"I don't understant what a non-scalar structure implies at the moment but I'll look into it"
A non-scalar structure is simply a structure array:
s(1).x = 1234;
s(2).x = 4567;
Whereas at the moment what you're doing is storing 1x1 structures (actually from your description I think it's 1x1 objects) into a 1D cell array, so instead you have:
c{1} = struct('x', 1234);
c{2} = struct('x', 4567);
I think you're using objects not structures, but what Stephen said about structures also applies to objects. You can use an array of objects as long as they are the same class, instead of storing them in a cell array.
However, in your case it appears that you're using two different classes. In that case, in order to put all these objects in an array, you will have to derive each class from matlab.mixin.heterogeneous. If it's beyond your current level, then stay with a cell array but you have to be aware that indeed you won't be able to write anything like Forest{a:b}. You will have to loop over the elements of the cell array either with a explicit loop or with cellfun and co. To calculate the distance of a tree against all other trees:
curtree = Forest{i};
dist = cellfun(@(tree) hypot(tree.x - curtree.x, tree.y - curtree.y), Forest(1:i-1));
if any(dist < 0.5)
end
edit: actually looking a bit more closely at your code, it looks like your Oak and Birch are already heterogeneous arrays since you have:
shoot(i) = Oak(..)
else
shoot(i) = Birch(..)
Functionally, there's no difference between the cell array Forest of scalar objects and the non-scalar heterogeneous object shoot. So you could also do:
dist = hypot([shoot(1:i-1).x] - shoot(i).x, [shoot(1:i-1).y] - shoot(i).y);
if any(dist < 0.5)
end
and never bother with Forest.
