Question

Prove that

`x {}^(2) + y {}^(2) > xy`
​

Answer 1

Explanation:

hello :

note : add for your statement : x>0 and y>0

look this solution :

Answer 2

Proof in explanation.

Explanation:

I'm going to assume you mean "greater than or equal to".

We know
`(x-y)^2 \ge 0`.

We know this because any real number squared will result in a positive or zero result.

Let's expand the left hand side:

`(x-y)(x-y) \ge 0`

Distribute:

`x(x-y)-y(x-y) \ge 0`

`x^2-xy-yx+y^2 \ge 0`

Combine like terms:

`x^2-2xy+y^2 \ge 0`

Commutative property of addition:

`x^2+y^2-2xy \ge 0`

Add
`2xy` on both sides:

`x^2+y^2 \ge 2xy`

Now we wanted to show
`x^2+y^2 \ge xy`. Our right hand side almost appeared that way except the factor of 2 present there.

Let's go back to our inequality that we got:

`x^2+y^2 \ge 2xy`

Divide both sides by 2:

`(x^2+y^2)/(2) \ge xy`

Note: Half of a positive number is less than that positive number.

`x^2+y^2 \ge (x^2+y^2)/(2) \ge xy`

This inequality says we would like it to say in the end:

`x^2+y^2 \ge xy`