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Question

If p(x) be a polynomial of degree three that has a local maximum value 8 at x=1 and a local minimum value 4 at x=2; then p(0) is equal to


A

12

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B

-12

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C

-24

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D

6

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Solution

The correct option is B

-12


Explanation for the correct option.

Step 1: Find the factor of p(x)

Given that x=1,x=2 are points of local maximum & local minimum.

It means that x=1,x=2 must be critical point.

i.e; p'(1)=0,p'(2)=0

p'(x)=a(x-1)(x-2)=ax2-3x+2

Step 2: Finding the vlaue of p(x)

Integrating we get:

p(x)=ax33-3x22+2x+b

Also, p(1)=8.

8=a13-32+2+b8=a56+b48=5a+6b...(1)

For p(2)=4

4=a83-122+4+b4=a46+b24=4a+6b...(2)

Step 3: Finding the vlalue of p(0)

Solve equation (1) & (2) we get:

a=24,b=-12

Substitute value a=24,b=-12 in p(x)=ax33-3x22+2x+bwe have:

p(x)=24x33-3x22+2x-12

p(0)=-12

Hence, option B is correct.


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