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Assume that there is a matrix

m = magic(5)

ans =
    17    24     1     8    15
    23     5     7    14    16
     4     6    13    20    22
    10    12    19    21     3
    11    18    25     2     9

As known, in order to change a specific values (eg: change to 0 if greater than 10) in a m×n matrix,

    m(m>10) = 0
m =
     0     0     1     8     0
     0     5     7     0     0
     4     6     0     0     0
    10     0     0     0     3
     0     0     0     2     9

I have a k×m×n matrix which consists of random 0s, 1s and 2s. k has iteration values 1 to 10 and will not be changed.

How can I change 1s to 0s then 2s to 1 sequentially? But kshould be unchanged. Only the values in m's and n's.

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closed as off-topic by Daniel, bla, horchler, Dennis Jaheruddin, Shai Apr 30 '14 at 11:04

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4  
There is no difference for 3D matrices. Do it exactly the same way. –  Daniel Jan 7 '14 at 18:49
    
I don't understand... if k is row, m is column, and n depth, any given element will have all three indices... Do you mean that for a given k, the m x n matrix should be changed? –  darthbith Jan 7 '14 at 18:51
    
I still don't understand... are you trying to not change the first column of the matrix for all the rows (or at least the first ten) and all of the depths? If that's the case, temp = m(:,2:end,:); temp(temp==1) = 0; temp(temp==2) = 1; m(:,2:end,:) = temp; should work, but there might be more efficient ways... –  darthbith Jan 7 '14 at 19:01
    
when you put k in for loop, you are essentially accessing the 2-D slices of a 3-D matrix (or in general, a n-1 dimensional slice of a n-D matrix). Instead of that, you can do it the same way as you do it for the 2-D case. For example, if a is a 3-D matrix, do: a(a==1)=0 and a(a==2)=1 –  Parag S. Chandakkar Jan 7 '14 at 19:17

1 Answer 1

up vote 1 down vote accepted

As an example of "Do it exactly the same way":

>> m = round(rand(3,2,2)*2)
m(:,:,1) =
     1     1
     0     0
     1     2
m(:,:,2) =
     1     1
     0     1
     2     1

>> m(m==1)=0
m(:,:,1) =
     0     0
     0     0
     0     2
m(:,:,2) =
     0     0
     0     0
     2     0

>> m(m==2)=1
m(:,:,1) =
     0     0
     0     0
     0     1
m(:,:,2) =
     0     0
     0     0
     1     0

The 3D logical mask returned by m==2 in this case can be used on any array with the same size.

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