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easy question (that i can't solve) (1 Viewer)
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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
= 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
Last edited:
C'est la vie
Member
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
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
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
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
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
(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
Go The Knights!
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- Male
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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