Use the following method:
(a) by differentiating the first equation with respect to $t$ and eliminating $y$;
(b) by differentiating the second equation with respect to $t$ and eliminating $x$.
to find the general solution of the system.
Problem Number One: $\frac{dx}{dt}=x+y$ $\frac{dy}{dt}=y$ $x'=x+y\space \space \rightarrow \space \space y=x'-x\space \space \rightarrow \space \space y'=x''-x'$ $y'=y$ $\text{So,}\space\space x''-x'=x'-x\space \space\rightarrow x''-2x'+x=0$ $\text{This is a second-order linear equation with constant coefficients so,}\space \space r^2-2r+r=0\rightarrow \space \space (r-1)^2=0 \space \space \text{where,}\space \space r=1$
$x=Ae^t+Bte^t$ $y=?$
Problem Number Two:
$\frac{dx}{dt}=x$ $\frac{dy}{dt}=y$ $x'=x$ $y'=y$ How do I solve this? It seems even simpler than problem number one, but i'm stumped.
Part (b) of this problem says show that any second-order equation obtained from the system in part (a) is not equivalent to this system, in the sense that it has solutions that are not part of any solution of the system. Thus, although higher-order equations are equivalent to systems, the reverse is not true, and the systems are definitely more general.