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Let's say we have a function of the form $f(x+vt)$ where $v$ is a constant and $x,t$ are independent variables. How is $\frac{\partial f}{\partial x} = \frac{1}{v}\frac{\partial f}{\partial t}$ equal to $f$?

If I let $u=x+vt$ then $\frac{\partial f}{\partial x} = \frac{\partial f}{\partial u}\frac{\partial u}{\partial x} = \frac{\partial f/\partial t}{\partial u/\partial t}\frac{\partial u}{\partial x}=\frac{1}{v}\frac{\partial f}{\partial t}$ but I cannot infer that $ \frac{1}{v}\frac{\partial f}{\partial t} = f$ unless I assume the form of D'Alembert's Solution to be the harmonic (exponential). For the general solution I do not know how this was arrived at.

Edit: I still don't get it, as the context does not help. But I assume since it is a physics text, $f$ can be written as a Fourier series/integral of exponentials. Assuming that, the above holds.

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    You are correct. Where did you see it written that you can make this inference?2011-10-10
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    There is a function $f:\ s\mapsto f(s)$ of one variable and a function $u:\ (x,t)\mapsto f(x+vt)$ of two variables. All you can say is that $${\partial u\over\partial x}={1\over v}{\partial u\over\partial t}=f'(x+vt)\qquad \forall x, \ \forall t\ .$$2011-10-10
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    Are you by any chance of south asian descent? Your username "kuch nahi" means "nothing" in some sense in urdu/hindi2011-10-14
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    @Tyler Yes (hindi). As I wrote in chat an hour ago, it is a close approximation of my progress in mathematics.2011-10-14
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    @Christian What does the $'$ in $f '$ indicate, ie, $\frac{d}{dt}$ or $\frac{d}{dx}$ or either??2016-08-07
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    @user45664: It means the derivative of $f$, whatever the name of the single independent variable.2016-08-07
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    @Christian So in $f'(x+vt)$ how would one know if its wrt $t$ or$x$? (this has caused me problems before) :)2016-08-07

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You are correct - you can't infer that $f'(x) = f(x)$ unless $f$ is exponential, i.e. if $f(x)=A\exp(x)$.