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easy question (that i can't solve) (1 Viewer)

thisser

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i need your help with this question, which i thought looked really easy, but for some reason i can't get the answer. :( my brain has rusted after the holidays, lol :D

umm..

solve the following inequation

x + 2 / 1 - x < 1 :chainsaw:

please help. :)
 

thisser

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actually, i've made progress (silly me) but there's a step I don't understand.

midway in solving it, i get

2x + 1 / 1 - x < 0

but how do I get to

(2x + 1)(1- x) < 0

?
 

RyddeckerSMP

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x+2/1-x -1(1-x)/1-x <0
= 2x+1/1-x<0
=(1-x)x 2x+1/1-x <0 x 1-x
= (2x+1)(1-x)<0
then do your method for solving x
my method:
x= 1/2, 1
graph....
x<1/2, x>1
 
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C'est la vie

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That's right. *thumbs up*
It's kind of hard to follow through the working on the computer, but it's all good :)

Is anyone working from the yellow Fitzpatrick book at the moment? I'm doing the last excercises for sequences and series, and they kill me!!

Love Katie xox
 

SamD

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RyddeckerSMP: should have been -1/2 not 1/2

An alternate solution...

(x+2)/(1-x)<1

Firstly x<>1 Can't have 0 denominator (<> means does not equal)

Now when the denominator is +ve then

1-x>1
x<1 ....(1)

And...

x+2<1-x
x<-1/2 ...(2)

(1) and (2) are both true only when x<-1/2 ...(3)
(This is definitely part of the solution).

Now if the denominator in the original is negative then,
1-x<0
x>1 ...(4)

And...

x+2>1-x (reverse the inequality sign as we're multiplying by a negative number)
x>-1/2 ...(5)

(4) and (5) are both true only when x>1 ...(6)

Now combine (3) and (6) to get the final solution....
x<-1/2 OR x>1

HTH
Sam
 

shkspeare

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(x+2)(1-x) < (1-x)^2
(1-x)[x+2 - 1 + x ) < 0
(1-x)(2x+1) < 0
x > 1, x < -0.5, x <> 1

square ur denominator... look how easy it is... 4 lines
 

SamD

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Yeah great, but I'd suggest a little more explanation is in order, this is not an Ext1 or 2 forum!

(x+2)/(1-x)<1

Firstly x<>1 (to avoid division by 0).

Multiply by the square of the denominator as this ensures we are multiplying by a positive number and hence the inequality sign is not affected. Furthermore it will allow canceling of the original denominator.

Hence...
(x+2)(1-x)<(1-x)^2
(x+2)(1-x)-(1-x)^2 <0

Now take (1-x) out as a common factor...
(1-x)[(x+2)-(1-x)] <0
(1-x)(2x+1)<0

The LHS equals 0 when x=1 or x=-1/2

Sub in some x value between -1/2 and 1, say 0
This doesn't work so the solution is outside these values
x<-1/2 OR x>1

HTH
Sam
 

RyddeckerSMP

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yeah..... i think that my way is easier, way less confusing... but yeah x should equal -1/2... i though i stuffed it up somewhere
 

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