Re: Contradiction of bijections as a measure for infinite sets

Liste des GroupesRevenir à physics 
Sujet : Re: Contradiction of bijections as a measure for infinite sets
De : james.g.burns (at) *nospam* att.net (Jim Burns)
Groupes : sci.math
Date : 02. Apr 2024, 18:51:17
Autres entêtes
Organisation : A noiseless patient Spider
Message-ID : <e392b515-c9ad-4e57-8edd-ceedc8b67bea@att.net>
References : 1 2 3 4 5 6 7 8 9 10 11
User-Agent : Mozilla Thunderbird
On 4/2/2024 3:36 AM, WM wrote:
Le 02/04/2024 à 01:03, Richard Damon a écrit :
On 4/1/24 11:37 AM, WM wrote:

The different sets are ℕ and ℚ.
The bijection with the first column does not change that.
>
Yes it does,
as you are not "moving" the O out of the set of Q.
That makes a difference.
>
It does not make a difference.
It only shows that there is no bijectio.
If your assumption leads to "no bijection",
but there is a bijection,
then your assumption is wrong.
k ∈ ℕ
k ⟼ iₖ/jₖ
sₖ = max{h: (h-1)(h-2/2 < k }
iₖ = k-(sₖ-1)(sₖ-2)/2
jₖ = sₖ-iₖ
iₖ/jₖ ∈ ℚᶠʳᵃᶜ
i/j ∈ ℚᶠʳᵃᶜ
i/j ⟼ kᵢⱼ
sᵢⱼ = i+j
kᵢⱼ = (sᵢⱼ-1)(sᵢⱼ-2)/2+i
kᵢⱼ ∈ ℕ
sᵢⱼ = sₖ
kᵢⱼ = k  ⟺  i/j = iₖ/jₖ
There is a bijection ℕ ⇄ ℚᶠʳᵃᶜ
Your assumption is wrong.

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