Number Theory | The GCD as a linear combination.
HTML-код
- Опубликовано: 12 апр 2025
- We prove that for natural numbers a and b, there are integers x and y such that ax+by=gcd(a,b). This is also called Bezout's Identity, although it was known by French Mathematician Claude Gaspard Bachet de Méziriac over 100 years before Bezout.
www.michael-penn.net
Wow, not only was that a completely different proof than the ones i have seen before, it was much more intuitive, thank you.
Thanks, I just filmed and edited a video of this identity for polynomials. It should be up in a few days.
Michael Penn thanx a lot for the proof
Same thoughts here. Amazing proof!
Best mathematicians combine intution without loss in generality.
@3:30 ... I think this should be ... Since S is a nonempty set of positive integers, it has a minimum element d=ax+by by the *Well-ordering principle* rather than by the Archimedian principle.
yup same thought and its correct
first time i've seen such an approach to this identity. amazing work! thank you from Lebanon
Greatest Common Divisor? More like Greatest, Coolest Description! Thanks so much for making all of these wonderful videos, and then sharing them.
I just started the book by Joseph Gallian and got stuck on this proof. This video is really helpful. Thanks a lot.
Professor M. Penn ,thank you for a classic topic and selection of The GCD as a linear combination.
Excelent proof. Huge thanks from Brazil!
I'm working on Richard Hammack's book of proof and this video is a great compliment.
That proof was so intellectually satisfying!
Why do we get the contradiction for r
hey sir can u say me how did the q come at 6:20 when using the division algorithm?
Sir your explanations just make fall in love
Thank you for the hard work
This guy does a good job talking through proofs. And from the videos I've watched, he subtlety gives motivation for definitions and theories. Which I think is a sizable pitfall in teaching modern mathematics.
hello may I know what you mean by gives motivation for definitions and theories?
@@khbye2411 hello, so in math sometimes we are presented with theories that seem to have no motivation. Often it’s the case, the more math we learn the clearer the reason for those theories. Hence motivation to declare an idea a theorem
i don't understand. we want to proof a.xo + b.yo=d but again we use a.xo + b.yo =d why ???
Congratulations for 100k familys of mathematics.
3:50 no bro Archimedian principle is something different that you used here is well ordering principle
That was a good catch!
@@PunmasterSTP thanks brother
@@PunmasterSTP but what do you think am I correct
@ No problem, and yes, I think you are correct.
You can illustrate this on a spreadsheet, iteratively subtracting the small number from the larger. Eventually one of them is zero, and the other must be the GCD.
why did you prove that d divides a through all that? you claimed that d is the gcd(a,b) so by definition d has to divide a right?
Wow, I remember seeing this proof in my math circle and not really understanding anything.
This is an ideal presentation.
I’m a bit confused about having c|d implies d=gcd(a,b).
Is it because we can apply this reasoning of c|d for any common divisor of a and b and the smallest number d for which this holds is by definition the gcd(a,b)?
Hey! I know I'm slightly late, but since d divides a and b, and c also does that, and c divides d, that means d>=c (d,c€N). And since we didn't make any assumptions about c other than its a natural no that divides a and b, and yet, d is greater or equal to it, hence, its the greatest common divisor.
I hope this was clear
In the CLRS Introduction to algorithms there is recursive algorithm for this
Finally found a proof huhh all the other RUclipsrs are just giving examples
Is Michael on the bridge of the USS Enterprise?
Thanks for all
Great, thx a lot from Turkey.
Hands down best explanation
from Morocco all respects and thanks
Alternatively, you can use the Euclidean Algorthm to compute the gcd(a, b) and then reverse all the steps to discover that ax + by = gcd(a, b), but this is less elegant and more tedious.
Could someone elaborate why r is less than d?
Think back to long division -- we keep going until the remainder is less than the divisor, otherwise we really haven't finished our division. For example, we don't say 53 divided by 4 is 10 with a remainder of 13, we say it is 13 with a remainder of 1. That is, we don't say 53 = 4(10) + 12, we say 53 = 4(13) + 1, where the r lies between 0 and 4.
thanks from canada:)
Amazing explanation!
Can someone tell me why ax+by greater than 0 is a subset of the natural numbers. It seems to me that the expression would encompass all the natural numbers: 1, 2, 3, ... What am I not seeing?
When he says 'subset of N', he does not necessarily mean that it is a strict/proper subset of N (that is, it *could* be N itself); however, it is yet unclear as to whether it is exactly N or just some part of N, noting that if it were always precisely N, then the proof would follow trivially (as gcd(a,b) is in N by definition).
Consider a = 2, b = 4. Clearly - as we've defined that x,y are integers - any solution to our given form can only be an even integer, whereby we have at least one counterexample to S always being equivalent to N.
Now, West aggressively started GCD as saying as Euclidean Algorithm.
Thank u that you have not said that. Bezout' s identity is also named as Extended E Algorithm.
No one cares
thank you soo much ! from india
Why r is less than d ?
Suppose a = 17 and d = 6, so d does not divide a, as 6 doesn't divide 17.
But, you can write 17 = 6(2) + 5. Here a = 17, d = 6, r = 5. So, a = d(q) + r.
Notice that r can't be 6, because if it were, then 17 = 6(2) + 6 = 6(3) and then 6 would divide 17, which it obviously doesn't.
Similarly, r can't be zero, because if it could be, than we could find an integer q such that 17 = 6(q) + 0 = 6q, and clearly there is no integer q that satisfies 17 = 6q.
Putting it all together we have a = d(q) + r, where 0
@@davidbrisbane7206 as a sidenote, since the equation a = d.q + r is symmetric with respect to q, we can also write 0
let:
1/(a-b)(a+b)=A/(a+b)+B/(a-b)
and form it
■A(a-b)+B(a+b)=1
■a(B+A)+b(B-A)=1
Here are two cases of a Bezout's Lemma.
say some thing about that.
i don’t get it
great explaination
Thank you Sir ☺
thanks, very clear
Thank you
I’m still watching….until the Good Place to Stop…?!?
Thanks from india .
It’s the Well-Ordering Principle, not the Archemedian Principle 😃
Thanks
for what we found gcd,any use
Never ask a mathematician for applications
@@ranjitsarkar3126 it’s all for fun and glory :)
The GCD is used for a variety of applications in number theory, particularly in modular arithmetic and thus encryption algorithms such as RSA. It is also used for simpler applications, such as simplifying fractions.
good.
Great content!
estas re mamado amigo
dafuq just happened
Lol Bezout's Identity
Very clever 👏👏.
The hysterical substance microcephaly prefer because advertisement physically risk amid a knowledgeable teacher. normal, tacky peripheral