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用户中心视角下XAI训练数据归因设计探索
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本文提出了一种基于设计思维的XAI训练数据归因(TDA)设计方法,通过需求调研和用户互动研究,探讨数据中心化解释的新任务,旨在提高XAI系统的透明度和实用性。

arXiv:2409.16978v2 Announce Type: replace-cross Abstract: Explainable AI (XAI) aims to make AI systems more transparent, yet many practices emphasise mathematical rigour over practical user needs. We propose an alternative to this model-centric approach by following a design thinking process for the emerging XAI field of training data attribution (TDA), which risks repeating solutionist patterns seen in other subfields. However, because TDA is in its early stages, there is a valuable opportunity to shape its direction through user-centred practices. We engage directly with machine learning developers via a needfinding interview study (N=6) and a scenario-based interactive user study (N=31) to ground explanations in real workflows. Our exploration of the TDA design space reveals novel tasks for data-centric explanations useful to developers, such as grouping training samples behind specific model behaviours or identifying undersampled data. We invite the TDA, XAI, and HCI communities to engage with these tasks to strengthen their research's practical relevance and human impact.

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XAI 训练数据归因 设计思维 用户中心 数据解释
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