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Unifying Corroborative and Contributive Attributions in Large Language Models (2311.12233v1)

Published 20 Nov 2023 in cs.CL

Abstract: As businesses, products, and services spring up around LLMs, the trustworthiness of these models hinges on the verifiability of their outputs. However, methods for explaining LLM outputs largely fall across two distinct fields of study which both use the term "attribution" to refer to entirely separate techniques: citation generation and training data attribution. In many modern applications, such as legal document generation and medical question answering, both types of attributions are important. In this work, we argue for and present a unified framework of LLM attributions. We show how existing methods of different types of attribution fall under the unified framework. We also use the framework to discuss real-world use cases where one or both types of attributions are required. We believe that this unified framework will guide the use case driven development of systems that leverage both types of attribution, as well as the standardization of their evaluation.

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