LEADER 01092nam a2200301 i 4500 001 991001110169707536 005 20020507183442.0 008 950906s1992 us ||| | eng 020 $a0817636455 035 $ab10802319-39ule_inst 035 $aLE01307185$9ExL 040 $aDip.to Matematica$beng 082 0 $a515.64 084 $aAMS 49-01 084 $aQA402.3.Z315 100 1 $aZabczyk, Jerzy$041807 245 10$aMathematical control theory :$ban introduction /$cJerzy Zabczyk 260 $aBoston, MA ; Basel ; Berlin :$bBirkhauser,$cc1992 300 $aviii, 260 p. ;$c24 cm. 490 0 $aSystems & control : foundations & applications 500 $aIncludes bibliographical references (p. 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Islam 205 $a1st ed. 2018. 210 1$aCham :$cSpringer International Publishing :$cImprint: Springer,$d2018. 215 $a1 online resource (140 pages) 225 1 $aSpringer Theses, Recognizing Outstanding Ph.D. Research,$x2190-5053 311 $a3-319-98928-6 327 $aChapter1. Introduction -- Chapter2. Building blocks of Quantum Key Distribution -- Chapter3. High-Dimensional Time-Phase QKD -- Chapter4. Unstructured high-dimensional Time-Phase QKD -- Chapter5. Scalable High-Dimensional Time-bin QKD -- Chapter6. Cloning of high-dimensional quantum states -- Chapter7. Conclusions and Future Experiments. 330 $aThis book describes a broad research program on quantum communication. Here, a cryptographic key is exchanged by two parties using quantum states of light and the security of the system arises from the fundamental properties of quantum mechanics. The author developed new communication protocols using high-dimensional quantum states so that more than one classical bit is transferred by each photon. This approach helps circumvent some of the non-ideal properties of the experimental system, enabling record key rates on metropolitan distance scales. Another important aspect of the work is the encoding of the key on high-dimensional phase-randomized weak coherent states, combined with so-called decoy states to thwart a class of possible attacks on the system. The experiments are backed up by a rigorous security analysis of the system, which accounts for all known device non-idealities. The author goes on to demonstrate a scalable approach for increasing the dimension of the quantum states, and considers attacks on the system that use optimal quantum cloning techniques. 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