MedVision ad

3 unit polynomial question (1 Viewer)

jsttesting

New Member
Joined
Feb 24, 2005
Messages
13
Gender
Male
HSC
2005
Hey guys,

I dunno if this is a simple or hard question, but I cant' seem to get anywhere with trying to solve the following question:


If a, b, c are the roots of the equation x^3 - x^2 + 4x - 1 = 0, find the value of (a+1)(b+1)(c+1).

Please let me know if you get the answer.....

Thanks...!
 

KFunk

Psychic refugee
Joined
Sep 19, 2004
Messages
3,323
Location
Sydney
Gender
Male
HSC
2005
(a +1)(b +1)(c +1)
=(ab +a +b +1)(c +1)
= abc +(ab +bc +ca) + (a + b + c) +1
then using the values gained from summing the roots of P(x)= x<sup>3</sup> -x<sup>2</sup> +4x - 1
= 1 +(4) + (1) +1
=7
 

Slidey

But pieces of what?
Joined
Jun 12, 2004
Messages
6,600
Gender
Male
HSC
2005
Alternatively:

roots a+1, b+1, c+1, then y=x+1, x=y-1
sub into:
x^3 - x^2 + 4x - 1 = 0
to get:
(y-1)^3 - (y-1)^2 + 4(y-1) = 1
y^3-3y^2+3y-1-y^2+2y-1+4y-4-1=0
y^3-4y^2+9y-7=0

product of roots = -d/a = 7 = (a+1)(b+1)(c+1).
 

KFunk

Psychic refugee
Joined
Sep 19, 2004
Messages
3,323
Location
Sydney
Gender
Male
HSC
2005
Came to my head first as well but it's the 3U forum and I just tend to think of that as a 4U technique. I don't know about less room for error though...
 

Trev

stix
Joined
Jun 28, 2004
Messages
2,037
Location
Pine Palace, St. Lucia, Brisbane.
Gender
Male
HSC
2005
KFunk said:
Came to my head first as well but it's the 3U forum and I just tend to think of that as a 4U technique. I don't know about less room for error though...
Agreed, the first method used I find to have less chance of error. Expanding 'tings' such as (a+1)(b+1)(c+1) generally come out in groups/patterns, so it is easy to tell whether you have screwed up the working.
 

JamiL

Member
Joined
Jan 31, 2004
Messages
704
Location
in the northen hemisphere (who saids australia is
Gender
Male
HSC
2005
yer when i first saw it and it came in2 my head i wasn sure wether it was 4 or 3u?? but i find it easyer and less rom 4 error... althou it depends on da person...
the expantion of (a+1)(b+1)(c+1) looks way 2 messy 4 my likeing, n its easy 2 expand (x-1)^3 but expanding (a+1)(b+1)(c+1) u need 2 do it in 2-3 steps...
i dunno... y do u think the 1st method was better?
 

KFunk

Psychic refugee
Joined
Sep 19, 2004
Messages
3,323
Location
Sydney
Gender
Male
HSC
2005
Just because, in terms of an explanation, it makes more sense. You can see directly why it works and it's an easy expansion. The technique of creating a polynomial with new roots is far more subtle.
 

JamiL

Member
Joined
Jan 31, 2004
Messages
704
Location
in the northen hemisphere (who saids australia is
Gender
Male
HSC
2005
far more subtle 2 a person who hasnt learnt it... lol.. althou even u said it came 2 ur head 1st and me and slide rule did it similarly, so it can be that subtle. in sayin that both would get u full marks and i would use the 1 that u like better... so i fink this argument is futile... lol
 

Slidey

But pieces of what?
Joined
Jun 12, 2004
Messages
6,600
Gender
Male
HSC
2005
I think there's MORE room for error with my method. Suppose it asked for a^2+b^2+c^2 instead? Square roots!
 

JamiL

Member
Joined
Jan 31, 2004
Messages
704
Location
in the northen hemisphere (who saids australia is
Gender
Male
HSC
2005
again 2 methods there slide rule..
u could go the conventional (a+b+c)^2 - 2(ab + bc +ca) which i would use in this case
or u could use
a=X^(.5) n create new polynomial... again up 2 the person, and in this case it makes it a little more difficult but stil not impossible... i tried it n that method would be a stupid 2 do cos ur dealin with x^3 n ull end up with X^(1.5) n u have 2 re arrange it n stuff, not worth it....
 

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

Top