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  1. (1 other version)Darwin's Dangerous Idea: Evolution and the Meanings of Life.David L. Hull - 1997 - British Journal for the Philosophy of Science 48 (3):435-438.
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  • Replacement of the “genetic program” program.Ronald J. Planer - 2014 - Biology and Philosophy 29 (1):33-53.
    Talk of a “genetic program” has become almost as common in cell and evolutionary biology as talk of “genetic information”. But what is a genetic program? I understand the claim that an organism’s genome contains a program to mean that its genes not only carry information about which proteins to make, but also about the conditions in which to make them. I argue that the program description, while accurate in some respects, is ultimately misleading and should be abandoned. After that, (...)
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  • From Groups to Individuals: Evolution and Emerging Individuality.Frederic Bouchard & Philippe Huneman (eds.) - 2013 - Cambridge, Massachusetts: MIT Press.
    Our intuitive assumption that only organisms are the real individuals in the natural world is at odds with developments in cell biology, ecology, genetics, evolutionary biology, and other fields. Although organisms have served for centuries as nature’s paradigmatic individuals, science suggests that organisms are only one of the many ways in which the natural world could be organized. When living beings work together—as in ant colonies, beehives, and bacteria-metazoan symbiosis—new collective individuals can emerge. In this book, leading scholars consider the (...)
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  • Is evolvability evolvable?Massimo Pigliucci - 2008 - Nature Reviews Genetics 9:75-82.
    In recent years, biologists have increasingly been asking whether the ability to evolve — the evolvability — of biological systems, itself evolves, and whether this phenomenon is the result of natural selection or a by-product of other evolutionary processes. The concept of evolvability, and the increasing theoretical and empirical literature that refers to it, may constitute one of several pillars on which an extended evolutionary synthesis will take shape during the next few years, although much work remains to be done (...)
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  • Inheritance Systems.Ehud Lamm - 2012 - The Stanford Encyclopedia of Philosophy (Spring 2012 Edition).
    Organisms inherit various kinds of developmental information and cues from their parents. The study of inheritance systems is aimed at identifying and classifying the various mechanisms and processes of heredity, the types of hereditary information that is passed on by each, the functional interaction between the different systems, and the evolutionary consequences of these properties. We present the discussion of inheritance systems in the context of several debates. First, between proponents of monism about heredity (gene-centric views), holism about heredity (Developmental (...)
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  • Evolution, "Typology" and "Population Thinking".Marjorie Grene - 1990 - American Philosophical Quarterly 27 (3):237 - 244.
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  • (1 other version)Evolution – the Extended Synthesis.Massimo Pigliucci & Gerd B. Muller (eds.) - 2010 - MIT Press.
    In the six decades since the publication of Julian Huxley's Evolution: The Modern Synthesis, spectacular empirical advances in the biological sciences have been accompanied by equally significant developments within the core theoretical framework of the discipline. As a result, evolutionary theory today includes concepts and even entire new fields that were not part of the foundational structure of the Modern Synthesis. In this volume, sixteen leading evolutionary biologists and philosophers of science survey the conceptual changes that have emerged since Huxley's (...)
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  • (1 other version)The Spandrels of San Marco and the Panglossian Paradigm: A Critique of the Adaptationist Programme.S. J. Gould & R. C. Lewontin - 1994 - In Elliott Sober (ed.), Conceptual Issues in Evolutionary Biology. The Mit Press. Bradford Books. pp. 73-90.
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  • (6 other versions)The Structure of Scientific Revolutions.Thomas Samuel Kuhn - 1962 - Chicago: University of Chicago Press. Edited by Otto Neurath.
    A scientific community cannot practice its trade without some set of received beliefs. These beliefs form the foundation of the "educational initiation that prepares and licenses the student for professional practice". The nature of the "rigorous and rigid" preparation helps ensure that the received beliefs are firmly fixed in the student's mind. Scientists take great pains to defend the assumption that scientists know what the world is like...To this end, "normal science" will often suppress novelties which undermine its foundations. Research (...)
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  • A Radical Solution to the Species Problem.Michael T. Ghiselin - 1974 - Systematic Zoology 23 (4):536–544.
    Traditionally, species have been treated as classes. In fact they may be considered individuals. The logical term “individual” has been confused with a biological synonym for “organism.” If species are individuals, then: 1) their names are proper, 2) there cannot be instances of them, 3) they do not have defining properties, 4) their constituent organisms are parts, not members. “ Species " may be defined as the most extensive units in the natural economy such that reproductive competition occurs among their (...)
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  • (1 other version)Punctuated Equilibria: An Alternative to Phyletic Gradualism.Niles Eldredge & Stephen Jay Gould - 1972 - In Thomas J. M. Schopf (ed.), Models in Paleobiology. Freeman, Cooper. pp. 82-115.
    They are correct that punctuated equilibria apply to sexually reproducing organisms and that morphological evolutionary change is regarded as largely (if not exclusively) correlated with speciation events. However, they err in suggesting that we attribute stasis strictly to "developmental constraints," which represent only one of a set of possible mechanisms that we have suggested for the causes of stasis. Others include habitat tracking and the internal structure of species themselves [for example, (2)].
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  • (4 other versions)Critique of judgement.Immanuel Kant - 2007 - New York: Oxford University Press. Edited by Nicholas Walker.
    In the Critique of Judgement, Kant offers a penetrating analysis of our experience of the beautiful and the sublime. He discusses the objectivity of taste, aesthetic disinterestedness, the relation of art and nature, the role of imagination, genius and originality, the limits of representation, and the connection between morality and the aesthetic. He also investigates the validity of our judgements concerning the degree in which nature has a purpose, with respect to the highest interests of reason and enlightenment. The work (...)
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  • (6 other versions)The Structure of Scientific Revolutions.Thomas S. Kuhn - 1962 - Chicago, IL: University of Chicago Press. Edited by Ian Hacking.
    Thomas S. Kuhn's classic book is now available with a new index.
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  • A matter of individuality.David L. Hull - 1978 - Philosophy of Science 45 (3):335-360.
    Biological species have been treated traditionally as spatiotemporally unrestricted classes. If they are to perform the function which they do in the evolutionary process, they must be spatiotemporally localized individuals, historical entities. Reinterpreting biological species as historical entities solves several important anomalies in biology, in philosophy of biology, and within philosophy itself. It also has important implications for any attempt to present an "evolutionary" analysis of science and for sciences such as anthropology which are devoted to the study of single (...)
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  • Weismann rules! OK? Epigenetics and the Lamarckian temptation.David Haig - 2007 - Biology and Philosophy 22 (3):415-428.
    August Weismann rejected the inheritance of acquired characters on the grounds that changes to the soma cannot produce the kind of changes to the germ-plasm that would result in the altered character being transmitted to subsequent generations. His intended distinction, between germ-plasm and soma, was closer to the modern distinction between genotype and phenotype than to the modern distinction between germ cells and somatic cells. Recently, systems of epigenetic inheritance have been claimed to make possible the inheritance of acquired characters. (...)
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  • The Structure of Scientific Revolutions.David Bohm - 1964 - Philosophical Quarterly 14 (57):377-379.
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  • (1 other version)Evolution: The History of an Idea.Peter J. Bowler - 1985 - Journal of the History of Biology 18 (1):155-157.
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  • Conceptualizing Evolutionary Novelty: Moving Beyond Definitional Debates.Ingo Brigandt & Alan C. Love - 2012 - Journal of Experimental Zoology Part B: Molecular and Developmental Evolution 318:417-427.
    According to many biologists, explaining the evolution of morphological novelty and behavioral innovation are central endeavors in contemporary evolutionary biology. These endeavors are inherently multidisciplinary but also have involved a high degree of controversy. One key source of controversy is the definitional diversity associated with the concept of evolutionary novelty, which can lead to contradictory claims (a novel trait according to one definition is not a novel trait according to another). We argue that this diversity should be interpreted in light (...)
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  • Evolution and the Levels of Selection.Samir Okasha - 2009 - Critica 41 (123):162-170.
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  • (2 other versions)Evolution. — The Modern Synthesis.J. Huxley & T. H. Huxley - 1950 - Revista Portuguesa de Filosofia 6 (2):207-207.
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  • Evolution in Four Dimensions: Genetic, Epigenetic, Behavioral, and Symbolic Variation in the History of Life.Eva Jablonka, Marion J. Lamb & Anna Zeligowski - 2005 - Bradford.
    Ideas about heredity and evolution are undergoing a revolutionary change. New findings in molecular biology challenge the gene-centered version of Darwinian theory according to which adaptation occurs only through natural selection of chance DNA variations. In Evolution in Four Dimensions, Eva Jablonka and Marion Lamb argue that there is more to heredity than genes. They trace four "dimensions" in evolution -- four inheritance systems that play a role in evolution: genetic, epigenetic, behavioral, and symbolic. These systems, they argue, can all (...)
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  • The replicator in retrospect.Peter Godfrey-Smith - 2000 - Biology and Philosophy 15 (3):403-423.
    The history and theoretical role of the concept of a ``replicator''is discussed, starting with Dawkins' and Hull's classic treatmentsand working forward. I argue that the replicator concept is still auseful one for evolutionary theory, but it should be revised insome ways. The most important revision is the recognition that notall processes of evolution by natural selection require thatsomething play the role of a replicator.
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  • (1 other version)Evolution: The History of an Idea.Peter J. Bowler - 1987 - British Journal for the Philosophy of Science 38 (2):261-265.
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  • Extending and expanding the Darwinian synthesis: the role of complex systems dynamics.Bruce H. Weber - 2011 - Studies in History and Philosophy of Science Part C: Studies in History and Philosophy of Biological and Biomedical Sciences 42 (1):75-81.
    Darwinism is defined here as an evolving research tradition based upon the concepts of natural selection acting upon heritable variation articulated via background assumptions about systems dynamics. Darwin’s theory of evolution was developed within a context of the background assumptions of Newtonian systems dynamics. The Modern Evolutionary Synthesis, or neo-Darwinism, successfully joined Darwinian selection and Mendelian genetics by developing population genetics informed by background assumptions of Boltzmannian systems dynamics. Currently the Darwinian Research Tradition is changing as it incorporates new information (...)
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  • Animal Species and Evolution.Ernst Mayr - 1963 - Belknap of Harvard University Press.
    Comprehensive evaluation and study of man's theories and knowledge of genetical characteristics and the evolutionary processes.
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  • .Marjorie Grene (ed.) - 1973 - Anchor Books.
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  • Physical Determinants in the Emergence and Inheritance of Multicellular Form.Stuart A. Newman & Marta Linde-Medina - 2013 - Biological Theory 8 (3):274-285.
    We argue that the physics of complex materials and self-organizing processes should be made central to the biology of form. Rather than being encoded in genes, form emerges when cells and certain of their molecules mobilize physical forces, effects, and processes in a multicellular context. What is inherited from one generation to the next are not genetic programs for constructing organisms, but generative mechanisms of morphogenesis and pattern formation and the initial and boundary conditions for reproducing the specific traits of (...)
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  • Transformations of Lamarckism: From Subtle Fluids to Molecular Biology.Eva Jablonka & Snait Gissis (eds.) - 2011 - MIT Press.
    In 1809--the year of Charles Darwin's birth--Jean-Baptiste Lamarck published Philosophie zoologique, the first comprehensive and systematic theory of biological evolution. The Lamarckian approach emphasizes the generation of developmental variations; Darwinism stresses selection. Lamarck's ideas were eventually eclipsed by Darwinian concepts, especially after the emergence of the Modern Synthesis in the twentieth century. The different approaches--which can be seen as complementary rather than mutually exclusive--have important implications for the kinds of questions biologists ask and for the type of research they conduct. (...)
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  • Evolution and the levels of selection.Samir Okasha - 2006 - New York: Oxford University Press.
    Does natural selection act primarily on individual organisms, on groups, on genes, or on whole species? The question of levels of selection - on which biologists and philosophers have long disagreed - is central to evolutionary theory and to the philosophy of biology. Samir Okasha's comprehensive analysis gives a clear account of the philosophical issues at stake in the current debate.
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  • Shades of Lamarck.Stephen Jay Gould - unknown
    The world, unfortunately, rarely matches our hopes and consistently refuses to behave in a reasonable manner. The psalmist did not distinguish himself as an acute observer when he wrote: "I have been young, and now am old; yet have I not seen the righteous forsaken, nor his seed begging bread." The tyranny of what seems reasonable often impedes science. Who before Einstein would have believed that the mass and aging of an object could be affected by its velocity near the (...)
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  • Adaptation and Natural Selection: A Critique of Some Current Evolutionary Thought.William C. Wimsatt - 1970 - Philosophy of Science 37 (4):620-623.
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  • The So-Called Extended Synthesis and Population Genetics.Lindsay R. Craig - 2010 - Biological Theory 5 (2):117-123.
    In recent years, several prominent biologists have pointed to the relatively new field of evolutionary developmental biology as evidence of an Extended Synthesis in evolutionary biology. More particularly, these biologists claim that theoretical and empirical EvoDevo research is extending the Modern Synthesis framework of evolutionary theory through investigation of evolutionarily important concepts that are not part of the framework developed during the 20th century. To describe the current changes in evolutionary biology as an Extended Synthesis, however, is incorrect. Through review (...)
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  • Marine invertebrates, model organisms, and the modern synthesis: epistemic values, evo-devo, and exclusion.Alan C. Love - 2009 - Theory in Biosciences 128:19–42.
    A central reason that undergirds the significance of evo-devo is the claim that development was left out of the Modern synthesis. This claim turns out to be quite complicated, both in terms of whether development was genuinely excluded and how to understand the different kinds of embryological research that might have contributed. The present paper reevaluates this central claim by focusing on the practice of model organism choice. Through a survey of examples utilized in the literature of the Modern synthesis, (...)
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