polynomial question (1 Viewer)

Jkitty

Member
Joined
Apr 15, 2014
Messages
35
Gender
Female
HSC
2015
if x^3+3x=ax(x-1)^2+bx(x-1)+cx+d for all values of x, find the values of a,b,c and d

I don't have the answer
 

Trebla

Administrator
Administrator
Joined
Feb 16, 2005
Messages
8,392
Gender
Male
HSC
2006
if x^3+3x=ax(x-1)^2+bx(x-1)+cx+d for all values of x, find the values of a,b,c and d

I don't have the answer
You can equate the coefficients or substitute specific values of x (or do both) since the equality is meant to hold for all values of x (and hence it should equal no matter what value of x you substitute in).

When you expand the RHS you get x3 + 3x = ax3 + (2a+b)x2 + .....

The coefficient of x3 on the RHS is 'a' and the coefficient of x3 on the LHS is 1. Hence a = 1.

I will now do the substitution approach.

When you substitute x = 0, you get d = 0.
When you substitute x = 1, you get c + d = 4 but d = 0 hence c = 4
When you substitute x = 2, you get 2a + 2b + 2c + d = 14 but a = 1, c = 4, d = 0 hence b = 2
 

Jkitty

Member
Joined
Apr 15, 2014
Messages
35
Gender
Female
HSC
2015
You can equate the coefficients or substitute specific values of x (or do both) since the equality is meant to hold for all values of x (and hence it should equal no matter what value of x you substitute in).

When you expand the RHS you get x3 + 3x = ax3 + (2a+b)x2 + .....

The coefficient of x3 on the RHS is 'a' and the coefficient of x3 on the LHS is 1. Hence a = 1.

I will now do the substitution approach.

When you substitute x = 0, you get d = 0.
When you substitute x = 1, you get c + d = 4 but d = 0 hence c = 4
When you substitute x = 2, you get 2a + 2b + 2c + d = 14 but a = 1, c = 4, d = 0 hence b = 2
thank you soooooooooooo much :)
 

Users Who Are Viewing This Thread (Users: 0, Guests: 1)

Top