Left shift is not working

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Ayesa
Ayesa el 14 de Dic. de 2011
Hi. I am trying to left shift of a m by n matrix but its not working.
PP = [1 2 3 4 %PP can be any size
1 2 3 4,
1 2 3 4]
I want:
PP = [1 2 3 4
2 3 4 0
3 4 0 0]
I used following code(Here i have to use loop because PP actually a very large size matrrix):
[rows cols]= size(PP);
B = zeros(size(PP));
for i = 1:rows
B = zeros(size(PP));
PP_shift(i, :) = [PP(i,(cols:-1:i)) B(1,(i-1))];
end
PP_shift
But its showing me error. Can anyone please help me? Thanks.
  2 comentarios
Knut
Knut el 14 de Dic. de 2011
I dont have Matlab here, but could you not do something like:
[rows cols]= size(PP);
PP_shift = zeros(size(PP));
for i = 1:rows
PP_shift(i,1:end-i+1) = PP(i,i:end);
end
PP_shift
BTW, there is probably some neat 2d/1d way of indexing PP that will give you the desired result with faster execution. Perhaps ind2sub().
Ayesa
Ayesa el 14 de Dic. de 2011
Thank you so much. It works perfectly. Again many thanks.

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Walter Roberson
Walter Roberson el 14 de Dic. de 2011
If "i" is the number of rows, then why are you using "i" to index the second dimension of B, which is the position for the column number?
Hint: B does not need to be a full-sized array; it could be a vector.
  2 comentarios
Ayesa
Ayesa el 14 de Dic. de 2011
I use "i" to index the second dimension of B because for each row of PP_shift, there should be (i-1) column zeros of B inserted. So when rows = 1, B is a empty matrix, rows = 2, B is a 1 by 1 matrix ,when rows = 3, B is a 1 by 2 matrix and so on.
Otherwise how can i do that?
Walter Roberson
Walter Roberson el 14 de Dic. de 2011
Suppose PP is (say) 5 by 3. Then you would create B as 5 by 3 because you create it the same size as PP. Then when you got to row 5 (i=5) you would be trying to index B at (1,i-1) would would be (1,4) which would not exist because B would only be 3 wide.
hint: in your PP_shift line, replace B by the word zeros

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