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Question

If the system of linear equations
x2y+kz=12x+y+z=23xykz=3
has a solution (x,y,z),z0, then (x,y) lies on the straight line whose equation is :

A
4x3y1=0
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B
3x4y1=0
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C
3x4y4=0
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D
4x3y4=0
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Solution

The correct option is D 4x3y4=0
x2y+kz=1 (1)
2x+y+z=2 (2)
3xykz=3 (3)

Adding (1) and (3), we get
4x3y=4
4x3y4=0

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