Exercise:
Consider the function ${{f}_{n}}\left( x \right)={{x}^{n}}-nx+1\,\,,\,\,n\in \mathbb{N}$ such that $n\ge 3$
1) Show that , ${{f}_{n}}\left( x \right)=0$ has unique solution ${{\alpha }_{n}}\in \left[ 0,1 \right]$
2) Compare ${{\alpha }_{n}}\,,\,\frac{1}{n}\,\,\And \,\,\frac{2}{n}$
3) Find the limit of ${{\alpha }_{n}}$ and $n{{\alpha }_{n}}$ as $n\to \infty $
Solution:
1) We have${{f}_{n}}$ is a continuous function in$\mathbb{R}$ (${{f}_{n}}$ is a polynomial of degree n)
$f{{'}_{n}}\left( x \right)=n{{x}^{n-1}}-n=n\left( {{x}^{n-1}}-1 \right)$ but $0\le x\le 1\Leftrightarrow 0\le {{x}^{n-1}}\le 1\Leftrightarrow -1\le {{x}^{n-1}}-1\le 0$
Hence $f{{'}_{n}}\left( x \right)<0$ $\Rightarrow {{f}_{n}}$ is strictly decreasing function thus monotone function
Also ${{f}_{n}}\left( 0 \right)=0-n0+1=1>0\,\,\And \,\,{{f}_{n}}\left( 1 \right)=1-n+1=2-n<0$
Hence ${{f}_{n}}\left( 0 \right)\times {{f}_{n}}\left( 1 \right)=1\left( 2-n \right)<0$ so by IVT ${{f}_{n}}\left( x \right)=0$ has unique solution ${{\alpha }_{n}}\in \left[ 0,1 \right]$
2) We have ${{\alpha }_{n}}\in \left[ 0,1 \right]$ is a root for ${{f}_{n}}\Leftrightarrow {{f}_{n}}\left( {{\alpha }_{n}} \right)=0$ so we need to compute the following
${{f}_{n}}\left( \frac{1}{n} \right)={{\left( \frac{1}{n} \right)}^{n}}-n\frac{1}{n}+1=\frac{1}{{{n}^{n}}}>0$
And ${{f}_{n}}\left( \frac{2}{n} \right)=\frac{{{2}^{n}}}{{{n}^{n}}}-\frac{2n}{n}+1=\frac{{{2}^{n}}}{{{n}^{n}}}-1={{\left( \frac{2}{n} \right)}^{n}}-1$
We have $\frac{1}{n}<0\Leftrightarrow \frac{2}{n}<0\Leftrightarrow {{\left( \frac{2}{n} \right)}^{n}}<0\Leftrightarrow {{\left( \frac{2}{n} \right)}^{n}}-1<-1<0$
Thus $f\left( \frac{2}{n} \right)<{{f}_{n}}\left( {{\alpha }_{n}} \right)<f\left( \frac{1}{n} \right)\Leftrightarrow \frac{2}{n}<{{\alpha }_{n}}<\frac{1}{n}$
3) As $n\to \infty \,,\,\frac{2}{n}\to 0\,\,\And \,\,\frac{1}{n}\to 0$ hence by squeeze theorem ${{\alpha }_{n}}\to 0$
We have ${{\alpha }_{n}}$ is a root for ${{f}_{n}}$ thus ${{f}_{n}}\left( {{\alpha }_{n}} \right)=0\Leftrightarrow \alpha _{n}^{n}-n\alpha +1=0\Leftrightarrow n{{\alpha }_{n}}=\alpha _{n}^{n}+1$
Thus $\underset{n\to \infty }{\mathop{\lim }}\,n{{\alpha }_{n}}=\underset{n\to \infty }{\mathop{\lim }}\,{{\left( {{\alpha }_{n}} \right)}^{n}}+1=0+1=1$
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