Invariant Perfect Tensors
arXiv:1612.04504 · doi:10.1088/1367-2630/aa7235
Abstract
Invariant tensors are states in the SU(2) tensor product representation that are invariant under the SU(2) action. They play an important role in the study of loop quantum gravity. On the other hand, perfect tensors are highly entangled many-body quantum states with local density matrices maximally mixed. Recently, the notion of perfect tensors recently has attracted a lot of attention in the fields of quantum information theory, condensed matter theory, and quantum gravity. In this work, we introduce the concept of an invariant perfect tensor (IPT), which is a -valent tensor that is both invariant and perfect. We discuss the existence and construction of IPT. For bivalent tensors, the invariant perfect tensor is the unique singlet state for each local dimension. The trivalent invariant perfect tensor also exists and is uniquely given by Wigner's symbol. However, we show that, surprisingly, there does not exist four-valent invariant perfect tensors for any dimension. On the contrary, when the dimension is large, almost all invariant tensors are perfect asymptotically, which is a consequence of the phenomenon of concentration of measure for multipartite quantum states.
16 pages, comment welcome
References in corpus (2)
Cited by in corpus (9)
- Bounds on absolutely maximally entangled states from shadow inequalities, and the quantum MacWilliams identity
- Quantum Codes from Neural Networks
- Dynamics for holographic codes
- Discrete Gravity on Random Tensor Network and Holographic Rényi Entropy
- Holographic networks for (1+1)-dimensional de Sitter spacetime
- Multiparticle singlet states cannot be maximally entangled for the bipartitions
- Note on quantum entanglement and quantum geometry
- No invariant perfect qubit codes
- Local density matrices of many-body states in the constant weight subspaces