遇见数据集

The 0.25 Protocol: Experimental Evidence of Holographic Information Recovery and 93.69-Sigma Causal Reversal

收藏
Zenodo2026-01-06 更新2026-05-26 收录
官方服务:

资源简介:

The 0.25 Protocol: A Complete Framework for Quantum Information Resurrection and the "Divine Fingerprint" Discovery 1. THEORETICAL FOUNDATION: THE "DIVINE FINGERPRINT" (上帝指纹) Beyond empirical observation, this project identifies a fundamental scaling law governing quantum information flow at the Exceptional Point (EP). We demonstrate that the survival probability follows the mathematical constant e^(-pi/4) (approx. 0.456). Core Evidence: See entropy_genesis_ep.py and Holographic_Pump_d5ehflv67pic73820p6g.pdf. Calibration: See cosmological_constant_scan.py (Scanning the 0.268 vs 0.25 threshold). 2. EXPERIMENTAL VERDICT: 93.69 SIGMA AT DEPTH 300 Using the IBM Torino (Heron r1) processor, we implemented the 0.25 Protocol to achieve information retrieval in the "Thermal Death Zone." Circuit Construction: See build_optimized_butterfly.py (150-layer forward + 150-layer reverse scrambling). Final Data Verdict: See final_72k_verdict.py (Aggregating 72,000 shots to confirm 93.69 Sigma). Benchmark: See random_scrambling_benchmark.py (Control group vs. 0.25 protocol). 3. OBSERVATION: HOLOGRAPHIC SEDIMENTATION (现象:全息沉积) We report the discovery of an "Information Sedimentation" phase where data ceases to decay and enters a protected manifold at Depth > 80. Data Analysis: See final_sedimentation_data.json and holographic_dark_matter.py. Refining Evidence: See Holographic_Refiner_d5eho9v67pic738215r0.pdf. 4. STABILITY: FINITE-SIZE SCALING (铁律:标度分析) The 0.25 geometric lock is proven to be topologically protected and independent of system size across L=16 to L=28 qubits. Scaling Code: See finite_size_scaling.py. Raw Scaling Data: See fss_scaling_data.json and stress_test_data.json. 5. APPLICATION: LATTICE ENGINEERING (应用:超导晶格) Blueprints for the next generation of "Immortal Quantum Memory" using geometric-phase locking. Mechanism: See geometric_lock_mechanism.py. Lattice Blueprint: See superconducting_lattice.py and tensor_network_solver.py. [MASTER RECORD: experimental_data_master.csv] For a complete cross-reference of all Job IDs, probabilities, and results, please refer to the experimental_data_master.csv file. CONTACT FOR COLLABORATION "This project demonstrates a persistent coherence sanctuary beyond the 300-layer scrambling threshold. For inquiries regarding the underlying mathematical framework or strategic licensing, contact the Project Leader: Fujia Wang."

《0.25协议:量子信息复活与“神圣指纹(Divine Fingerprint)”发现的完整框架》 1. 理论基础:“神圣指纹(Divine Fingerprint)” 本研究跳出经验观测的局限,识别出支配例外点(Exceptional Point, EP)处量子信息流的基本标度律。本研究证明,量子信息存活概率遵循数学常数e^(-π/4)(约为0.456)。 核心佐证代码与文档:详见entropy_genesis_ep.py与Holographic_Pump_d5ehflv67pic73820p6g.pdf。 校准流程:详见cosmological_constant_scan.py(用于扫描0.268与0.25阈值)。 2. 实验验证:300层深度下93.69σ显著性 本研究借助IBM Torino(Heron r1)处理器实现0.25协议,在“热死亡区”中完成量子信息检索。 电路构建方案:详见build_optimized_butterfly.py(包含150层正向扰码与150层反向扰码)。 最终数据结论:详见final_72k_verdict.py(通过汇总72000次采样结果,验证93.69σ的统计显著性)。 对照基准:详见random_scrambling_benchmark.py(用于对比随机扰码对照组与0.25协议的性能)。 3. 观测现象:全息沉积(Holographic Sedimentation) 本研究发现“信息沉积”相变现象:当扰码深度超过80层时,量子数据将停止衰减并进入受保护流形。 数据分析脚本与结果:详见final_sedimentation_data.json与holographic_dark_matter.py。 优化佐证文档:详见Holographic_Refiner_d5eho9v67pic738215r0.pdf。 4. 稳定性分析:有限尺寸标度(Finite-Size Scaling) 本研究证明,0.25几何锁具备拓扑保护特性,在16至28量子比特的系统尺寸范围内均不受系统规模影响。 标度分析代码:详见finite_size_scaling.py。 原始标度数据:详见fss_scaling_data.json与stress_test_data.json。 5. 应用场景:晶格工程(Lattice Engineering) 基于几何相位锁技术的下一代“永生量子存储器”设计蓝图。 工作原理说明:详见geometric_lock_mechanism.py。 晶格设计方案:详见superconducting_lattice.py与tensor_network_solver.py。 【主数据集索引:experimental_data_master.csv】如需查阅所有任务ID、概率值与结果的完整交叉索引,请参考experimental_data_master.csv文件。 合作联系:本研究证明,在300层扰码阈值之上存在持久的相干庇护区域。如需咨询底层数学框架或战略授权相关事宜,请联系项目负责人:王富嘉(Fujia Wang)。

提供机构:
Zenodo
创建时间:
2026-01-06
二维码
社区交流群
二维码
科研交流群
商业服务