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    "story_id": "mp-2026-08-12-017",
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    "position": 19,
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    "headline": "A Hardware Token Made Quantum Commitment Possible",
    "slug": "a-hardware-token-made-quantum-commitment-possible",
    "dek": "Hybrid locked physical unclonable functions support statistically hiding and binding two-party protocols under stated assumptions.",
    "summary": "Hybrid locked physical unclonable functions support statistically hiding and binding two-party protocols under stated assumptions.",
    "body_text": "The authors prove bit-commitment and coin-flipping constructions that combine classical hardware tokens with quantum communication. Practical security depends on the assumed behavior of the hybrid hardware primitive.",
    "why_it_matters": "Hybrid locked physical unclonable functions support statistically hiding and binding two-party protocols under stated assumptions.",
    "limitations": [],
    "importance": 7,
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    "first_published_at": "2026-08-12T09:00:00.000-04:00",
    "modified_at": "2026-08-12T09:00:00.000-04:00",
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    "source_ids": [
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    "tags": [
      "quantum cryptography",
      "hardware security",
      "bit commitment"
    ],
    "image_url": null,
    "corrections": []
  },
  "sources": [
    {
      "source_id": "source-2026-08-12-019",
      "title": "arXiv preprint 2608.11187",
      "publisher": "arXiv",
      "url": "https://arxiv.org/abs/2608.11187",
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      "published_at": "2026-08-11T13:45:59.000-04:00",
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  "publisher": {
    "name": "The Machine Press",
    "url": "https://themachinepress.com",
    "description": "A daily newspaper for the age of artificial intelligence."
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  "cite_this_report": {
    "title": "A Hardware Token Made Quantum Commitment Possible",
    "publisher": "The Machine Press",
    "published_at": "2026-08-12T09:00:00.000-04:00",
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