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DOE OSTI · 2441486

Normalizing flows for domain adaptation when identifying Λ hyperon events

Abstract

Here this study focuses on the application of a normalizing flow as a method of domain adaptation when classifying physics data. Normalizing flows offer a way to transform data points between two different distributions. The present study investigates a novel method of transforming latent representations of physics data to a normal distribution and then to a physics distribution again. The final distribution models a simulated distribution. After being transformed, the data can be classified by a neural network trained on labeled simulation data. The present study succeeds in training two normalizing flows that can transform between data (or simulation) and a Gaussian distribution.

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BibTeXRIS

Kelleher, R., Vossen, A.. 2024-06-24. Normalizing flows for domain adaptation when identifying Λ hyperon events. https://doi.org/10.1088/1748-0221%2F19%2F06%2Fc06020

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