How can I subtract columns for each row by using a for loop

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Jimmy
Jimmy il 29 Set 2014
Modificato: Andrei Bobrov il 30 Set 2014
Hi,
I have a matrix like this:
[1.011 1.004 1.054
1.008 0.998 1.042
0.984 0.988 1.024
1.026 1.006 1.016
1.000 0.996 0.977]
I would like to subtract each column for each row and store these results in a new matrix. How can I do this?
Thanks!
  2 Commenti
Joseph Cheng
Joseph Cheng il 29 Set 2014
can you expand on what you mean by subtract each column for each row? I do not understand what you're subtracting with.
Jimmy
Jimmy il 29 Set 2014
Ok.
In this example I use 3 columns. I want to subtract the column for each possible combinations for each row. So lets say for row 1, I want subtract col 1 - 2, col 1 - 3, col 2 - 3 and so on. I want for row 2 the same subtractions.

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dpb
dpb il 29 Set 2014
Modificato: dpb il 29 Set 2014
nk=nchoosek(1:size(x,2),2);
dx=zeros(size(x,1),size(nk,1));
for i=1:size(nk,1)
dx=x(:,nk(i,2))-x(:,nk(i,1));
end

Più risposte (3)

Joseph Cheng
Joseph Cheng il 29 Set 2014
Modificato: Joseph Cheng il 29 Set 2014
you can use combnk() or nchoosek to determine the combination of column subtraction and perform a for loop for each combination.
X = randi(10,4,3);
combin = combnk(1:size(X,2),2);
for ind = 1:size(X,2)
newX(:,ind) = X(:,combin(ind,1))-X(:,combin(ind,2));
end
Guillaume
Guillaume il 29 Set 2014
Use nchoosek to get all possible combinations of columns, and use that to calculate your differences:
m = [1.011 1.004 1.054
1.008 0.998 1.042
0.984 0.988 1.024
1.026 1.006 1.016
1.000 0.996 0.977];
colcomb = nchoosek(1:size(m, 2), 2);
coldiff = zeros(size(m, 1), size(colcomb, 1));
for comb = 1:size(colcomb, 1)
coldiff(:, comb) = diff(m(:, colcomb(comb, :)), 1, 2);
end
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dpb
dpb il 29 Set 2014
For what working definition of small? But, basic idea is one of two choices...
a) go ahead and generate all pairs and then compute the comparison statistic and choose the N smallest of those, or,
b) compute each pair and the statistic at same time; after N replace the largest of those kept with the last if new is less; update the maxValue comparison value.
Jimmy
Jimmy il 30 Set 2014
I choose for option a. Since the 10 smallest pairs are different for each row (the rows are basically the time line (t).) In the end I want to trade each pair for 125 days on a rolling window. For that reason I want to know which pairs I am trading.

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Andrei Bobrov
Andrei Bobrov il 30 Set 2014
Modificato: Andrei Bobrov il 30 Set 2014
X = [1.011 1.004 1.054
1.008 0.998 1.042
0.984 0.988 1.024
1.026 1.006 1.016
1.000 0.996 0.977];
n = nchoosek(1:size(X,2),2);
out = squeeze(diff(reshape(X(:,n'),[],2,3),1,2));

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