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Neural Generative Distributional Regression

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abstract

Any continuous conditional distribution of $Y$ given $X$ can be generated from a transform of a known noise distribution $U$ such as the uniform or normal distribution via $Y = g(X, U)$. This paper provides an estimator of such a generative transformation $g$ by minimizing the empirical energy distance between distributions of $Y$ and $g(X, U)$, and implements it via neural networks. The estimated distribution can then be readily applied to downstream tasks such as conditional moment estimation, predictive interval construction, and conditional density estimation. By leveraging the representation power of neural networks, the estimator can adaptively exploit low-dimensional structures in a purely algorithmic manner. Theoretically, we establish an oracle inequality attaining the adaptive optimal nonparametric rates. Numerical simulations and real data analysis further demonstrate the practical effectiveness of the proposed method.

fields

stat.ME 1

years

2026 1

verdicts

ACCEPT 1

representative citing papers

Emputation: Identification-Guided Neural Imputation Framework

stat.ME · 2026-07-06 · accept · novelty 7.0

Emputation is a deep generative imputation framework whose energy-score training objective is explicitly guided by pattern-mixture identification assumptions, with proofs that the population minimizer recovers the target extrapolation distribution.

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  • Emputation: Identification-Guided Neural Imputation Framework stat.ME · 2026-07-06 · accept · none · ref 1 · internal anchor

    Emputation is a deep generative imputation framework whose energy-score training objective is explicitly guided by pattern-mixture identification assumptions, with proofs that the population minimizer recovers the target extrapolation distribution.