测试。该项目的成果将最终形成一个完全自动化的集成系统,并将为组织节省大量资源。该项目的翻译将通过在公共政策范围内逐步改善生活质量来实现。

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