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Natural emergence

Complexity 17 (5):44-47 (2012)

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  1. Technological integration and hyperconnectivity: Tools for promoting extreme human lifespans.Marios Kyriazis - 2015 - Complexity 20 (6):15-24.
  • Defining synergy thermodynamically using quantitative measurements of entropy and free energy.Klaus Jaffe & Gerardo Febres - 2016 - Complexity 21 (S2):235-242.
  • Natural networks as thermodynamic systems.Tuomo Hartonen & Arto Annila - 2013 - Complexity 18 (2):53-62.
  • Mechanism of organization increase in complex systems.Georgi Yordanov Georgiev, Kaitlin Henry, Timothy Bates, Erin Gombos, Alexander Casey, Michael Daly, Amrit Vinod & Hyunseung Lee - 2016 - Complexity 21 (2):18-28.
  • Thermodynamics of action and organization in a system.Atanu Chatterjee - 2016 - Complexity 21 (S1):307-317.
  • Is the statement of Murphy's law valid?Atanu Chatterjee - 2016 - Complexity 21 (6):374-380.
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  • Defining emergence: Learning from flock behavior.Manuel Berrondo & Mario Sandoval - 2016 - Complexity 21 (S1):69-78.
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  • In the light of time.Arto Annila - 2009 - Proceedings of Royal Society A 465:1173–1198.
    The concept of time is examined using the second law of thermodynamics that was recently formulated as an equation of motion. According to the statistical notion of increasing entropy, flows of energy diminish differences between energy densities that form space. The flow of energy is identified with the flow of time. The non-Euclidean energy landscape, i.e. the curved space–time, is in evolution when energy is flowing down along gradients and levelling the density differences. The flows along the steepest descents, i.e. (...)
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  • Why did life emerge?Arto Annila & Annila E. Annila A. - 2008 - International Journal of Astrobiology 7 (3-4):293–300.
    Many mechanisms, functions and structures of life have been unraveled. However, the fundamental driving force that propelled chemical evolution and led to life has remained obscure. The second law of thermodynamics, written as an equation of motion, reveals that elemental abiotic matter evolves from the equilibrium via chemical reactions that couple to external energy towards complex biotic non-equilibrium systems. Each time a new mechanism of energy transduction emerges, e.g., by random variation in syntheses, evolution prompts by punctuation and settles to (...)
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