In the previous question you have a single set (x) that has several elements that you want to link to.
In the new problem, you do not have a single set, so you have a way to search each of the possible solutions. There is no easy way to do this. The two ways I know how to do this is with if/else tree (messy), or an enumerator and switch/case setup (not as messy).
if/else tree example
for i = 1:3
if(x(i) == A)
x1(i) = 'A';
elseif( x(i) == B)
...
...
end
end
The other option is using enumeration and switch/case. I've only used enumeration in older versions, so the following is a quick setup for 2009 A.
classdeff my_letters (Enumeration) < int32
proerties
A = 6;
B = 7;
C = 8;
end
methods (static)
function str = string(input)
switch int32(input)
case my_letter.A
str = 'A';
...
...
...
end
end
Now you can use a switch case as opposed to an if-else tree
Switch x(i)
case int32(my_letters.A)
X1(i) = my_letters.A.string();
...
...
end
The switch/Case is cleaner and faster code wise.
