Stirling's formula was one of my favorite when I was in high school because it was often useful for math olympiad problems. Great video, Trefor!
@DrTrefor
2 жыл бұрын
Thanks! Ya I love both that it incorporates a bunch of cool math to prove it, but also can be used in so many cool things.
@alexsere3061
2 жыл бұрын
Question, I participated in math olympiads from 2014 to 2020 and nobody even suggested it to me. What kind of problems did you use it for? The only use I can think of is for upper bounds in combinatoric problems
@mathflipped
2 жыл бұрын
@@alexsere3061 This was 30+ years ago, so I don't remember specific problems when I used this formula.
@alexsere3061
2 жыл бұрын
@@mathflipped I meant more generally what kind of problems (algebra, combinatorics, number theory), but I understand that it was a long time ago, thanks for the response
@Kurtlane
2 жыл бұрын
You did this in high school? Wow!
@Sarah-tl8cd
2 жыл бұрын
This channel is gold. Started watching for linear algebra help and now I find myself binge watching in my free time.
@DrTrefor
2 жыл бұрын
Love that!
@MyOneFiftiethOfADollar
2 жыл бұрын
When I first learned about Taylor series approximation of differentiable functions, it was presented in a dry way void of the linear fit, quadratic fit, cubic fit, etc. Thanks for taking the time to present the graphical side of things rather just diving in to the derivation!
@idjles
2 жыл бұрын
so sad you didn't get this taught to you by someone with passion. Taylor's formula is simply mind-blowing. All my childhood I wondered how my calculator did square roots, sin, cox, log etc. and when I finally learnt Taylor's formula I realized how a calculator worked, and realized i could now do any calculation on paper that a calculator could do.
@userAndix
2 жыл бұрын
@@idjles yes this would be a way to implement these functions. But after I read a bit into implementing sin as function they often go with tables because the Taylor approximation is really good for smaller values but for bigher values the precision needed makes the compitational need not worth it. But thats only what i read, still sounds very reasonable in my opinion.
@jimschneider799
2 жыл бұрын
Why is this not taught in school? I had always assumed that Stirling had approximated ln(n!) as the integral of ln(x) dx from 1 to n (which gives ln(n!) =~ n ln(n) - n + 1 + R(n) for some remainder function R(n), and that implies n! =~ (n/e)^n * e^(1+R(n))), and that the remainder term in that approximation was about R(n) =~ ln(2 pi n)/2 -1. This makes a lot more sense, and it explains where the square root of pi comes from.
@honourabledoctoredwinmoria3126
2 ай бұрын
I think De Moivre did indeed use what you did, namely approximating ln(n!) as the integral, because he did not report what R(n) was, and then Stirling later worked it out from approximating the gamma function.
@jorgesaxon3781
2 жыл бұрын
I have found a gold mine! almost all math channels are either completly monotone, gloss over important parts, or upload once a blue moon, yet your channel is the perfect combination of enthusiasm, beutiful maths, and consistency! keep up the amazing work!
@ichigo_nyanko
2 жыл бұрын
Dr Peyam :)
@ytashu33
2 жыл бұрын
Great video! Loved your style, not getting bogged down in the details while still doing justice to the underlying concepts is hard. Your approach of explanations coupled with graphical analysis, hits the spot just in that Goldilocks zone. Keep it up!
@DrTrefor
2 жыл бұрын
Much appreciated!
@dohyun031
2 жыл бұрын
Hello! This is an Analysis 2 student using Rudin pma! Thank you for your awesome video! Really inspired me to go through Rudin's explanation of Sterling's formula!
@HansBezemer
2 жыл бұрын
I've done MANY implementations of the Gamma function (including one of Ramanujan - from his last notebook). But one of the more interesting ones in this context is the one from Cristinel Mortici: "A substantially improvement of the Stirling formula", to appear in: Applied Mathematics Letters. Received date: 30 August 2009. n! ~ sqrt(2*pi*n)(n/e + 1/(12*e*n))^n This algorithm gives about 7 good digits, but becomes more inaccurate close to zero.
@andrewharrison8436
Жыл бұрын
That's crazy: pi, n, e yes the original seems to come from nowhere but "12" sorry inelegant so not acceptable. ... but it works upvoted and thanks
@FazlayElahi
2 жыл бұрын
This man is criminally underrated.... Such a great teacher and explainer he his... Love from Bangladesh 🇧🇩
@NaN_000
Жыл бұрын
💀 what criminally???
@emet744
Жыл бұрын
Excellent video. I love how no detail is left out. I read that John Wallis actually discovered the formula first and Stirling's only contribution was the constant Sqrt(2 Pi). It should have been named for Wallis.
@ckq
11 ай бұрын
I recently realized Stirlings approximation is actually kinda simple to derive by considering the peak of a poisson distribution and approximating as a normal. I thought it required the integral in the gamma function, but it's much more intuitive using the poisson distribution with mean n (and variance n), which peaks at (n/e)ⁿ/n!
@ckq
11 ай бұрын
Then applying the central limit theorem we have (n/e)ⁿ/n! ≈ 1/√2πn
@maurocruz1824
2 жыл бұрын
WHAT A BEAUTIFUL VIDEO! A lot of concepts together.
@DrTrefor
2 жыл бұрын
Thank you so much!
@ffggddss
2 жыл бұрын
Thanks loads for this wonderful demonstration! Approximating the factorial function has been a pet interest of mine for (mumbledy-mumble) decades. In college, I started with the simple idea that if you take the logarithm, so that you're dealing with ln(x!), you could represent it graphically by plotting y = ln(x), and drawing boxes of height ∆y = ln(n), for integer n, and width ∆x = 1, centered at each successive integer. So (neglecting the n=1 box, which is 0 height anyway), you have a box from x = 1½ to 2½ with ∆y = ln2; from x = 2½ to 3½ with ∆y = ln3; etc. Now ln(n!) = the area of all the boxes from 1½ to n+½ (log of a product is just the sum of the logs!), which is approximately the area under ln(x) for the same x-interval: ln(n!) ≈ ∫[1½, n+½] ln(x) dx = x(ln(x) - 1) | [1½, n+½] So n! ≈ e^(that integral) Then I wanted to see how well this approximation worked for various values of n, and this having been in the Dark Ages, when there weren't hand-held electronic calculators, let alone personal computers, I got a fellow student who knew how to write and submit programs for the campus mainframe, to code this formula and print out results showing factorial, the above approximation, and the ratio of the two, for various values of n. It turned out that the fractional error tended to (6+)% for large n. Not bad. But it left me wondering what that limiting ratio of 1.06... was, mathematically. Then I learned about Stirling's Series for n!, the leading term of which is Stirling's Formula. I dimly recall the derivation as having involved the "method of steepest descent;" but I've since forgotten how that worked. More recently I've poked around with some other, better approximations. Two very good ones, having excellent error-minimization-to-complexity, are: x! ≈ √(2π) (X/e)^X x! ≈ [24X/(24X + 1)] √(2π) (X/e)^X where X = x + ½ Fred
@billclinton6040
2 жыл бұрын
I have had a lot of calculus, and I have never before seen the technique of simplifying an integral using a Taylor Series expansion. Very cool.
@faei
2 жыл бұрын
As always in math, it is a little bit more complicated than that, in fact, the proof was just a draft of a proof. The proof only shows that n! is more or less the sterling formula in a really vague sense For the proof to be complete, you need a few more steps: - show that exp(ln z - z) is well approximated by exp(-1 + -1/2 (z - 1)^2) (not obvious ! it happens that f ~ g but not exp f ~ exp g, see f = 1 + x, g = x at infinity) - show that the integral of exp(ln z - z) is well approximated by the integral of exp(-1 + -1/2 (z - 1)^2) (still not trivial) Then it's done (maybe) Or you could use the generalisation of this method (Laplace's method) but its way harder I think It's definitively a cool trick but a rather hard one for an undergraduate
@virabhadra2
2 жыл бұрын
Nice video! Always loved the formulae connecting e and π together. I think, also, it will be properly to say: an approximation of Gamma function, which is one of the generalisations of factorial.
@alexsere3061
2 жыл бұрын
This summer I struggled with a probability book and was planning on driving into some of the identities used, seems KZitem read my mind, just subscribed, awesome video
@michaeljburt
2 жыл бұрын
Great video. You mentioned that we would discuss why taking the Gaussian integral from 0 to infinity doesn't matter, maybe I missed it, but I didnt hear why. Shouldn't the Gaussian integral from 0 to infinity be root(pi)/2? How can we justify omitting this factor of 1/2 from the final result?
@DrTrefor
2 жыл бұрын
Yes, but our integrals is going to zero away from the point we approximate super fast, so anything outside of that region is not relevant
@MichaelRothwell1
2 жыл бұрын
Because the peak of our Gaussian is at 1 (and not 0), starting the integral at 0 is not cutting the integral in half, it is only cutting off a tail, which rapidly gets smaller as n increases.
@cycklist
2 жыл бұрын
I already love you for saying zed and not zee ❤️❤️❤️❤️
@leviathoncannon
2 жыл бұрын
I was thinking, we can justify the taylor approximation because the maximum is at z=1 and, since the function is negative, the region we are integrating over will be concentrated in an interval around z=1. The exponential function will quickly drop to zero to the left and to the right of z=1, especially for large n.
@VisuallyExplained
2 жыл бұрын
It's nice to see a combination of a great math explanation with pertinent numerical simulations. Nicely done!
@DrTrefor
2 жыл бұрын
Thank you!
@davidgillies620
2 жыл бұрын
Add in the single extra multiplicative term 1 + 1/12n (which comes from a further application of Laplace) and it is good to eighty parts per million by the time you get to 6!.
@gergonemes88
2 жыл бұрын
It should be 1+1/(12n).
@davidgillies620
2 жыл бұрын
@@gergonemes88 Yeah, typo. Corrected.
@andrewharrison8436
2 жыл бұрын
This is a crazy bit of maths - 13 min long video that gives the structure for deriving Stirlings formula - that's got to be a rewatch in segments. Links to 4 videos that I now must watch (smooth salesman that you are!). Time to dust off a spreadsheet and play with this myself.
@Mayhem_77100
Жыл бұрын
Hi, by redoing the proof, I've just noticed at the end when you use the Gaussian integral, you took sqrt (π/a) where a = n/2. But this is valid for the integral goign from -♾️ to + ♾️, and the original integral goes from 0 to +♾️, therefore is the half of the complete Gaussain integral, which adds a 1/2 factor who is not present, did I made a mistake ?
@scraps7624
2 жыл бұрын
I remember using this in my statistical mechanics course back in my day as an undergrad, I loved this explanantion!
@douglasstrother6584
2 жыл бұрын
Stat Mech flashbacks!
@adw1z
10 ай бұрын
Not just the first order formula, but deriving the whole Stirling asymptotic series in my Asymptotic Methods Course - It's a very difficult course, but extremely fun at the same time!
@ominollo
9 ай бұрын
Great Stirling’s approximation 🙂
@jann5s___
2 жыл бұрын
isn't Maple included into Matworks Matlab now? Is this a spin-off of the old Maple IP?
@DrTrefor
2 жыл бұрын
It’s the same Maplesoft company so the engine is the same, but put into a student friendly product
@berryesseen
Жыл бұрын
If Stirling's approximation is not good enough for you, you can always bring more terms from the Taylor series expansion. This way, you will get sqrt(2 pi n) (n/e)^n (1- 1/(12n) + 1/(288n^2) + O(1/n^3)). I had used this in order to approximate the entropy of binomial distribution (n, p) for large n. It gets quite good. I used it in an information theory journal paper.
@carlsloane7198
2 жыл бұрын
Dear Dr Bazett: I was a little surprised that you didn't mention the contribution of de Moivre, who established the first approximation to factorial n in the third edition of his "Doctrine of chances" (1733). Stirling's principal contribution was determining the constant 1/2 root pi. What is now known as Burnside's formula is now consisered due to Stirling. Sincerely, Carl Sloane, London, ON
@randellrussell2400
2 жыл бұрын
Dude this problem was so hard. Can't wait to see more.
@Jamesdaman69
2 жыл бұрын
I figured out the analytic continuation of stirlings formula in the domain of |x|
@Jamesdaman69
2 жыл бұрын
It’s actually a really easy formula. It’s 1/(x+1)+x(1-g) where g is the Euler-Mascheroni constant.
@cubuffs2028
5 ай бұрын
The laplace method link claims "It can be shown that for such a function (pictured, but not given specific conditions), all of the main contribution to the integral comes from the x values near x0, say, (1 − ε)x0 ≤ x ≤ (1 + ε)x0." any suggestions on where to find a rigorous proof of this?
@MrKoteha
7 ай бұрын
The approximation is best at around x = π^(4/13), where the difference between the functions is very close to sin(π/4) / 10
@crimfan
2 жыл бұрын
Whenever pi shows up in probability distributions, you can bet Stirling's approximation is lurking nearby.
@DrTrefor
2 жыл бұрын
Lol yup. Very connected to poison distribution for instance
@crimfan
2 жыл бұрын
@@DrTrefor Many discrete distributions have close connections to continuous distributions, such as the Poisson and gamma. The first derivation of the Gaussian by de Moivre was to use a Stirling approximation for the binomial. Very accurate as you say.
@nelsonpalraj
2 жыл бұрын
Thank you professor
@williammartin4416
22 күн бұрын
Thanks!
@DrTrefor
22 күн бұрын
You're amazing, thank you!
@debasiskar4662
Жыл бұрын
Just Excellent.
@mastershooter64
2 жыл бұрын
oh what a nice coincidence, professor ghrist just released a video that had the stirling's approximation
@DrTrefor
2 жыл бұрын
Oh cool, love his channel!
@nutronstar45
Жыл бұрын
thank you for providing evidence that pi is always followed by a 2
@theimmux3034
2 жыл бұрын
how does this work when the series used for lnx converges only for 0 < x
@birefringent2851
Жыл бұрын
Because in the limit of large n, the exponential inside the integral rapidly decreases away from x = 1. You aren't replacing ln x - x with its full taylor series, just the constant and quadratic terms, and as long as this approximation is good close to x = 1, it doesn't matter what happens when x-1 is not small
@philippschuler7155
6 ай бұрын
At 7:51 why is it online written first derivative for (-1/z^2) ?
@porcospino289
2 жыл бұрын
Yes, it is of course cool maths with a capital k. Dr. Bazett should learn, though, that the "g" in "analogous" is hard, not pronounced like a "j" in English.
@AubreyBarnard
2 ай бұрын
And this is the first time I've heard "Gauss" as "Gowz".
@primmanet
2 жыл бұрын
Great video! Many thanks!
@KamiMountainMan
2 жыл бұрын
From computational time complexity standpoint what is the point of this approximation?
@KamiMountainMan
2 жыл бұрын
Isn't it both O(n) multiplication?
@douglasstrother6584
2 жыл бұрын
@@KamiMountainMan In Statistical Mechanics, computing ln(n!) is common; in those cases, n ~ Avogadro's Number.
@shubhajitkar6928
2 ай бұрын
In the last line, where you use Gaussian integral, is that okay? I'm getting √2 in the denominator😢
@Lolwutdesu9000
2 жыл бұрын
Wait, so what was the point of making the substitution x = nz? The formula was pretty much identical save the constant outside, but I don't see why that would matter, since we're focusing on the integrand.
@DavidFMayerPhD
9 ай бұрын
You might mention the relationship to the Dirac Delta Function.
@richardgu6646
2 жыл бұрын
Great Video! Around 7:58, I think the last line should be the second derivative of f(z), for Taylor approximation.
@jaimeduncan6167
Жыл бұрын
It's never worse than 92% Precise is just fantastic.
@TheNameOfJesus
2 жыл бұрын
Only 14,205 views after 14 months? That's a shame. It's on par with some of the other math channel videos.
@foppifokounoe5561
Жыл бұрын
thank you sir. please is there a Formula to calculate factorials of complex numbers? because the gamma function evaluates factorials of negative function
@carlosgordilloolivera6994
Жыл бұрын
What about the integration limit z=0 in the Change of variable y=z-1? It is a error function missing?
@birefringent2851
Жыл бұрын
the exponential decreases so rapidly that the part that was left out during the shift of integration limits is totally insignificant
@rv706
2 жыл бұрын
What's the approximation order for n-> \infty i.e. o(?)
@isakwatz11
2 жыл бұрын
Even as a pure mathematician, you gotta love a great approximation!
@DrTrefor
2 жыл бұрын
Isn't it just so cool?!
@bhaveshsonalkar
2 жыл бұрын
Nice..Its amazing how simple things can be used to construct something powerful!
@DrTrefor
2 жыл бұрын
So cool!
@Materialyprestrojarov
2 жыл бұрын
Thank you so much for the video. Can I ask, what Software do you use to animate the equation transitions? They look very clean and profesional. I would love to use it for my channel. Is it just Powerpoint? Many thanks :)
@DrTrefor
2 жыл бұрын
Yup just PowerPoint lol
@jimcurrie
2 жыл бұрын
What is gamma(1/3). Can this formula be used to determine the value of gamma(1/3).
@Jack_Callcott_AU
2 жыл бұрын
It really is a mind-blowing formula. I think it says something deep about the structure of our number systems. What are e and Pi doing there.
@tomctutor
2 жыл бұрын
Its no surprise that where 'e' appears 'π' pops up as well, because of Euler's e^(iπ)=-1. This gives π as a precise mathematical function of 'e' and vica-versa. Sort of inverse functions of each other in a sense.
@Jack_Callcott_AU
2 жыл бұрын
@@tomctutor Thanks for the reply. Best wishes.
@xyz.ijk.
5 ай бұрын
Excellent video, I doubt you'll see this comment, but it would be great if you didn't use colors so close together for those of us who are colorblind.
@Froncusiek
2 жыл бұрын
Cool video, really liked the graphical interpretation. I think tho you should’ve mentioned the radius of convergence for the Taylor series, since it’s usually a pretty important constraint for this particular approximation technique. What do you think?
@rogerkearns8094
2 жыл бұрын
Is there any such approximation to the Reimann Zeta Function?
@firasnizam
2 жыл бұрын
coool, thanks for sharing
@tensorix
2 жыл бұрын
Typo on 7:50. f'(z) but "second" derivative. Everything still clear though
@DrTrefor
2 жыл бұрын
oh good catch!
@billcook4768
2 жыл бұрын
Yet another formula that would be cleaner using tau instead of pi :)
@MultiPaulinator
2 жыл бұрын
So, this means that Floor(n*Log_10(n/e)+Log_10(Sqrt(2πn)))+1 should do a perfectly fine job giving me its number of digits. Nice. No loops.
@NaN_000
Жыл бұрын
How gamma function is derived?
@stirlingstark1983
2 жыл бұрын
Wait what? I don't remember creating this?
@TomasLKarlik
2 жыл бұрын
The videos are really nice! I just want to ask of you to look into mic gain and/or compressor filtering. The overloading makes it pretty difficult to listen to 🙂
@DrTrefor
2 жыл бұрын
Noted!
@p.j.882
2 жыл бұрын
Can it be expressed as an erf function?
@geeache1891
2 жыл бұрын
Nice if the approximation would have been a simpler function than the original.
@douglasstrother6584
2 жыл бұрын
In Statistical Mechanics, computing ln(n!) is common. In that context, n ~ Avogadro's Number.
@andrewharrison8436
2 жыл бұрын
(n+1)! is n!(n+1) so is Stirling's formula consistent with this? (Well, it better be, but how?) To get an aprox to (n+1)! either apply Stirling's formula to n+1 or apply it to n and then multiply by n+1. Well to cut a long story short lots of things cancel and you get e is aprox (1+1/n)^(n+.5). Let me get nostalgic here and remember my compound interest from 48 years ago, ahh yes: (1+1/n)^n is interest of 100% compounded n times a year (1+1/n)^(n+1) is where the interest is payable at the beginning of each interval - oops, edited to add - that it includes the payment at the beginning of the next year - so my memory of formulae isn't as good as I hoped. So as n gets large the 2 values get closer to each other and converge to e. That's rather satisfying.
@andrewharrison8436
2 жыл бұрын
Probaby - bad etiquette to reply to my own comment - but I am enjoying the maths. I compared e to (1+1/n)^n and (1+1/n)^(n+.5) as n grows both tend towards e, however that extra .5 means the approximation gets better rather faster. The errors are in opposite directions but just looking at magnitude: when n=1 the error is 1/6 n=17, the first formula has 100 times the error of the second n=167, the advantage is 1000. This makes sense, e is the result of continuous growth. (1+1/n)^n is discrete growth at the end of intervals size 1/n. (1+1/n)^(n+.5) shifts the discrete growth to the middle of each interval so is a better aproximation to the continuous growth we are after.
@andrewharrison8436
2 жыл бұрын
To show my working, let S(n) be Sterlings approximation to n!. We would like n+1 = S(n+1)/S(n) + x where x is a small adjustment 1 + x/(n+1) = S(n+1)/((n+1)S(n)) Now use the formula x/(n+1) = ((n+1)/e)^(n+1)sqrt(2pi(n+1)) / ((n+1)(n/e)^n sqrt(2pi.n) splitting the exponent into n and 1 on the top and cancelling sqrt(2pi): ={((n+1)/e)^n/(n/e)^n} (n+1)/e /(n+1) {sqrt(n+1)/sqrt(n)} Consolidating the ^n terms and cancelling the (n+1) in the middle and multiplying by e e + e.x/(n+1) = ((n+1)/n*e/e)^n sqrt((n+1)/n) Finally we make the sqrt just an extra .5 on the exponent and rewrite (n+1)/n as 1+1/n to give: e + e.x/(n+1) = (1+1/n)^(n+.5) But really my initial question was about n+1 compared with S(n+1)/S(n) so we need x so: x = (n+1)/e {(1+1/n)^(n+.5) - e} Interesting, does this decrease? the curly brackets term decreases, does it do so faster than (n+1) increases? Empirically the answer is yes.
@visualgebra
2 жыл бұрын
Awesome
@SlimThrull
2 жыл бұрын
And suddenly pi appears with no circles in sight.
@MattMcIrvin
2 жыл бұрын
Where it actually comes from is quite weird--it's from that integral of a Gaussian, but the integral of a Gaussian gets it because the way to make it tractable is to square it, so it's an integral over two variables, and then transform that to polar coordinates, and the integrand turns out to have circular symmetry (because of the Pythagorean theorem). So that's where the circle is lurking.
@SlimThrull
2 жыл бұрын
@@MattMcIrvin Ahhh, just a very well hidden circle. Thanks.
@arturorenteria4943
2 жыл бұрын
is there a way to clear n? n = ?
@bernhardbauer5301
2 жыл бұрын
This is not crazy. This is not a crazy relationship. This is math.
@frozenkingfrozenking6989
Жыл бұрын
Good good
@syedmdabid7191
3 ай бұрын
But this formula says that the factorial of A NEGATIVE NUMBER would be IMAGINARY. But we know 1/ (--1)! =0 So (--)! = infinity
Damn, i have serious suspicions you have cameras in my math class
@DrTrefor
2 жыл бұрын
😂
@aashsyed1277
2 жыл бұрын
Is this 2nd video in gogology?
@DrTrefor
2 жыл бұрын
Sort of, I don’t know that either of these functions is really quite big enough to be considered googology
@scottmiller2591
Жыл бұрын
The link to Laplace's Method - how much do you have to hate your readers to use that color scheme?
@muskyoxes
2 жыл бұрын
Before watching this video, i could justify everything in Sterling's approximation except the 2 pi and i wondered "is that really the best constant? Would 6.28 be better or worse? How do we know?" And after watching this, i still don't get it. ln z - z is basically linear for large z, so it seems like a uniquely bad idea to approximate it with a _quadratic_ centered at _small_ z. And that's where your 2 pi comes from. So i'm unsettled.
@faei
2 жыл бұрын
It depends on the definition of what is a good approximation, here, the definition used is that f(n) ~ g(n) if f(n)/g(n) -> 1 when n goes to infinity The video proved that n! ~ sqrt(2 pi) sqrt (n) (n/e)^n (small technicals details are missing, but it's not a math course) So, you can see that if you change sqrt(2 pi) by sqrt(6.28), you will have n! / [sqrt(6.28) sqrt (n) (n/e)^n] -> sqrt(2 pi)/sqrt(6.28) ! = 1 so we have NOT n! ~ [sqrt(6.28) sqrt (n) (n/e)^n] In fact, any other constant will fail this test The method comes from the following intuition: if f(x) > f(y) then e^f(x) > e^f(y) and (e^f(y) / e^f(x))^n -> 0 when n -> infinity So, the majority of the weight of the integral of e^(nf(x)) dx will be around the maximum of f when n goes to infinity Thus, using an approximation around the maximum is the way to go (a linear approximation is not used because it too rough for our need, it just doesn't work, because it doesn't keep information about the maximum of f)
@matiestrella510
2 жыл бұрын
Why is doctor strange teaching math now ?
@aashsyed1277
2 жыл бұрын
It's Taylor polynomial
@nrpbrown
2 жыл бұрын
Damn thats pretty cool
@inthebackwiththerabbish
2 жыл бұрын
love u
@Mmatt69
2 жыл бұрын
I'm searching for Veritasium's comment.. :)
@DrTrefor
2 жыл бұрын
if only!!
@cauchyschwarz3295
2 жыл бұрын
Unlike 3b1b, the way you explain math makes it seem like an empty husk of algebraic tricks without meaning. It honestly makes me a bit sad.
@mohamedridamahir1960
2 жыл бұрын
why oh why didn't i know you sooner
@aweebthatlovesmath4220
2 жыл бұрын
I was expecting less approximation 😞
@alysdexia
2 жыл бұрын
little bit: pick one; not nice < niais < nescius := not-skilled but you are; thick -> coarse; thin -> fine; large -> great; away from -> froward
@hctibsseltraeheleda9041
Жыл бұрын
ఒక్క ముక్క అర్దమైతే చెప్పుచ్చుకు కొట్టండి
@romanmoskalenko22
2 жыл бұрын
Why has the exponential expression been replaced by a quadratic approximation? This approximation is good only in some (not very large) neighborhood of z=1. The integral is taken from zero to infinity..
@romanmoskalenko22
2 жыл бұрын
Even the sign "almost equal" is too rude..
@DrTrefor
2 жыл бұрын
It is true it is only a good approximation near by. But if you plot the gaussian, as n gets large it becomes and extremely steep spike and extremely close to zero anywhere that isn't near by. I still haven't proven the method, but it isn't unreasonable that it works out this way:D
@romanmoskalenko22
2 жыл бұрын
@@DrTrefor thanks =)
@alexl3231
2 жыл бұрын
Also in the final formula, for large n (even with 3,4,5,6...), the most "important" part is clearly nⁿ, then 1/eⁿ and the rest that comes from the integral/Taylor-approx
@thegreatestdemon1288
Жыл бұрын
So called Taylor series was already invented by hindu mathematician way before than europeans
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