MedVision ad

integrationof log (1 Viewer)

metalhead_loz

New Member
Joined
Apr 12, 2005
Messages
18
Gender
Female
HSC
2006
I think its really unfair that we have a math assessment worth 20% on wed and our teacher has rushed through this. He did even explain integration or differentiation of log.

:(

Show that (1+x)/(1-x)= -1 + 2/(1-x).

Hence find S (1+x)/(1-x) dx
 

SoulSearcher

Active Member
Joined
Oct 13, 2005
Messages
6,757
Location
Entangled in the fabric of space-time ...
Gender
Male
HSC
2007
I think I've already done this in another thread, but I'll do it again.
-1 + 2/(1-x)
= {-(1-x)+2}/(1-x)
= (-1+x+2)/(1-x)
= (1+x)/(1-x)
For the second question, sub in -1 + 2/(1-x) for (1+x)/(1-x), then integrate i.e.
S (1+x)/(1-x) dx
= S -1 + 2/(1-x) dx
= -x - 2ln(1-x) + c
 

jake2.0

. . .
Joined
Sep 17, 2005
Messages
616
Gender
Male
HSC
2005
(1+x)/(1-x) : the can be written as [-(1+x) +2]/(1-x) = -1 + 2/(1-x)

So S (1+x)/(1-x) dx = S {-1 + 2/(1-x)} dx = -x -2ln|1-x| +c

Just so u know dirivative of ln(f(x)) = f`(x)/f(x)

:( ^he beat me 2 it
 

metalhead_loz

New Member
Joined
Apr 12, 2005
Messages
18
Gender
Female
HSC
2006
S (2x+5)/(x+4) dx

I got: 2x + 6 ln(x+4) +C

But that answer says 2x -3ln (x+4) + C


Is the answer right...I cant see where I have gone wrong. I am so mad that we had to rush through the topic. My teacher hasn't even gone through graphing them and he said he will on Tuesday, which is the day before the exam.
 

metalhead_loz

New Member
Joined
Apr 12, 2005
Messages
18
Gender
Female
HSC
2006
Damn. I guess the way I have been doing it only works for some.

I split it up.

S 2x/x+4 + 5/(x+4)


SO I guess I shouldn't do that...


Edit: Do you only use that when there are no common factors?
 
Last edited:

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

Top