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Question
Solve the following systems of equations:
x − y + z = 4
x + y + z = 2
2x + y − 3z = 0
Solution
We have,
x − y + z = 4 ...(i)
x + y + z = 2 ....(ii)
2x + y − 3z = 0 ....(iii)
From equation (i), we get
z = 4 - x + y
z = -x + y + 4
Substituting z = -x + y + 4 in equation (ii), we get
x + y + (-x + y + 4) = 2
=> x + y - x + y + 4 = 2
=> 2y + 4 = 2
`=> 2y = 2 - 4 = -2`
=> 2y = -2
`=> y = (-2)/2 = -1`
Substituting the value of z in equation (iii), we get
2x + y -3(-x + y + 4) = 0
=> 2x + y + 3x - 3y - 12 = 0
=> 5x - 2y - 12 = 0
=> 5x - 2y = 12 ....(iv)
Putting y = -1 in equation (iv), we get
`5x - 2xx (-1) = 12`
=> 5x + 2 = 12
=> 5x = 12 - 2 = 10
`=> x = 10/5 = 2`
Putting x = 2 and y = -1 in z = -x + y + 4 we get
z = -2 + (-1) + 4
=-2 - 1 + 4
= -3 + 4
= 1
Hence, solution of the giving system of equation is x = 2, y = -1, z = 1
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