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7 December, 13:49

Write a system of linear equations in which (3,-5) is a solution of Equations 1 but not a solution of Equation 2 and (-1,7) is a solution of the system

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  1. 7 December, 15:14
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    Y+5=m (x-3), or y=mx-3m-5, satisfies Equation 1. But Equation 1 and Equation 2 are satisfied when y-7=n (x+1).

    (-1,7) is graphically represented by the intersection of 2 lines. So Equation 1 must pass through (-1,7) and (3,-5). The slope is (-5-7) / (3 - (-1)) = - 12/4=-3=m, so y=-3x+4.

    Equation 2 is y=x+8 when n=1 (arbitrary choice). Note that m is not equal to n.

    A typical example of the required system is Eqn 1: y=-3x+4 and Eqn 2: y=x+8.
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