Canonical partition functions for gauged permutation-invariant s-index tensor oscillators are expressed exactly as products of (1 - x^{LCM(...)})^{-...} factors, with a large-N critical Boltzmann factor x_c ~ log N/(s N^{s-1}) derived under a stated two-partition dominance conjecture.
Hidden symmetries and Large N factorisation for permutation invariant matrix observables
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abstract
Permutation invariant polynomial functions of matrices have previously been studied as the observables in matrix models invariant under $S_N$, the symmetric group of all permutations of $N$ objects. In this paper, the permutation invariant matrix observables (PIMOs) of degree $k$ are shown to be in one-to-one correspondence with equivalence classes of elements in the diagrammatic partition algebra $P_k(N)$. On a 4-dimensional subspace of the 13-parameter space of $S_N$ invariant Gaussian models, there is an enhanced $O(N)$ symmetry. At a special point in this subspace, is the simplest $O(N)$ invariant action. This is used to define an inner product on the PIMOs which is expressible as a trace of a product of elements in the partition algebra. The diagram algebra $P_k(N)$ is used to prove the large $N$ factorisation property of this inner product, which generalizes a familiar large $N$ factorisation for inner products of matrix traces invariant under continuous symmetries.
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Gauged permutation invariant tensor quantum mechanics, least common multiples and the inclusion-exclusion principle
Canonical partition functions for gauged permutation-invariant s-index tensor oscillators are expressed exactly as products of (1 - x^{LCM(...)})^{-...} factors, with a large-N critical Boltzmann factor x_c ~ log N/(s N^{s-1}) derived under a stated two-partition dominance conjecture.