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If one of the zeros of the polynomial f(x)=x^2+px+12 is 4,find the value of constant p

User Juan Pablo Pinedo
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1 Answer

30 votes
30 votes

Answer:


p=-7

Explanation:

Given
f(x)=x^2+px+12, when
f(x)=0, the right-hand side will break down to
(x+a)(x+b) where
a+b=p and
ab=12.

Because we know one of the zeroes is
x=4, then either
a=-4 or
b=-4. If we decide that
a=-4, for example, and we expand
(x-4)(x+b), we get
x^2+(b-4)x-4b, which means
b=-3 and
p=-7.

We know this because
-4(-3)=12 and
-4+(-3)=-7.

User Jeckep
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