Tuesday 11 July 2023

FUNCTIONS K1

 

If f(x) = x4 + kx2 + 6x + 7 has a remainder of 22 when divided by x+2; find k.

 

solution

 

f(x) = x4 + kx2 + 6x + 7

 

x + 2 = 0

 

x = -2

 

f(x) = (-2)4 + k(-2)2 + 6(-2) + 7 = 22

 

16 + 4k + (-12) + 7 = 22

 

16 + 4k - 12 + 7 = 22

 

16 + 4k - 5 = 22

 

4k + 16 - 5 = 22

 

4k + 11= 22

 

4k = 22 - 11

 

4k = 11

 

4k = 11

4      4

 

k = 11/4

 

hence k=11/4

 

TRY THIS......................

 

 If f(x) = x4 - kx2 + 3x - 11 has a remainder of 16 when divided by x-3; find k.


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