How To Solve For The Angle - Viral Math Challenge

I spent hours on this because it looks so simple and I refused to give up. It looks like we have all the information we need. I kept thinking there has to be a right triangle in here somewhere that Pythagorus can help me with. I drew circles, right triangles, extended the lines outside the big triangle, sliced the isosceles in half to form two 10° 80° right triangles...Nope. I gave up. Never in my wildest dreams would I have constructed an equilateral and then some weird scalene that happens to be congruent to Mercury's retrograde rising over the perihelion of Andromeda.

what i learn in class: 1+2
homework: 7+5
test:

Anyone: I feel very confident of my math skills.
Presh: Can you solve this problem that was given to newborns in China?

Problem: Alright, solve for this angle.
Solution: Create multiple triangles until you get what you want

And it's because of problems like this that trigonometry was invented

Things I learned from watching this channel: when in doubt, just try sticking an equilateral triangle or circle somewhere.

I'm from Turkey, our geometry teacher teaches us this kind of problems as "cut-paste" questions. In well-prepared geometry books we often use this technique.

I'm a geometry tutor and I spent like 10 mins thinking and finally ended up watching solution...

*I kneww it. That **_looked_** like a 30°.*

This solution demands tons of experience with geometry.

Nobody -
Indian competition exams- you have to solve this in 20 seconds.

Türkçe alt yazıyı yapandan Allah razı olsun. ❤

"did you figure it out?" Hell no. But what a clever solution. That was like a chess match, layer on layer of scaffolding to get at the crux, those last two congruent triangles. Impressive.

Who else started with angle 'x' and ended up his equations by canceling out +x and - x and all thats left is 180.

I was correct till here 1:31

Video: don't use trigonometry
Me: no

This looked much easier that it was...

i have only just stumbled on your videos. I left school more than 50 years ago, so my mathematical skills are really rusty, but I am so enjoying the stimulation of working these questions out. I don't get many on my first try. I love your very clear explanations. Thank You.

well... using a protractor is elementary geometry too

Love channels like this, 3Blue1Brown, Mathologer. It's like a fun way to revise and you even forget you're revising. Ways to think outside the box. Awesome.

One can also consider a regular 18-gon A1...A18 with the center O. Then the triangle in question is exactly the same as A1OA2 and the constructed point (lets call it P) is the intersection of the lines OA2 and A1A8. We can show that by noticing that OP=0.5XA9 where X is the intersection of A5A9 and A1A8 because it is a midline and XA9=2A8A9 because the triangle XA8A9 is the half of an equilateral triangle, so OP=A8A9=A1A2 therefore it is indeed the desired point. Then the rest easy follows from an angle chasing. Also do note that solution in the video constructs the equlateral triangle and it's third vertex is A3 and the solution in the pinned comment by Nestor Abad considers another equilateral triangle and it's third vertex is the intersection of two lines A1A7 and A2A12 so all solutions seem to rely on the underlying structure of an regular 18-gon.

I did this a different way, also using an equilateral triangle, but it wasn't the first thing I drew. I'll try to explain without a picture, so please label the big triangle vertices A, B, and C with A at the top, and B, C going counter-clockwise. Then label the 4th point D. So AB = CD (given) and AC = BC because the triangle is isosceles, as shown in the video solution. Now construct another isosceles triangle congruent to the big triangle with base at CD and extending upward. Call the vertex of that new triangle E. Now, connect E to A, and it isn't hard to show that AEC is an equilateral triangle.
Now look at triangle, AED. That's also isosceles since AE = ED. Angle AED is 40 degrees, as we can subtract the 20 degrees of triangle CED from the 60-degree angle of the equilateral triangle ADE. That means the base angles of the isosceles triangle AED must be 70 ((180 - 40) / 2). So now, we have CDE = 80, EDA = 70, which add to 150. BDC is a straight line (180 degrees), so that leaves angle ADB = 30 degrees, which is the angle we're looking for.
Hard to follow the words, but it 's a lot easier if you draw the diagram as you read. I like this solution because it starts by constructing something that makes sense (another isosceles triangle using as a base the side that we know is equal to the base of the original isosceles triangle) rather than arbitrarily drawing the equilateral triangle first. Who would think of doing that...without just getting lucky?
Edit (Saturday, 26 Jan 2019): Here's a link to my solution with pictures: drive.google.com/file/d/10y-IbdSMj4gP9IWXFX3tCnO6AS-oEnih/view?usp=sharing

This channel's videos accompany me with many enjoyable lunch for days, and to this particular puzzle I also come up with a alternative solution, and no need to use pen and paper, just imagine in mind.
1. Draw a equilateral triangle on the left side so the bottom left corner can divided into 60° and 20°.
2. Rotate and move the 20° triangle on the right side to match up the bottom left corner of the isosceles triangle.
3. Now because the cut away triangle have 3 condition: ONE side equals to the equilateral triangle, ONE side equals to the isosceles triangle, ONE angle equals to 20°, it can flip down side up to fill up the entire isosceles triangle.
4. We know a equilateral triangle must have three 60°, so the cut away triangle's biggest corner must equals to 360° minus 60° and all of that divided by 2, which is 150°.
5. The final corner to answer this question is equals to 180° minus 150° which is 30°.
Thanks to share this interesting puzzle!

daha yeni hem ingilizce anlayabildiğimi hem de geometri yapabildiğimi öğrendim

I tried for about 1 hour to find that angle. I couldn't do anything out of the ordinary without working inside the triangle. ohh!!! watching your solution I got to realise that I did nothing.

Nice video Presh!!! These are great (especially the geometry ones!) it’s definitely a fun watch for me

thanks for Turkish translate good video :)

The solution was so easy that my mind stoped working immediately after looking at the question

"Did you figure it out?" aww yesssss... until now I didn't even know the term isosceles triangle in English. :D

I thought myself to be a great mathematician, but now i understood that maths requires to be a great magician..........👏👏👏

1:04 lol truly a rare feat

TOPRAĞININ AKIŞINA ÖLÜRÜM TÜRKİYEM♥️♥️♥️♥️♥️

I think I have the simplest solution. Consider the big isosceles triangle ABC, with A top left corner, B right corner and C bottom corner. So in the video, AC is the blue line, and AB and BC are the green lines. Now add a new point internal to the triangle, called D, such that ADC is an equilateral triangle (pointing right). Now draw in the lines AD, BD, and CD. It makes a nice vertically symmetric picture with ABD and CBD being congruent to the inner triangle in the video that had an angle of 20 degrees. From here it is easy to work out all angles from the fact that the original triangle ABC had angles 80 and 20 degrees.

Im glad this isnt my homework

We can also find out by assuming one of the length then find out remaining lengths and applying cosine rule to find out AD then apply same for angle

Equilateral triangle out of nowhere.

That was actually really beautiful. I couldn't solve it by geometry either lol. Great video Presh, and awesome explanation!

In these hard puzzles, the hardest is to figure out the construction part

Him: Did you figure it out?
Me:

"i like finding lazy people to do hard tasks because theyll find easy ways to do it" -bill gates (quote not exact)
ill stick with trig

when you draw the equilateral triangle upwards and draw a line from the cut point to the new point of the equilateral triangle and baaam It is over. there is a side-by-side equality. 180-80-70=30. It looks easier that way.

When i see geometriy.. i sort myself out

I saw this question while studying Middle school math olympiad, and I knew a tip:
when there is 80 80 20 triangle, try to make equilateral triangle. this will help a lot.

In 2:49 it formed a quadrilateral and it’s always said that opposite angles of a quadrilateral is supplementary which means it will always add up to 180 but it doesn’t show in that figure

If elementary geometry includes i.e we can use a+b+c=180 then there are 4 unknowns and 4 equations available which should solve the problem

I just did multiple Law of Sins and also one Law of Cosine to find the 30 degree angle

Thank you for a nice and elegant solution!
My aproach is different.
Just label the vertexes of the triangle as A,B,C (A at the right low corner, clockwise). I is the point on AC so that BA= CI.
Draw the bisector CH from the vertex C to AB, so angle BCH=ACH=10 degrees
From B draw a line forming 60 degees wiht AB , meeting CH at G and AC at F.
Now we have the triangle BFC is isosceles (2 bases angles = 20 degrees), and ABG is an equilateral one.
Just consider the triangle BFC: BF=FC----> BG+GF=FI+CI----> GF = FI-----> the triangle GFI is an ioscles one, -----> GJ//BC -----> BGIC is a isosceles trapezoid and the line connecting F to the meeting point of BI and CG is also the bisector of the angle BFC and BC.
Because of symetric property, BI is the bisector of the angle FBC (compared with the angle FCB), thus FBI = 10 degrees.
The angle BFA=180 - (80+60)=40 = angle BIF + 10
Thus Angle BIF= 40-10= 30 degrees

Wowww, even after watching this problem I am unable to figer it out,
I will have to see the video more that 3-4 times

This is amazing i couldn’t imagine this solution before i watched it!!😍

This same question i was saw a few years ago in NCERT EXEMPLAR of class 9 th mathematics in india

This channel is like an addiction. More precisely imagine you could not pass a level on your fav video game some years ago. Then one day you see how to pass that level so easily on your youtube main page

Dr Telwalker if we were to approach this problems heuristically I presume we might preserve some precious periods. The angle in question can be found by assuming that of the figure of a circle i.e 360 degrees, so we proceed with this and look at the angles in proximity we have 80 and 20 we take to the side with the obtuse angle triangle (one with 20 degrees) and subtract 360 from 20 thus giving us 340 we know that 340 is not an obtuse angle we divide it by 2 and we get 170 but if we apply the newly found result the application will be erroneous, ergo we repeat the step by subtracting 170 by 20 giving us 150 which means that the sum of the angles of the triangle is 150, 20 and 10 which satisfies the properties of an obtuse angled triangle(an obtuse angle accompanied by two acute angles) we can know subtract 150 from 180 and get 30 thus giving us the angles of the second triangle 80, 70 and 30. Apologies, if it appears that I have erred for this process is quite liberating, even for a plebian. Thank you sir.

anyone else - not consider this elementary geometry?

I solved using trigonometry, basically, the sin law. After that I saw the video to check my answer and could know the solution should be Just using elementary geometry. But I can Tell You the trigonometric solution os Also Very cool and It is difficult to "see" the answer is 30 degree because the final expression is strange so that we need to manipulate It.

I did it differently but same sort of idea: Call the triangle abc with top left point a, bottom left point b and right vertex c and the point with distance ab away from c be x. Drop a line from a to bc at point d such that and is an 80 degree angle so adb is isosceles. This means bad is 20, and so dac is 60. Then construct a line from d to the line ac at e such that ade is 60. This now must be an equilateral triangle since it has two angles equal to 60. Since ade is 60 and adb is 80, edc is 40. Now drop e to point f such that efd is 40 and f is not the same point as d. This would mean that efc is 140 and fec would be 180-140-20=20. But this means fec is isosceles and this is only possible because f is the same point as x! Since dex is isosceles dex = 180 -40 -40 = 100. Aed = 60 so aex =160. Since aex is isosceles, exa = (180-160)/2 = 10, we can now see that axb = exb - axb = 40 - 10 = 30

Hi Presh Talwarkar,
what a fabulously beautiful solution from you to this issue
I found the solution with great luck
I drew your isosceles triangle on graph paper with a base 8 cm and a high of 23 cm.
This simply gave the solution.
Anny other ratio does not provide a good solution.
Thanks for your clear en good explonation.
I'm dutch and 79 and still learning here.. thank again PT

Figured out the angle using Pythagorean theorem before watching the requirement for not using trigonometry. Of course method given here is better, because it is not an easy task to find an arctan from ~0.577 :)

This is a very interesting problem. But these kind of problem can be only solved by a fixed construction. So actually it takes a little bit of time.

Solving this problem with your own gives you an amazing happiness.😊 And after watching the solution and seeing that you solved in a different way makes you more happy. Isn't it? 'Cause you are feeling yourself intelligent and precious 😇

Below is a very graphical solution that only uses basic math (like knowing that the angle sum in a triangle is 180 degrees). I think you will find it beautiful, and encourage you to draw it for yourself
I start out the same as Presh, by identifying that it is indeed an isosceles triangle. Then I too construct an equilateral triangle, but in a different way.
I made the observation that 20 is 60/3. It thus makes sense to stack three triangles on top of each other, with the 20 degree sharp corner angles adding up to 60 degrees. By drawing a line through the three triangles, from outer corner to outer corner, you get the equilateral triangle that is showed in the video.
If we call the base of one of the three isosceles triangles B, you can now draw a second equilateral triangle with side length B (starting where the angle you should measure is situated). This smaller equilateral triangle will off course have its base (length B) parallel with the base of the larger equilateral triangle.
Now comes the magic: If you draw a line that gets you the angle to measure, and draw a mirror-line symmetrically from the other side of the small equilateral triangle you get two lines separated by distance B shooting up and hitting two corners that are also separated by length B (the two corners of the middle one of the three isosceles triangles). It is easy to see (and prove) that both lines shoot up with identical angles from the side of length B in the small equilateral triangle (this is due to symmetry).
The ONLY way two lines can start at a line separated by length B, have the same angle, end up at another line, parallel to the first line, and still be separated by a length of B, is if it’s a rectangle. Thus all angles are equal to 90 degrees.
Now it is trivial to see that the angle to measure is equal to: 180 - 60 (the angle in the small equilateral triangle) - 90 (the rectangle angle) = 30 degrees.
The beauty of this solution is that it’s graphically obvious (if you draw it), and even quite young children would be able to follow the solution.

Just draw a parallelogram Sir.....take the required angle as "theta"....u can make two equations from there very easily....theta=180-80-(60-a)....eq¹....then theta=a+20..eq²...then you'll get a=10°....thn substitute it in eq²....bang theta=30°.....think it easy first Sir

At 2:37 shouldn't the angle be 80° since then the sum of angles of blue triangle will be 180°

Unusual question. Expanded my mind.

Is there any method to solve it ?

Draw the triangle and measure the angle easy.

AWESOME VIDEO😀😀😀😀

idk if this is a rigourous solution but i split the 20 section into 2 right triangles, then drew a tangent to the middle line that intersects with the 80 corner. this gives two new right triangles, one of which is the same as the 20 degree one, 80 - 20 is 60 for the angle of the other right triangle, giving a 90-60-30 triangle

I solved it with trigonometry. The trick is to find the isosceles side of the triangle in terms of the shorter side(similar sides) then use sine rule.

Bu soru benim problemlerimden daha zorlayıcı çıksa da çözemem iyi günler

And I cooked my brains hours together to get this and still couldn't..that was really hard.

An easier solution can be to put the triangle on the top on the bottom
By doing that we simply get a right triangle from which we can get the uppermost angle of the triangle therefore finding the req angle

I am now in IIT 1st year b.tech. and was able to solve the problem in 2 minutes

It took me half an hour to solve this. I'm not actually that good at math! So happy i was able to solve this by myself!
My friends could have done it quicklier i think. Maybe because the math program in my country is heavy as hell 🤦

Who ever has solved it.....salute him....he is a genius
This was beyond my imagination

Greetings from Turkey. I'm very happy to have discovered this channel, I'm enjoying it a lot, I hope it continues like this

Wow, nevar thought of this, but managed to get another solution. I've only cunstruct triangles inside the bigger initial triangle.
1- Making an isosceles from the 80⁰ angle. Notice a new side with an 60⁰ angle.
2- construct an equilateral triangle from it. Notice a 40⁰ angle
3- Make the isoceles triangle with the 40⁰ angle. Notice a new 20⁰ angle.
4- The new 20⁰ side must make an isoceles triangle with the initial 20⁰ angle (only way to that side to be inside the bigger triangle, a llitle early doesnt connect and a litter l after it would end outside).
5- Notice an isoceles triangle with a very acute angle of 10⁰ and calculate the angle of the interrogation mark.

Beautiful, proves math isn't complicated but fun to try

Turn on full screen and
Place a protector on the screen.
Easy peasy

The solution described by Nestor Abad is the best solution using the fact that the central angle of a chord is twice the inscribed angle.This fact is easy to prove.Working out all the other angles proves that the required angle is 30 degrees.There are at least four ways of doing this problem using elementary methods.I tried to link the two x s together using algebra but I could not do it.I am sure it can be done but there will be a lot of monkeying about using lengths etc.

I solved this type of problem while proving identity sinA + sinB geometrically, where one angle comes to (A+B)/2 and other one to (A-B) /2 using parallel and perpendicular lines. Method described by u is long. But the required angle in this problem can be solved using only parallel lines and perpendicular lines properties only.

See the thumbnail : Ooh i could use cosinus for that
Watch the video : *no tigonometry were allowed*
Owwh Okay..

cidden güzel soruymuş.çeviri için teşekkürler

See 0:32 secs ..that's India to his right bottom corner..this is our craze !! Try solving jee advanced...
I am in class 9th, please read it patiently by drawing the diagram accordingly suggested to get the answer.
I did it in quite different method !! If we will name the triangle ABCD where angle D is the unknown , angle A = 80°, angle C = 20° and angle B = 80° (angle sum property).Triangle ABC will be an isosceles triangle because angle a = angle b =80°. If we will draw a length equal to AB from point D meeting BC at E, then triangle CDE will also become an isosceles triangle with DE and DC as equal sides and angle DEC and angle DCE = 20°. And angle DEB = 160° (linear pair). Now, another isosceles BED triangle will get formed (these all can be proved but the content will get longer), Now in triangle BED, BE = DE and angle EBD = angle EDB. Since, angle angle DEB = 160°, therefore angle EBD = angle EDB = 10°. Now, angle B = angle ABD + angle DAE, implies that, 80° = ABD + 10° , and angle ABD = 70°. Finally, in triangle ABD, angle A = 80°, angle ABD = 70°and angle BDA (unknown) = 30°
Please read it patiently by drawing the diagram.

Harika bir yöntem.
Başka çözüm yolları var mı

Cok tesekkurler turkce alt yazi icinnn..💚

beautiful, if there is a God, he likes geometry

FOR THE FIRST TIME I GOT ONE OF YOUR CHALLENGES RIGHT I'M SO HAPPY

I always hated geometry. This is no exception, but I still like your videos.

There are a number of "difficult elementary problems" like this one, all using a 20-80-80 triangle.

Using sine law, I got -330 deg, which is equivalent to 30 deg

I don't draw multiple triangle， I use normal trigo and ratio:
Let side above be a and shorter one on the side below be c and longer one be b, then asin20=csin80, c=asin20/sin80.
then draw a line perpendicular to the upper side (within that smallest triangle in this problem), this cut the upper side into 2 parts, similarly, the longer one on the upper side can be expressed in terms of a, say a- c cos 20 in which c can be expressed in terms of a.
Then, let the line in the middle of this whole triangle (given by the problem) be x and let the smallest angle in this problem be θ such that θ+20=?, then
a- c cos 20=xcosθ,
xsin (θ+20)=asin20,
make two of above with x as subject such that
(a-c cos 20)/cosθ = asin20/sin (θ+20)
cancel a on two sides
use trigo identity to express sin(θ+20)
u will find tan θ = certain value, finally θ+20 = ? which is the answer.

I just knew the top left angle of the right triangle had an anle smaller than 20 and the last angle was above 90 so i guessed the top one as 10 and the other as 150 then got the ? as 30

i solved it using Laplace-Transforms lol just kidding

Eleman bizim yks de çıkan soruları görmemiş buna zor diyor :)

Trời ơi hay quá trời quá đất, nghĩ ra phương án vẽ tam giác đều thật là ngoài sức tưởng tượng, vậy cũng nghĩ ra được. Ko uổng phí khi đăng ký kênh này!!!!

So what did u get by solving them?

Since when is making additional triangles considered elementary?

it's really nice solution

well... after i solve the problem and thought "it must be answer"
and i saw the video, he showed quite different solution...
.......yeeeaaah i found a new solution