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We study concentration in spectral norm of nonparametric estimates of correlation matrices. We work within the confine of a Gaussian copula model. Two nonparametric estimators of the correlation matrix, the sine transformations of the…

统计理论 · 数学 2014-03-26 Ritwik Mitra , Cun-Hui Zhang

Correlation matrices play a key role in many multivariate methods (e.g., graphical model estimation and factor analysis). The current state-of-the-art in estimating large correlation matrices focuses on the use of Pearson's sample…

机器学习 · 统计学 2016-09-29 Fang Han , Han Liu

Kendall's tau and conditional Kendall's tau matrices are multivariate (conditional) dependence measures between the components of a random vector. For large dimensions, available estimators are computationally expensive and can be improved…

统计理论 · 数学 2024-12-30 Rutger van der Spek , Alexis Derumigny

High-dimensional statistical tests often ignore correlations to gain simplicity and stability leading to null distributions that depend on functionals of correlation matrices such as their Frobenius norm and other $\ell_r$ norms. Motivated…

统计理论 · 数学 2015-11-18 Jianqing Fan , Philippe Rigollet , Weichen Wang

Estimating a high-dimensional sparse covariance matrix from a limited number of samples is a fundamental problem in contemporary data analysis. Most proposals to date, however, are not robust to outliers or heavy tails. Towards bridging…

统计理论 · 数学 2020-08-04 John Goes , Gilad Lerman , Boaz Nadler

We study the adaptive estimation of copula correlation matrix $\Sigma$ for the semi-parametric elliptical copula model. In this context, the correlations are connected to Kendall's tau through a sine function transformation. Hence, a…

机器学习 · 统计学 2016-02-16 Marten Wegkamp , Yue Zhao

Conditional Kendall's tau is a measure of dependence between two random variables, conditionally on some covariates. We assume a regression-type relationship between conditional Kendall's tau and some covariates, in a parametric setting…

统计理论 · 数学 2018-11-21 Alexis Derumigny , Jean-David Fermanian

We show how the problem of estimating conditional Kendall's tau can be rewritten as a classification task. Conditional Kendall's tau is a conditional dependence parameter that is a characteristic of a given pair of random variables. The…

统计计算 · 统计学 2018-11-27 Alexis Derumigny , Jean-David Fermanian

Covariance matrix plays a central role in multivariate statistical analysis. Significant advances have been made recently on developing both theory and methodology for estimating large covariance matrices. However, a minimax theory has yet…

统计理论 · 数学 2010-10-20 T. Tony Cai , Cun-Hui Zhang , Harrison H. Zhou

Estimating covariance matrices with high-dimensional complex data presents significant challenges, particularly concerning positive definiteness, sparsity, and numerical stability. Existing robust sparse estimators often fail to guarantee…

统计方法学 · 统计学 2025-12-30 Shaoxin Wang , Ziyun Ma

Methods are developed for checking and completing systems of bivariate and multivariate Kendall's tau concordance measures in applications where only partial information about dependencies between variables is available. The concept of a…

统计理论 · 数学 2022-05-12 Alexander J. McNeil , Johanna G. Neslehova , Andrew D. Smith

In this paper, we extend the work of Pimentel et al. (2015) and propose an adjusted estimator of Kendall's $\tau$ for bivariate zero-inflated count data. We provide achievable lower and upper bounds of our proposed estimator and show its…

统计理论 · 数学 2022-08-08 Elisa Perrone , Edwin R. van den Heuvel , Zhuozhao Zhan

We study the statistical limits of testing and estimation for a rank one deformation of a Gaussian random tensor. We compute the sharp thresholds for hypothesis testing and estimation by maximum likelihood and show that they are the same.…

概率论 · 数学 2023-06-23 Aukosh Jagannath , Patrick Lopatto , Leo Miolane

The problem of estimating the covariance matrix $\Sigma$ of a $p$-variate distribution based on its $n$ observations arises in many data analysis contexts. While for $n>p$, the classical sample covariance matrix $\hat{\Sigma}_n$ is a good…

信息论 · 计算机科学 2017-09-28 Maryia Kabanava , Holger Rauhut

We consider a Kendall's tau measure between a binary group indicator and the continuous variable under investigation to develop a thorough two-sample comparison procedure. The measure serves as a useful alternative to the hazard ratio whose…

统计方法学 · 统计学 2022-08-01 Yi-Cheng Tai , Weijing Wang , Martin T. Wells , National Yang Ming Chiao Tung U. , Cornell U

Recent studies demonstrate that trends in indicators extracted from measured time series can indicate approaching to an impending transition. Kendall's {\tau} coefficient is often used to study the trend of statistics related to the…

数据分析、统计与概率 · 物理学 2020-10-07 Shiyang Chen , Amin Ghadami , Bogdan I. Epureanu

There has been an increasing interest in testing the equality of large Pearson's correlation matrices. However, in many applications it is more important to test the equality of large rank-based correlation matrices since they are more…

统计理论 · 数学 2018-04-02 Cheng Zhou , Fang Han , Xinsheng Zhang , Han Liu

This paper addresses the following simple question about sparsity. For the estimation of an $n$-dimensional mean vector $\boldsymbol{\theta}$ in the Gaussian sequence model, is it possible to find an adaptive optimal threshold estimator in…

统计理论 · 数学 2013-12-31 Wenhua Jiang , Cun-Hui Zhang

We study estimation of an $s$-sparse signal in the $p$-dimensional Gaussian sequence model with equicorrelated observations and derive the minimax rate. A new phenomenon emerges from correlation, namely the rate scales with respect to…

统计理论 · 数学 2025-01-23 Subhodh Kotekal , Chao Gao

We study nonparametric estimators of conditional Kendall's tau, a measure of concordance between two random variables given some covariates. We prove non-asymptotic bounds with explicit constants, that hold with high probabilities. We…

统计理论 · 数学 2019-03-08 Alexis Derumigny , Jean-David Fermanian
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