Network Orientors: Steps Toward a Cosmography of Ecosystems: Orientors for Directional Development, Self-Organization, and Autoevolution (original) (raw)
Abstract
A preliminary cosmography of ecosystems is developed consisting of 20 properties. Ecosystems are networks (P1), hierarchically organized (P2), of interacting agents; their abiotic agents respond to physical stimuli, whereas their biota make models and respond to these. Ecosystems are collections of their agents’ environments (P3) superimposed on a large-number web (P4) of complex and intricate (P5) pathways. These pathways partition the constituent environments (P6), and involve both direct and indirect linkages (P7). The latter cause equalization of flows (network homogenization, P8) and amplification of inputs (network amplification, P9). Ecosystems, as dissipative structures, tend to increase their distance from thermodynamic ground (P10). Agents in ecosystems are quantitatively dominated by indirect interactions (P11). Ecosystem networks transform direct interactions into qualitatively different indirect interaction types (P12). Because of dominant indirect effects (P11, P12), determination in ecosystems is predominantly holistic (P13). This holism enables ecosystems to provide positive utility to their constituent biota beyond that obtained in direct interactions, which may be positive, neutral, or negative (network synergism, P14). Ecosystems are model-making complex adaptive systems (P15) which perpetually create and proliferate new niches for life (P16). They are also inheritance systems, containing both (internal) genotypes and (external) envirotypes associated with their constituent phenotypes (P17). Ecosystems are cybernetic systems with nondiscrete, distributed control (P18), under which they coevolve (P19). Finally, ecosystems are fundamental units for expansion of the “inner space” of reality (P20). These properties are presented as directional tendencies, that is, as developmental, organizational, and evolutionary “orientors.”
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References
- Ashby WR (1952) An Introduction to Cybernetics. Wiley, New York
Google Scholar - Bak P (1996) How Nature Works, the Science of Self-Organized Criticality. Copernicus/ Springer—Verlag, New York
Google Scholar - Bossel H (1992) Real-Structure Process Description as the Basis of Understanding Ecosystems and Their Development. Ecol Mod 63:261–276
Article Google Scholar - Buss LW (1987) The Evolution of Individuality. Princeton University Press, Princeton NJ Brown JH (1995) Macroecology. University of Chicago Press, Chicago
Google Scholar - Cairns-Smith AG (1982) Genetic Takeover and The Mineral Origins of Life. Cambridge University Press, Cambridge
Google Scholar - Casti JL (1989) Paradigms Lost, Images of Man in the Mirror of Science. William Morrow, New York
Google Scholar - Conrad M (1983) Adaptability, the Significance of Variability from Molecule to Ecosystem. Plenum, New York
Google Scholar - Eisner T, Meinwald J (eds) (1995) Chemical Ecology. The Chemistry of Biotic Interaction. National Academy Press, Washington DC
Google Scholar - Elton CS (1927) Animal Ecology. Sidgwick and Jackson, London
Google Scholar - Fath BD, Patten BC (1997) Network Synergism: Emergence of Positive Relations in Ecological Models. Ecol Mod, in press
Google Scholar - Fox SW, Dose K (1977) Molecular Evolution and the Origin of Life. Marcel Dekker, New York Basel
Google Scholar - Gell-Mann M (1994) The Quark and the Jaguar, Adventures in the Simple and the Complex. Freeman, New York
Google Scholar - Grinnell J (1917) The Niche-Relationships of the California Thrasher. Auk 34:427–433
Article Google Scholar - Higashi M, Patten BC (1986) Further Aspects of the Analysis of Indirect Effects in Ecosystems. Ecol Mod 31:69–77
Article Google Scholar - Higashi M, Patten BC (1989) Dominance of Indirect Causality in Ecosystems. Amer Nat 133: 288–302
Article Google Scholar - Higashi M, Patten BC, Burns TP (1993) Network Trophic Dynamics: the Modes of Energy Utilization in Ecosystems. Ecol Mod 66:1–42
Article Google Scholar - Hoffmeyer J (1995) The Swarming Cyberspace of the Body. Cybernetics and Human Knowledge 3:16–25
Google Scholar - Hoffmeyer J. (1996) The Global Semiosphere. In: Rauch I, Carr GF (eds) Semiotics Around the World: Synthesis in Diversity. Proc Fifth Congress Int Assoc Semiotic Studies, Berkeley, California, June 13–18, 1994. Mouton de Gruyter, Berlin
Google Scholar - Hutchinson GE (1957) Concluding Remarks. Cold Spring Harbor Sympos Quant Biol 22:415–427
Article Google Scholar - Kauffman SA (1993) The Origins of Order. Self-organization and Selection in Evolution. Oxford University Press, New York
Google Scholar - Kauffman SA (1995) At Home in the Universe. The Search for Laws of Self-Organization and Complexity. Oxford University Press, New York
Google Scholar - Lima-de-Faria A (1988) Evolution Without Selection. Form and Function by Autoevolution. Elsevier, Amsterdam
Google Scholar - Lindeman RL (1942) The Trophic-Dynamic Aspect of Ecology. Ecology 28:399–418
Article Google Scholar - Jørgensen SE, Patten BC, Straskraba M (1992) Ecosystems Emerging: Toward an Ecology of Complex Systems in a Complex Future. Ecol Mod 62:1–27
Article Google Scholar - Müller F (1992) Hierarchical Approaches to Ecosystem Theory. Ecol Mod 63: 215–242 Odling-Smee FJ (1988) Niche-Constructing Phenotypes. In: Plotkin, HC (ed) The Role of Behavior in Evolution. MIT Press, Cambridge, Massachusetts, pp 73–132
Google Scholar - Odling-Smee FJ (1996) Niche Construction. Amer Nat 147:641–648
Article Google Scholar - Patten BC (1978) Systems Approach to the Concept of Environment. Ohio J Sci 78:206–222
Google Scholar - Patten BC (1981) Environs: the Superniches of Ecosystems. Amer Zool 21:845–852
Google Scholar - Patten BC (1982a) Indirect Causality in Ecosystems: its Significance for Environmental Protection. In: Mason WT, Iker S (eds) Research on Fish and Wildlife Habitat. Commemorative Monograph in Honor of the First Decade of the US Environmental Protection Agency. Office of Research and Development, US Environmental Protection Agency, EPA-600/8–82–022, Washington, DC, pp 92–107
Google Scholar - Patten BC (1982b) On the Quantitative Dominance of Indirect Effects in Ecosystems. In: Lauenroth WK, Skogerboe GV, Flug M (eds) Analysis of Ecological Systems: State-of-theArt in Ecological Modelling. Elsevier, Asterdam, Pp 27–37
Google Scholar - Patten BC (1982c) Environs: Relativistic Elementary Particles for Ecology. Amer Nat 119:179–219
Article Google Scholar - Patten BC (1984) Toward a Theory of the Quantitative Dominance of Indirect Effects in Ecosystems. Verh Gesellschaft für Ökologie 13:271–284
Google Scholar - Patten BC (1985) Energy Cyling in the Ecosystem. Ecol Mod 28:1–71
Article Google Scholar - Patten BC (1991) Network Ecology: Indirect Determination of the Life—Environment Relationship in Ecosystems. In: Higashi M, Burns TP (eds) Theoretical Ecosystem Ecology: The Network Perspective. Cambridge University Press, London, pp 288–351
Google Scholar - Patten BC (1992) Energy, Emergy and Environs. Ecol Mod 62:29–69
Article Google Scholar - Patten BC (1995) Network Integration of Ecological Extremal Principles: Exergy, Emergy, Power, Ascendency, and Indirect Effects. Ecol Mod 79:75–84
Article Google Scholar - Patten BC, Auble GT (1981) System Theory of the Ecological Niche. Amer Nat 117: 893–992 Patten BC, Higashi M (1995) First Passage Flows in Ecological Networks: Measurement by Input—Output Flow Analysis. Ecol Mod 79: 67–74
Google Scholar - Patten BC, Higashi M, Burns TP (1990) Trophic Dynamics in Ecosystem Networks: Significance of Cycles and Storage. Ecol Mod 51:1–28
Article Google Scholar - Patten BC, Jørgensen SE (eds) (1995) Complex Ecology: The Part—Whole Relation in Ecosystems. Prentice Hall, Englewood Cliffs, New Jersey
Google Scholar - Patten BC, Odum EP (1981) The Cybernetic Nature of Ecosystems. Amer Nat 118:886–895
Article Google Scholar - Peters RH (1991) A Critique for Ecology. Cambridge University Press, Cambridge
Google Scholar - Simon HA (1973) The Organization of Complex Systems. In: Pattee HH (ed) Hierarchy theory, the Challenge of Complex Systems. Braziller, New York, pp 1–27
Google Scholar - Teilhard de Chardin P (1975) The Phenomenon of Man. Harper And Row, New York Vandermeer JH (1972) Niche Theory. Ann Rev Ecol Syst 3:107–132
Google Scholar - Varela FJ, Bourgine P (1992) Toward a Practice of Autonomous Systems. MIT Press, Paris
Google Scholar - Waldrop MM (1992) Complexity. The Emerging Science at the Edge of Order and Chaos. Simon and Schuster, New York
Google Scholar
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- Bernard C. Patten
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- Ökologie-Zentrum, Universität Kiel, Schauenburger Straße 112, D-24118, Kiel, Germany
Felix Müller & Maren Leupelt &
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Patten, B.C. (1998). Network Orientors: Steps Toward a Cosmography of Ecosystems: Orientors for Directional Development, Self-Organization, and Autoevolution. In: Müller, F., Leupelt, M. (eds) Eco Targets, Goal Functions, and Orientors. Springer, Berlin, Heidelberg. https://doi.org/10.1007/978-3-642-58769-6\_9
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