Difference between revisions of "User:Tohline/Appendix/Mathematics/ToroidalConfusion"
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</table> | </table> | ||
So far, this gives me three ''similar'' but not identical formulae for the same function mapping! As per equation (8) in (yet another source!) [http://adsabs.harvard.edu/abs/2000JCoPh.161..204G A. Gil, J. Segura, & N. M. Temme (2000, JCP, 161, 204 - 217)], the relationship is: | <span id="Gil">So far, this gives me three ''similar'' but not identical formulae for the same function mapping!</span> As per equation (8) in (yet another source!) [http://adsabs.harvard.edu/abs/2000JCoPh.161..204G A. Gil, J. Segura, & N. M. Temme (2000, JCP, 161, 204 - 217)], the relationship is: | ||
{{ User:Tohline/Math/EQ_Toroidal02 }} | |||
This expression from Gil et al. (2000) means, for example, that by identifying <math>~x</math> with <math>~\coth\eta</math>, we have <math>~\lambda = \cosh\eta</math>, and, | |||
<div align="center"> | <div align="center"> | ||
| Line 385: | Line 368: | ||
=Cohl's Response to My (May 2018) Email Query= | =Cohl's Response to My (May 2018) Email Query= | ||
Most of the confusion expressed above stems from the DLMF's use of '''bold''' fonts, such as the function on the left-hand side of the Whipple | ==Proper Interpretation of DLMF Expression== | ||
Most of the confusion expressed above stems from the DLMF's use of '''bold''' fonts, such as the function on the left-hand side of expression #3, above — that is, the Whipple formula from [https://dlmf.nist.gov/14.19.v §14.19 of DLMF], | |||
<table border="0" cellpadding="5" align="center"> | <table border="0" cellpadding="5" align="center"> | ||
| Line 412: | Line 396: | ||
</math> | </math> | ||
</div> | </div> | ||
After making the substitutions, <math>~\mu \rightarrow m</math> and <math>~\nu \rightarrow (n-\tfrac{1}{2})</math>, | After making the substitutions, <math>~\mu \rightarrow m</math> and <math>~\nu \rightarrow (n-\tfrac{1}{2})</math>, the Whipple formula displayed above as expression #3 becomes, | ||
<table border="0" cellpadding="5" align="center"> | <table border="0" cellpadding="5" align="center"> | ||
| Line 442: | Line 426: | ||
<math>~e^{m\pi i} | <math>~e^{m\pi i} | ||
\Gamma\left(m-n+\tfrac{1}{2}\right)\left(\frac{\pi}{2 | \Gamma\left(m-n+\tfrac{1}{2}\right)\left(\frac{\pi}{2 | ||
\sinh\xi}\right)^{1 / 2}P^{n}_{m-\frac{1}{2}}\left(\coth\xi\right) \, | \sinh\xi}\right)^{1 / 2}P^{n}_{m-\frac{1}{2}}\left(\coth\xi\right) | ||
</math> | |||
</td> | |||
</tr> | |||
<tr> | |||
<td align="right"> | |||
| |||
</td> | |||
<td align="center"> | |||
<math>~=</math> | |||
</td> | |||
<td align="left"> | |||
<math>~(-1)^m | |||
\Gamma\left(m-n+\tfrac{1}{2}\right)\left(\frac{\pi}{2 | |||
\sinh\xi}\right)^{1 / 2}P^{n}_{m-\frac{1}{2}}\left(\coth\xi\right) \, , | |||
</math> | </math> | ||
</td> | </td> | ||
| Line 448: | Line 447: | ||
</table> | </table> | ||
which matches expression #2, above. But it does not ''appear'' to match expressions #1 or #4. | |||
<table border="1" cellpadding="5" align="center" width="80%"><tr><td align="left"> | |||
The standard "Euler reflection formula for gamma functions" is usually presented in the form, | |||
{{ User:Tohline/Math/EQ_Gamma01 }} | |||
If we make the association, | |||
<div align="center"> | |||
<math>~z \leftrightarrow (m - n + \tfrac{1}{2}) \, ,</math> | |||
</div> | |||
with <math>~m</math> and <math>~n</math> both being either zero or a positive integer, then, this Euler reflection formula becomes, | |||
<table border="0" cellpadding="5" align="center"> | |||
---- | <tr> | ||
<td align="right"> | |||
<math>~\Gamma(m - n + \tfrac{1}{2}) ~ \Gamma(n - m + \tfrac{1}{2} )</math> | |||
</td> | |||
<td align="center"> | |||
<math>~=</math> | |||
</td> | |||
<td align="left"> | |||
<math>~\pi \biggl\{ \sin\biggl[ \pi(m - n + \tfrac{1}{2}) \biggr] \biggr\}^{-1}</math> | |||
</td> | |||
</tr> | |||
<tr> | |||
<td align="right"> | |||
| |||
</td> | |||
<td align="center"> | |||
<math>~=</math> | |||
</td> | |||
<td align="left"> | |||
<math>~\pi (-1)^{m+n} \, .</math> | |||
</td> | |||
</tr> | |||
</table> | |||
</td></tr></table> | |||
However, in our situation the so-called "Euler reflection formula for gamma functions" gives the relation, | |||
<div align="center"> | <div align="center"> | ||
<table border="0" cellpadding="5" align="center"> | <table border="0" cellpadding="5" align="center"> | ||
<tr> | |||
<td align="right"> | |||
<math>~\frac{\pi (-1)^{m+n}}{\Gamma(n-m+\frac{1}{2}) }</math> | |||
</td> | |||
<td align="center"> | |||
<math>~=</math> | |||
</td> | |||
<td align="left"> | |||
<math>~\Gamma(m-n+\tfrac{1}{2}) \, .</math> | |||
</td> | |||
</tr> | |||
</table> | |||
</div> | |||
Hence, we may also write, | |||
<table border="0" cellpadding="5" align="center"> | |||
<tr> | |||
<td align="right"> | |||
<math>~ Q^{m}_{n-\frac{1}{2}}\left(\cosh\xi\right)</math> | |||
</td> | |||
<td align="center"> | |||
<math>~=</math> | |||
</td> | |||
<td align="left"> | |||
<math>~(-1)^m \biggl[ \frac{\pi (-1)^{m+n}}{\Gamma(n-m+\frac{1}{2}) } \biggr] | |||
\left(\frac{\pi}{2 | |||
\sinh\xi}\right)^{1 / 2}P^{n}_{m-\frac{1}{2}}\left(\coth\xi\right) | |||
</math> | |||
</td> | |||
</tr> | |||
<tr> | |||
<td align="right"> | |||
| |||
</td> | |||
<td align="center"> | |||
<math>~=</math> | |||
</td> | |||
<td align="left"> | |||
<math>~ \frac{(-1)^n \pi }{\Gamma(n-m+\frac{1}{2}) } | |||
\left(\frac{\pi}{2 | |||
\sinh\xi}\right)^{1 / 2}P^{n}_{m-\frac{1}{2}}\left(\coth\xi\right) \, , | |||
</math> | |||
</td> | |||
</tr> | |||
</table> | |||
which matches expressions #1 and #4. So everything appears to be in agreement! Hooray! | |||
==Derivation From Scratch== | |||
Whenever he deals with these types of relations, Cohl usually begins with, | |||
<div align="center"> | |||
<table border="0" cellpadding="5" align="center"> | |||
<tr><th align="center" colspan="3"><font color="maroon">Expression #5</font></th></tr> | |||
<tr> | <tr> | ||
<td align="right"> | <td align="right"> | ||
| Line 674: | Line 765: | ||
</table> | </table> | ||
</div> | </div> | ||
Hence, we can write, | <span id="QPrelation">Hence, we can write,</span> | ||
<div align="center"> | <div align="center"> | ||
<table border="0" cellpadding="5" align="center"> | <table border="0" cellpadding="5" align="center"> | ||
| Line 696: | Line 787: | ||
---- | ---- | ||
Finally, another relation states that, for <math>~n \in \mathbb{N}_0</math>, | |||
<div align="center"> | <div align="center"> | ||
<table border="0" cellpadding="5" align="center"> | <table border="0" cellpadding="5" align="center"> | ||
| Line 746: | Line 837: | ||
</table> | </table> | ||
</div> | </div> | ||
This matches expressions #2 and #3, above. | |||
==Index Values of Zero== | |||
Setting <math>~n = m = 0</math> gives the following sought-for relationship: | |||
<div align="center"> | <div align="center"> | ||
| Line 776: | Line 869: | ||
<math>~ | <math>~ | ||
\frac{\pi}{\sqrt{2}} ~ \biggl[ \frac{1}{ \sqrt{\sinh\eta}} \biggr] P^{0}_{- \frac{1}{2}} (\coth\eta) \, . | \frac{\pi}{\sqrt{2}} ~ \biggl[ \frac{1}{ \sqrt{\sinh\eta}} \biggr] P^{0}_{- \frac{1}{2}} (\coth\eta) \, . | ||
</math> | |||
</td> | |||
</tr> | |||
</table> | |||
</div> | |||
==Joel's Additional Manipulations== | |||
From [https://dlmf.nist.gov/14.19.iv §14.19.6 of DLMF], we find the following summation expression: | |||
<div align="center"> | |||
<math>~\boldsymbol{Q}^{\mu}_{-\frac{1}{2}}\left(\cosh\xi\right)+2\sum_{n=1}^{\infty} | |||
\frac{\Gamma\left(\mu+n+\tfrac{1}{2}\right)}{\Gamma\left(\mu+\tfrac{1}{2} | |||
\right)}\boldsymbol{Q}^{\mu}_{n-\frac{1}{2}}\left(\cosh\xi\right)\cos\left(n | |||
\phi\right)=\dfrac{\left(\frac{1}{2}\pi\right)^{1/2}\left(\sinh\xi\right)^{\mu | |||
}}{\left(\cosh\xi-\cos\phi\right)^{\mu+(1/2)}} | |||
</math></div> | |||
Then, if we again employ the [http://dlmf.nist.gov/14.3.E10 DLMF relationship between '''bold''' and plain-text function names], namely, | |||
<div align="center"> | |||
<math> | |||
\boldsymbol{Q}^{\mu}_{n-\frac{1}{2}}\left(x\right) | |||
= | |||
e^{-\mu\pi i}\frac{Q^{\mu}_{n-\frac{1}{2}}\left(x\right)}{\Gamma\left(\mu+n + \tfrac{1}{2} \right)} \, , | |||
</math> | |||
</div> | |||
where we have made the substitution, <math>~\nu \rightarrow (n-\tfrac{1}{2})</math>, the ''Sums'' expression becomes, | |||
<div align="center"> | |||
<table border="0" cellpadding="5" align="center"> | |||
<tr> | |||
<td align="right"> | |||
<math>~e^{-\mu\pi i}\frac{Q^{\mu}_{-\frac{1}{2}}\left(\cosh\xi\right)}{\Gamma\left(\mu+ \tfrac{1}{2} \right)}</math> | |||
</td> | |||
<td align="center"> | |||
<math>~=</math> | |||
</td> | |||
<td align="left"> | |||
<math>~ | |||
\dfrac{\left(\frac{1}{2}\pi\right)^{1/2}\left(\sinh\xi\right)^{\mu | |||
}}{\left(\cosh\xi-\cos\phi\right)^{\mu+(1/2)}} | |||
- | |||
2\sum_{n=1}^{\infty} | |||
\frac{\Gamma\left(\mu+n+\tfrac{1}{2}\right)}{\Gamma\left(\mu+\tfrac{1}{2} | |||
\right)} | |||
\biggl[ e^{-\mu\pi i}\frac{Q^{\mu}_{n-\frac{1}{2}}\left(\cosh\xi\right)}{\Gamma\left(\mu+n + \tfrac{1}{2} \right)} \biggr] \cos\left(n | |||
\phi\right) | |||
</math> | |||
</td> | |||
</tr> | |||
<tr> | |||
<td align="right"> | |||
<math>~\Rightarrow ~~~Q^{\mu}_{-\frac{1}{2}}\left(\cosh\xi\right)</math> | |||
</td> | |||
<td align="center"> | |||
<math>~=</math> | |||
</td> | |||
<td align="left"> | |||
<math>~ e^{\mu\pi i} \Gamma\left(\mu+ \tfrac{1}{2} \right) \biggl[ | |||
\dfrac{\left(\frac{1}{2}\pi\right)^{1/2}\left(\sinh\xi\right)^{\mu | |||
}}{\left(\cosh\xi-\cos\phi\right)^{\mu+(1/2)}}\biggr] | |||
- | |||
2\sum_{n=1}^{\infty} | |||
Q^{\mu}_{n-\frac{1}{2}}\left(\cosh\xi\right) \cos\left(n | |||
\phi\right) \, . | |||
</math> | |||
</td> | |||
</tr> | |||
</table> | |||
</div> | |||
When dealing with Dyson-Wong tori, we will set <math>~\mu = 0</math>, in which case the ''Sums'' expression becomes, | |||
<div align="center"> | |||
<table border="0" cellpadding="5" align="center"> | |||
<tr> | |||
<td align="right"> | |||
<math>~Q_{-\frac{1}{2}}\left(\cosh\xi\right)</math> | |||
</td> | |||
<td align="center"> | |||
<math>~=</math> | |||
</td> | |||
<td align="left"> | |||
<math>~ \biggl[ | |||
\dfrac{ \pi/\sqrt{2} }{\left(\cosh\xi-\cos\phi\right)^{\frac{1}{2}} }\biggr] | |||
- | |||
2\sum_{n=1}^{\infty} | |||
Q_{n-\frac{1}{2}}\left(\cosh\xi\right) \cos\left(n | |||
\phi\right) \, . | |||
</math> | |||
</td> | |||
</tr> | |||
</table> | |||
</div> | |||
But this can be rewritten in the form, | |||
<div align="center"> | |||
<table border="0" cellpadding="5" align="center"> | |||
<tr> | |||
<td align="right"> | |||
<math>~ | |||
\sum_{n=0}^{\infty} \epsilon_n | |||
Q_{n-\frac{1}{2}}\left(\cosh\xi\right) \cos\left(n | |||
\phi\right) | |||
</math> | |||
</td> | |||
<td align="center"> | |||
<math>~=</math> | |||
</td> | |||
<td align="left"> | |||
<math>~ \biggl[ | |||
\dfrac{ \pi/\sqrt{2} }{\left(\cosh\xi-\cos\phi\right)^{\frac{1}{2}} }\biggr] | |||
</math> | </math> | ||
</td> | </td> | ||
Latest revision as of 04:43, 13 June 2018
Confusion Regarding Whipple Formulae
May, 2018 (J.E.Tohline): I am trying to figure out what the correct relationship is between half-integer degree, associated Legendre functions of the first and second kinds. In order to illustrate my current confusion, here I will restrict my presentation to expressions that give <math>~Q^m_{n - 1 / 2}(\cosh\eta)</math> in terms of <math>~P^n_{m - 1 / 2}(\coth\eta)</math>.
|
|---|
| | Tiled Menu | Tables of Content | Banner Video | Tohline Home Page | |
Published Expressions
From equation (34) of H. S. Cohl, J. E. Tohline, A. R. P. Rau, & H. M. Srivastiva (2000, Astronomische Nachrichten, 321, no. 5, 363 - 372) I find:
| Expression #1 | ||
|---|---|---|
|
<math>~Q^m_{n - 1 / 2}(\cosh\eta)</math> |
<math>~=</math> |
<math>~ \frac{(-1)^n \pi}{\Gamma(n - m + \tfrac{1}{2})} \biggl[ \frac{\pi}{2\sinh\eta} \biggr]^{1 / 2} P^n_{m - 1 / 2}(\coth\eta) \, . </math> |
From Howard Cohl's online overview of toroidal functions, I find:
| Expression #2 | ||
|---|---|---|
|
<math>~Q^n_{m- 1 / 2}(\cosh\alpha)</math> |
<math>~=</math> |
<math>~(-1)^n ~\Gamma(n-m + \tfrac{1}{2}) \biggl[ \frac{\pi}{2\sinh\alpha} \biggr]^{1 / 2} P^m_{n- 1 / 2}(\coth\alpha)\, , </math> |
Copying the Whipple's formula from §14.19 of DLMF,
| Expression #3 | ||
|---|---|---|
|
<math>~\boldsymbol{Q}^{m}_{n-\frac{1}{2}}\left(\cosh\xi\right)</math> |
<math>~=</math> |
<math>~ \frac{\Gamma\left(m-n+ \tfrac{1}{2}\right)}{\Gamma\left(m+n+\tfrac{1}{2}\right)}\left(\frac{\pi}{2 \sinh\xi}\right)^{1 / 2}P^{n}_{m-\frac{1}{2}}\left(\coth\xi\right) \, . </math> |
So far, this gives me three similar but not identical formulae for the same function mapping! As per equation (8) in (yet another source!) A. Gil, J. Segura, & N. M. Temme (2000, JCP, 161, 204 - 217), the relationship is:
|
|
<math>~Q_{n-1 / 2}^m (\lambda)</math> |
<math>~=</math> |
<math>~(-1)^n \frac{\pi^{3/2}}{\sqrt{2}~ \Gamma(n-m+1 / 2)} (x^2-1)^{1 / 4} P_{m-1 / 2}^n(x) \, , </math> |
|
Gil, Segura, & Temme (2000): eq. (8) |
|||
| where: |
<math>~\lambda \equiv x/\sqrt{x^2-1}</math> |
This expression from Gil et al. (2000) means, for example, that by identifying <math>~x</math> with <math>~\coth\eta</math>, we have <math>~\lambda = \cosh\eta</math>, and,
|
<math>~Q_{n-1 / 2}^m (\cosh\eta)</math> |
<math>~=</math> |
<math>~(-1)^n \frac{\pi^{3/2}}{\sqrt{2} \Gamma(n-m+1 / 2)} (\coth^2\eta-1)^{1 / 4} P_{m-1 / 2}^n(\coth\eta) </math> |
|
|
<math>~=</math> |
<math>~ \frac{(-1)^n ~\pi}{\Gamma(n-m+1 / 2)} \biggl( \frac{\pi}{2}\biggr)^{1 / 2} \biggl[\frac{\cosh^2\eta}{\sinh^2\eta}-1 \biggr]^{1 / 4} P_{m-1 / 2}^n(\coth\eta) </math> |
|
|
<math>~=</math> |
<math>~ \frac{(-1)^n ~\pi}{\Gamma(n-m+1 / 2)} \biggl( \frac{\pi}{2}\biggr)^{1 / 2} \biggl[\frac{1}{\sinh\eta}\biggr]^{1 / 2} P_{m-1 / 2}^n(\coth\eta) \, . </math> |
That is, we have,
| Expression #4 | ||
|---|---|---|
|
<math>~Q_{n-1 / 2}^m (\cosh\eta)</math> |
<math>~=</math> |
<math>~ \frac{(-1)^n ~\pi}{\Gamma(n-m+1 / 2)} \biggl[\frac{\pi}{2\sinh\eta}\biggr]^{1 / 2} P_{m-1 / 2}^n(\coth\eta) \, , </math> |
which matches the above expression #1 drawn from Cohl et al. (2000), but which appears not to match either of the other two "published" (online) formulae, expressions #2 or #3.
Specific Application
I stumbled into this dilemma when I tried to explicitly demonstrate how <math>~Q_{-1 / 2}(\cosh\eta)</math> can be derived from <math>~P_{-1 / 2}(z)</math> where, from §8.13 of M. Abramowitz & I. A. Stegun (1995), we find,
|
<math>~Q_{-1 / 2}(\cosh\eta)</math> |
<math>~=</math> |
<math>~2 e^{- \eta / 2} ~K(e^{-\eta} ) \, , </math> |
| Abramowitz & Stegun (1995), eq. (8.13.4) | ||
and,
|
<math>~P_{-1 / 2}(z)</math> |
<math>~=</math> |
<math>~ \frac{2}{\pi} \biggl[\frac{2}{z+1}\biggr]^{1 / 2} ~K\biggl( \sqrt{ \frac{z-1}{z+1}} \biggr) \, . </math> |
| Abramowitz & Stegun (1995), eq. (8.13.1) | ||
When I used the Whipple formula as defined in §14.19 of DLMF (expression #3 reprinted above), the function mapping gave me the wrong result; I was off by a factor of <math>~\Gamma(\tfrac{1}{2}) =\sqrt{\pi}</math>. But, as demonstrated below, the Whipple formula provided by Cohl et al. (2000) and by Gil et al. (2000) — that is, expressions #1 and #4, above — does give the correct result.
|
Demonstration that <math>~Q_{-\frac{1}{2}}</math> can be derived from <math>~P_{-\frac{1}{2}}</math> |
|||||||||||||||||||||||||||||||||
|
Copying equation (34) from Cohl et al. (2000), we begin with,
then setting <math>~m = n = 0</math>, we have,
Step #1: Associate … <math>z \leftrightarrow \cosh\eta</math>. Then,
Step #2: Now making the association … <math>\Lambda \leftrightarrow z/\sqrt{z^2-1}</math>, and drawing on eq. (8.13.1) from Abramowitz & Stegun (1995), we can write,
Step #3: Again, making the association … <math>z \leftrightarrow \cosh\eta</math>, means,
This, indeed, matches eq. (8.13.4) from Abramowitz & Stegun (1995). |
Cohl's Response to My (May 2018) Email Query
Proper Interpretation of DLMF Expression
Most of the confusion expressed above stems from the DLMF's use of bold fonts, such as the function on the left-hand side of expression #3, above — that is, the Whipple formula from §14.19 of DLMF,
|
<math>~\boldsymbol{Q}^{m}_{n-\frac{1}{2}}\left(\cosh\xi\right)</math> |
<math>~=</math> |
<math>~ \frac{\Gamma\left(m-n+ \tfrac{1}{2}\right)}{\Gamma\left(m+n+\tfrac{1}{2}\right)}\left(\frac{\pi}{2 \sinh\xi}\right)^{1 / 2}P^{n}_{m-\frac{1}{2}}\left(\coth\xi\right) \, . </math> |
What has been missing in my discussion is an appreciation of the following relationship between bold and plain-text function names,
<math> \boldsymbol{Q}^{\mu}_{\nu}\left(x\right)=e^{-\mu\pi i}\frac{Q^{\mu}_{\nu}\left(x\right)}{\Gamma\left(\nu+\mu+1\right)}. </math>
After making the substitutions, <math>~\mu \rightarrow m</math> and <math>~\nu \rightarrow (n-\tfrac{1}{2})</math>, the Whipple formula displayed above as expression #3 becomes,
|
<math>~e^{-m\pi i}\frac{Q^{m}_{n-\frac{1}{2}}\left(\cosh\xi\right)}{\Gamma\left(n+m+\tfrac{1}{2}\right)}</math> |
<math>~=</math> |
<math>~ \frac{\Gamma\left(m-n+ \tfrac{1}{2}\right)}{\Gamma\left(m+n+\tfrac{1}{2}\right)}\left(\frac{\pi}{2 \sinh\xi}\right)^{1 / 2}P^{n}_{m-\frac{1}{2}}\left(\coth\xi\right) </math> |
|
<math>~\Rightarrow ~~~ Q^{m}_{n-\frac{1}{2}}\left(\cosh\xi\right)</math> |
<math>~=</math> |
<math>~e^{m\pi i} \Gamma\left(m-n+\tfrac{1}{2}\right)\left(\frac{\pi}{2 \sinh\xi}\right)^{1 / 2}P^{n}_{m-\frac{1}{2}}\left(\coth\xi\right) </math> |
|
|
<math>~=</math> |
<math>~(-1)^m \Gamma\left(m-n+\tfrac{1}{2}\right)\left(\frac{\pi}{2 \sinh\xi}\right)^{1 / 2}P^{n}_{m-\frac{1}{2}}\left(\coth\xi\right) \, , </math> |
which matches expression #2, above. But it does not appear to match expressions #1 or #4.
|
The standard "Euler reflection formula for gamma functions" is usually presented in the form,
If we make the association, <math>~z \leftrightarrow (m - n + \tfrac{1}{2}) \, ,</math> with <math>~m</math> and <math>~n</math> both being either zero or a positive integer, then, this Euler reflection formula becomes,
| |||||||||||||||||||||||||||||||
However, in our situation the so-called "Euler reflection formula for gamma functions" gives the relation,
|
<math>~\frac{\pi (-1)^{m+n}}{\Gamma(n-m+\frac{1}{2}) }</math> |
<math>~=</math> |
<math>~\Gamma(m-n+\tfrac{1}{2}) \, .</math> |
Hence, we may also write,
|
<math>~ Q^{m}_{n-\frac{1}{2}}\left(\cosh\xi\right)</math> |
<math>~=</math> |
<math>~(-1)^m \biggl[ \frac{\pi (-1)^{m+n}}{\Gamma(n-m+\frac{1}{2}) } \biggr] \left(\frac{\pi}{2 \sinh\xi}\right)^{1 / 2}P^{n}_{m-\frac{1}{2}}\left(\coth\xi\right) </math> |
|
|
<math>~=</math> |
<math>~ \frac{(-1)^n \pi }{\Gamma(n-m+\frac{1}{2}) } \left(\frac{\pi}{2 \sinh\xi}\right)^{1 / 2}P^{n}_{m-\frac{1}{2}}\left(\coth\xi\right) \, , </math> |
which matches expressions #1 and #4. So everything appears to be in agreement! Hooray!
Derivation From Scratch
Whenever he deals with these types of relations, Cohl usually begins with,
| Expression #5 | ||
|---|---|---|
|
<math>~Q^\mu_\nu(\cosh\eta)</math> |
<math>~=</math> |
<math>~ \sqrt{\frac{\pi}{2}} ~\Gamma(\nu + \mu + 1) ~e^{i\mu\pi} \biggl[ \frac{1}{\sinh^2\eta} \biggr]^{1 / 4} P^{-\nu-\frac{1}{2}}_{-\mu - \frac{1}{2}} (\coth\eta) </math> |
Making the pair of substitutions,
|
<math>~\nu</math> |
<math>~=</math> |
<math>~n - \frac{1}{2} \, ,</math> |
<math>~n ~~\in</math> |
<math>~\mathbb{N}_0 = \{ 0, 1, 2, \cdots\} \, ,</math> |
|
|
<math>~\mu</math> |
<math>~=</math> |
<math>~m \, ,</math> |
<math>~m ~~\in</math> |
<math>~\mathbb{N}_0 = \{ 0, 1, 2, \cdots\} \, ,</math> |
we also have,
|
<math>~\nu + \mu +1</math> |
<math>~=</math> |
<math>~n - \frac{1}{2} + m + 1</math> |
<math>~=</math> |
<math>~n + m + \frac{1}{2} \, ,</math> |
|
<math>~-\mu - \frac{1}{2}</math> |
<math>~=</math> |
<math>~-m-\frac{1}{2} \, ,</math> |
|
|
|
<math>~-\nu - \frac{1}{2}</math> |
<math>~=</math> |
<math>~-\biggl(n - \frac{1}{2}\biggr)-\frac{1}{2} </math> |
<math>~=</math> |
<math>~-n \, , </math> |
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<math>~e^{i\mu\pi}</math> |
<math>~=</math> |
<math>~e^{i m \pi}</math> |
<math>~=</math> |
<math>~(-1)^{m} \, , </math> |
in which case,
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<math>~Q^m_{n-\frac{1}{2}}(\cosh\eta)</math> |
<math>~=</math> |
<math>~ \sqrt{\frac{\pi}{2}} ~\Gamma(n+m + \tfrac{1}{2}) ~(-1)^m\biggl[ \frac{1}{ \sqrt{\sinh\eta}} \biggr] P^{-n}_{-m - \frac{1}{2}} (\coth\eta) \, . </math> |
Now, since,
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<math>~P^\mu_\nu(z)</math> |
<math>~=</math> |
<math>~P^\mu_{-\nu-1}(z) \, ,</math> |
if we make the substitution,
|
<math>~-(\nu + 1)</math> |
<math>~\rightarrow</math> |
<math>~-(m+\tfrac{1}{2})</math> |
<math>~\Rightarrow</math> |
<math>~\nu</math> |
<math>~\rightarrow</math> |
<math>~m - \tfrac{1}{2} \, ,</math> |
we also know that,
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<math>~P^\mu_{m-\frac{1}{2}}(z)</math> |
<math>~=</math> |
<math>~P^\mu_{-m-\frac{1}{2}}(z) \, .</math> |
Hence, we can write,
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<math>~Q^m_{n-\frac{1}{2}}(\cosh\eta)</math> |
<math>~=</math> |
<math>~ \sqrt{\frac{\pi}{2}} ~\Gamma(n+m + \tfrac{1}{2}) ~(-1)^m\biggl[ \frac{1}{ \sqrt{\sinh\eta}} \biggr] P^{-n}_{m - \frac{1}{2}} (\coth\eta) \, . </math> |
Finally, another relation states that, for <math>~n \in \mathbb{N}_0</math>,
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<math>~P^{-n}_{m-\frac{1}{2}}(z)</math> |
<math>~=</math> |
<math>~\biggl[ \frac{\Gamma(m-n+\frac{1}{2})}{\Gamma(m+n+\frac{1}{2})} \biggr] P^n_{m-\frac{1}{2}}(z) \, .</math> |
So, we obtain,
|
<math>~Q^m_{n-\frac{1}{2}}(\cosh\eta)</math> |
<math>~=</math> |
<math>~(-1)^m \sqrt{\frac{\pi}{2}} ~\Gamma(n+m + \tfrac{1}{2}) \biggl[ \frac{1}{ \sqrt{\sinh\eta}} \biggr] \biggl[ \frac{\Gamma(m-n+\frac{1}{2})}{\Gamma(m+n+\frac{1}{2})} \biggr]P^{n}_{m - \frac{1}{2}} (\coth\eta) \, . </math> |
|
|
<math>~=</math> |
<math>~(-1)^m \sqrt{\frac{\pi}{2}} ~\Gamma(m-n+\tfrac{1}{2}) \biggl[ \frac{1}{ \sqrt{\sinh\eta}} \biggr] P^{n}_{m - \frac{1}{2}} (\coth\eta) \, . </math> |
This matches expressions #2 and #3, above.
Index Values of Zero
Setting <math>~n = m = 0</math> gives the following sought-for relationship:
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<math>~Q^0_{-\frac{1}{2}}(\cosh\eta)</math> |
<math>~=</math> |
<math>~ \sqrt{\frac{\pi}{2}} ~\Gamma(\tfrac{1}{2}) \biggl[ \frac{1}{ \sqrt{\sinh\eta}} \biggr] P^{0}_{- \frac{1}{2}} (\coth\eta) \, . </math> |
|
|
<math>~=</math> |
<math>~ \frac{\pi}{\sqrt{2}} ~ \biggl[ \frac{1}{ \sqrt{\sinh\eta}} \biggr] P^{0}_{- \frac{1}{2}} (\coth\eta) \, . </math> |
Joel's Additional Manipulations
From §14.19.6 of DLMF, we find the following summation expression:
<math>~\boldsymbol{Q}^{\mu}_{-\frac{1}{2}}\left(\cosh\xi\right)+2\sum_{n=1}^{\infty} \frac{\Gamma\left(\mu+n+\tfrac{1}{2}\right)}{\Gamma\left(\mu+\tfrac{1}{2} \right)}\boldsymbol{Q}^{\mu}_{n-\frac{1}{2}}\left(\cosh\xi\right)\cos\left(n \phi\right)=\dfrac{\left(\frac{1}{2}\pi\right)^{1/2}\left(\sinh\xi\right)^{\mu }}{\left(\cosh\xi-\cos\phi\right)^{\mu+(1/2)}}
</math>Then, if we again employ the DLMF relationship between bold and plain-text function names, namely,
<math> \boldsymbol{Q}^{\mu}_{n-\frac{1}{2}}\left(x\right) = e^{-\mu\pi i}\frac{Q^{\mu}_{n-\frac{1}{2}}\left(x\right)}{\Gamma\left(\mu+n + \tfrac{1}{2} \right)} \, , </math>
where we have made the substitution, <math>~\nu \rightarrow (n-\tfrac{1}{2})</math>, the Sums expression becomes,
|
<math>~e^{-\mu\pi i}\frac{Q^{\mu}_{-\frac{1}{2}}\left(\cosh\xi\right)}{\Gamma\left(\mu+ \tfrac{1}{2} \right)}</math> |
<math>~=</math> |
<math>~ \dfrac{\left(\frac{1}{2}\pi\right)^{1/2}\left(\sinh\xi\right)^{\mu }}{\left(\cosh\xi-\cos\phi\right)^{\mu+(1/2)}} - 2\sum_{n=1}^{\infty} \frac{\Gamma\left(\mu+n+\tfrac{1}{2}\right)}{\Gamma\left(\mu+\tfrac{1}{2} \right)} \biggl[ e^{-\mu\pi i}\frac{Q^{\mu}_{n-\frac{1}{2}}\left(\cosh\xi\right)}{\Gamma\left(\mu+n + \tfrac{1}{2} \right)} \biggr] \cos\left(n \phi\right) </math> |
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<math>~\Rightarrow ~~~Q^{\mu}_{-\frac{1}{2}}\left(\cosh\xi\right)</math> |
<math>~=</math> |
<math>~ e^{\mu\pi i} \Gamma\left(\mu+ \tfrac{1}{2} \right) \biggl[ \dfrac{\left(\frac{1}{2}\pi\right)^{1/2}\left(\sinh\xi\right)^{\mu }}{\left(\cosh\xi-\cos\phi\right)^{\mu+(1/2)}}\biggr] - 2\sum_{n=1}^{\infty} Q^{\mu}_{n-\frac{1}{2}}\left(\cosh\xi\right) \cos\left(n \phi\right) \, . </math> |
When dealing with Dyson-Wong tori, we will set <math>~\mu = 0</math>, in which case the Sums expression becomes,
|
<math>~Q_{-\frac{1}{2}}\left(\cosh\xi\right)</math> |
<math>~=</math> |
<math>~ \biggl[ \dfrac{ \pi/\sqrt{2} }{\left(\cosh\xi-\cos\phi\right)^{\frac{1}{2}} }\biggr] - 2\sum_{n=1}^{\infty} Q_{n-\frac{1}{2}}\left(\cosh\xi\right) \cos\left(n \phi\right) \, . </math> |
But this can be rewritten in the form,
|
<math>~ \sum_{n=0}^{\infty} \epsilon_n Q_{n-\frac{1}{2}}\left(\cosh\xi\right) \cos\left(n \phi\right) </math> |
<math>~=</math> |
<math>~ \biggl[ \dfrac{ \pi/\sqrt{2} }{\left(\cosh\xi-\cos\phi\right)^{\frac{1}{2}} }\biggr] </math> |
See Also
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© 2014 - 2021 by Joel E. Tohline |