Search Results for author: Alessandra Zarcone

Found 5 papers, 1 papers with code

Not So Fast, Classifier – Accuracy and Entropy Reduction in Incremental Intent Classification

no code implementations EMNLP (NLP4ConvAI) 2021 Lianna Hrycyk, Alessandra Zarcone, Luzian Hahn

We release inCLINC, a dataset of partial and full utterances with human annotations of plausible intent labels for different portions of each utterance, as an upper (human) baseline for incremental intent classification.

Classification intent-classification +1

New Domain, Major Effort? How Much Data is Necessary to Adapt a Temporal Tagger to the Voice Assistant Domain

1 code implementation IWCS (ACL) 2021 Touhidul Alam, Alessandra Zarcone, Sebastian Padó

Reliable tagging of Temporal Expressions (TEs, e. g., Book a table at L’Osteria for Sunday evening) is a central requirement for Voice Assistants (VAs).

Transfer Learning

HumSum: A Personalized Lecture Summarization Tool for Humanities Students Using LLMs

no code implementations Proceedings of the 1st Workshop on Personalization of Generative AI Systems (PERSONALIZE 2024) 2024 Zahra Kolagar, Alessandra Zarcone

Generative AI systems aim to create customizable content for their users, with a subsequent surge in demand for adaptable tools that can create personalized experiences.

Aligning Uncertainty: Leveraging LLMs to Analyze Uncertainty Transfer in Text Summarization

no code implementations Proceedings of the 1st Workshop on Uncertainty-Aware NLP (UncertaiNLP 2024) 2024 Zahra Kolagar, Alessandra Zarcone

The method capitalizes on a small amount of expert annotations and on the capabilities of Large language models (LLMs) to evaluate how the uncertainty of the source text aligns with the uncertainty expressions in the summary.

Text Summarization

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