Here's what I have done:
I think it's false, so I set out to prove the negation. Which is: $\forall y \in \mathbb{N}, \exists x \in \mathbb{N}; 2x > y + 1$ I then let $y$ be an arbitrary natural number. After this, I do not know how to proceed.
Here's what I have done:
I think it's false, so I set out to prove the negation. Which is: $\forall y \in \mathbb{N}, \exists x \in \mathbb{N}; 2x > y + 1$ I then let $y$ be an arbitrary natural number. After this, I do not know how to proceed.
Hint $\rm\ 2\,\Bbb N\, = $ even naturals, so if they are bounded above then there are only finitely many evens, hence only finitely many odds $\rm\,1 + 2\,\Bbb N,\:$ hence only finitely many naturals, contradiction.
Alternatively, finitely many odds implies finitely many primes, contra Euclid's classical proof.
For any $y\in \mathbb{N}$, $2(y+1)\gt y+1$.
Suppose that I tell you that I’m thinking of some $y\in\Bbb N$, but I don’t tell you what it is. Could you give me a recipe for calculating an $x$ such that $x>y+1$? Sure: just set $x=y+2$. You don’t need an $x>y$: you just need an $x$ such that $2x>y+1$, and that ought to be even easier to specify by a recipe. I’ve included a couple of possible recipes below, spoiler-protected; mouse-over to see them.
The smallest $x$ that works is the smallest natural number $n>\frac{y+1}2$; that’s $\frac{y}2+1$ if $y$ is even and $\frac{y+1}2+1$ if $y$ is odd. But working that out is a waste of energy, at least as far as the immediate problem is concerned, because if $x>y+1$, then certainly $2x\ge x>y+1$. Thus, you might as well use the same recipe that I gave for the simpler problem: set $x=y+2$. That certainly ensures that $2x=2y+4=2(y+1)+2>y+1$!