exercise:093e852bc9: Difference between revisions

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(Created page with "<div class="d-none"><math> \newcommand{\indexmark}[1]{#1\markboth{#1}{#1}} \newcommand{\red}[1]{\textcolor{red}{#1}} \newcommand{\NOTE}[1]{$^{\textcolor{red}\clubsuit}$\marginpar{\setstretch{0.5}$^{\scriptscriptstyle\textcolor{red}\clubsuit}$\textcolor{blue}{\bf\tiny #1}}} \newcommand\xoverline[2][0.75]{% \sbox{\myboxA}{$\m@th#2$}% \setbox\myboxB\null% Phantom box \ht\myboxB=\ht\myboxA% \dp\myboxB=\dp\myboxA% \wd\myboxB=#1\wd\myboxA% Scale phantom...")
 
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\usepackage{pgfplots}
Let <math>X</math>, <math>Y\sim\mathcal{N}(0,1,\mathbb{R}^d)</math>. Show the following.
\newcommand{\filledsquare}{\begin{picture}(0,0)(0,0)\put(-4,1.4){$\scriptscriptstyle\text{\ding{110}}$}\end{picture}\hspace{2pt}}
\newcommand{\mathds}{\mathbb}</math></div>
\label{PROB-2}Let <math>X</math>, <math>Y\sim\mathcal{N}(0,1,\mathbb{R}^d)</math>. Show the following.
<ul style="list-style-type:lower-roman"><li> <math>\forall\:d\geqslant1\colon\E(\|X-Y\|-\sqrt{2d})\leqslant1/\sqrt{2d}</math>.  
<ul style="list-style-type:lower-roman"><li> <math>\forall\:d\geqslant1\colon\E(\|X-Y\|-\sqrt{2d})\leqslant1/\sqrt{2d}</math>.  
</li>
</li>
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</li>
</li>
</ul>
</ul>
\smallskip
 
{
\small
''Hint:'' Check firstly <math>\V((X_i-Y_i)^2)=3</math> by establishing that <math>X_i-Y_i\sim\mathcal{N}(0,2,\mathbb{R})</math> and by using a suitable formula for computing the fourth moment. Conclude then that <math>\V(\|X-Y\|^2)\leqslant3d</math>. Adapt finally the arguments we gave above for <math>\E(\|X\|-\sqrt{d})</math> and <math>\V(\|X\|)</math>.
''Hint:'' Check firstly <math>\V((X_i-Y_i)^2)=3</math> by establishing that <math>X_i-Y_i\sim\mathcal{N}(0,2,\mathbb{R})</math> and by using a suitable formula for computing the fourth moment. Conclude then that <math>\V(\|X-Y\|^2)\leqslant3d</math>. Adapt finally the arguments we gave above for <math>\E(\|X\|-\sqrt{d})</math> and <math>\V(\|X\|)</math>.
}

Latest revision as of 01:41, 1 June 2024

[math] \newcommand{\smallfrac}[2]{\frac{#1}{#2}} \newcommand{\medfrac}[2]{\frac{#1}{#2}} \newcommand{\textfrac}[2]{\frac{#1}{#2}} \newcommand{\tr}{\operatorname{tr}} \newcommand{\e}{\operatorname{e}} \newcommand{\B}{\operatorname{B}} \newcommand{\Bbar}{\overline{\operatorname{B}}} \newcommand{\pr}{\operatorname{pr}} \newcommand{\dd}{\operatorname{d}\hspace{-1pt}} \newcommand{\E}{\operatorname{E}} \newcommand{\V}{\operatorname{V}} \newcommand{\Cov}{\operatorname{Cov}} \newcommand{\Bigsum}[2]{\mathop{\textstyle\sum}_{#1}^{#2}} \newcommand{\ran}{\operatorname{ran}} \newcommand{\card}{\#} \newcommand{\mathds}{\mathbb}[/math]

Let [math]X[/math], [math]Y\sim\mathcal{N}(0,1,\mathbb{R}^d)[/math]. Show the following.

  • [math]\forall\:d\geqslant1\colon\E(\|X-Y\|-\sqrt{2d})\leqslant1/\sqrt{2d}[/math].
  • [math]\forall\:d\geqslant1\colon\V(\|X-Y\|)\leqslant 3[/math].

Hint: Check firstly [math]\V((X_i-Y_i)^2)=3[/math] by establishing that [math]X_i-Y_i\sim\mathcal{N}(0,2,\mathbb{R})[/math] and by using a suitable formula for computing the fourth moment. Conclude then that [math]\V(\|X-Y\|^2)\leqslant3d[/math]. Adapt finally the arguments we gave above for [math]\E(\|X\|-\sqrt{d})[/math] and [math]\V(\|X\|)[/math].