The "why" is because the && operator "short-circuits"; IOW, if the first condition is met so the answer is known from the first condition irrespective of the latter then the latter isn't ever computed as there's no need for it.
If you write it in the other order, then MATLAB will evaluate the expression in the order it is written and so try to make the test and discover an "out-of-range" error when you try to reference x(j+1) where j=length(x).
To fix this, don't try to access elements outside the array; fix the for...end loop indices such that only reference elements in range in case the first test isn't satisfied. Of course, then you'll need some other error-checking as you'll have given the algorithm data that is outside the range.
for j=1:length(x)-1 % keep references to x(j+1) in bounds; limit upper loop limit
