A complementary relation between classical bits and randomness in local part in simulating singlet state
arXiv:1009.6161 · doi:10.1088/1751-8113/44/15/152002
Abstract
Recently Leggett's proposal of non-local model generates new interest in simulating the statistics of singlet state. Singlet state statistics can be simulated by 1 bit of classical communication without using any further nonlocal correlation. But, interestingly, singlet state statistics can also be simulated with no classical cost if a non-local box is used. In the first case, the output is completely unbiased whereas in second case outputs are completely random. We suggest a new (possibly) signaling correlation resource which successfully simulates singlet statistics and this result suggests a new complementary relation between required classical bits and randomness in local output when the classical communication is limited by 1 cbit. This result reproduces the above two models of simulation as extreme cases. This also explains why Leggett's non-local model and the model presented by Branciard et.al. should fail to reproduce the statistics of a singlet.
v3: Typos corrected, few changed notations, some extensions to earlier write-up
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Cited by in corpus (8)
- Relaxed Bell inequalities and Kochen-Specker theorems
- Lack of measurement independence can simulate quantum correlation even when signaling cannot
- Local simulation of singlet statistics for restricted set of measurement
- Extending quantum mechanics entails extending special relativity
- The operational reality of quantum nonlocality
- One-time Pad Encryption Model for Non-local Correlations
- One Sided indeterminism alone is not a useful resource to simulate any nonlocal correlation
- Operational nonlocality