What a big twist!
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3 жыл бұрынWe look at a nice geometry problem.
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@ashlandwithouttheshd 3 жыл бұрын
Me: this looks like something I can do! Penn: does a frontflip Me: ...
@goodplacetostop2973 3 жыл бұрын
1:04 Frontflip 4:34 Good Place To Stop
@aahaanchawla5393 3 жыл бұрын
hol up the vid was released a few minutes ago
@heliocentric1756 3 жыл бұрын
You've chosen a good time to comment.. Basically 2 days before publishing the video.
@goodplacetostop2973 3 жыл бұрын
@@heliocentric1756 Michael already posted the videos for the next few weeks (he’s building a new studio so obviously he won’t be available to record videos) so I went ahead and post related homeworks under unlisted videos.
@ranpodeltapsi 3 жыл бұрын
Dude that introductory backflip was dope!
@shokan7178 3 жыл бұрын
It was a frontflip tho :)
@jonathanho618 3 жыл бұрын
length 'a' was incorrectly labelled 'b' though!
@Nah_Bohdi 3 жыл бұрын
>he
@Dec38105 3 жыл бұрын
@@shokan7178 he meant (1/backflip)^-1
@manucitomx 3 жыл бұрын
And, when you thought nothing beats the backflip in comes 1:04. Thank you, professor.
@user-cv1jb9xv2p 3 жыл бұрын
0:54 I started working on the problem. 1:05 I started working on doing a front-flip. Nicely done. 👍🏼👍🏼👏🏼👏🏼
@Hani-ic3lh 3 жыл бұрын
This was surprisingly short!
@GastevAleksei 3 жыл бұрын
This was a quite easy problem for a Michael Penn video.
@goodplacetostart9099 3 жыл бұрын
Good Place To Start at 1:04 this time
@targetiitbcse1761 3 жыл бұрын
Hello, remember me from Physics galaxy channel
@goodplacetostart9099 3 жыл бұрын
@@targetiitbcse1761 yes I do
@jamirimaj6880 3 жыл бұрын
the twist is the backflip, damn P.S. if a and b are equal, then the two terms cancel out and just leaving the area of the triangle, thus the shaded area of the crescent will be EQUAL to the area of the triangle beneath it. Awesome.
@57thorns 3 жыл бұрын
And that is the difference between a quarter circle and a half circle (with different radii, but still).
@michaelf.7050 3 жыл бұрын
@@57thorns radii?
@JohnSmith-qq7yw 3 жыл бұрын
That's actually a front flip, not a backflip.
@BigDBrian 3 жыл бұрын
and you can see it in the answer too, because if a and b are equal then the terms cancel out.
@thanosxypolytos4093 3 жыл бұрын
Michael you make it so easy to understand thanks for sharing the calculations are so easy to understand as well.
@mushfikaikfat 3 жыл бұрын
Explanation was elegant and perfect. Made perfect sense. Nicely done Sir! Thanks for posting the video 😊😊
@djmintyfreshful 3 жыл бұрын
I’ve only seen two videos and I already love this channel
@MrRyanroberson1 3 жыл бұрын
unexpectedly easy for what i thought would just be outright absurd
@shivansh668 3 жыл бұрын
Great Personality Professor 👍
@bprpfast 3 жыл бұрын
A front flip?!!!!!
@MichaelPennMath 3 жыл бұрын
That is the twist!
@DrWeselcouch 3 жыл бұрын
Nice video Dr. Penn! Very impressive flip!!!
@davidchung1697 3 жыл бұрын
Love the figures on the chalkboard.
@aviralsood8141 3 жыл бұрын
A frontflip! This is amazing!
@StephanvanIngen 3 жыл бұрын
Your vids are just enjoyable to watch, thanks:)
@hmmmm6174 3 жыл бұрын
Easier than what it looks ngl, great stuff!
@BleachWizz 3 жыл бұрын
Just a tip. You should be able to position your legs straight before you fall, honestly you're jumping too low. Be careful xP
@demetriuspsf 3 жыл бұрын
Wow that was a very low front flip. Nice!
@alainbarnier1995 3 жыл бұрын
Michael Penn I like this small problem... and the big jump ;-)
@tahasami3409 3 жыл бұрын
Thank for michael penn
@MYSBRZ 3 жыл бұрын
Thank you Michael, geometry is good, Tnx😍❤
@biohoo22 3 жыл бұрын
The front-flip flex is why I will never be a stellar mathematician.
@andcivitarese 3 жыл бұрын
very nice slow motion demonstration of conservation of angular momentum: the more he curls up the faster he rotates.
@HecticHector 3 жыл бұрын
This is one of the few videos of yours that I could easily do on my own
@PATRICKZWIETERING 3 жыл бұрын
I found the case where a
@haibai1766 3 жыл бұрын
I think you should mention that a ≥ b, because otherwise the problem gets a bit more complicated
@PATRICKZWIETERING 3 жыл бұрын
My answer in that case is (1/2)ab - (1/4)(b^2-a^2)arcsin(2ab/(a^2+b^2))
@rajdeeplahiri8842 3 жыл бұрын
Please bring in some more problems based on combinatorics, also if you could take up some calculus problems from the jee advanced exam.
@aryakaranjkar939 3 жыл бұрын
I love the chalk and the flip 😂😁
@ali_aldur 3 жыл бұрын
Wow!
@ramtindorostkar765 3 жыл бұрын
math with parcore!
@liab-qc5sk 3 жыл бұрын
Homework for timetravlers again :prove or disprove that pi+e is transdental
@MathElite 3 жыл бұрын
Awesome video
@pedropicapiedra4851 3 жыл бұрын
1:02 linear isometry
@wschmrdr 3 жыл бұрын
3:35 Last I checked, pie are round.
@NavyBlueMan 3 жыл бұрын
Not a super difficult one but still an interesting puzzle - suppose you have a square of side length 1. Inside the square is a circle of the maximum possible radius that can fit in the square, which is shaded in. But a square has been cut out of the circle, such that it kisses the circle at 4 points, which isn't shaded in. But a circle is inside this smaller square, shaded in, with a square cut out of it, and a circle in this square, and so on to infinity. The question is, what is the total shaded area?
@bibeksubedii0001 3 жыл бұрын
Easiest one 1⃣
@baguettegamer5313 3 жыл бұрын
i wish i could flip but i got addicted to math vids
@goodplacetostop2973 3 жыл бұрын
HOMEWORK : The square ABCD has side length 2√2. A circle with centre A and radius 1 is drawn. A second circle with centre C is drawn so that it just touches the first circle at point P on AC. Determine the total area of the regions inside the square but outside the two circles. SOURCE : Mathematical Mayhem from Crux Mathematicorum Vol. 37, No. 6
@athelstanrex 3 жыл бұрын
Michael.
@goodplacetostop2973 3 жыл бұрын
@@athelstanrex Penn.
@claudio9991 3 жыл бұрын
8-5pi/2
@goodplacetostart9099 3 жыл бұрын
Ans 8-5π/2
@goodplacetostop2973 3 жыл бұрын
SOLUTION *8 − 2√2 − 5π/2 +9arccos((2√2)/3)* From the Pythagorean Theorem we get AC = √((2√2)² + (2√2)²) = √(8 + 8) = √16 = 4. Since CP is a radius of the larger circle, and AP = 1 we get CP = CA − PA= 4−1 = 3, therefore the radius of the large circle is 3. Now let's introduce more points : - Point E is the intersection of the circle with centre C and segment AB - Point F is the intersection of the circle with centre C and segment AD - Point G is on the circle with centre C such that the segment GDC is a radius of that circle - Point H is on the circle with centre C such that the segment HBC is a radius of that circle - Point I is the intersection of the circle with centre A and segment AB - Point J is the intersection of the circle with centre A and segment AD We're looking for the areas of the figures JPF and IPE. Using [A] to represent the area of figure A we get, [GDF] = [FCG] − [FCD] = α/2π · π(3)² - (√(3² - (2√2)²) · 2√2)/2 = 9α/2 - √2 where α = ∠FCG = arccos((2√2)/3). Next, we have [PCDF] = [PCG] − [GDF] = 9π/8 − 9α/2 + √2. Thus [JPF] = [ACD] − [APJ] − [PCDF] = 4 − π/8 − (9π/8 − 9α/2 + √2) = 4 − √2 − 5π/4 +9α/2. By symmetry [IPE] = [JPF] thus the area of the regions inside the square but not inside a circle is 2[JPE], or 8 − 2√2 − 5π/2 +9α = 8 − 2√2 − 5π/2 +9arccos((2√2)/3) ≈ 0.38 units.
@rijubhatt8366 3 жыл бұрын
Dude, did you really Somersault standing? Wow!
@trueriver1950 3 жыл бұрын
Depending on what you want the result for, you can then put the last two terms together and factor them using difference if two squares. That might, or might not, be a better place to stop
@peglor 3 жыл бұрын
A better place to stop? What is this heresy? :-P
@ramakrishnasen4386 3 жыл бұрын
Well well well
@Nobody-tu5wt 2 жыл бұрын
Half circle+right triangle-quarter circle=our answer
@JSSTyger 3 жыл бұрын
(1/8)(4ab+πa²-πb²)
@AndreasHontzia 3 жыл бұрын
What if a is smaller than b? Some portion of the quarter circle will lay outside the semi circle. How should that be counted? Or what would be the green shaded area?
@TJStellmach 3 жыл бұрын
"How should that be counted" seems like a definitional problem. What area are you even looking for at that point?
@AndreasHontzia 3 жыл бұрын
@@TJStellmach You could try to match the solution from the video to the problem. But the easiest would be to say that a ≥ b.
@profesorjan7614 3 жыл бұрын
My dream is to have a blackboard as big as Michael's
@kujmous 3 жыл бұрын
Can every individual area be determined?
@kujmous 3 жыл бұрын
I can't find a way myself.
@betelguese18 3 жыл бұрын
Why you dont make a book about this
@jagmarz 3 жыл бұрын
Hmm. (ab/2) + pi(a^2+b^2)/8 - pi*b^2/4. Slightly simplify to (ab/2) + pi(a^2-b^2)/8.
@rishijai 3 жыл бұрын
I thought this problem required some heavy Integral calculus, I was fooled.
@rishijai 3 жыл бұрын
The front flip is at 1:02
@yahav897 3 жыл бұрын
Would you like to make a video on the brachistochrone problem? I think it'd be neat :)
@That_One_Guy... 3 жыл бұрын
Oh yeah nice Monke Flip lol
@MWPdx 3 жыл бұрын
Looks like about 5. 5 area.
@wikipediaboyful 3 жыл бұрын
Motion to change QED for "And that's a good place to stop".
@billbusen 3 жыл бұрын
Seconded.
@jackhandma1011 3 жыл бұрын
Michael Penn is gonna be the next Ronald Graham with that acrobatics.
@hyperboloidofonesheet1036 3 жыл бұрын
Mathrobatics.
@nasim09021975 3 жыл бұрын
Hmm, how about finding the area of that small patch on the upper left side of the red right-angled triangle? lol
@astrolad293 3 жыл бұрын
It's not conceptually hard, just tedious, and probably very messy. Call the intersection of the quarter circle and line AC Z. Calculate the coordinates of Z. From those you can compute the area of the triangle ZBC and the circular segment PBZ (get the angle PBZ from the dot product of vectors BP and BZ). The area of the patch is then the area of triangle ABC minus the the areas calculated. There's another geometric solution using the area of the circular cap to the right of AC, the area of triangle ABC and the quarter circle. Using calculus you can calculate the area under the circular arc PZ and the associated smaller triangle. Take your pick. I think the first one is the easiest.
@DoDO-zr5sk 3 жыл бұрын
why the secound circle calculation becomes plz give reason 🙏
@user-kl8dh7nt2e 3 жыл бұрын
One thing may be proved first: arc AC and arc PC don't crossover. If a≤b, what will happen?
@PATRICKZWIETERING 3 жыл бұрын
My answer in that case is (1/2)ab - (1/4)(b^2-a^2)arcsin(2ab/(a^2+b^2))
@schmetterlingsjaeger 3 жыл бұрын
Where was the big twist? At 1:03 ?
@TJStellmach 3 жыл бұрын
Couldn't the entire shaded figure be described as a kind of big twist?
@noeticresearch 3 жыл бұрын
A frontal somersault in slow motion with jazzy music playing in the background?? Is there anything you can't do Michael?? :-)
@targetiitbcse1761 3 жыл бұрын
Maybe he can't do organic chemistry videos
@zhusan2dui 3 жыл бұрын
I will use integration 😀
@EthnHDmlle 3 жыл бұрын
I did it the unnecessary way, with trigonometric functions. Over complicating it as usual.
@KarlHsia 3 жыл бұрын
这个问题就有点水了,但是这个前空翻。。。我靠
@r75shell 3 жыл бұрын
where is a big twist?
@CM63_France 3 жыл бұрын
Hi, For fun: 1 "and so on and so forth".
@raider8709 3 жыл бұрын
Penn Flip
@denimator5651 3 жыл бұрын
normal people: 8 him: o o
@vibhanarayan9668 3 жыл бұрын
The way u did is bit lengthy , it would have been simpler if u assign diff parts diff variables then add and subtract
@pwmiles56 3 жыл бұрын
Hi Michael. Did you know, a 3D body rotating under inertia describes a rotation about the axis of angular momentum which is a function of the time difference only?
@morancium 3 жыл бұрын
EZ
@jaikiraj2075 3 жыл бұрын
Class 10 th mathematics in cbse
@ishaansharma6428 3 жыл бұрын
Ikr
@Ankit-xc1hd 3 жыл бұрын
Yep
@rorydaulton6858 3 жыл бұрын
Why did you go against the naming convention for the sides of a right triangle? The usual convention is that vertex C is at the right angle, side c is the hypotenuse, side a is opposite vertex A and side b is opposite vertex B. Following that convention, your ending formula be correct if you replaced your labels A, B, and C with the labels B, C, and A respectively. Or am I missing something?
@trueriver1950 3 жыл бұрын
I have noticed before that Michael doesn't use that convention. But that's all it is, a convention: nobody says you have to follow it
@dimitritome5118 3 жыл бұрын
Man you're such a hottie. You should open an onlyfans
@JohnSmith-qq7yw 3 жыл бұрын
By far, one of the most annoying things about youtube videos is the audio mixing. There needs to be a standard for youtube audio levels. The vocals audio levels are very low in this video, then there is blasting music that comes in at some point (flip performance). It's so annoying. KZfaqrs, please put a little more effort into making sure your audio levels are consistent across the entire video. Otherwise it makes it so that the watcher has to constantly be adjusting the volume up and down throughout the video. This is so irritating!