Let $f: \mathbb{R}^n \to \mathbb{R}$. For $x \in \mathbb{R}^n$, the limit $\lim_{s \to 0} \frac{f(a + sx) - f(a)}{s}$ if it exists is called the directional derivative of $f$ at $a$ in the direction $x$ and is denoted $D_x f(a)$. I want to show that $D_{tx}f(a) = tD_xf(a)$. Help is appreciated.
Directional derivative question
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multivariable-calculus
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0That actually makes things a lot clearer. I was misinterpreting this problem. – 2012-06-13
1 Answers
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I’d prefer to give a hint, but I can’t think of one that doesn’t give the game away. It’s a straightforward computation: by definition
$\begin{align*}D_{tx}f(a)&=\lim_{s\to 0}\frac{f(a+stx)-f(a)}s\\\\ &=t\lim_{s\to 0}\frac{f(a+stx)-f(a)}{st}\\\\ &=t\lim_{st\to 0}\frac{f(a+stx)-f(a)}{st}\\\\ &=tD_xf(a)\;. \end{align*}$
Added: Note that this makes sense only if $t\ne 0$. If $t=0$, the difference quotient is identically $0$, since $f(a+stx)=f(a)$, and its limit is therefore $0$, which is indeed $tD_{tx}f(a)$.
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0@Marvis: You’re absolutely right; thanks. – 2012-06-13