Filter löschen
Filter löschen

use matrix, premutation?

2 Ansichten (letzte 30 Tage)
kevin
kevin am 2 Apr. 2012
i use the command
c=[1,2,3,4,5] perms(c)
to generate all permutation of c. and there are 2 equation which use the
j=sin(0*c)+sin(72*c)+sin(144*c)+sin(216*c)+sin(288*c)
k=cos(0*c)+cos(72*c)+cos(144*c)+cos(216*c)+cos(288*c)
and Z=j+k
how can i find what permutation for minimum z? the permutation must be the same for both j and k at the same time ie
j=sin(0*1)+sin(72*2)+sin(144*3)+sin(216*4)+sin(288*5)
k=cos(0*1)+cos(72*2)+cos(144*3)+cos(216*4)+cos(288*5)
i actually wrote the euqation wrong, sorry. but if
j=sin(0)*c+sin(72)*c+sin(144)*c+sin(216)*c+sin(288)*c
k=cos(0)*c+cos(72)*c+cos(144)*c+cos(216)*c+cos(288)*c
would that change anything?
  1 Kommentar
Walter Roberson
Walter Roberson am 2 Apr. 2012
Is your earlier question http://www.mathworks.com/matlabcentral/answers/34267-ordering-a-list-of-number considered answered? If so please Accept the answer; otherwise there is the appearance that this is an extension of the previous question that should be merged with it.

Melden Sie sich an, um zu kommentieren.

Melden Sie sich an, um diese Frage zu beantworten.

Akzeptierte Antwort

Thomas
Thomas am 2 Apr. 2012
Another way:
c=[1,2,3,4,5];
c=perms(c);
z=[];
j=[];
k=[];
for i=1:length(c)
j(i)=sin(0*c(i,1))*sin(72*c(i,2))+sin(144*c(i,3))+sin(216*c(i,4))+sin(288*c(i,5));
k(i)=cos(0*c(i,1))*cos(72*c(i,2))+cos(144*c(i,3))+cos(216*c(i,4))+cos(288*c(i,5));
z(i)=j(i)+k(i);
end
[p,q,r]=find(z==min(z));
c(q,:)
minz=min(z)
  6 Kommentare
4 ältere Kommentare anzeigen
Matt Tearle
Matt Tearle am 2 Apr. 2012
Actually, z = []; doesn't preallocate space. It only makes an empty matrix. A better approach would be
n = length(c);
j = zeros(n,1);
k = zeros(n,1);
for i = 1:n
...
Also, calculating z inside the loop isn't necessary. Just do z = j+k; at the end. Natural vectorized expressions like that are one of the main strengths of MATLAB. (Of course, I'd say that you don't need loops at all...)
Thomas
Thomas am 2 Apr. 2012
true, z need not be calculated inside the loop.. z=j+k+.. at the end should work just as well..

Melden Sie sich an, um zu kommentieren.

Weitere Antworten (1)

Matt Tearle
Matt Tearle am 2 Apr. 2012
I think this is what you're after:
c=[1,2,3,4,5];
cp = perms(c);
% 0*c1, 72*c2, 144*c3, 216*c4, 288*c5
allc = bsxfun(@times,[0 72 144 216 288],cp);
sc = sin(allc);
cc = cos(allc);
j = sc(:,1).*sc(:,2)+sum(sc(:,3:5),2);
k = cc(:,1) + cc(:,2).*cc(:,3) + cc(:,4) + cc(:,5);
z = j+k;
% which row of the c permutations corresponds to the minimum value of z?
cp(z==min(z),:)
If j and k were all sums, this would be a bit neater, but I'm assuming the products there are deliberate.
EDIT TO ADD: From your comment in reply to Thomas, it seems like maybe these should all be sums (ie no products). In that case:
c=[1,2,3,4,5];
cp = perms(c);
% 0*c1, 72*c2, 144*c3, 216*c4, 288*c5
allc = bsxfun(@times,[0 72 144 216 288],cp);
% sin(0*c1) + sin(72*c2) + ...
j = sum(sin(allc),2);
k = sum(cos(allc),2);
z = j+k;
% which row of the c permutations corresponds to the minimum value of z?
cp(z==min(z),:)

Kategorien

Mehr zu Logical finden Sie in Help Center und File Exchange

Tags

Community Treasure Hunt

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

Start Hunting!

Translated by