You must be kidding, this can't have been proposed in a Math Olympiad contest. This is 5th grade normal day-to-day stuff. The Math Olympiad questions I remember from Romania in the 90s didn't even look like Maths, that's how hard they were. You didn't even know what that was.

1) Combination of any value for X and 0 for y is a solution. 2) Combination of any value for x and the same value for y is a solution.

Using some Basic factorization, we can rewrite this as (x+y)(x-y)=(x-y)^2. This can be further simplified to (x-y)[(x+y)-(x-y)]=0. After some algebra this reduces to y(x-y)=0. This equation has two distinct solutions: y=0 for all x And x=y, for all x,y in Reals

These are the actual solutions, according to symbolab. {x = y; y ≠ 0} - this means that if y is not 0, then x is equal to y. For example, if y = 25, then x must also be 25. {y =x; y = 0} - this means that if y = 0, then x = 0, however, the true answer is that if y = 0, then x can be _anything_ However, for some reason, there's no such symbol that means "literally everything ever". There are symbols that mean "real numbers", "natural numbers", etc, but there's no single symbol in mathematics that means "x can be anything you want, ever, no exceptions. The reason is, if the values are the same, then x² - x² = 0, obviously, and then (x - x)² = 0² = 0 If however, the value of y = 0, but the value of x is "anything", then x² - 0² = x², and (x - 0)² = x². In other words: The following solutions will work: If x and y are the same value, then it will work. If y is 0, but x is any value, then it will work. For example: Let x = 25, and y = x, thus y = 25 25² - 25² = 625 - 625 = 0 (25 - 25)² = 0² = 0 Now let x = 25, and y = 0 25² - 0² = 625 - 0 = 625 (25 - 0)² = 25² = 625

A much simpler method can be applied. Just convert x²-y² to (x+y)(x-y) and decrease (x-y)² to x-y.

En passant par les produits remarquables, c'est plus facile. Dans le premier terme de l'équation, on doit considérer que X²-y² = (x-y)×(x+y). Aprés, on fait tout passer à gauche de l'équation, une mise en évidence de (x-y) etc...

Before watching: x^2 - y^2 = (x+y)(x-y), thus: -> x^2-y^2 = (x-y)^2 -> (x+y)(x-y) = (x-y)(x-y) PRESUMING that x-y =/= 0, divide by x-y -> x+y = x-y 2y = 0 y=0 If y=0 then x^2-y^2 = x^2 - 2xy -y^2 -> x^2 = x^2. First set of solutions: y=0, x = any real number. SECOND set: Multiply out RHS: x^2 - y^2 = x^2 - 2xy + y^2. Subtract x^2 and add y^2 on both sides: 0 = -2xy + 2y^2 -> 2y^2 - 2xy = 0 -> 2y(y-x) = 0. This actually gets us to our solutions faster, but I'm working this out as I type it, so my mistake. This means either 2y = 0, y-x = 0, or both. 2y=0 -> y=0, x = anything y-x =0 -> y = x. Our solutions are thus: Y=0, X = any real number And Y=X

The solution must be {x=y such that y belongs to R}

Would it not be faster to... (x+y) (x-y) = (x-y) (x-y) x+y = x-y 2y=0 so y=0

I read Maths Olympiad then spent more time looking for a catch than getting the solution that was so easy I did it in my head.

x^2-y^2=(x-y)^2 imply (x-y)(x+y)=(x-y)^2 for x different from y: imply x+y=x-y imply y=-y imply y=0 ,and replace the y by 0 we will have x^2=x^2,so x has infinite solutions. for x=y: infinite solutions for x and y

x²-y²=(x-y)² (x+y)(x-y)-(x-y)(x-y)=0 How take (x-y) common then (x-y)(x+y-x+y)=0 (x-y)(2y)=0 Thus , (x-y)=0 or (2y)=0 Which means x=y or y=0

x²-y²=(x-y)² (x-y)(x+y)=(x-y)(x-y) If (x-y) is not 0 then x+y=x-y 2y=0 y=0 If x-y is 0 then x=y Did it in my head in ten seconds...

I really love your videos. Thank you so much!!!

One equation with 2 unknowns has no unique solution. X=0 for all Y, Y=0 for all X, Y=X for all Y and X.

Your final answer should be: (x, 0) and (x,x), for any value of x in the domain of the equation.

Very well explained

(x+y)(x-y)=(x-y)(x-y) (x+y)=(x-y) x=0,y=0 and x=any real number

It could also be 2y^2 -2xy=0 2y^2 = 2xy Y^2= xy Y=x y=x=1

By inspection the following work: x = 1 or -1 and y = 0.

It is not right right The formula is x2-y2= (x+y) (x-y)

Can you make video for science Olympiad??

The equation contains two variables x and y. Therefore its solution must be given in the form of a pair (x,y). You cannot just say y=0 is a solution.

Ma'am but equation with two variables have infinite solutions right?

Not correct: Y=0 is indeed a solution, but X then can take any value, not just X=Y.

(x-y)×(x+y)=(x-y)×(x-y) x+y=x-y 2y=0 y=0 x= infinite solutions

Find f(s) where f(s)=1+1/2^s+1/3^s+.....=0

Cool video

x^2 - y^2 = (x-y)^2 (x-y)(x+y) = (x-y)(x-y) | (x-y) => x y first solution x+y = x -y | -x y= -y => y =0 second solution check y=0 x^2 = x^2 check x=y x^2 - x^2 = 0^2 0=0

very easy but good practice i guess

Thanks for video keep going 🤠 greeting from Morocco

Bu soru Türkler için çok basit. This question is very simple for Turks.

x=1, y=0 is anther soln, unless I'm mistaken.

Ques. find value of x and y. ans. after solving, y = 0 ... i x = y ... ii from i and ii, we get, x = y = 0 so, x = 0 and y = 0 ... final answer.

X=1. Y=1

Thanks!

thank you so much

Why this questions so easy?

thanks

mam the answer you got x=y know mam we know that y=0 so that we can substitute the value of y in the equation of x so that we get x=0 is that correct mam ?

infinite solutions 🤯🤯🤯 as long as x = y

Why not x = y = 1?

What if y=0 and x may have any value you want?

What really used in life . I mean real time where applicable?

I think this a basic math for binomial is too easy

Think about a much simpler and faster method to teach us later

Nice

Do any of you know this pen brand?

y = 1 also works

1by 2 is answer 😅

This is a very simple question. Can't be an Olympiad question 😅

I'm sorry but I don't understand it. Make it simple to understand..... it's more complicated dear ....too vague

No what is this X=y Any value

X^2-y^2=(X-y)^2 (X+y)(X-y)=(X-y)(X-y) X+y=x-y 2y=0 y=0 (1) X^2-y^2=(X-y)^2 X^2-y^2=X^2+y^2-2xy 2xy=2y^2 X=y (2) From (1)&(2) X=y=0

Too easy for Korean

This equation makes no sense

Kosovo 😀😀😀😀 Serbia, you mean

1:31 or , not and

Not good enough

Shame on you. That wrong. The answer is y=0 or y=x

Kosovo is Serbia, thank you.

😂😂😂😂😂😂😂😂

Is this Olympiad for dumbest kids? if x² - y² = x² - 2xy + y², so -2xy = 0. So => x = 0 or y = 0

Жах.Не має відповіді і якщо взялися щось пояснювати то не дуоіть людям голову,а пояснюйте до кінця правильно ,а не просто коментуєте розв'язання ,як для сліпих.

This demo is wrong, error