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Question

If x2+x+1=0 and x2+ax+b=0 have a common root, then the minimum value of (xa)2+2b is

A
2
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B
3
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C
2
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D
0
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Solution

The correct option is C 2
x2+x+1=0 has non-real roots.
Also, the coefficients are real.
Both the roots are common.
a=b=1
So, (xa)2+2b=(x1)2+2
Minimum value =2

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