What Are the Correct Values of a and b in the Polynomial Problem?

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Homework Help Overview

The discussion revolves around a cubic polynomial problem involving the polynomial f(x) = 4x^3 + ax^2 + bx + 6. The original poster is tasked with finding the values of a and b given that (x-2) is a factor and that the polynomial has a remainder of -15 when divided by (x+1).

Discussion Character

  • Exploratory, Assumption checking, Problem interpretation

Approaches and Questions Raised

  • The original poster attempts to evaluate the polynomial at specific points to derive equations for a and b, but expresses uncertainty about their calculations. Other participants question the correctness of the evaluations and suggest that the original poster may have misapplied the factor theorem.

Discussion Status

Participants are actively engaging with the problem, providing feedback on the original poster's approach. Some have pointed out potential errors in the evaluations related to the factors, while others are clarifying the correct method for determining the remainders when dividing by the given factors.

Contextual Notes

There is a noted confusion regarding the evaluations of the polynomial at specific points, particularly in relation to the factors (x-2) and (x+1). The original poster's understanding of the factor theorem and polynomial evaluation is being scrutinized.

ghostbuster25
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simultaneous polynominals!

stuck on this coursework question
The cubic polynominal f(x)= 4x^3+ax^2+bx+6 has a factor (x-2)
when it is divided by (x+1) it has a remainder 0f -15

find the values of a and b

I did as follows
factor (x-2)
f(-2)
4(-2)^3+a(-2)^2+b(-2)+6=0
equals 4a-2b=26

when it is divided by (x+1)
f(-1)
4(-1)^3+a(-1)^2+b(-1)+6=15
equals a-b=-17

when i solve these it gives me b=17 and a=-8.5

Which i know is wrong

plese tell me where

thanks
 
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ghostbuster25 said:
stuck on this coursework question
The cubic polynominal f(x)= 4x^3+ax^2+bx+6 has a factor (x-2)
when it is divided by (x+1) it has a remainder 0f -15

find the values of a and b

I did as follows
factor (x-2)
f(-2)
4(-2)^3+a(-2)^2+b(-2)+6=0
equals 4a-2b=26

when it is divided by (x+1)
f(-1)
4(-1)^3+a(-1)^2+b(-1)+6=15
equals a-b=-17

when i solve these it gives me b=17 and a=-8.5

Which i know is wrong

plese tell me where

thanks

You mistakenly found f(-2) when dividing by (x-2)
 


i thought i was just to put the factor into the equation. Not sure what other way to do. Is the second part correct?
 


First, divide (x-2)[/tex] into 4x^3+ax^2+bx+6[/tex]<br /> The remainder will have a- and b-terms in it.<br /> But, since (x-2)[/tex] is a factor, that means that it divides evenly into 4x^3+ax^2+bx+6[/tex], so the remainder must be 0.<br /> <br /> In other words, you'll get a remainder of the form ad + be + f (where d, e, and f are integers). Set this term equal to 0.<br /> <br /> Now, divide (x+1)[/tex] into 4x^3+ax^2+bx+6[/tex].<br /> Again, you'll get a remainder with a- and b-terms in it.<br /> Set <i>this</i> remainder to -15.<br /> <br /> You now have 2 equations with 2 variables (a and b) each. Solve the simultaneous equations.
 


ghostbuster25 said:
i thought i was just to put the factor into the equation. Not sure what other way to do. Is the second part correct?

Yes that is how you do it. You correctly chose to evaluate f(-1) when dividing by the (x+1) factor, but when dividing by the (x-2) factor you incorrectly chose f(-2) to evaluate. What you should be evaluating is...?
 


Mentallic said:
Yes that is how you do it. You correctly chose to evaluate f(-1) when dividing by the (x+1) factor, but when dividing by the (x-2) factor you incorrectly chose f(-2) to evaluate. What you should be evaluating is...?

I haven't done this in a while, but shouldn't the evaluation of (x+1) be x=-16, since there is a remainder of -15 when the polynomial is divided by (x+1)
 


Cilabitaon said:
I haven't done this in a while, but shouldn't the evaluation of (x+1) be x=-16, since there is a remainder of -15 when the polynomial is divided by (x+1)

What you're referring to is f(x)+1, rather than f(x+1)
 


zgozvrm said:
What you're referring to is f(x)+1, rather than f(x+1)

Not quite, he is referring to f(x+1)-1

Say you had a root of 2, then (x-2) is a factor and when you evaluate f(2) you will get 0.
 

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