cs.AI updates on arXiv.org 10月21日 12:29
媒体偏见分析与缓解:基于情感语言指纹的框架
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本文提出一种分析媒体偏见的新框架,通过追踪党派立场到其语言根源中的情感语言,将党派偏见视为可量化的‘情感指纹’。利用VAD框架进行测量,解码情感策略,并设计NeutraSum模型以中和这些情感模式,降低情感偏见。

arXiv:2501.01284v2 Announce Type: replace-cross Abstract: This study introduces a novel framework for analysing and mitigating media bias by tracing partisan stances to their linguistic roots in emotional language. We posit that partisan bias is not merely an abstract stance but materialises as quantifiable 'emotional fingerprints' within news texts. These fingerprints are systematically measured using the Valence-Arousal-Dominance (VAD) framework, allowing us to decode the affective strategies behind partisan framing. Our analysis of the Allsides dataset confirms this hypothesis, revealing distinct and statistically significant emotional fingerprints for left, centre, and right-leaning media. Based on this evidence-driven approach, we then propose a computational approach to mitigation through NeutraSum, a model designed to neutralise these identified emotional patterns. By explicitly targeting the VAD characteristics of biased language, NeutraSum generates summaries that are not only coherent but also demonstrably closer to an emotionally neutral baseline. Experimental results validate our framework: NeutraSum successfully erases the partisan emotional fingerprints from its summaries, achieving a demonstrably lower emotional bias score than other models. This work pioneers a new path for bias mitigation, shifting the focus from treating symptoms (political labels) to addressing the cause: the emotional encoding of partisan bias in language.

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媒体偏见 情感语言指纹 VAD框架 NeutraSum模型 情感偏见缓解
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