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Influence Functions for Scalable Data Attribution in Diffusion Models

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arxiv 2410.13850 v5 pith:RNNTZ6FK submitted 2024-10-17 cs.LG cs.AI

classification cs.LGcs.AI
keywords datadiffusioninfluencemodelsattributionfunctionsframeworkmethods
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Diffusion models have led to significant advancements in generative modelling. Yet their widespread adoption poses challenges regarding data attribution and interpretability. In this paper, we aim to help address such challenges in diffusion models by developing an influence functions framework. Influence function-based data attribution methods approximate how a model's output would have changed if some training data were removed. In supervised learning, this is usually used for predicting how the loss on a particular example would change. For diffusion models, we focus on predicting the change in the probability of generating a particular example via several proxy measurements. We show how to formulate influence functions for such quantities and how previously proposed methods can be interpreted as particular design choices in our framework. To ensure scalability of the Hessian computations in influence functions, we systematically develop K-FAC approximations based on generalised Gauss-Newton matrices specifically tailored to diffusion models. We recast previously proposed methods as specific design choices in our framework and show that our recommended method outperforms previous data attribution approaches on common evaluations, such as the Linear Data-modelling Score (LDS) or retraining without top influences, without the need for method-specific hyperparameter tuning.

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Better Training Data Attribution via Better Inverse Hessian-Vector Products

    cs.LG 2025-07 conditional novelty 6.0 of 10

    ASTRA, an EKFAC-preconditioned Neumann series iteration, computes more accurate inverse Hessian-vector products and improves training data attribution scores over EKFAC baselines.

  2. TokenShapley: Token Level Context Attribution with Shapley Value

    cs.CL 2025-06 conditional novelty 5.0 of 10

    TokenShapley computes token-level Shapley attributions from context to response by treating context tokens as (prefix, token) data points in a KNN datastore.

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