Physical information is fundamentally indestructible under unitary quantum mechanical evolution
the verdict
SUPPORTED
the evidence backs this
confidence 82/100
The retrieved literature strongly supports the principle that physical information is fundamentally conserved and indestructible under unitary quantum mechanical evolution, even when addressing complex scenarios like the black hole information paradox.
Evidence for · 6
The Quantum Memory Matrix: A Unified Framework for the Black Hole Information Paradox
2024 · cited by 12
Paper 0 supports unitarity and information preservation by proposing that space-time acts as a quantum information reservoir to resolve black hole information loss.
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More for · 5
Quantum Theory of the Classical: Einselection, Envariance, Quantum Darwinism and Extantons.
2022 · cited by 7
Paper 1 emphasizes the foundational role of unitarity in quantum mechanics and how objective reality and information emerge from the quantum substrate.
Semiclassical solution of black hole information paradox
2024 · cited by 3
Paper 4 resolves the black hole information paradox within semiclassical gravity by showing that Hawking radiation is entangled with degrees of freedom closer to the horizon, preserving unitarity.
Experimental revival of an unknown state from the past in quantum walks.
2025 · cited by 1
Paper 5 demonstrates that the evolution of a quantum system is fundamentally reversible, confirming the conservation and recovery of quantum states.
Modular Entropy Retrieval in Black-Hole Information Recovery: A Proper-Time Saturation Model
2026 · cited by 0
Paper 8 discusses exact quantum transfer channels and proper-time retrieval models that confirm information conservation and recovery in black hole dynamics.
Finite-Capacity Thermodynamics of Causal Horizons.
2026 · cited by 0
Paper 9 states that fundamental physics and underlying unitary dynamics remain unchanged even when local classical representations are limited by horizon capacity.