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Integration challenge questions- help (1 Viewer)
- Thread starter tam89
- Start date
These may be useful, see if you can work them out 
One of the questions (question 6 on page 2) is actually answered in the 2nd link
http://www.maths.usyd.edu.au/u/UG/JM/MATH1903/r/t3solutions.pdf
http://www.maths.usyd.edu.au/u/UG/JM/MATH1903/r/t6-05solutions.pdf
One of the questions (question 6 on page 2) is actually answered in the 2nd linkhttp://www.maths.usyd.edu.au/u/UG/JM/MATH1903/r/t3solutions.pdf
http://www.maths.usyd.edu.au/u/UG/JM/MATH1903/r/t6-05solutions.pdf
robbo_145
Member
using question 5 from page2.jpg will allow you to complete question 5 from page 1 and question 6 from page 2
so let I = Integral{a->0} f(x) dx
let u = a - x
-du = dx
so I = Integral{0->a} f(a - u) (-du)
= Integral{a->0} f(a- u) du
now the variable does not matter so replacing u with x
I = Integral{a->0} f(a- x) dx
be aware that they must give you the substitution in 3 unit exams.
also question 4 from page 1 cannot be done using 3 unit methods. Usually they will ask you to find the derivitive of xtan-1x first
so d/dx (xtan-1x ) = tan-1x + x/1+x2
so integrating both sides
Integral (tan-1x) dx = xtan-1x - 1/2ln(1+x2)
so let I = Integral{a->0} f(x) dx
let u = a - x
-du = dx
so I = Integral{0->a} f(a - u) (-du)
= Integral{a->0} f(a- u) du
now the variable does not matter so replacing u with x
I = Integral{a->0} f(a- x) dx
be aware that they must give you the substitution in 3 unit exams.
also question 4 from page 1 cannot be done using 3 unit methods. Usually they will ask you to find the derivitive of xtan-1x first
so d/dx (xtan-1x ) = tan-1x + x/1+x2
so integrating both sides
Integral (tan-1x) dx = xtan-1x - 1/2ln(1+x2)
damo676767
Member
EDIT: i started to post before robbo finished, so alot of this is repeting him
4) I tan-1 x dx
= x tan-1 x - I ( x/(1 + x2)) dx
= x tan-1 x - loge(1+x2)/2
first 5)
i) I { a -> 0} ( f(x) / (f(x) - f(a-x))) dx
i will try to get back to you
ii) f(x) = root(x)
I = 3/2
second 5) rtp I {a -> 0} f(x) = I {a -> 0} f(a - x)
just explain why, for the rhs, when x = a, f(a-x) = f(0), which is the lower bound of the other side. when x = o, f(a-x) - f(a) which is the upper bound of the other. seing as these equations are reflections of each other, therfore for them to equal each other for must swap them round. hence its right
6)
you could use the rule you proved in the other part 5, i thinkl thats what they ment.
a = PI/2
f(x) = sinnx
f(a-x) = sinn(PI/2 - x)
= cosnx
I = PI /2 /2
= PI / 4
4) I tan-1 x dx
= x tan-1 x - I ( x/(1 + x2)) dx
= x tan-1 x - loge(1+x2)/2
first 5)
i) I { a -> 0} ( f(x) / (f(x) - f(a-x))) dx
i will try to get back to you
ii) f(x) = root(x)
I = 3/2
second 5) rtp I {a -> 0} f(x) = I {a -> 0} f(a - x)
just explain why, for the rhs, when x = a, f(a-x) = f(0), which is the lower bound of the other side. when x = o, f(a-x) - f(a) which is the upper bound of the other. seing as these equations are reflections of each other, therfore for them to equal each other for must swap them round. hence its right
6)
you could use the rule you proved in the other part 5, i thinkl thats what they ment.
a = PI/2
f(x) = sinnx
f(a-x) = sinn(PI/2 - x)
= cosnx
I = PI /2 /2
= PI / 4
clever angel
Member
is this 3 unit?
i hope its not cos i can't solve ne of these!!!
i hope its not cos i can't solve ne of these!!!
damo676767
Member
yes it is a 4-unit technique put theres nothing to say you cant use that in an exam.\
for 3 unit people the rule for intergration by parts is
I ( f(x)g(x) ) dx = f(x)G(x) - I ( fi(x)G(x)) dx
for 3 unit people the rule for intergration by parts is
I ( f(x)g(x) ) dx = f(x)G(x) - I ( fi(x)G(x)) dx