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Diagnostic visualization for non-expert machine learning practitioners: A design study

机译:非专业机器学习从业者的诊断可视化:一项设计研究

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As machine learning (ML) becomes increasingly popular, developers without deep experience in ML - who we will refer to as ML practitioners - are facing the need to diagnose problems with ML models. Yet successful diagnosis requires high-level expertise that practitioners lack. As in many complex data-oriented domains, visualization could help. This two-phase study explored the design of visualizations to aid ML diagnosis. In phase 1, twelve ML practitioners were asked to diagnose a model using ten state-of-the-art visualizations; seven design themes were identified. In phase 2, several design themes were embodied in an interactive visualization. The visualization was used to engage practitioners in a participatory design exercise that explored how they would carry out multi-step diagnosis using the visualization. Our findings provide design implications for tools that better support ML diagnosis by non-expert practitioners.
机译:随着机器学习(ML)的日益普及,在ML中没有丰富经验的开发人员(我们将其称为ML实践者)面临着诊断ML模型问题的需求。然而,成功的诊断需要医生缺乏的高级专业知识。像在许多复杂的面向数据的域中一样,可视化可能会有所帮助。这项分为两个阶段的研究探索了可视化的设计,以帮助ML诊断。在第1阶段中,要求12名ML从业人员使用十种最新的可视化技术来诊断模型。确定了七个设计主题。在阶段2中,在交互式可视化中体现了几个设计主题。可视化用于使从业人员参与参与性设计练习,该练习探索了他们如何使用可视化进行多步诊断。我们的发现为更好地支持非专家从业人员进行ML诊断的工具提供了设计启示。

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