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Suppose I have the following equations:

 x + 2y + 3z = 20  
2x + 5y + 9z = 100  
5x + 7y + 8z = 200

How do I solve these equations for x, y and z? I would like to solve these equations, if possible, using R or any other computer tools.

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3  
hint: ?solve ... – Ben Bolker Nov 16 '11 at 1:59
    
also, I think "ternary" may not be the most descriptive term. I would call this "a set of three coupled linear equations" – Ben Bolker Nov 16 '11 at 2:15
    
Along with Ben's comment, re-write it as a matrix equation. – Brian Diggs Nov 16 '11 at 5:49

This should work

A <- matrix(data=c(1, 2, 3, 2, 5, 9, 5, 7, 8), nrow=3, ncol=3, byrow=TRUE)    
b <- matrix(data=c(20, 100, 200), nrow=3, ncol=1, byrow=FALSE)
round(solve(A, b), 3)

     [,1]
[1,]  320
[2,] -360
[3,]  140
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If you plug the values 120, 0, -20 back into the equations this is incorrect. It is correct if byrow = TRUE. – John Nov 16 '11 at 15:07
    
@John: Yes you right. I've updated the answer. – MYaseen208 Nov 16 '11 at 15:47
    
Did you? It does still have byrow = FALSE – Marcin Kosiński Jan 25 at 15:42

For clarity, I modified the way the matrices were constructed in the previous answer.

a <- rbind(c(1, 2, 3), 
           c(2, 5, 9), 
           c(5, 7, 8))
b <- c(20, 100, 200)
solve(a, b)

In case we need to display fractions:

library(MASS)
fractions(solve(a, b))
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