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Automatic Expansion of Domain-Specific Affective Models for Web Intelligence Applications.

Albert Weichselbraun1,2, Jakob Steixner3, Adrian M P Braşoveanu3

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Summary
This summary is machine-generated.

This study enhances affective models for sentiment analysis by integrating knowledge graphs and language models. These advanced techniques improve emotion recognition for strategic communication goals, especially in specialized domains.

Keywords:
Affective modelsEmbeddingsHourglass of emotionsKnowledge graphsLanguage models

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Area of Science:

  • Computational Linguistics
  • Affective Computing
  • Artificial Intelligence

Background:

  • Sentic computing uses affective models for sentiment analysis and emotion recognition.
  • Existing models may not capture complex, domain-specific communication goals.
  • Standard affective dimensions (e.g., Joy, Trust) may not align with strategic marketing objectives.

Purpose of the Study:

  • To introduce and evaluate techniques for expanding affective models.
  • To improve the coverage, consistency, and domain-specific interpretation of emotions.
  • To address limitations of standardized affective models in measuring communication success.

Main Methods:

  • Combining knowledge graphs (common and commonsense knowledge) with language models and affective reasoning.
  • Developing expansion techniques for affective models.
  • Quantitative evaluation using the Hourglass of Emotions model and gold standard data.
  • Qualitative evaluation of a domain-specific affective model for television brands.

Main Results:

  • The proposed expansion techniques enhance affective model performance.
  • The methods support various embeddings and pre-trained language models.
  • Demonstrated improved coverage and consistency in affective modeling.
  • Successfully adapted models for domain-specific interpretations, like in television branding.

Conclusions:

  • Expansion techniques offer a robust way to adapt affective models for diverse applications.
  • The approach is valuable in scenarios with limited affective model resources.
  • Enables more nuanced and strategically aligned emotion analysis in communication.