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Ruelle zeta function

In this article, we will explore the topic of Ruelle zeta function in depth. Throughout history, Ruelle zeta function has played a crucial role in various areas of society, from culture and art to science and technology. Through a detailed analysis, we will analyze the importance of Ruelle zeta function in the contemporary context, as well as its influence on the development and evolution of different aspects of daily life. Additionally, we will examine how Ruelle zeta function has been subject to multiple interpretations and approaches over time, which has contributed to its continued relevance today. From its origins to its presence today, Ruelle zeta function has left an indelible mark on the world, and this article seeks to examine and understand its impact in depth.

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In mathematics, the Ruelle zeta function is a zeta function associated with a dynamical system. It is named after mathematical physicist David Ruelle.

Formal definition

Let f be a function defined on a manifold M, such that the set of fixed points Fix(f n) is finite for all n > 1. Further let φ be a function on M with values in d × d complex matrices. The zeta function of the first kind is[1]

Examples

In the special case d = 1, φ = 1, we have[1]

which is the Artin–Mazur zeta function.

The Ihara zeta function is an example of a Ruelle zeta function.[2]

See also

References

  1. ^ a b Terras (2010) p. 28
  2. ^ Terras (2010) p. 29
  • Lapidus, Michel L.; van Frankenhuijsen, Machiel (2006). Fractal geometry, complex dimensions and zeta functions. Geometry and spectra of fractal strings. Springer Monographs in Mathematics. New York, NY: Springer-Verlag. ISBN 0-387-33285-5. Zbl 1119.28005.
  • Kotani, Motoko; Sunada, Toshikazu (2000). "Zeta functions of finite graphs". J. Math. Sci. Univ. Tokyo. 7: 7–25.
  • Terras, Audrey (2010). Zeta Functions of Graphs: A Stroll through the Garden. Cambridge Studies in Advanced Mathematics. Vol. 128. Cambridge University Press. ISBN 978-0-521-11367-0. Zbl 1206.05003.
  • Ruelle, David (2002). "Dynamical Zeta Functions and Transfer Operators" (PDF). Bulletin of AMS. 8 (59): 887–895.