Legendre chi function: Difference between revisions
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{{Short description|Mathematical Function}} | {{Short description|Mathematical Function}} | ||
In [[mathematics]], the '''Legendre chi function''' is a [[special function]] whose [[Taylor series]] is also a [[Dirichlet series]], given by | In [[mathematics]], the '''Legendre chi function''' (named after [[Adrien-Marie Legendre]]) is a [[special function]] whose [[Taylor series]] is also a [[Dirichlet series]], given by | ||
<math display="block">\chi_\nu(z) = \sum_{k=0}^\infty \frac{z^{2k+1}}{(2k+1)^\nu}.</math> | <math display="block">\chi_\nu(z) = \sum_{k=0}^\infty \frac{z^{2k+1}}{(2k+1)^\nu}.</math> | ||
[[File:LegendreChi.svg|thumb|Legendre chi function]] | |||
As such, it resembles the Dirichlet series for the [[polylogarithm]], and, indeed, is trivially expressible in terms of the polylogarithm as | As such, it resembles the Dirichlet series for the [[polylogarithm]], and, indeed, is trivially expressible in terms of the polylogarithm as | ||
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<math display="block">\chi_2(x) + \chi_2(1/x)= \frac{\pi^2}{4}-\frac{i \pi}{2}\ln |x| .</math> | <math display="block">\chi_2(x) + \chi_2(1/x)= \frac{\pi^2}{4}-\frac{i \pi}{2}\ln |x| .</math> | ||
<math display="block">\frac{d}{dx}\chi_2(x) = \frac{{\rm arctanh\,} x}{x}.</math> | <math display="block">\frac{d}{dx}\chi_2(x) = \frac{{\rm arctanh\,} x}{x}.</math> | ||
==Special Values== | |||
It takes the special values: | |||
<math display="block">\chi_2(i) = iK</math> | |||
<math display="block">\chi_2(\sqrt{2}-1) = \frac{\pi^2}{16}-\frac{[\ln(\sqrt{2}+1)]^2}{4}</math> | |||
<math display="block">\chi_2(\frac{\sqrt{5}-1}{2}) = \frac{\pi^2}{12}-\frac{3[\ln(\frac{\sqrt{5}+1}{2})]^2}{4}</math> | |||
<math display="block">\chi_2(\sqrt{5}-2) = \frac{\pi^2}{24}-\frac{3[\ln(\frac{\sqrt{5}+1}{2})]^2}{4}</math> | |||
<math display="block">\chi_2(-1) = -\frac{\pi^2}{8}</math> | |||
<math display="block">\chi_2(1) = \frac{\pi^2}{8},</math> | |||
where <math display>i</math> is the [[imaginary unit]] and K is [[Catalan's constant]].<ref name=Wolf /> Other special values include: | |||
<math display="block">\chi_n(1) = \lambda(n)</math> | |||
<math display="block">\chi_n(i) = i\beta(n),</math> | |||
where <math display>\lambda(n)</math> is the [[Dirichlet lambda function]] and <math display>\beta(n)</math> is the [[Dirichlet beta function]].<ref name=Wolf>{{cite web | |||
| last = Weisstein | |||
| first = Eric W. | |||
| title = Legendre's Chi-Function | |||
| website = MathWorld | |||
| publisher = Wolfram Research | |||
| url = https://mathworld.wolfram.com/LegendresChi-Function.html | |||
| access-date = 2025-12-08 | |||
}}</ref> | |||
==Integral relations== | ==Integral relations== | ||
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==References== | ==References== | ||
{{Reflist}} | |||
* {{mathworld|urlname=LegendresChi-Function |title=Legendre's Chi Function}} | * {{mathworld|urlname=LegendresChi-Function |title=Legendre's Chi Function}} | ||
* {{cite journal|author= Djurdje Cvijović, Jacek Klinowski|year= 1999|title=Values of the Legendre chi and Hurwitz zeta functions at rational arguments|journal= Mathematics of Computation|volume= 68|issue= 228|pages= 1623–1630|doi=10.1090/S0025-5718-99-01091-1|doi-access=free }} | * {{cite journal|author= Djurdje Cvijović, Jacek Klinowski|year= 1999|title=Values of the Legendre chi and Hurwitz zeta functions at rational arguments|journal= Mathematics of Computation|volume= 68|issue= 228|pages= 1623–1630|doi=10.1090/S0025-5718-99-01091-1|doi-access=free }} | ||
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[[Category:Special functions]] | [[Category:Special functions]] | ||
{{mathanalysis-stub}} | {{mathanalysis-stub}} | ||
Latest revision as of 01:25, 19 December 2025
Template:Short description In mathematics, the Legendre chi function (named after Adrien-Marie Legendre) is a special function whose Taylor series is also a Dirichlet series, given by
As such, it resembles the Dirichlet series for the polylogarithm, and, indeed, is trivially expressible in terms of the polylogarithm as
The Legendre chi function appears as the discrete Fourier transform, with respect to the order ν, of the Hurwitz zeta function, and also of the Euler polynomials, with the explicit relationships given in those articles.
The Legendre chi function is a special case of the Lerch transcendent, and is given by
Identities
Special Values
It takes the special values:
where is the imaginary unit and K is Catalan's constant.[1] Other special values include:
where is the Dirichlet lambda function and is the Dirichlet beta function.[1]
Integral relations
References
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