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Data Valuation

Data valuation in machine learning tries to determine the worth of data, or data sets, for downstream tasks. Some methods are task-agnostic and consider datasets as a whole, mostly for decision making in data markets. These look at distributional distances between samples. More often, methods look at how individual points affect performance of specific machine learning models. They assign a scalar to each element of a training set which reflects its contribution to the final performance of some model trained on it. Some concepts of value depend on a specific model of interest, others are model-agnostic.

Concepts of the usefulness of a datum or its influence on the outcome of a prediction have a long history in statistics and ML, in particular through the notion of the influence function. However, it has only been recently that rigorous and practical notions of value for data, and in particular data-sets, have appeared in the ML literature, often based on concepts from collaborative game theory, but also from generalization estimates of neural networks, or optimal transport theory, among others.

Papers

Showing 101119 of 119 papers

TitleStatusHype
SHAPr: An Efficient and Versatile Membership Privacy Risk Metric for Machine Learning0
Validation Free and Replication Robust Volume-based Data Valuation0
ModelPred: A Framework for Predicting Trained Model from Training DataCode0
Beta Shapley: a Unified and Noise-reduced Data Valuation Framework for Machine LearningCode1
Towards Understanding Data Values: Empirical Results on Synthetic Data0
Improving Fairness for Data Valuation in Horizontal Federated Learning0
Improving Cooperative Game Theory-based Data Valuation via Data Utility LearningCode0
A Unified Framework for Task-Driven Data Quality Management0
Energy-Based Learning for Cooperative Games, with Applications to Valuation Problems in Machine Learning0
FedCCEA : A Practical Approach of Client Contribution Evaluation for Federated Learning0
Data Valuation for Medical Imaging Using Shapley Value: Application on A Large-scale Chest X-ray Dataset0
A Principled Approach to Data Valuation for Federated Learning0
A Distributional Framework for Data Valuation0
An Empirical and Comparative Analysis of Data Valuation with Scalable Algorithms0
Data Valuation using Reinforcement LearningCode0
Efficient Task-Specific Data Valuation for Nearest Neighbor AlgorithmsCode0
Data Shapley: Equitable Valuation of Data for Machine LearningCode1
Towards Efficient Data Valuation Based on the Shapley ValueCode0
Profit Allocation for Federated LearningCode0
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