Nested for loop help needed

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Tom
Tom el 30 de Oct. de 2013
Editada: Cedric el 31 de Oct. de 2013
Hi guys, can anyone help me out with this one:
x =
A B C
D E F
G H I
J K L
I need to produce a loop which for this matrix, would output 3 numbers defined as:
1st = DG + EF + FI
2nd = DJ + EK + FL
3rd = GJ + HK + IL
1st = the elements of the second row * the elements of the third
2nd = the elements of the second row * the elements of the fourth
3rd = the elements of the third row * the element of the fourth
So you see, the second row is held and multiplied with all rows below it. Then the loop moves down so the third row is held and multiplied with all rows below it.
Also it's required that the loop can accommodate a matrix with any number of columns, but always three rows. If anyone's interested, the number of permutations = ((N-1)(N-2)) / 2 where N = number of columns
Could anyone help me in figuring this out? I've been getting tangled up in loops for a while now, but I think the problem is probably quite simple for someone with experience of such things.
Kind regards,
Tom
  8 comentarios
Image Analyst
Image Analyst el 31 de Oct. de 2013
Cedric
Cedric el 31 de Oct. de 2013
Editada: Cedric el 31 de Oct. de 2013
The way I understand it is that this thread is about combinations and the one that you mention is about "all rows until the end" .. but I might have misunderstood.

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Cedric
Cedric el 31 de Oct. de 2013
Editada: Cedric el 31 de Oct. de 2013
Following up on comments..
We usually try to avoid explicit loops when we can implement a matrix/vector approach. The latter is much more efficient than looping, especially looping over both rows and columns. My hints were showing how to get rid of the loop over columns:
X = ...
number1 = sum( X(2,:) .* X(3,:) ) ;
number2 = sum( X(2,:) .* X(4,:) ) ;
number3 = sum( X(3,:) .* X(4,:) ) ;
This is probably the best approach if you have only 4 rows in X, because it avoids the complication of looping over combinations of {2,3,4} taken 2 at a time. A loop for that would be more complex, probably less efficient, and involve more code.
If X had a variable number of rows, say nRow, and you needed to follow the same approach involving rows 2 to nRow, you could do it as follows:
X = randi(10, 6, 8) ; % Example with 6 rows and 8 columns.
combSet = nchoosek( 2:size(X,1), 2 ) ; % Array of all comb. of 2 elements.
results = zeros( size(combSet, 1), 1 ) ; % Prealloc. for results.
for cId = 1 : length( results )
results(cId) = sum( X(combSet(cId,1),:) .* X(combSet(cId,2),:) ) ;
end
With that, you get (you'll have different numbers due to RANDI)
>> X
X =
9 3 10 8 7 8 7 8
10 6 5 10 8 1 4 8
2 10 9 7 8 3 10 2
10 10 2 1 4 1 1 5
7 2 5 9 7 1 5 5
1 10 10 10 2 9 4 7
>> combSet
combSet =
2 3
2 4
2 5
2 6
3 4
3 5
3 6
4 5
4 6
5 6
>> results
results =
318
257
314
317
200
261
359
168
196
245
Check, taking e.g. combination 3
>> sum( X(2,:) .* X(5,:) )
ans =
314
which is results(3), so it seems to be working.

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