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1: 30.2 Differential Equations
§30.2 Differential Equations
§30.2(i) Spheroidal Differential Equation
The Liouville normal form of equation (30.2.1) is …
§30.2(iii) Special Cases
2: 15.10 Hypergeometric Differential Equation
§15.10 Hypergeometric Differential Equation
§15.10(i) Fundamental Solutions
This is the hypergeometric differential equation. … The ( 6 3 ) = 20 connection formulas for the principal branches of Kummer’s solutions are: …
3: 31.2 Differential Equations
§31.2 Differential Equations
§31.2(i) Heun’s Equation
§31.2(ii) Normal Form of Heun’s Equation
§31.2(v) Heun’s Equation Automorphisms
Composite Transformations
4: 29.2 Differential Equations
§29.2 Differential Equations
§29.2(i) Lamé’s Equation
§29.2(ii) Other Forms
Equation (29.2.10) is a special case of Heun’s equation (31.2.1).
5: 32.2 Differential Equations
§32.2(i) Introduction
The six Painlevé equations P I P VI  are as follows: … The six equations are sometimes referred to as the Painlevé transcendents, but in this chapter this term will be used only for their solutions. …
§32.2(ii) Renormalizations
6: 28.2 Definitions and Basic Properties
§28.2(i) Mathieu’s Equation
This is the characteristic equation of Mathieu’s equation (28.2.1). …
§28.2(iv) Floquet Solutions
7: 28.20 Definitions and Basic Properties
§28.20(i) Modified Mathieu’s Equation
When z is replaced by ± i z , (28.2.1) becomes the modified Mathieu’s equation:
28.20.1 w ′′ ( a 2 q cosh ( 2 z ) ) w = 0 ,
28.20.2 ( ζ 2 1 ) w ′′ + ζ w + ( 4 q ζ 2 2 q a ) w = 0 , ζ = cosh z .
Then from §2.7(ii) it is seen that equation (28.20.2) has independent and unique solutions that are asymptotic to ζ 1 / 2 e ± 2 i h ζ as ζ in the respective sectors | ph ( i ζ ) | 3 2 π δ , δ being an arbitrary small positive constant. …
8: 32.12 Asymptotic Approximations for Complex Variables
§32.12 Asymptotic Approximations for Complex Variables
§32.12(i) First Painlevé Equation
§32.12(ii) Second Painlevé Equation
§32.12(iii) Third Painlevé Equation
9: 32.16 Physical Applications
§32.16 Physical Applications
Statistical Physics
Integrable Continuous Dynamical Systems
Other Applications
For the Ising model see Barouch et al. (1973), Wu et al. (1976), and McCoy et al. (1977). …
10: 32.13 Reductions of Partial Differential Equations
§32.13 Reductions of Partial Differential Equations
§32.13(i) Korteweg–de Vries and Modified Korteweg–de Vries Equations
§32.13(ii) Sine-Gordon Equation
§32.13(iii) Boussinesq Equation