I dont understand why you have so many less subscribers like your videos are so interesting and I just stare at the screen, becuz you made learning so interesting and easy. Thank you. I understood it so well

Wow never had this explained to me in such great detail. I always was told because of the squeeze theorem…but to see it like it makes TOTAL SENSE!

My heart fills with so much joy after watching your video. This one too was a perfect cocktail of Geometry, Calculus and algebra. Love you bro. God bless you.

Thank you so much sir. I like your warm voice and your magician-like facial expressions.

i love you sir you don't know how hard was it to get my head around this but your explanation helped me a lot. I'm your new subscriber and looking forward to learn more from you.

Prime Newtons always proves he is always worth watching! 😊🎉

Extraordinary lecture. This man's name shall be told.

I love your CVD clips.

Hello sir, this is the first video I saw of yours, and it is quite amazing. I have a question: If someone has already proven this thing, why are we proving it day by day?

thank you for making my life simpler

Humble suggestion: "this radius 1 circle " is like sorcery for those who start learning trigonometry. You (at least me) thought at first "does this only work on a radius 1 circle? What about all other circles??". So I believe it is useful to explain that any circle can be a radius 1 circle and that you just normalize it to 1 for simplicity. I hope I could pass the idea to you.

Amazing explanation sir I'm from India ❤

I would use double angle identity and Pythagorean identity cos(theta)=cos^2(theta/2) - sin^2(theta/2) 1 = cos^2(theta/2) + sin^2(theta/2)

Great teaching skills, and good video, congratulations. But I fear I must have missed something. You are trying to find the proof that lim(th to 0) of [cos(th)-1]/th equals 0 but you end up with lim(th to 0) of [1-cos(th)]/th =0. What I am trying to say is, how come you start with cos(th)-1 and then end with 1-cos(th)? I assume that they are equivalent at this point, but I missed how and why. Could you please help me out with this?

Hey! This is really cool but when proving the special limit for sin, shouldn’t you only take the right hand limit because you set theta to be greater than 0? Then you would use the fact that the sin function is odd to prove that the limit from the left also = 1

凄いわかりやすくて助かりました！

Thanks for the video. My question for the second part is, if we have two number number multiplied to be 1, but one of it is zero in the end, then how it can be one when multiplied to another number?

I don't understand why it is less than or equal to? How would the area of the sector be equal to the area of the sub triangle? And similarly how would the area of the larger triangle be equal the the sector and the sub triangle? Other than that, this video was awesome!

You savior!

So funny. I watched yesterday your video about derivative of sin and the referred video was not available anymore about the cos identity and here is a new one.

Thank you! I understand very well.

Superrbb teaching 👍🏻

so great, I completely understand. thanks sir

Thanks for this amazing video 😊

I noticed something in the second proof: lim[(1-cosθ)/θ][(1+cosθ)/θ]=[lim(1-cosθ)/θ][lim(1+cosθ)/θ] It's the identity lim ab=(lim a)(lim b) We must have both lim a and lim b exist. But lim a is not known yet.

Love your video super great on your explanations looking forward to more of your videos,thank you for your great work

9:46 why assume theta is positive what if it for negative? If we consider theta as negative may be it between -1 to +1 at 11:55

Try not to use L’Hôpital💀💀💀

What a teaching skill ❤

Well done sir -University student

awesome, how did you squeez "Limits" to the description title?

a perfect teacher

It is amazing 😊

Don't learn the formulas, but the way to find them! Greetings from Bavaria

You can also use the identity: cos (x) - 1 = - 2·sin^2(x/2) to prove lim x --> 0 [cos(x) - 1]/x = 0.

Question: When we divide the equation by sinΘ, how do we determine that sinΘ > 0? Because when sinΘ ≤ 0, the equation will change. Can someone explain what happened in this step?

the quote is very important to the peaple. go on quotation

Thank you sir ❤

can i please know why you put the equal sign for the inequality?

Can you do more proofs?!!!!

Why area of sector is not (pi*r^2*theta)/360????

Sir can i write this annual exam??

well done! 👏🏼

when the equal sign is validated in the inequaity please

Love it

Please sir, I am from Sierra Leone help with differentiation of Determinant

Thanks

The sin theta part was taught beautifully but I didn't get the cos theta part because we had to prove = cos theta -1/theta=0 but here you got 1-COS THETA/theta = 0?

It all makes sense simplifying the geometric proof. But after all I'll need a sandwich for my lunch time out.😊

Tremendous approach. Greeting From Curaçao An Island Nation in The Caribbean

Thanks for an other video....mas than Iran

thank you very much and much ! keep it up!

why, whenever i got your point you always looking at me😂, as if you said "Eureka, right?"

watermelon :) If I said it in the classroom I would be kicked out :)

11:34 here it doesn't make sense if you want to use the squeeze theorem. In fact it doesn't make sense at all since this is what the squeeze theorem implies. Let me show you what I mean. If 1 0 sin x/x

Watch out professor, because the area of the sector explained would be: (theta/2π) (π.r²) = theta/2.

Excellent

No area of sector

I can always remember how to prove sinx / x, but (1 - cosx) / x always throws me. I don't think I've seen it solved this way before, or maybe I have but I just can't remember. Either way, I like it!

We are dividing by Zero in the second proof. That cant be right.

The integrity of a true mathematician. 🎉

Many and tragic Mathematical errors !!! Ask Mathematician .

anyone from 11th tamilnadu