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How to partition a matrix by sorting a column?

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Wan-Yi Chiu
Wan-Yi Chiu am 24 Feb. 2024
Verschoben: Stephen23 am 24 Feb. 2024
Dear friends:
I want to parttion a matrix into two submatrix by sorting the third column:
For example, the matrix is as follows:
A= [ 73.90 123.17 1.00;
73.79 121.83 0.00;
70.64 74.46 1.00;
69.74 86.40 0.00]
I need the output as:
A1= [ 73.90 123.17 1.00;
70.64 74.46 1.00]
and
A2= [ 73.79 121.83 0.00;
69.74 86.40 0.00]
Thank you very much.

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Akzeptierte Antwort

Walter Roberson
Walter Roberson am 24 Feb. 2024
Ran in:
A= [ 73.90 123.17 1.00;
73.79 121.83 0.00;
70.64 74.46 1.00;
69.74 86.40 0.00]
A = 4×3
73.9000 123.1700 1.0000 73.7900 121.8300 0 70.6400 74.4600 1.0000 69.7400 86.4000 0
u = unique(A(:,3));
A1 = A(A(:,3)==u(2),:)
A1 = 2×3
73.9000 123.1700 1.0000 70.6400 74.4600 1.0000
A2 = A(A(:,3)==u(1),:)
A2 = 2×3
73.7900 121.8300 0 69.7400 86.4000 0

Weitere Antworten (1)

Voss
Voss am 24 Feb. 2024
Ran in:
A= [ 73.90 123.17 1.00;
73.79 121.83 0.00;
70.64 74.46 1.00;
69.74 86.40 0.00]
A = 4×3
73.9000 123.1700 1.0000 73.7900 121.8300 0 70.6400 74.4600 1.0000 69.7400 86.4000 0
C = splitapply(@(x){x},A,findgroups(A(:,end)));
Cell array C contains the matrices you want, A1 and A2
C{:}
ans = 2×3
73.7900 121.8300 0 69.7400 86.4000 0
ans = 2×3
73.9000 123.1700 1.0000 70.6400 74.4600 1.0000
so you don't need to make them separate new variables, but you can
A1 = C{2}
A1 = 2×3
73.9000 123.1700 1.0000 70.6400 74.4600 1.0000
A2 = C{1}
A2 = 2×3
73.7900 121.8300 0 69.7400 86.4000 0

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