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T-formula integration (1 Viewer)

blackops23

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Hey guys, just wondering is there any way that you can use:

t=tan(x/2) in order to simply/easily integrate 1/(1+3cos2x)?

Or is it advisable to use t=tanx?

Thanks
 

blackops23

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Try t=tanx, if that's not cool, expand the cos2x to it's trig(x) parts
t=tanx worked normally, but the question specified t=tan(x/2)

When I tried it, I used the double angle formula while resulted in a (cosx)^2 being in the expression, which resulted in ((1-t^2)/(1+t^2))^2 --. ugly and complicated stuff

anyone know if theres a quick easy way to use tan(x/2) = t, or is tanx= t the only proper way?
 

Hermes1

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hey blackops why are u doin so many integration questions, you should be focusing on harder topics like conics and mechanics for ur trial
 

Trebla

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Did the question say something like "use t = tan (x/2)" or just "use t-formula substitution"?
 

blackops23

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Did the question say something like "use t = tan (x/2)" or just "use t-formula substitution"?
it said use t=tan(x/2), but its a coroneos question, and i'd doubt it'd be in an exam,

Anyways, can someone please help me on this t-formula integration which involves trigonometric squares?

Q. INT (sinx^2)/(1+cosx) dx

I did it and ended up with having to integrate (2t^2)/(1+t^2)^2

Did I do something wrong, or is there a particular trick with this question?

As always, help is greatly appreciated :)

EDIT -- difference of two squares cancel out, dw guys...
 
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Drongoski

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it said use t=tan(x/2), but its a coroneos question, and i'd doubt it'd be in an exam,

Anyways, can someone please help me on this t-formula integration which involves trigonometric squares?

Q. INT (sinx^2)/(1+cosx) dx

I did it and ended up with having to integrate (2t^2)/(1+t^2)^2

Did I do something wrong, or is there a particular trick with this question?

As always, help is greatly appreciated :)

EDIT -- difference of two squares cancel out, dw guys...
You already got it:





For the t-formula better in this case to use: x = tanx

Did it last nite - but don't know where I threw away soln. Have to re-do. In my hurry to post solution, it may well be wrong!

Let t = tan x



and and





 
Last edited:

limit1

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you can do it by complex analysis newbs

pretty easy way too
 

blackops23

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Lol jeez Drongos, I already got the answer.. you didn't have to waste time with that massive solution lol...

and i know this is the billionth time I've asked for help, but could someone please outline how to do this:

Q. INT (1+cosx)/(1+sinx) dx

I used t=tan(x/2)

and after simplification, ended up having to integrate:

4*INT1/[(1+t^2)(t^2 + 2t+ 1)]


I really don't want to use partial fractions, and with all of these questions, there is always a faster trick.

Any ideas guys?

Help is greatly appreciated :)
 

Drongoski

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How about?







all of which can be readily done.
 
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Hermes1

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yeah what the other guy said, thankyou for the fast method! but do you see any way with using the t-formula?
with t method u have to use partial fractions at the end theres no other way
 

blackops23

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can someone confirm whether this is true?

can t-formula only be used on integrals in the form of dx/(a+bcosx + csinx)?

EDIT: for the question, integrate (1+cosx)/(1+sinx), the answer was:

-2/[1+tan(x/2)] + ln(1+sinx) + C

How did Coroneos achieve this answer?
 
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Hermes1

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can someone confirm whether this is true?

can t-formula only be used on integrals in the form of dx/(a+bcosx + csinx)?

EDIT: for the question, integrate (1+cosx)/(1+sinx), the answer was:

-2/[1+tan(x/2)] + ln(1+sinx) + C

How did Coroneos achieve this answer?
i think what coroneos did was split it up into two integrals so 1/1+sin x and cos x/1+sin x

he then used t method on the first integral and the second one is just integration of ln (cos x is the derivative of 1 + sinx)

thats why he got that answer

i dont think t method is limited to integrals of that form, i think coroneos just used the fastest method of solving the question
 

cutemouse

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i think what coroneos did was split it up into two integrals so 1/1+sin x and cos x/1+sin x

he then used t method on the first integral and the second one is just integration of ln (cos x is the derivative of 1 + sinx)

thats why he got that answer

i dont think t method is limited to integrals of that form, i think coroneos just used the fastest method of solving the question
Probably...

Also, I think you can let u=2x and then proceed from there... But that's basically the same as using the subs t=tanx because then dx = dt/(1+t^2), whereas the the t=tan(x/2) subs yields dx = 2dt/(1+t^2)
 

blackops23

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i think what coroneos did was split it up into two integrals so 1/1+sin x and cos x/1+sin x

he then used t method on the first integral and the second one is just integration of ln (cos x is the derivative of 1 + sinx)

thats why he got that answer

i dont think t method is limited to integrals of that form, i think coroneos just used the fastest method of solving the question
yep I did what you said and got the same answer, (but it was longer than Drongo's method)

Fuuarkk... is there any way to know the fastest integration method? Or is it just practice...?
 

Hermes1

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yep I did what you said and got the same answer, (but it was longer than Drongo's method)

Fuuarkk... is there any way to know the fastest integration method? Or is it just practice...?
its just practice. i time myself doing the 1st question of each past paper with integration an it usually takes 10 minutes max. you should be aiming to have questions 1 and 2 finished in about 15-20 minutes, bcuz curve sketching takes up a lot of time in exams.
 

blackops23

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its just practice. i time myself doing the 1st question of each past paper with integration an it usually takes 10 minutes max. you should be aiming to have questions 1 and 2 finished in about 15-20 minutes, bcuz curve sketching takes up a lot of time in exams.
Q1 is a joke -- most of the time, but often you might get some harder integration in Q4/5...
 

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