Matrix formation by applying some operation using loop logic.

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prashanth
prashanth 2014 年 4 月 23 日
コメント済み: Chandrasekhar 2014 年 4 月 23 日
This first matrix table1 contains 5 names and 5 scenes.I need to perform some operations on this matrix and I have to obtain second matrix as shown in table2.
Diagonal elements of table2 should obtained by performing addition of 1st row,2nd row,3rd row..and so on.Remaining elements obtained by comparing 2 rows and summing them.Suppose take table1 as A matrix and table2 as B matrix.
OPERATION1:For diagonal elements
B(1,1)=7+7+7+1+0=22
B(2,2)=6+0+0+0+0=6
B(3,3)=0+6+0+4+0=10…….and so on
OPERATION2:For remaining elements
B(1,2)=MIN(A(1,1),A(2,1))+ MIN(A(1,2),A(2,2))+ MIN(A(1,4),A(2,4))+ MIN(A(1,5),A(2,5));
B(1,3)=
B(1,4)=
B(1,5)=
Table1:
Scene1 Scene2 Scene3 Scene4 Scene5
BASAVARAJ 7 7 7 1 0
MANOJ 6 0 0 0 0
NATESH 0 6 0 4 0
VIJAY 0 0 0 4 2
GOWDA 0 0 6 0 2
Table2:
BASAVARAJ MANOJ NATESH VIJAY GOWDA
BASAVARAJ 22 6 7 1 6
MANOJ 6 6 0 0 0
NATESH 7 0 10 4 0
VIJAY 1 0 4 6 2
GOWDA 6 0 0 2 8

採用された回答

Chandrasekhar
Chandrasekhar 2014 年 4 月 23 日
A = [7 7 7 1 0;6 0 0 0 0; 0 6 0 4 0;0 0 0 4 2;0 0 6 0 2];
for i = 1:5
for j = 1:5
if i == j
B(i,j) = sum(A(i,1:end));
else
minval = 0;
for k = 1:5
minval = minval + min(A(i,k),A(j,k));
end
B(i,j)= minval;
end
end
end

その他の回答 (1 件)

Andrei Bobrov
Andrei Bobrov 2014 年 4 月 23 日
編集済み: Andrei Bobrov 2014 年 4 月 23 日
s = size(A);
b = nchoosek(1:s(1),2);
B = zeros(s);
B(tril(true(s),-1)) = sum(min(A(b(:,1),:),A(b(:,2),:)),2);
B = B + B.';
B(eye(s)>0) = sum(A,2);
  1 件のコメント
Chandrasekhar
Chandrasekhar 2014 年 4 月 23 日
excellent..Really simple.. thanks

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