Wepresentathermodynamicandcausal foundationforquantuminformationandquantumcomputingbasedonthe frameworkofQuantumCausalEntropy(QCE). InQCE, quantumevolutionisgovernedbyentropy-weightedcausal linksratherthanpurelyunitaryHilbert-spaceoperators. Thismodificationprovidesamicroscopicphysicaloriginfordecoherence,measurementcollapse,entanglementfragility,andquantumgateerrors.Wereinterpretqubitsasbundlesofentropy-degeneratecausalpaths,quantumgatesasphasecontrol devicesunder entropyconstraints, entanglement as sharedcausal–entropy structure,andquantumerrorsas localizedentropyspikes. Thisperspective leads tonewprinciples forquantumerrorcorrection,quantumcircuitdesign,andhardwarearchitecturebasedonentropymanagement.The frameworkyields experimentallytestablepredictions linkingcoherence time, gatefidelity,andentanglementstabilitytoentropyproduction,geometry,andmaterialpropertiesofquantumdevices.QCEthusbridgesquantuminformationtheorywithphysicalthermodynamicsandoffersanewpathwaytowardnoise-resilientquantumcomputation
Building similarity graph...
Analyzing shared references across papers
Loading...
UDESH KUMAR BHATRIYA
Building similarity graph...
Analyzing shared references across papers
Loading...
UDESH KUMAR BHATRIYA (Tue,) studied this question.
www.synapsesocial.com/papers/698d6dae5be6419ac0d52bd7 — DOI: https://doi.org/10.5281/zenodo.18578052