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Low-rank approximation is a fundamental technique in modern data analysis, widely utilized across various fields such as signal processing, machine learning, and natural language processing. Despite its ubiquity, the mechanics of low-rank…

机器学习 · 计算机科学 2024-08-13 Jun Lu

Comment on K.J Thomas et al., Phys. Rev. Lett. 77, 135-138 (1996).

介观与纳米尺度物理 · 物理学 2009-09-25 Ralf D. Tscheuschner , Thomas Woelkhausen

Discrete analogs of the index transforms, involving Bessel and Lommel functions are introduced and investigated. The corresponding inversion theorems for suitable classes of functions and sequences are established.

经典分析与常微分方程 · 数学 2020-11-17 Semyon Yakubovich

We consider a finite mixture model with varying mixing probabilities. Linear regression models are assumed for observed variables with coefficients depending on the mixture component the observed subject belongs to. A modification of the…

概率论 · 数学 2016-01-07 Daryna Liubashenko , Rostyslav Maiboroda

This is a comment on J. Schmittbuhl, A. Hansen, and G. G. Batrouni, Phys. Rev. Lett. 90, 045505 (2003). They offer a reply, in turn.

统计力学 · 物理学 2009-11-10 M. J. Alava , S. Zapperi

Rejoinder to ``Analysis of variance--why it is more important than ever'' by A. Gelman [math.ST/0504499]

统计理论 · 数学 2007-06-13 Andrew Gelman

Discussion of "Likelihood Inference for Models with Unobservables: Another View" by Youngjo Lee and John A. Nelder [arXiv:1010.0303]

统计方法学 · 统计学 2010-10-06 Xiao-Li Meng

This paper establishes bounds on the performance of empirical risk minimization for large-dimensional linear regression. We generalize existing results by allowing the data to be dependent and heavy-tailed. The analysis covers both the…

计量经济学 · 经济学 2025-04-23 Christian Brownlees , Guðmundur Stefán Guðmundsson

We comment on some misunderstandings exhibited in a recent paper by Matolcsi et al. (Gen. Rel. Grav.39 413 (2007)).

数学物理 · 物理学 2007-07-03 L. Herrera

Rejoinder to ``Microarrays, Empirical Bayes and the Two-Groups Model'' [arXiv:0808.0572]

统计方法学 · 统计学 2008-08-06 Bradley Efron

This is the revised version of a Comment on a paper by C. Escudero (Phys. Rev. Lett. 100, 116101, 2008; arXiv:0804.1898).

统计力学 · 物理学 2009-11-13 Joachim Krug

This short note provides a new and simple proof of the convergence rate for Peng's law of large numbers under sublinear expectations, which improves the corresponding results in Song [15] and Fang et al. [3].

概率论 · 数学 2021-07-07 Mingshang Hu , Xiaojuan Li , Xinpeng Li

In this note, we first recall the nonconvex problem setting and introduce the optimal PAGE algorithm (Li et al., ICML'21). Then we provide a simple and clean convergence analysis of PAGE for achieving optimal convergence rates. Moreover,…

最优化与控制 · 数学 2021-06-18 Zhize Li

Contributed discussion and rejoinder to "Geodesic Monte Carlo on Embedded Manifolds" (arXiv:1301.6064)

Additive regression models are actively researched in the statistical field because of their usefulness in the analysis of responses determined by non-linear relationships with multivariate predictors. In this kind of statistical models,…

统计方法学 · 统计学 2018-04-10 German A. Schnaidt Grez , Brani Vidakovic

Comment on "Classical Simulations Including Electron Correlations for Sequential Double Ionization" [arXiv:1204.3956]

混沌动力学 · 物理学 2012-08-16 Cristel Chandre , Adam Kamor , Francois Mauger , Turgay Uzer

Discrete analogs of the index transforms, involving Bessel and the modified Bessel functions are introduced and investigated. The corresponding inversion theorems for suitable classes of functions and sequences are established.

经典分析与常微分方程 · 数学 2022-06-20 Semyon Yakubovich

The paper is devoted to the properties of the Lagrange spectrum left endpoints and so-called attainable numbers.

数论 · 数学 2017-05-16 Dmitry Gayfulin

This is a brief tutorial on the least square estimation technique that is straightforward yet effective for parameter estimation. The tutorial is focused on the linear LSEs instead of nonlinear versions, since most nonlinear LSEs can be…

系统与控制 · 电气工程与系统科学 2022-11-29 Qingrui Zhang

We comment on the fact that gradient ascent for logistic regression has a connection with the perceptron learning algorithm. Logistic learning is the "soft" variant of perceptron learning.

机器学习 · 统计学 2017-08-29 Raul Rojas