Substitute numbers in array

1 vue (au cours des 30 derniers jours)
majed majed
majed majed le 22 Mar 2016
Réponse apportée : Suraj Sudheer Menon le 22 Juin 2020
How are you everyone!
I have the array X=[1 2 3 4 5 6 7 8] I want to flip this array and change the numbers as next
1 to 5 and 5 to 1
2 to 6 and 6 to 2
3 to 7 and 7 to 3
4 to 8 and 8 to 4
So the result which I want after flipping and substitution is
XX=[4 3 2 1 8 7 6 5]

Connectez-vous pour répondre à cette question.

Réponses (4)

Azzi Abdelmalek
Azzi Abdelmalek le 22 Mar 2016
Modifié(e) : Azzi Abdelmalek le 22 Mar 2016
X=[1 2 3 4 5 6 7 8]
XX=[fliplr(X(1:4)) fliplr(X(5:end))]
  7 commentaires
Afficher 5 commentaires plus anciens
majed majed
majed majed le 22 Mar 2016
The numbers or values is just from 1 to 8
Azzi Abdelmalek
Azzi Abdelmalek le 22 Mar 2016
Now if you want to flip just 8 element:
X=[1 2 3 4 5 6 7 8 9 10 11]
XX=[fliplr(X(1:4)) fliplr(X(5:8)) X(8+1:end)]

Connectez-vous pour commenter.

Stephen23
Stephen23 le 22 Mar 2016
Modifié(e) : Stephen23 le 22 Mar 2016
Try this function. The matrix M defines any arbitrary values to swap. Note that these values are not used as indices so this is a general solution to the problem.
>> M = [1:4;5:8].'; % each row specifies one pair of values to swap
M =
1 5
2 6
3 7
4 8
>> fun = @(X)fliplr(reshape(M(:,[2,1]),1,[])*bsxfun(@eq,X,M(:)));
and the examples you gave are:
>> fun([1,2,3,4,5,6,7,8])
ans =
4 3 2 1 8 7 6 5
>> fun([1,3,6,5,3,3,2,8,7,6,5])
ans =
1 2 3 4 6 7 7 1 2 7 5
>> fun([5,6,4,3,7,8,3,2,1,7,8])
ans =
4 3 5 6 7 4 3 7 8 2 1
Jan
Jan le 22 Mar 2016
Modifié(e) : Jan le 22 Mar 2016
A job for a lookup table:
X = [1, 2, 3, 4, 5, 6, 7, 8]
LUT = [5, 6, 7, 8, 1, 2, 3, 4]
Result = LUT(fliplr(X))
  2 commentaires
Stephen23
Stephen23 le 22 Mar 2016
Modifié(e) : Stephen23 le 22 Mar 2016
Nice use of indexing :)
Note that it is not a general solution suitable for all data: if
X = [1,1e9]
what will LUT have to be?
Steven Lord
Steven Lord le 22 Mar 2016
In that case I would make the LUT a sparse column vector.
X = [1, 1e9];
LUT = sparse(X, 1, [2, 73]);
Y = full(flip(LUT(X)))

Connectez-vous pour commenter.

Suraj Sudheer Menon
Suraj Sudheer Menon le 22 Juin 2020
The following could be an approach:-
sub=[5 6 7 8 1 2 3 4];
XX=flip(X);
for i=1:numel(X)
XX(i)=sub(XX(i));
end
%XX contains neccesary values.

Catégories

En savoir plus sur Matrix Indexing 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