Filter löschen
Filter löschen

How to write cyclic permutation as an array in matlab?

17 Ansichten (letzte 30 Tage)
lilly lord
lilly lord am 26 Jul. 2021
Kommentiert: lilly lord am 27 Jul. 2021
I have disjoint permutation cycles such as (1 4 6 2 5 7 8 3)(9 10) means
1 comes under 4th position, 4 will be at 6th position ,6 will be at 2nd position and so on. 3 will be at first position .(9,10) means that 9 will ne at 10 position and 10 will be placed at 9th position.(Look at the second row of the output given below)
S=[1:10; 3 6 8 1 2 4 5 7 10 9];
out put is
1 2 3 4 5 6 7 8 9 10
3 6 8 1 2 4 5 7 10 9
It is easy when we have small permutation, but for large set like
perm=[22, 35, 17, 9, 11, 23, 56, 43, 25, 19, 26, 15, 28, 30, 6, 1, 33, 24, 12, 14, 47, 18, 20, 31, 41, 39, 32, 27, 34, 13, 21, 4, 2, 16, 8, 49, 7, 38, 40, 29, 10, 3, 5, 36, 42, 37, 44, 46, 48, 50];
required=[1:50;6 4 10 21 3 30 45 16 17 29 9 24 34 12 26 2 35 47 25 18 13 50 11 33 43 19 32 15 40 28 20 39 1 27 22 5 42 7 41 38 31 36 23 37 49 44 14 46 8 48 ];
output is
1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 16 17 18 19 20 21 22 23 24 25 26 27 28 29 30 31 32 33 34 35 36 37 38 39 40 41 42 43 44 45 46 47 48 49 50
6 4 10 21 3 30 45 16 17 29 9 24 34 12 26 2 35 47 25 18 13 50 11 33 43 19 32 15 40 28 20 39 1 27 22 5 42 7 41 38 31 36 23 37 49 44 14 46 8 48
Is there a way in matlab that we can fill up the second row for large pemutation it is difficult to write manually.
Thanks in advance

Melden Sie sich an, um diese Frage zu beantworten.

Akzeptierte Antwort

Jan
Jan am 26 Jul. 2021
Bearbeitet: Jan am 26 Jul. 2021
Ran in:
P = [1 4 6 2 5 7 8 3];
Q = zeros(size(P));
Q(circshift(P, -1)) = P
Q = 1×8
3 6 8 1 2 4 5 7
P = [22, 35, 17, 9, 11, 23, 56, 43, 25, 19, 26, 15, 28, 30, 6, 1, ...
... % ^^ Greater than length(P) ?!?
33, 24, 12, 14, 47, 18, 20, 31, 41, 39, 32, 27, 34, 13, 21, 4, ...
2, 16, 8, 49, 7, 38, 40, 29, 10, 3, 5, 36, 42, 37, 44, 46, 48, 50];
wanted = [6 4 10 21 3 30 45 16 17 29 9 24 34 12 26 2 35 47 25 18 13 50, ...
11 33 43 19 32 15 40 28 20 39 1 27 22 5 42 7 41 38 31 36 23 37 49, ...
44 14 46 8 48];
Q = zeros(size(P));
Q(circshift(P, -1)) = P
Q = 1×56
6 4 10 21 3 30 49 16 17 29 9 24 34 12 26 2 35 47 25 18 13 50 11 33 43 19 32 15 40 28
isequal(Q, wanted)
ans = logical
0
There is a typo in your data at P==56. The 45 is missing, but it must be at another location.
This is working to get your output: wanted
P = [22, 35, 17, 9, 11, 23, 43, 25, 19, 26, 15, 28, 30, 6, 1, 33, ...
24, 12, 14, 47, 18, 20, 31, 41, 39, 32, 27, 34, 13, 21, 4, 2, ...
16, 8, 49, 45, 7, 38, 40, 29, 10, 3, 5, 36, 42, 37, 44, 46, 48, 50];
  3 Kommentare
1 älteren Kommentar anzeigen
Jan
Jan am 27 Jul. 2021
Bearbeitet: Jan am 27 Jul. 2021
Ran in:
I do not know, how the input is stored for "(1 4 6 2 5 7 8 3)(9 10)". Therefore I cannot write some code to convert this unkown input to a specific output.
Bold guessing is no fair strategy in programming. But let me try it:
PList = {[1, 4, 6, 2, 5, 7, 8, 3], [9, 10]};
maxIndex = max(cellfun(@max, PList, 'UniformOutput', true));
Q = zeros(1, maxIndex);
for iP = 1:numel(PList)
P = PList{iP};
Q(circshift(P, -1)) = P;
end
Q
Q = 1×10
3 6 8 1 2 4 5 7 10 9
So simple apply the code I've suggested in a loop.
It took some time to cope the the error for P==56 in your second example. Did I oversee a point or has this been y typo?
lilly lord
lilly lord am 27 Jul. 2021
p=56 is written by mistake. Your code works excellent . Thanks a lot

Melden Sie sich an, um zu kommentieren.

Weitere Antworten (0)

Kategorien

Mehr zu Mathematics 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