User talk:Dmitrii Kouznetsov/Analytic Tetration: Difference between revisions

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imported>Dmitrii Kouznetsov
imported>Dmitrii Kouznetsov
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Copypast from http://math.eretrandre.org/tetrationforum/showthread.php?tid=165&pid=2458#pid2458
Copypast from http://math.eretrandre.org/tetrationforum/showthread.php?tid=165&pid=2458#pid2458
===Theorem T1. (about Gamma funciton)===
===Theorem T1. (about Gamma function)===
'''Let''' <math>~F~</math> be [[holomorphic]] on the right half plane
'''Let''' <math>~F~</math> be [[holomorphic]] on the right half plane
'''let''' <math>~F(z+1)=zF(z)~</math> for  all <math>~z~</math> such that <math>~\Re(z)>0~</math>.<br>  
'''let''' <math>~F(z+1)=zF(z)~</math> for  all <math>~z~</math> such that <math>~\Re(z)>0~</math>.<br>  
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'''Proof''' see in Reinhold Remmert, "Funktionnentheorie", Springer, 1995. As reference is given: H. Wielandt 1939. (Mein Gott, so old reference!)
'''Proof''' see in Reinhold Remmert, "Funktionnentheorie", Springer, 1995. As reference is given: H. Wielandt 1939. (Mein Gott, so old reference!)
Consider function <math>~v=F-\Gamma~</math> on the right half plane, it also satisfies equation <math>~v(z+1)~=~z~v(z)~</math>
Hence, <math>~v~has a [[meromorphic]] continuation to <math>~\mathbb{C}~</math>;
and the poles are allowed only at non–positive integer values of the argument.
While <math>~v(1)=0~</math>, we have
<math>~\lim_{z\rightarrow 0} z~v(z)=0~</math>,
hence, <math>~v~</math> has a holomorphic continuation to 0 and also to each
<math>~-n~</math>, <math>~n\in \mathbb{N} </math> by
<math>~v(z+1)=z~v(z)~</math>.


===Theorem T2 (about exponential)===
===Theorem T2 (about exponential)===

Revision as of 06:44, 29 September 2008

Henryk Trappmann 's theorems

This is approach to the Second part of the Theorem 0, which is still absent in the main text.

Copypast from http://math.eretrandre.org/tetrationforum/showthread.php?tid=165&pid=2458#pid2458

Theorem T1. (about Gamma function)

Let be holomorphic on the right half plane let for all such that .
Let .
Let be bounded on the strip .
Then is the gamma function.

Proof see in Reinhold Remmert, "Funktionnentheorie", Springer, 1995. As reference is given: H. Wielandt 1939. (Mein Gott, so old reference!)

Consider function on the right half plane, it also satisfies equation Hence, ; and the poles are allowed only at non–positive integer values of the argument.

While , we have , hence, has a holomorphic continuation to 0 and also to each , by .

Theorem T2 (about exponential)

Let be solution of , , bounded in the strip .

Then is exponential on base , id est, .

Proof. We know that every other solution must be of the form where is a 1-periodic holomorphic function. This can roughly be seen by showing periodicity of .

,

where is also a 1-periodic function,

While each of and is bounded on , must be bounded too.

Theorem T3 (about Fibbonachi)

Let .
Let Let Let

Then

Discussion. Id est, is Fibbonachi function.

Theorem T4 (about tetration)

Let .
Let each of and satisfies conditions

for
is holomorphic function, bounded in the strip .

Then

Discussion. Such is unique tetration on the base .