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Modeling Empathy and Distress in Reaction to News Stories

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arxiv 1808.10399 v1 pith:5A37VKSK submitted 2018-08-30 cs.CL

classification cs.CL
keywords empathycomputationaldistressempathicfirstpredictionadheresadvancing
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Computational detection and understanding of empathy is an important factor in advancing human-computer interaction. Yet to date, text-based empathy prediction has the following major limitations: It underestimates the psychological complexity of the phenomenon, adheres to a weak notion of ground truth where empathic states are ascribed by third parties, and lacks a shared corpus. In contrast, this contribution presents the first publicly available gold standard for empathy prediction. It is constructed using a novel annotation methodology which reliably captures empathy assessments by the writer of a statement using multi-item scales. This is also the first computational work distinguishing between multiple forms of empathy, empathic concern, and personal distress, as recognized throughout psychology. Finally, we present experimental results for three different predictive models, of which a CNN performs the best.

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Cited by 1 Pith paper

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. LLUMI: Improving LLM Writing Assistance for Mental Health Support with Online Community Feedback

    cs.HC 2026-05 unverdicted novelty 4.0 of 10

    LLUMI shows that open-source LLMs trained via SFT and DPO on Reddit community feedback can match proprietary GPT models on readability, empathy, connection, actionability, and safety for mental health support.

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