0

I got these two vectors, with 9 elements each:

>> length(a)

ans =

     9

>> length(c)

ans =

     9

And this code:

z=0;
s=0;
temp=0;
for K = 1:length(c)
    temp=c(K)*a(K);
    z=prod(1-a(K+1:end));
    s=s+temp*z;
end

The vector's a indexing is done via K itterator. I would expect that index would blow. Am i missing something here?

2
  • 2
    Why do you expect it to fail? since length(a) and length(c) are the same, K won't go out of bounds for a. Perhaps you're thinking of iterators as pointers such as in C++, but in MATLAB we don't have that: K is simply a number that goes from 1:length(c), and you're indexing the matrices a and c with this number.
    – Steve Heim
    May 9, 2016 at 0:21
  • 2
    @Steve Heim, you are only considering the temp=c(K)*a(K) line, not the a(K+1:end) indexing. May 9, 2016 at 0:45

1 Answer 1

5

It does not give an error because

prod([]) = 1

So after K+1 becomes 10, a becomes [] and the output becomes

z = prod(1-[])
z = 1

Hope this helps!

1
  • Regarding why it's an empty array, see the docs for end: The end function also serves as the last index in an indexing expression. In that context, end is the same as size(X,k) when used as part of the kth index into array X.
    – sco1
    May 9, 2016 at 16:50

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.