Taken from Mathematica help pages
Solve for \(u(x,t)\) \[ u_t+ c u_x = 0 \] With initial conditions \(u(x,0)=e^{-x^2}\)
Mathematica ✓
ClearAll["Global`*"]; ic = u[x, 0] == Exp[-x^2]; pde = D[u[x, t], {t}] + c*D[u[x, t], {x}] == 0; sol = AbsoluteTiming[TimeConstrained[DSolve[{pde, ic}, u[x, t], {x, t}], 60*10]];
\[\left \{\left \{u(x,t)\to e^{-(x-c t)^2}\right \}\right \}\]
Maple ✓
restart; interface(showassumed=0); pde := diff(u(x, t), t) + c* diff(u(x, t),x) =0; ic := u(x,0)=exp(-x^2); cpu_time := timelimit(60*10,CodeTools[Usage](assign('sol',pdsolve([pde,ic],u(x,t))),output='realtime'));
\[u \left (x , t\right ) = {\mathrm e}^{-\left (t c -x \right )^{2}}\]
Hand solution
Solve \begin {equation} u_{t}+cu_{x}=0\tag {1} \end {equation} with initial conditions \(u\left ( x,0\right ) =e^{-x^{2}}\).
Solution
Let \(u=u\left ( x\left ( t\right ) ,t\right ) \). Then \begin {equation} \frac {du}{dt}=\frac {\partial u}{\partial x}\frac {dx}{dt}+\frac {\partial u}{\partial t}\tag {2} \end {equation} Comparing (1),(2) shows that \begin {align} \frac {du}{dt} & =0\tag {3}\\ \frac {dx}{dt} & =c\tag {4} \end {align}
Solving (3) gives\begin {align} u & =u\left ( x\left ( 0\right ) \right ) \nonumber \\ & =e^{-x\left ( 0\right ) ^{2}}\tag {5} \end {align}
We need to find \(x\left ( 0\right ) \). From (4)\begin {align*} x & =ct+x\left ( 0\right ) \\ x\left ( 0\right ) & =x-ct \end {align*}
Then (5) becomes\[ u\left ( x\left ( t\right ) ,t\right ) =e^{-\left ( x-ct\right ) ^{2}}\]
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