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Untangling Complex Systems
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  Series 39, 9–16.

  Chua, L. O.; 1971, Memristor: The missing circuit element. IEEE Trans. Circuit Theory 18, 5, 507–519.

  Chua, L. O.; 1998, CNN: A Paradigm for Complexity. World Scientific, Singapore.

  Church, G. M.; Gao, Y.; Kosuri, S.; 2012, Next-generation digital information storage in DNA. Science 337, 1628.

  Cipra, B.; 2000, The Ising model is NP-complete. SIAM News 33, 6.

  Citri, O.; Epstein, I. R.; 1986, Mechanism for the oscillatory Bromate-Iodide reaction. J. Am. Chem. Soc. 108, 357–363.

  Clayton, P.; Davies, P.; (Eds.) 2006, The Re-Emergence of Emergence: The Emergentist Hypothesis from

  Science to Religion. Oxford University Press, New York.

  Cline, D. B.; (Ed.) 1996, The Physical Origin of Homochirality in Life. American Institute of Physics,

  New York.

  Coletti, G.; Scozzafava, R.; 2004, Conditional probability, fuzzy sets, and possibility: A unifying view. Fuzzy

  Sets Syst. 144, 1, 227–249.

  Colussi, A. J.; Ghibaudi, E.; Yuan, Z.; Noyes, R. M.; 1990, Oscillatory oxidation of benzaldehyde by air. 1.

  Experimental observation. J. Am. Chem. Soc. 112, 8660–8670.

  Coniglio, A.; De Arcangelis, L.; Herrmann, H. J.; 1989, Fractals and multifractals: applications in physics.

  Physica A 157, 21–30.

  Conrad, M.; 1992, Molecular computing: The lock-key paradigm. Computer 25, 11–20.

  Cronin, L.; Walker, S. I.; 2016, Beyond prebiotic chemistry. Science 352, 1174–1175.

  Corning, P. A.; 2002, The Re-emergence of “emergence”: A venerable concept in search of a theory.

  Complexity 7, 18–30.

  Cross, M. C.; Hohenberg, P. C.; 1993, Pattern formation outside of equilibrium. Rev. Mod. Phys. 65, 851–1112.

  Crutchfield, J. P.; 1994, The calculi of emergence: Computation, dynamics and induction. Physica D 75, 11–54.

  Crutchfield, J. P.; Young, K.; 1989, Inferring statistical complexity. Phys. Rev. Lett. 63, 105–108.

  Cubitt, T. S.; Eisert, J.; Wolf, M. M.; 2012, Extracting dynamical equations from experimental data is Np hard.

  Phys. Rev. Lett. 108, 120503.

  Cui, Q.; Karplus, M.; 2008, Allostery and cooperativity revisited. Protein Sci. 17, 1295–1307.

  Curie, P.; 1894, Sur la symétrie dans les phénomènes physiques, symétrie d’un champ électrique et d’un champ

  magnétique. J. Phys. Theor. Appl. 3, 393–415.

  Cvitanovic, P.; 1989, Universality in Chaos. 2nd ed. Taylor and Francis Group, New York.

  Dahlem, M. A.; Müller, S. C.; 2004, Reaction-diffusion waves in neuronal tissue and the window of cortical

  excitability. Ann. Phys. (Leipzig), 13, 442–449.

  Darwin, C.; 1859, On the Origin of Species by Means of Natural Selection, or the Preservation of Favoured

  Races in the Struggle for Life. 1st ed. John Murray, London.

  Das, J.; Busse, H.-G.; 1985, Long term oscillation in glycolysis. J. Biochem. 97, 719–727.

  Dateo, C. E.; Orbán, M.; De Kepper, P.; Epstein, I. R.; 1982, Bistability and oscillations in the autocatalytic

  chlorite-iodide reaction in a stirred-flow reactor. J. Am. Chem. Soc. 104, 504–509.

  References

  539

  Davies, M. L.; Halford-Maw, P. A.; Hill, J.; Tinsley, M. R.; Johnson, B. R.; Scott, S. K.; Kiss, I. Z.; Gáspár, V.;

  2000, Control of chaos in combustion reaction. J. Phys. Chem. A. 104, 9944–9952.

  Davies, P. C. W.; 2012, The epigenome and top-down causation. Interface Focus 2, 42–48.

  de Castro, L. N.; 2007, Fundamentals of natural computing: An overview. Phys. Life Rev. 4, 1–36.

  de Castro, L. N.; Timmis, J.; 2002, Artificial Immune Systems: A New Computational Approach. Springer-

  Verlag, London.

  De Finetti, B.; Machi, A.; Smith, A.; 1992, Theory of Probability: A Critical Introductory Treatment. John

  Wiley & Sons, New York, NY.

  De Kepper, P.; Epstein, I. R.; Kustin, K.; 1981a, A systematically designed homogeneous oscillating chemical

  reaction. The arsenite-iodate-chlorite system. J. Am. Chem. Soc. 103, 2133–2134.

  De Kepper, P.; Epstein, I. R.; Kustin, K.; 1981b, Bistability in the oxidation of arsenite by iodate in a stirred

  flow reactor. J. Am. Chem. Soc. 103, 6121–6127.

  Denbigh, K.; 1981, The Principles of Chemical Equilibrium with Applications in Chemistry and Chemical

  Engineering. Cambridge University Press, Cambridge, UK.

  Deneke, V. E.; Di Talia, S.; 2018, Chemical waves in cell and developmental biology. J. Cell Biol. doi: 10.1083/

  jcb.201701158.

  Deneve, S.; Pouget, A.; 2004, Bayesian multisensory integration and cross-modal spatial links. J. Physiol.

  Paris 98, 249–258.

  Dennard, R. H.; Gaensslen, F. H.; Yu, H.-N.; Rideout, L.; Bassous, E.; LeBlanc, A.; 1999, Design of ion-

  implanted MOSFET's with very small physical dimensions. Proc. IEEE 87, 4, 668–678.

  de Silva, A. P.; 2013, Molecular Logic-based Computation. The Royal Society of Chemistry, Cambridge, UK.

  Descartes, R.; 1664, Treatise of man. translated and commented by Steele Hall, T.; 2003, Prometheus Books,

  New York.

  Deutsch, D.; 1989, Quantum computational networks. Proc. R. Soc. London A 425, 73–90.

  Devlin, K.; 2002, The Millennium Problems: The Seven Greatest Unsolved Mathematical Puzzles of Our

  Time. Basic Books, New York, NY (USA).

  Dewar, R. C.; 2009, Maximum Entropy Production as an Inference Algorithm that Translates Physical

  Assumptions into Macroscopic Predictions: Don’t Shoot the Messenger. Entropy (Special Issue:

  What is Maximum Entropy Production and how should we apply it?) 11, 931–944. (doi:10.3390/

  e11040931)

  Dewar, R. C.; Lineweaver, C. H.; Niven, R. K.; Regenauer-Lieb, K.; (Eds.) 2014, B eyond the Second Law.

  Entropy Production and Non-Equilibrium Systems. Springer-Verlag, Berlin, Germany.

  Dewar, R. C.; Maritan, A.; 2014, A theoretical basis for maximum entropy production. Chapter 3, pp. 49–71

  in Beyond the Second Law. Dewar, R. C.; Lineweaver, C. H.; Niven, R. K.; Regenauer-Lieb, K.; (Eds.),

  Springer-Verlag, Berlin, Germany.

  Dillenschneider, R.; Lutz, E.; 2009, Memory erasure in small systems. Phys. Rev. Lett. 102, 210601.

  Ditto, W. L.; Miliotis, A.; Murali, K.; Sinha, S.; Spano, M. L.; 2010, Chaogates: Morphing logic gates that

  exploit dynamical patterns. Chaos 20, 037107.

  Ditto, W. L.; Rauseo, S. N.; Spano, M. L.; 1990, Experimental control of chaos. Phys. Rev. Lett. A 65, 3211–3214.

  Di Ventra, M.; Pershin, Y. V.; 2013, The parallel approach. Nat. Phys. 9, 200–202.

  DiVincenzo, D. P.; 2000, The physical implementation of quantum computation. Fortschr. Phys. 48, 771–783.

  Donahue, B. S.; Abercrombie, R. F.; 1987, Free diffusion coefficient of ionic calcium in cytoplasm. Cell

  Calcium 8, 437–448.

  Donoghue, J. P.; 2008, Bridging the brain to the world: A perspective on neural interface systems neuron.

  Neuron 60, 511–521.

  Dorigo, M.; Maniezzo, V.; Colorni, A.; 1996, Ant system: Optimization by a colony of cooperating agents.

  IEEE T. Syst. Man Cy. B 26 (1), 29–41.

  Dormann, D.; Vasiev, B.; Weijer, C. J.; 1998, Propagating waves control Dictyostelium discoideum morpho-

  genesis . Biophys. Chem. 72, 21–35.

  Dormann, D.; Weijer, C. J.; 2001, Propagating chemoattractant waves coordinate periodic cell movement in

  Dictyostelium slugs . Development 128, 4535–4543.

  Driver, J.; Spense, C.; 2000, Multisensory perception: Beyond modularity and convergence. Curr. Biol. 10,

  R731–R735.

  Duane, G. S.; Grabow, C.; Selten, F.; Ghill, M.; 2017, Introduction to focus issue: Synchronization in large

  networks and continuous media—data, models, and supermodels. Chaos 27, 126601.

  Dufiet, V.; Boissonade, J.; 1992, Numerical studies of Turing patterns selection in a two-dimensional system.

  Physica A 188, 158–171.

  Eckmann, J.-P.; Ruelle, D.; 1985, Ergodic theory of chaos and strange attractors. Rev. Mod. Phys. 57, 617–656.

  540

  References

  Edblom, E. C.; Luo, Y.; Orbán, M.; Kustin, K.; Epstein, I. R.; 1989, Kinetics and Mechanism of the Oscillatory

  Bromate-Sulfite-Ferrocyanide Reaction. J. Phys. Chem. 93, 2722–2727.

  Edblom, E. C.; Orbán, M.; Epstein, I. R.; 1986, A new iodate oscillator: The Landolt reaction with ferrocya-

  nide in a CSTR. J. Am. Chem. Soc. 108, 2826–2830.

  EIA (Energy Information Administration), 2016, Report Number: DOE/EIA-0484(2016).

  Einstein, A.; 1916, translated in 1920, Relativity: The Special and General Theory. H. Holt and Company,

  New York.

  Eisenstein, M.; 2013 Chronobiology: Stepping out of time. Nature 497, S10–S12.

  Eiswirth, M.; Freund, A.; Ross, J.; 1991, Mechanistic classification of chemical oscillators and the role of spe-

  cies. Adv. Chem. Phys. 80, 127–199.

  Elaydi, S. N.; 2005, An introduction to Difference Equations. 3rd ed. Springer, New York.

  Eldredge, N.; Gould, S. J.; 1972, Punctuated equilibria: An alternative to phyletic gradualism. pp. 82–115 in

  Models in paleobiology. Schopf, T. J. M.; (Ed.), Freeman, Cooper, San Francisco, CA.

  Elowitz, M. B.; Leibler, S.; 2000, A synthetic oscillatory network of transcriptional regulators. Nature 403, 335–338.

  Elton, C.; Nicholson, M.; 1942, The ten-year cycle in numbers of the lynx in Canada. J. Anim. Ecol. 11 (2),

  215–244.

  Epstein, I. R.; Luo, Y.; 1991, Differential delay equations in chemical kinetics. Nonlinear models: The cross-

  shaped phase diagram and the Oregonator. J. Chem. Phys. 95, 244–254.

  Epstein, I. R.; Pojman, J. A.; 1998, An Introduction to Nonlinear Chemical Dynamics: Oscillations, waves,

  Patterns and Chaos. Oxford University Press, New York.

  Erdös, P.; Rényi, A.; 1960, On the evolution of random graphs. Publ. Math. Inst. Hung. Acad. Sci. 5, 17–61.

  Erhart, J.; Sponar, S.; Sulyok, G.; Badurek, G.; Ozawa, M.; Hasegawa, Y.; 2012, Experimental demonstration

  of a universally valid error-disturbance uncertainty relation in spin measurements. Nature 8, 185–189.

  Ermentrout, G. B.; Edelstein-Keshet, L.; 1993, Cellular automata approaches to biological modeling. J. Theor.

  Biol. 160, 97–133.

  Ernst, M. O.; Banks, M. S.; 2002, Humans integrate visual and haptic information in a statistically optimal

  fashion. Nature 415, 429–433.

  Evans, D. J.; Searles, D. J.; 2002, The Fluctuation theorem. Adv. Phys. 51, 7, 1529–1585.

  Extance, A.; 2016, How DNA could store all the world’s data. Nature 537, 22–24.

  Falconer, K.; 1990, Fractal Geometry: Mathematical Foundations and Applications. John Wiley & Sons,

  Chichester, UK.

  Farquhar, R.; Muhonen, D.; Davis, S. A.; 1985, Trajectories and orbital maneuvers for the ISEE-3/ICE comet

  mission. J. Astronaut. Sci. 33, 235–254.

  Fausett, L. V.; 1994, Fundamentals of Neural Networks: Architectures, Algorithms, and Applications. Prentice Hall, Upper Saddle River, NJ.

  Favaro, G.; di Nunzio, M. R.; Gentili, P. L.; Romani, A.; Becker, R. S.; 2007, Effects of the exciting wavelength

  and viscosity on the photobehavior of 9- and 9,10-bromoanthracenes. J. Phys. Chem. A 111, 5948–5953.

  Fechner, A. T.; 1828, Über Umkehrungen der Polarität der einfachen Kette. Schweigg. J. 53, 61–76.

  Feder, J.; 1988, Fractals. Plenum Press, New York.

  Feigenbaum, M. J.; 1979, The universal metric properties of nonlinear transformations. J. Stat. Phys. 21,

  669–706.

  Feigenbaum, M. J.; 1980, Universal behaviour in nonlinear systems. Los Alamos Sci. , 1, 4–27.

  Feldman, D. P.; 2012, Chaos and Fractals: An Elementary Introduction. Oxford University Press, Oxford.

  Ferrell, J. E. Jr.; Ha, S. H.; 2014a, Ultrasensitivity Part I: Michaelian responses and zero-order ultrasensitivity.

  Trends Biochem. Sci. 39, 496–503.

  Ferrell, J. E. Jr.; Ha, S. H.; 2014b, Ultrasensitivity Part II: Multisite phosphorylation, stoichiometric inhibitors, and positive feedback. Trends Biochem. Sci. 39, 556–569.

  Ferrell, J. E. Jr.; Ha, S. H.; 2014c, Ultrasensitivity Part III: Cascades, bistable switches, and oscillators. Trends Biochem. Sci. 39, 612–618.

  Ferrell, J. E. Jr.; Tsai, T. Y.-C.; Yang, Q.; 2011, Modelling the cell cycle: Why do certain circuits oscillate?

  Cell 144, 874–885.

  Ferrell, J. E. Jr.; Xiong, W.; 2001, Bistability in cell signalling: How to make continuous processes discontinu-

  ous, and reversible processes irreversible. Chaos 11, 227–236.

  Fewell, J. H.; 2003, Social insect networks. Science 301, 1867–1870.

  Feynman, R. P.; 1960, There’s plenty of room at the bottom. Engineering and Science 23, 22–36.

  Feynman, R. P.; 1982, Simulating physics with computers. Int. J. Theor. Phys. 21, 467–488.

  References

  541

  Feynman, R. P.; Leighton, R. B.; Sands, M.; 1963, The Feynman Lectures on Physics. Vol. 1, Chapter 46,

  Addison-Wesley, Reading, MA.

  Field, R. J.; Körös, E.; Noyes, R. M.; 1972, Oscillations in chemical systems. II. Thorough analysis of temporal

  oscillation in the bromate-cerium-M4ic acid system. J. Am. Chem. Soc. 94, 8649–8664.

  Field, R. J.; Noyes, R. M.; 1974a, Oscillations in chemical systems. IV. Limit cycle behavior in a model of a

  real chemical reaction. J. Chem. Phys. 60, 1877–1884.

  Field, R. J.; Noyes, R. M.; 1974b, Oscillations in chemical systems. V. Quantitative explanation of band migra-

  tion in the Belousov-Zhabotinskii reaction. J. Am. Chem. Soc. 96, 2001–2006.

  Fife, P. C.; 1984, Propagator-controller systems and chemical patterns. pp. 76–88 in Non-equilibrium Dynamics

  in Chemical Systems. Vidal, C.; Pacault, A.; (Eds.), Springer-Verlag, Berlin, Germany.

  Fisher, I.; 1933, The Debt-Deflation theory of great depressions. Econometrica 1, 337–357.

  Fisher, R. A.; 1937, The wave of advance of advantageous gene. Ann. Eugenics 7, 355–369.

  Foerster, P.; Müller, S. C.; Hess, B.; 1988, Curvature and propagation velocity of chemical waves. Science 241, 685–687.

  Fortnow, L.; 2009, The status of the P versus NP problem. Commun. ACM 52, 78–86.

  Foster, R. G.; Roenneberg, T.; 2008, Human responses to the geophysical daily, annual and lunar cycles. Cur.

  Biol. 18, R784–R794.

  Franck, U. F.; 1985, Spontaneous temporal and spatial phenomena in physicochemical systems. pp. 2–12 in

  Temporal Order. Rensing, L.; Jaeger, N. I.; (Eds.), Springer, Berlin, Germany.

  Fraser, A. M.; Swinney, H. L.; 1986, Independent coordinates for strange attractors from mutual information.

  Phys. Rev. A 33, 1134–1140.

  Frerichs, G. A.; Thomson, R. C.; 1998, A pH-regulated chemical oscillator: The homogeneous system of

  hydrogen peroxide-sulfite-carbonate-sulfuric acid in a CSTR. J. Phys. Chem. A 102, 8142–8149.

  Friedmann, H. S.; Zhou, H.; von der Heydt, R.; 2003, The coding of uniform color figures in monkey visual

  cortex. J. Physiol. (Lond.) 548, 593–613.

  Frigg, R.; 2004, In what sense is the Kolmogorov-Sinai entropy a measure for chaotic behaviour?—Bridging

  the gap between dynamical systems theory and communication theory. Brit. J. Phil. Sci. 55, 411–434.

  Fujii, T.; Rondelez, Y.; 2013, Predator-prey molecular ecosystems. ACS Nano 7, 27–34.

  Furuta, A.; 2012, https://www.scientificamerican.com/article/heisenbergs-uncertainty-principle-is-not-dead/.

  Gallistel, C. R.; King, A.; 2010, Memory and the Computational Brain: Why Cognitive Science Will Transform

  Neuroscience. Wiley- Blackwell, New York.

  Gammaitoni, L.; Chiuchiú, D.; Madami, M.; Carlotti, G.; 2015, Towards zero-power ICT. Nanotechnology

  26, 222001.

  Gardner, M.; 1970, The fantastic combinations of John Conway's new solitaire game “life.” Sci. Am. 223,

  120–123.

  Garey, M. R., Johnson, D. S.; 1979, Computers and Intractability: A Guide to the Theory of NP-Completeness.

  W. H. Freeman & Co., New York.

  Garfinkel, A.; Spano, M. L.; Ditto, W. L.; Weiss, J. N.; 1992, Controlling cardiac chaos. Science 257, 1230–1235.

  Gegenfurtner, K. R.; 2003, Cortical mechanisms of colour vision. Nat. Rev. Neurosci. 4, 563–572.

  Gell-Mann, M.; 1994, The Quark and the Jaguar. Holt Paperbacks, Henry Holt and Company, LLC, New York.

  Gentili, P. L.; 2011a, Molecular processors: From Qubits to fuzzy logic. ChemPhysChem. 12, 739–745.

  Gentili, P. L.; 2011b, The fundamental Fuzzy logic operators and some complex Boolean logic circuits imple-

  mented by the chromogenism of a spirooxazine. Phys. Chem. Chem. Phys. 13, 20335–20344.

  Gentili, P. L.; 2011c, Molecular fuzzy inference engines: Development of chemical systems to process fuzzy

  logic at the molecular level. ICAART 2011: Proceedings of the 3rd International Conference on Agents

  and Artificial Intelligence 1, 205–210.

  Gentili, P. L.; 2013, Small steps towards the development of chemical artificial intelligent systems. RSC Adv.

  3, 25523–25549.

  Gentili, P. L.; 2014a, The human sensory system as a collection of specialized fuzzifiers: A conceptual frame-

  work to inspire new artificial intelligent systems computing with words. J. Intel. & Fuzzy Sys. 27,

  2137–2151.

  Gentili, P. L.; 2014b, The fuzziness of a chromogenic spirooxazine. Dyes and Pigments 110, 235–248.

  Gentili, P. L.; 2017, A strategy to face complexity: The development of chemical artificial intelligence.

  pp. 151–160 in Communications in Computer and Information Science, Vol. 708. Rossi, F.; Piotto, S.;

  Concilio, S.; (Eds.), Springer International Publishing, Cham, Switzerland.

  Gentili, P. L.; Dolnik, M.; Epstein, I. R.; 2014, “Photochemical oscillator”: Colored hydrodynamic oscillations

 

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