Detecting entanglement from few partial transpose moments and their decay via weight enumerators
Daniel Miller, Jens Eisert

TL;DR
This paper introduces new entanglement detection criteria based on comparing three partial transpose moments, reducing experimental complexity, and explores their effectiveness compared to existing methods.
Contribution
It proposes a novel three-moment comparison approach for entanglement detection, and introduces quantum weight enumerators to analyze moment decay under noise.
Findings
Three-moment criteria can detect entanglement with less experimental overhead.
For stabilizer states, moments up to order 5 suffice to replicate the PPT criterion.
Quantum weight enumerators effectively characterize moment decay in noisy quantum states.
Abstract
The -PPT criterion is an experimentally viable relaxation of the well-known positive partial transposition (PPT) criterion for the certification of quantum entanglement. Recently, it has been generalized to various families of entanglement criteria based on the PT moments Tr, where denotes the partially transposed density matrix of a quantum state . While most of these generalizations are strictly more powerful than the -PPT criterion, their -th level versions usually rely on the availability of for all moment orders . Here, we show that one can alternatively compare any three PT moments of orders , which can significantly reduce experimental overheads. More precisely, we show that any state satisfying must be entangled, where . Using the example of locally depolarized GHZ…
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