Attempt to reference field of non-structure array.

2 vues (au cours des 30 derniers jours)
Cat
Cat le 22 Fév 2015
Modifié(e) : Cat le 24 Fév 2015
So I'm trying to write a code to count the inversions in an array. So in the array [6,4,3,5,1,2] there are 12 inversions. 6 is greater than 5 of the numbers to the right of it, 4 is greater than three of the numbers to the right of it, and so on. However, I need it so that the function doesn't count zero. So if there was a zero in the place of the 3, 6 would only be greater than 4 of the numbers to the right of it. (zero counts as a space, not as a number. I got some help, and this is the code I have to far
while (a <= array.length)
while (b <= array.length)
if array(a)>array(b);
count = count + 1;
else
count = count + 0;
end
b = b + 1;
end
a = a + 1;
end
When I try to run an example array through it and then try to display the count, it gives me the error "Attempt to reference field of non-structure array." Any help with what I'm doing wrong? Or how to add to the function so it doesn't count being greater as an inversion?
UPDATE: fixing the error of using left in place of right
  3 commentaires
Afficher 1 commentaire plus ancien
Image Analyst
Image Analyst le 23 Fév 2015
What's your definition of inversion? And 6 doesn't have any numbers to the left of it. 4 has 1 number to the left of it, not 3. And this isn't .Net - there is no .length method to the variables. Use the length() function.
Cat
Cat le 24 Fév 2015
Modifié(e) : Cat le 24 Fév 2015
So sorry, I meant numbers to the right. And yes, it has to be compared to every number to the right. It's part of a larger function. We are trying to see if a matrix is solvable as a square puzzle. http://www.cs.bham.ac.uk/~mdr/teaching/modules04/java2/TilesSolvability.html here is a link with more information on the inversions and the goal of the function if it helps

Connectez-vous pour commenter.

Connectez-vous pour répondre à cette question.

Réponse acceptée

Andrew Newell
Andrew Newell le 24 Fév 2015
Suppose we start with the example from your link:
array = [12 1 10 2 7 11 4 14 5 0 9 15 8 13 6 3];
To eliminate the zero entries, just do this:
array = array(array~=0);
A pretty good way of counting the inversions expresses them as a logical relation, e.g.,
array(2:end) > array(1)
ans =
0 0 0 0 0 0 1 0 0 1 0 1 0 0
Then you can just add up the 1's to get the number of inversions. You can do this in a loop:
count = 0;
for ii=1:length(array)-1
count = count + sum(array(ii+1:end)<array(ii));
end
There are more compact ways of doing this, but they're pretty cryptic.

Plus de réponses (1)

Chris McComb
Chris McComb le 23 Fév 2015
I think that your problem is that array is not a structure. In order to get the length of a, use:
length(array)
instead of:
array.length
  1 commentaire
Cat
Cat le 24 Fév 2015
Do you have any suggestions for how to not include the zero? I should have put this in the original question. http://www.cs.bham.ac.uk/~mdr/teaching/modules04/java2/TilesSolvability.html This link contains a really good example of the inversions and how it is supposed to play into a bigger function

Connectez-vous pour commenter.

Catégories

En savoir plus sur Startup and Shutdown dans Help Center et File Exchange

Tags

Community Treasure Hunt

Find the treasures in MATLAB Central and discover how the community can help you!

Start Hunting!

Translated by