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Question

Find the value of a for which the equation (k1)x2+(k+4)x+k+7=0 has equal roots.

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Solution

For equal roots it must have D=0 where D=b24ac
b24ac=0
(k+4)24×(k1)(k+7)=0
(k2+16+8k)4(k2+7kk7)=0
k2+16+8k4k228k+4k+28=0
3k216k+44=0
3k2+1644=0
By solving the equation we get the value k=2,7.333.....

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