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I have to do matrix multiplication ABC.

If,

A = [-0.6481 -0.1222 0.7516]; 
B = [1 2 3
     4 5 6
     7 8 9]; 
C = [-0.1903
      0.3145 
      0.9299]; 

I get a scalar. Now,

A = [4 5 6
     7 8 9
     5 4 1
     1 2 3
     -----
     -----]         (20x3) 
B = [1 2 3
     4 5 6 
     7 8 9];        (3x3) 
C = [1 2 3 4 - - - -
     5 6 7 8 - - - -
     9 8 3 5 - - - -]; (3x20) 

and I want to do:

[4 5 6][1 2 3; 4 5 6; 7 8 9][1; 5; 9] 

then

[7 8 9][1 2 3; 4 5 6; 7 8 9][2; 6; 8] 

then

[5 4 1][1 2 3; 4 5 6; 7 8 9][3; 7; 3] 

& so on 20 times. Is it possible to do all at once.

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1  
If you take a row from A and a column from C you will get a scalar output. –  Daniel Jan 17 '14 at 10:26

2 Answers 2

Use the : symbol to extract row or columns from a matrix

For instance A(1,:) is the first row of A and B(:,3) is the third column of B

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If you want to get a 20x1 matrix as result your matrices that are multiplied should be of sizes [20,x][x,y][y,1]

Example:

A = rand(20,3)
B = rand(3,3)
C = rand(3,1)

A*B*C

Alternately you can create a bigger matrix, and then just take a column from it:

A = rand(20,3)
B = rand(3,3)
C = rand(3,20)

A*B*C
C(:,1)

Note that this is only part of the multiplication result, as in this case there would be 19 unused columns and you might as well just have done a smaller multiplication if you only need the first column.

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If, A = [-0.6481 -0.1222 0.7516]; B = [1 2 3;4 5 6;7 8 9]; C = [-0.1903;0.3145;0.9299]; I get a scalar. Now A = [4 5 6;7 8 9;5 4 1;1 2 3;---;---] (20x3) B = [1 2 3;4 5 6;7 8 9]; (3x3) C = [1 2 3 4 ----;5 6 7 8 ----;9 8 3 5 ----]; (3x20) and I want to do: [4 5 6][1 2 3;4 5 6;7 8 9][1;5;9] then [7 8 9][1 2 3;4 5 6;7 8 9][2;6;8] then [5 4 1][1 2 3;4 5 6;7 8 9][3;7;3] & so on 20 times –  raj Jan 17 '14 at 10:50
    
@raj You could consider a for loop, or perhaps diag(A*B*C) –  Dennis Jaheruddin Jan 17 '14 at 10:51

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