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p-Generalized Probit Regression and Scalable Maximum Likelihood Estimation via Sketching and Coresets

25 Mar 2022arXiv:2203.13568archive 2025-07-28

Alexander Munteanu, Simon Omlor, Christian Peters

We study the p-generalized probit regression model, which is a generalized linear model for binary responses. It extends the standard probit model by replacing its link function, the standard normal cdf, by a p-generalized normal distribution for p∈[1, ∞). The p-generalized normal distributions \citep{Sub23} are of special interest in statistical modeling because they fit much more flexibly to data. Their tail behavior can be controlled by choice of the parameter p, which influences the model's sensitivity to outliers. Special cases include the Laplace, the Gaussian, and the uniform distributions. We further show how the maximum likelihood estimator for p-generalized probit regression can be approximated efficiently up to a factor of (1+ε) on large data by combining sketching techniques with importance subsampling to obtain a small data summary called coreset.

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add_intercept cxan96/efficient-probit-regression/efficient_probit_regression/datasets.py official repository unverified MIT (permissive) · 6f87712ad48e6258 · report
compute_leverage_scores cxan96/efficient-probit-regression/efficient_probit_regression/sampling.py official repository unverified MIT (permissive) · 119b435476768082 · report
fast_QR cxan96/efficient-probit-regression/efficient_probit_regression/sampling.py official repository unverified MIT (permissive) · c758f15b061b5e94 · report
gaussian_kernel cxan96/efficient-probit-regression/efficient_probit_regression/metrics.py official repository unverified MIT (permissive) · c8c367cbc656fc9a · report
get_results_dir_p cxan96/efficient-probit-regression/efficient_probit_regression/settings.py official repository unverified MIT (permissive) · d052868fdd91425f · report
mmd cxan96/efficient-probit-regression/efficient_probit_regression/metrics.py official repository unverified MIT (permissive) · 3c164ca8797dd680 · report
p_gen_norm_cdf cxan96/efficient-probit-regression/efficient_probit_regression/probit_model.py official repository unverified MIT (permissive) · bba3230f0550e694 · report
p_gen_norm_pdf cxan96/efficient-probit-regression/efficient_probit_regression/probit_model.py official repository unverified MIT (permissive) · 0b3d8671a851a6d8 · report
polynomial_kernel cxan96/efficient-probit-regression/efficient_probit_regression/metrics.py official repository unverified MIT (permissive) · cb9a66905aff629b · report
uniform_sampling cxan96/efficient-probit-regression/efficient_probit_regression/sampling.py official repository unverified MIT (permissive) · 02e04515634f9ff2 · report

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