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Fabrizio Marozzo

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Review Jul 2026

Large Language Models for Token-Efficient and Semantic-Preserving Opinion Summarization

This paper presents a framework that preserves semantics in LLM-based opinion summarization while minimizing token usage and computational cost and demonstrates that this method significantly reduces token usage and computational cost while consistently outperforming traditional AI-based and standard LLM summarization baselines in terms of content coverage, balance, and semantic preservation.

Fabrizio Marozzo, Stefano Iannicelli · 0 citations

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