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Quality-Diversity Generative Sampling for Learning with Synthetic Data
December 22, 2023 Β· Entered Twilight Β· π AAAI Conference on Artificial Intelligence
Repo contents: .gitignore, README.md, dnnlib, environment.yml, facial_recognition, generate_data.py, media, qdgs, shapes, torch_utils
Authors
Allen Chang, Matthew C. Fontaine, Serena Booth, Maja J. MatariΔ, Stefanos Nikolaidis
arXiv ID
2312.14369
Category
cs.CY: Computers & Society
Cross-listed
cs.LG
Citations
8
Venue
AAAI Conference on Artificial Intelligence
Repository
https://github.com/Cylumn/qd-generative-sampling
β 11
Last Checked
2 months ago
Abstract
Generative models can serve as surrogates for some real data sources by creating synthetic training datasets, but in doing so they may transfer biases to downstream tasks. We focus on protecting quality and diversity when generating synthetic training datasets. We propose quality-diversity generative sampling (QDGS), a framework for sampling data uniformly across a user-defined measure space, despite the data coming from a biased generator. QDGS is a model-agnostic framework that uses prompt guidance to optimize a quality objective across measures of diversity for synthetically generated data, without fine-tuning the generative model. Using balanced synthetic datasets generated by QDGS, we first debias classifiers trained on color-biased shape datasets as a proof-of-concept. By applying QDGS to facial data synthesis, we prompt for desired semantic concepts, such as skin tone and age, to create an intersectional dataset with a combined blend of visual features. Leveraging this balanced data for training classifiers improves fairness while maintaining accuracy on facial recognition benchmarks. Code available at: https://github.com/Cylumn/qd-generative-sampling.
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