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  • Hubbard 1D
    • Part 1: 1D Hubbard model
    • Part 2: Snake layout and fSWAP
    • Part 3: Qiskit and Fire Opal
    • Part 4: 120-qubit run
    • Part 5: Time-to-answer
    • Part 6: Tensor networks
    • Part 7: Majorana propagation
    • Part 8: Heatmaps
    • Part 9: 2D Hubbard outlook
    • Part 10: Quantum computer as a lab
  • Hubbard 2D
    • Part 1: 1D to 2D
    • Part 2: Cuprates
    • Part 3: 3×3
    • Part 4: Time
    • Part 5: 4×4
    • Part 6: 6×6 Fez
  • Hadron
    • Deel 1: Hadron op quantumprocessor
    • Deel 2: Quarks en confinement
    • Deel 3: SU(2) en LSH
    • Deel 4: Hamiltoniaan en circuit
    • Deel 5: Fire Opal
    • Deel 6: Klassieke simulaties
    • Deel 7: Quantumvoordeel
  • Black Hole OLE
    • Part 1: What we ran
    • Part 2: How OLE works
    • Part 3: Fire Opal and Kingston
    • Part 4: The tensor-network challenge
    • Part 5: Hawking and scrambling
    • Part 6: What the result proves
    • Part 7: Local toy model
    • Part 8: QGSS26 compatibility
  • Random Graph
    • Start here
    • Part 1: Theory
    • Part 2: Circuit
    • Part 3: Qiskit
    • Part 4: Complexity
    • Part 5: Verification
    • Part 6: Workflow
    • Part 7: Conclusion
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Black Hole OLE

Black Hole OLE

This eight-part series follows a reproducible 80-qubit Operator Loschmidt Echo experiment from tracker definition to IBM hardware, Fire Opal mitigation, a bounded classical tensor-network comparison, and a small exact toy model for learning the underlying echo and scrambling theory.

The black-hole connection is about quantum information scrambling. This is not a simulation of an astrophysical black hole, and the runtime result is not presented as a formal general proof of quantum advantage.

Article series

  1. Part 1: What we ran
  2. Part 2: How OLE works
  3. Part 3: Fire Opal and Kingston
  4. Part 4: The tensor-network challenge
  5. Part 5: Hawking and scrambling
  6. Part 6: What the result proves
  7. Part 7: Local toy model, theory, and user guide
  8. Part 8: QGSS26, OLE-OTOC, and protocol compatibility

Earlier Edukaizen pilot

Black-Hole Information, OLE, and an 80-Qubit Echo Signal

Project links

  • Quantum Advantage Tracker
  • Public scrambling and echo project

Recent Posts

  • Quantum computing-nieuws — 31 juli 2026
  • Fermi-Hubbard op een quantumcomputer, deel 10: kan een quantumcomputer een quantumlab vervangen?
  • Fermi-Hubbard on a quantum computer, part 10: can a quantum computer replace a quantum lab?
  • Black Hole OLE, part 8: QGSS26 and protocol compatibility
  • Black Hole OLE, part 7: a local toy model with theory and user guide

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