National Taiwan University graduate school entrance exam problem

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I have a different approach here.
First define
u=cos(x), so du = -sin(x)dx
and substitute it into the integral.
Getting the result:
integrate arccos(u) / (1 + u^2) du from -1 to 1.
Then, eyeball that 1 / (1 + u^2) is actually the derivative of arctan(u), so we can do integration by parts.
Getting the result: arctan(u) * arccos(u) + integrate arctan(u) / sqrt(1 - u^2) du from -1 to 1.
Now we can notice that arctan(u) is an odd function, and sqrt(1 - u^2) is an even function, hence arctan(u) / sqrt(1 - u^2) is an odd function. Integrate an odd function from -1 to 1 is 0, so we are only left with the boundary term.
Now evaluate arctan(u) * arccos(u) from -1 to 1, to obtain the result: pi^2 / 4.

King's rule is a really beautiful trick!

King and queen property are indeed very useful in solving definite integrals.

Integrating functions of the form x*f(sinx) from 0 to pi is a rather common integration exercise/problem. We can use this trick to prove that this more general integral is equal to the integral of f(sinx)*pi/2

I evaluated it before watching the video, and my method was to do a substitution x = pi - u and solve for the desired integral in terms of a similar one. I then multiplied the numerator and denominator by sec^2 u, changed it from an integral of 0 to pi to 2* an integral of 0 to pi/2, and did another substitution t = sec u. It was trivial to evaluate after that.

This guy is an absolutely masterful teacher.

You can also IBP and you will get pi²/4 minus the integral of a function (let's call it g(x) ) where g(x) = tan^-1(cosx)
You then substitute u = cosx and you will obtain an integral between -1 and 1, and you just have to show that this integral is odd, so it's equal to 0
and then you find (pi²/4)-0
QED

i literally did a question on the same property from an old video of yours !! it was a cambridge problem on int of xf(sinx) from 0 to pi which had 3 parts ! i was so excited for this one because i knew how to approach this !!

I'm currently starting my calc 3 and it's crazy hard. I found calc 2 to be the easiest, followed by calc 1, with calc 3 the hardest

i did use the same IBP as you did at the start, getting the int. to be pi squared over 4 + int from 0 to pi of arctancosxdx. Then I used the same trick as you to show that the remaining integral is 0, using cos(pi-x)=-cosx, the oddity of the arctan func., and the linearity of the integral operator.

It is the same as the Cambridge integral that u do it previously
U can use the identity of xf(sinx)

I computed this integral before watching your video, but my method is different so I write it below:
Let A be the integral we need to compute. Since the variable x is in [0, π] and cos : [-1, 1] --> [0, π] is a bijection, we can make the substitution t = cos(x) in A (hence x = cos^-1(t) and dt = -sin(x)dx), thus A = int_1^(-1) -cos^-1(t)/(1+t^2) dt = int_(-1)^1 cos^-1(t)/(1+t^2) dt.
Noticing that t ⟼ 1/(1+t^2) is the derivative function of tan^-1, we will do an integration by parts in this last integral, hence we get : A = [tan^-1(1)cos^-1(1)-tan^-1(-1)cos^-1(-1)] - int_(-1)^1 -tan^-1(t)/sqrt(1-t^2) dt = π^2/4 + int_(-1)^1 tan^-1(t)/sqrt(1-t^2) dt.
But the integrand of the last integral is odd and the center of [-1, 1] is 0, hence this last integral is equal to 0. Then A = π^2/4 + 0 = π^2/4.

I feel like I am animating some of the few neurons I still have back to life!!
Thank you so much for making me remember the best moments of my high school.

Thats craaaaazzyyy. A function that just contains itself? This is so weird. I hope I can one day solve an integral like that myself without help!

Very subtle solution - great👍

I see some comments of Indians bragging about that these questions are easy they did it in 12 grade , we know that you can do just don't brag about it , it becomes annoying, appreciate the teacher, don't be 'i know it all guy'

A more stupid way: expand it in powers of cos, getting a sum of x sin(x) (-1)^n cos(x)^(2n) integrals. By parts each antiderivative is (-1)^(n+1) x cos(x)^(2n+1)/(2n+1) + (-1)^n (integral of cos(x)^(2n+1)/(2n+1)). That looks like an annoying reduction formula thing but the integrand is odd wrt pi/2 now so these guys are just zero. You get left to sum pi (-1)^n /(2n+1) and get the same result by recognizing the Maclaurin series for arctan.

这也是大陆这边大学一年级课后习题里的一道很基础，也经典的题目，我们管这种方法叫区间再现公式。用这种方法衍生出的公式，当遇见积分，形如从0-pai integral x f（sinx），可以将x提出积分号变成pai/2

Used the substitution u = cos(x), then replaced arccos(x) by π/2 - arcsin(x) and saw, that arcsin(x)/(1+x^2) is odd and being integrated over a symmetric domain so it has to be 0, the other part was the answer

Thanks PROF as always very interesting 👍

I worked out the integration by parts fully. Bc I didn’t know what exactly it was with that integral, I just said it was the following:
-xtan^-1(cosx)]0 to pi + integration 0 to pi(tan^-1(cosx))
First part comes out to pi^2/4
Second part I thought of it in more fundamental terms of what’s happening…
From 0 to pi, cos is between -1 and 1. So, it’s finding the area of tangent’s angle when it is between -1 and 1. So you’re just summing up an equal amount of positives and negatives, making it 0.
Hence, pi^2/4 + 0 = pi^2/4.
If there was some gap in my reasoning, pls point it out. Tho I do have to admit, cool use of kings rule 😎😮‍💨

You are amazing man ❤

Literally done it orally ....well i know anyone could do that🙂 easy question

I'm taking Calc2 right know, so I didn't know this clever witchcraft lmao
But I got to int arctan(cosx) dx and, having the (pi-x) integral, I managed to solve it! Very nice :)

Not joking or bragging it was so easy that I solved it in my head seeing the thumbnail,pls make videos on complicated integrals,maybe vector integration or multiple integration,it would be really fun!

I used IBP and came up with ln[(pi)^2 + 1]/2, but that’s about four times too low.
The integral calculator website that I use gave a numerical approximation around 2.5, about half the solution in the video.
(pi)^2 / 4, the solution in the video, is around 4.9.

Its also plausible with the residue theorem to solve this (complex analysis)

As a HK DSE student,I have seen this type of integration for millions times

Integral 0 to π [f(x)] dx = integral 0 to (π/2) [f(x)+f(π-x)] dx
Its based on the same property but its very cool tho.
You can easily eliminate x here.

This question is like the staple of HKDSE M2 paper. Except the (pi-x) part is usually an part a question while the actual integral being a part b, using result of part a. Essentially nerfing the question as it provides hint.

Whenever you see trig and some pis, you know it’s kings rule.

3:45 why this example doesn't make sense to me? Can someone explain to me for example why if I put the angle to 120 degrees and then add π I will have a sin value which will be of the opposite sign! So why is this considered to be treated as equal? sin (π-a) = sin(a)

It's simple write -sin²x from 1+cos²x and after that it will become - integral of xdx/sinx and then it's very easy to solve

I tried switching the sin and cos for the hell of it, but sadly the I from the other side canceled instead of adding and it came out to…
-pi tan^-1(sin x)]0 to pi = 0
Which upon plugging in, checks out 💪🥴

As a Taiwanese, I didn’t know Taiwan had their own version of Reddit

Hey BPRP I started Calc 2; wish me luck I will be using your videos for help!

I missed this gentleman-guy too much.

Been a sec since I practiced my integrals. Need to try this myself!

You can also set u = x - pi/2, then you rewrite the integral as the integral of (u+ pi/2)sin(u + pi/2)/(1+ cos^2(u +pi/2)) du from -pi/2 to pi/2. Notice that you can rewrite the integrand as (u + pi/2)cos(u)/(1 + sin^2(u)). The integral over ucos(u)/(1 + sin^2(u)) will evaluate to 0 as we are integrating an odd function from -a to a. So we are just left with the integral over (pi/2)cos(u)/(1 + sin^2(u)) du from -pi/2 to pi/2. This is a fairly standard integral, as we can multiply by two and change the boundaries, so that we integrate from 0 to pi/2 (notice that the integrand is even). This evaluates to pi*(arctan(sin(pi/2)) - arctan(sin(0))), which is just pi^2/4, if you know that arctan(1) = pi/4 and arctan(0) = 0. (the integral of cos(u)/( 1 + sin^2(u)) could be solved via substituting z = sin(u) again, but I think just seeing that the integrand is the derrivative of arctan(sin(u)) shouldn't be a problem if you know the derrivative of arctan.) That would have been my solution but yours is awesome, keep up the good work! :)

solved it in my head, please do solve some more complicated integrals if you get the time, thanks

Please derive voulme of pyramid using inttegral

Semplicemente geniale!

Mind blowing 🤯🤯🤯

Awesome!

I thought NTU you typed referred to Nanyang Technological University in Singapore which I might be interested in getting into lol

Blackpenredpen, how do you find the derivative of the gamma function?

Awesome bprp👍

HAIL king,queen ,jack,ace

derivative of cotang is 1/(1+x^2).. how you did for sin x ?

Hi I know this is weird but can anyone help me solve this?
yln(0.5y+0.05) = (|cos(1.7x)|-1) solve for y
Edit: ill give some context this started as
y(ln((y+0.1)/2)) =(|cos(1.7x)|-1)
And I simplified it down to yln(0.5y+0.05) = (|cos(1.7x)|-1)

The DI method which you denied can actually work, what you need to prove is:
for x ∈ [0,π/2], arctan(cos(π/2 + x)) = - arctan(cos(π/2 - x))
Follow the cosine curve, it is straightforward that cos(π/2 + x) = -cos(π/2 - x),
and arctan is an odd function, so arctan(cos(π/2 + x)) = - arctan(cos(π/2 - x))
So the positive part equals to the negative part, like what you get when you integrate an odd function with lower bound -b and upper bound b.

Remember when you have a x multiplied to your function which you want to integrate, and if you get the same function (except the multiplied x) on replacing x with (b+a -x) in f(x) , then just replace the X, and you get a integratable function. If not just use queen rule , you might get something with it

Sir is ilate rule universal in integration?....if not what is counter example?

What should I think about myself if I was able to get to the answer in my head? I don't think this was a fairly tough question tho

Well, are there any specific conditions to apply "f(x)dx to f(a+b-x)dx" property?
Because the region where I live, I have been told that I should use it via trial and error.

I guess I am not getting into the University.

i really did that in my mind

Hmm... I think ill just use simpsons rule XD

I like the white board white out!!!!!

如果我財富自由～ 我也要常常來這玩數學！

THIS IS OUR 12TH STANDARD BASIC STUFF OF INTEGRAL CALCULUS.❤

Too late, i had that integral in June on exam xd

please help me solve integral of 0 to inf ( sinhx/sinx dx )

nice

Some one give me a hint to solve this integral xsec^2x/2+tanx

Hello this is Sayed Yousaf from Afghanistan.
I found a difficult math question.
If you help and solve me it would be your pleasure.
The question is:
The limit x approaches 0 (x^x^...^x-x!)/(x!^x!-1)

Me thinking why you cna't trig identityit :/

右邊照片是曹老師和老婆嗎 哈哈

Hello teacher ❤
I'm not understand clearly

This was given in my ncert text book of maths for 12th grade

The 1 method Is ok..

Could Feynman Technique be used?

This is common problem in India for -12 gred actuly very easy you give this problem to -infinity grader in India hel be doing the laughter on you and give you the anser because he is knowing the answer from the birth. Please give actual hard intergal next time

🌷ورده

🎉

Indians do it in their intermediate

its ans is Pie sq divided by 4
got it in 30 sec 😅

Evaluate the integration of the function from zero to infinity
(Sinx/x)⁶
😏😏 I challenged you

d card ？ lmao

I did all my calculus already and I'm in my masters,so why am I torturing myself by watching this? Idk xD

This property is known as King rule. bansal sir named this property

Hindi mein boliye

This is an easy question

hello

Meanwhile us Indians having this shit in highschool 💀

If you gave this problem to an Avg student of class 12th in India, At first, He will be going to laugh on you then give you the answer in next minutes

As an Indian I can confirm that this is the easiest one we are taught in just school only

Average CBSE question 🗿

We 16 year olds in India have to solve this in 6 minutes in a fking exam

Basic class 12th Question in India

Why wasn't I ever taught this property

sir nerd virgin is back !!!

nice

🎉