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Lorentz invariance and quantum gravity: an additional fine-tuning problem?

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arxiv gr-qc/0403053 v4 pith:WOMCAWDO submitted 2004-03-12 gr-qc hep-ph

Lorentz invariance and quantum gravity: an additional fine-tuning problem?

classification gr-qc hep-ph
keywords lorentzinvariancegravityquantumprecisionsearchesviolationviolations
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Trying to combine standard quantum field theories with gravity leads to a breakdown of the usual structure of space-time at around the Planck length, 1.6*10^{-35} m, with possible violations of Lorentz invariance. Calculations of preferred-frame effects in quantum gravity have further motivated high precision searches for Lorentz violation. Here, we explain that combining known elementary particle interactions with a Planck-scale preferred frame gives rise to Lorentz violation at the percent level, some 20 orders of magnitude higher than earlier estimates, unless the bare parameters of the theory are unnaturally strongly fine-tuned. Therefore an important task is not just the improvement of the precision of searches for violations of Lorentz invariance, but also the search for theoretical mechanisms for automatically preserving Lorentz invariance.

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Cited by 2 Pith papers

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    gr-qc 2026-04 conditional novelty 5.0

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