Statistical measures for explainable aspect-based sentiment analysis: a case study on environmental discourse in Reddit

Luisa Stracqualursi & Patrizia Agati

Statistics2026https://doi.org/10.1080/02331888.2026.2636122article
ABDC B
Weight
0.50

What the paper says

Aspect-Based Sentiment Analysis (ABSA) provides a fine-grained understanding of opinions by linking sentiment to specific aspects in text. While transformer-based models excel at this task, their black-box nature limits their interpretability, posing risks in real-world applications without labeled data. This paper introduces a statistical, model-agnostic framework to assess the behavioral transparency and trustworthiness of ABSA models. Our framework relies on several metrics, such as the entropy of polarity distributions, soft-count-based dominance scores, and sentiment divergence between sources, whose robustness is validated through bootstrap resampling and sensitivity analysis. A case study on environmentally focused Reddit communities illustrates how the proposed indicators provide interpretable diagnostics of model certainty, decisiveness, and cross-source variability. The results show that statistical indicators computed on soft outputs can complement traditional approaches, offering a computationally efficient methodology for validating, monitoring, and interpreting ABSA models in contexts where labeled data are unavailable.

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https://doi.org/https://doi.org/10.1080/02331888.2026.2636122

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@article{luisa2026,
  title        = {{Statistical measures for explainable aspect-based sentiment analysis: a case study on environmental discourse in Reddit}},
  author       = {Luisa Stracqualursi & Patrizia Agati},
  journal      = {Statistics},
  year         = {2026},
  doi          = {https://doi.org/https://doi.org/10.1080/02331888.2026.2636122},
}

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Evidence weight

0.50

Balanced mode · F 0.40 / M 0.15 / V 0.05 / R 0.40

F · citation impact0.50 × 0.4 = 0.20
M · momentum0.50 × 0.15 = 0.07
V · venue signal0.50 × 0.05 = 0.03
R · text relevance †0.50 × 0.4 = 0.20

† Text relevance is estimated at 0.50 on the detail page — for your query’s actual relevance score, open this paper from a search result.