Help splitting a matrix based on a specified column.

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Worravit nova
Worravit nova el 22 de En. de 2011
Comentada: Stephen23 el 18 de Ag. de 2020
I have matrix(A) with 13x3 like this:
No. value1 value2
1 12 0
2 4 0
3 8 0
4 1 0
5 9 0
6 5 0
7 3 0
8 1 0
9 1 2
10 12 0
11 11 12
12 10 0
13 3 4
And I want to split it to two matrix B and C like this:
B=
No. value1 value2
1 12 0
2 4 0
3 8 0
4 1 0
5 9 0
6 5 0
7 3 0
8 1 0
10 12 0
12 10 0
which is only colum of value2=0
And matrix C=
No. value1 value2
9 1 2
11 11 12
13 3 4
which is only colum of values2 not zeros
I did :
nonzeros(A)
but it gave me a one colum matrix which is not I want. I need to keep up the relation between value1 and value2.
find(shearingedges(:,1)>0) & (shearingedges(:,2)>0):
But it gave me a colum matrix with 1 and 0.
Could anyone help please?
  1 comentario
Walter Roberson
Walter Roberson el 22 de En. de 2011
Unfortunately the formatting of this question makes it difficult to figure out what you are asking. It would help to edit the question so that the different rows of the examples were on different lines.

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Paulo Silva
Paulo Silva el 22 de En. de 2011
A=[1 12 0 2 4 0 3 8 0 4 1 0 5 9 0 6 5 0 7 3 0 8 1 0 9 1 2 10 12 0 11 11 12 12 10 0 13 3 4]
B=A(find(A==0))
C=A(find(A))
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Todd Flanagan
Todd Flanagan el 25 de En. de 2011
Worravit says, "Thank you so much paulo and Rob
your answers very helpfull."
Paulo Silva
Paulo Silva el 26 de En. de 2011
Sean I know that find wasn't required, I use find often just for the code to be more readable by new users.

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Más respuestas (2)

Rob Graessle
Rob Graessle el 22 de En. de 2011
Try this:
B=A(A(:,3) == 0, :)
C=A(A(:,3) ~= 0, :)
Hy
Hy el 25 de En. de 2011
There seem to be 3 questions here.
1. How to select rows from a matrix according to a criterion?
2. How to select rows from a matrix according to two criteria?
3. What does nonzeros do?
Answers:
1. Rob's answer using logical indexing ( docs, newsletter ) is correct:
myCriteria = A(:,3) == 0;
B = A(myCriteria,:);
C = A(not(myCriteria));
2. The answer-seeker then poses the code
find(shearingedges(:,1)>0) & (shearingedges(:,2)>0):
if we remove the find(), a parenthesis, and end the line with a semicolon, we get
myCriteria = shearingedges(:,1)>0) & shearingedges(:,2)>0;
This is valid syntax for logical indexing, and the rest of the syntax from question 1 can be used. The "column matrix with 1 and 0" is the vector used for logical indexing. MATLAB treats a 1 as equivalent to true and a 0 as equivalent to false, and so uses them when displaying logical arrays.
3. The link above gives a full explanation, but simply, nonzeros is not directly helpful for indexing because it returns only the values of an array that are nonzero.

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