The Extractive-Abstractive Axis: Measuring Content "Borrowing" in Generative Language Models

07/20/2023
by   Nedelina Teneva, et al.
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Generative language models produce highly abstractive outputs by design, in contrast to extractive responses in search engines. Given this characteristic of LLMs and the resulting implications for content Licensing Attribution, we propose the the so-called Extractive-Abstractive axis for benchmarking generative models and highlight the need for developing corresponding metrics, datasets and annotation guidelines. We limit our discussion to the text modality.

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