Mathieu transformation
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The Mathieu transformations make up a subgroup of canonical transformations preserving the differential form
∑ ∑ i p i δ δ q i = ∑ ∑ i P i δ δ Q i {\displaystyle \sum _{i}p_{i}\delta q_{i}=\sum _{i}P_{i}\delta Q_{i}\,}
The transformation is named after the French mathematician Émile Léonard Mathieu.
Contents
• Details
• See also
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Details
In order to have this invariance, there should exist at least one relation between q i {\displaystyle q_{i}} and Q i {\displaystyle Q_{i}} only (without any p i , P i {\displaystyle p_{i},P_{i}} involved).
Ω Ω 1 ( q 1 , q 2 , … … , q n , Q 1 , Q 2 , … … Q n ) = 0 ⋮ ⋮ Ω Ω m ( q 1 , q 2 , … … , q n , Q 1 , Q 2 , … … Q n ) = 0 {\displaystyle {\begin{aligned}\Omega _{1}(q_{1},q_{2},\ldots ,q_{n},Q_{1},Q_{2},\ldots Q_{n})&=0\\&{}\ \ \vdots \\\Omega _{m}(q_{1},q_{2},\ldots ,q_{n},Q_{1},Q_{2},\ldots Q_{n})&=0\end{aligned}}}
where 1 < m ≤ ≤ n {\displaystyle 1<m\leq n} . When m = n {\displaystyle m=n} a Mathieu transformation becomes a Lagrange point transformation.
See also
References
• citerefwhittaker-edmundWhittaker, Edmund. A Treatise on the Analytical Dynamics of Particles and Rigid Bodies.