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Species as a process

Acta Biotheoretica (1-2):33-49 (2008)

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  1. New Essentialism in Biology.Olivier Rieppel - 2010 - Philosophy of Science 77 (5):662-673.
    The architects of the modern synthesis banned essentialism from evolutionary theory. This rejection of essentialism was motivated by Darwin’s theory of natural selection, and the continuity of evolutionary transformation. Contemporary evolutionary biology witnesses a renaissance of essentialism in three contexts: “origin essentialism” with respect to species and supraspecific taxa, the bar coding of species on the basis of discontinuities of DNA variation between populations, and the search for laws of evolutionary developmental biology. Such “new essentialism” in contemporary biology must be (...)
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  • Species Pluralism: Conceptual, Ontological, and Practical Dimensions.Justin Bzovy - unknown
    Species are central to biology, but there is currently no agreement on what the adequate species concept should be, and many have adopted a pluralist stance: different species concepts will be required for different purposes. This thesis is a multidimensional analysis of species pluralism. First I explicate how pluralism differs monism and relativism. I then consider the history of species pluralism. I argue that we must re-frame the species problem, and that re-evaluating Aristotle's role in the histories of systematics can (...)
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  • Concerning Darwinism.Jasper Doomen - 2012 - Journal of Human Values 18 (2):173-185.
    Darwinism has become an encompassing theory, leaving the confines of science and accounting for all aspects of life. Such an outlook entails important consequences for the evaluation of life. In particular, organisms are considered mere means for species’ preservation and development, while reason is no special faculty, but rather an outgrowth of functions that are rudimentarily present in animals. Darwinism cannot, for that reason, be said to be ‘true’, but if Darwinism is the correct view, the implications for man are (...)
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  • Species are, at the same time, kinds and individuals: a causal argument based on an empirical approach to species identity.Elena Casetta & Davide Vecchi - 2019 - Synthese 198 (Suppl 12):3007-3025.
    After having reconstructed a minimal biological characterisation of species, we endorse an “empirical approach” based on the idea that it is the peculiar evolutionary history of the species at issue—its peculiar origination process, its peculiar metapopulation structure and the peculiar mixture and strength of homeostatic processes vis à vis heterostatic ones—that determines species’ identity at a time and through time. We then explore the consequences of the acceptance of the empirical approach in settling the individuals versus kinds dispute. In particular, (...)
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  • Typology and Natural Kinds in Evo-Devo.Ingo Brigandt - 2021 - In Nuño De La Rosa Laura & Müller Gerd (eds.), Evolutionary Developmental Biology: A Reference Guide. Springer. pp. 483-493.
    The traditional practice of establishing morphological types and investigating morphological organization has found new support from evolutionary developmental biology (evo-devo), especially with respect to the notion of body plans. Despite recurring claims that typology is at odds with evolutionary thinking, evo-devo offers mechanistic explanations of the evolutionary origin, transformation, and evolvability of morphological organization. In parallel, philosophers have developed non-essentialist conceptions of natural kinds that permit kinds to exhibit variation and undergo change. This not only facilitates a construal of species (...)
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  • Biological Individuals and Natural Kinds.Olivier Rieppel - 2013 - Biological Theory 7 (2):162-169.
    This paper takes a hierarchical approach to the question whether species are individuals or natural kinds. The thesis defended here is that species are spatiotemporally located complex wholes (individuals), that are composed of (i.e., include) causally interdependent parts, which collectively also instantiate a homeostatic property cluster (HPC) natural kind. Species may form open or closed genetic systems that are dynamic in nature, that have fuzzy boundaries due to the processual nature of speciation, that may have leaky boundaries as is manifest (...)
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  • Limitations of Natural Kind Talk in the Life Sciences: Homology and Other Cases. [REVIEW]Miles MacLeod - 2013 - Biological Theory 7 (2):109-120.
    The aim of this article is to detail some reservations against the beliefs, claims, or presuppositions that current essentialist natural kind concepts (including homeostatic property cluster kinds) model grouping practices in the life sciences accurately and generally. Such concepts fit reasoning into particular preconceived epistemic and semantic patterns. The ability of these patterns to fit scientific practice is often argued in support of homeostatic property cluster accounts, yet there are reasons to think that in the life sciences kind concepts exhibit (...)
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  • Natural Kinds in Philosophy and in the Life Sciences: Scholastic Twilight or New Dawn? [REVIEW]Miles MacLeod & Thomas A. C. Reydon - 2013 - Biological Theory 7 (2):89-99.
    This article, which is intended both as a position paper in the philosophical debate on natural kinds and as the guest editorial to this thematic issue, takes up the challenge posed by Ian Hacking in his paper, “Natural Kinds: Rosy Dawn, Scholastic Twilight.” Whereas a straightforward interpretation of that paper suggests that according to Hacking the concept of natural kinds should be abandoned, both in the philosophy of science and in philosophy more generally, we suggest that an alternative and less (...)
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  • The series, the network, and the tree: changing metaphors of order in nature.Olivier Rieppel - 2010 - Biology and Philosophy 25 (4):475-496.
    The history of biological systematics documents a continuing tension between classifications in terms of nested hierarchies congruent with branching diagrams (the ‘Tree of Life’) versus reticulated relations. The recognition of conflicting character distribution led to the dissolution of the scala naturae into reticulated systems, which were then transformed into phylogenetic trees by the addition of a vertical axis. The cladistic revolution in systematics resulted in a representation of phylogeny as a strictly bifurcating pattern (cladogram). Due to the ubiquity of character (...)
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