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  1. Confusion in cladism.Patricia A. Williams - 1992 - Synthese 91 (1-2):135 - 152.
    In Phylogenetic Systematics (1966), Willi Hennig conflates the Linnaean hierarchy with what Hennig refers to as the divisional hierarchy. In doing so, he lays the foundations of that school of biological taxonomy known as cladism on a philosophically ambiguous basis. This paper compares and contrasts the two hierarchies and demonstrates that Hennig conflates them. It shows that Hennig's followers also conflate them. Finally, it illuminates five persistent problems in cladism by suggesting that they arise from Hennig's original confusion.
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  • Biological essentialism and the tidal change of natural kinds.John S. Wilkins - 2013 - Science & Education 22 (2):221-240.
    The vision of natural kinds that is most common in the modern philosophy of biology, particularly with respect to the question whether species and other taxa are natural kinds, is based on a revision of the notion by Mill in A System of Logic. However, there was another conception that Whewell had previously captured well, which taxonomists have always employed, of kinds as being types that need not have necessary and sufficient characters and properties, or essences. These competing views employ (...)
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  • Philosophy and Phylogenetics.Joel D. Velasco - 2013 - Philosophy Compass 8 (10):990-998.
    Phylogenetics is the study and reconstruction of evolutionary history and is filled with numerous foundational issues of interest to philosophers. This paper briefly introduces some central concepts in the field, describes some of the main methods for inferring phylogenies, and provides some arguments for the superiority of model-based methods such as Likelihood and Bayesian methods over nonparametric methods such as parsimony. It also raises some underdeveloped issues in the field of interest to philosophers.
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  • Threads that Guide or Ties that Bind: William Kirby and the Essentialism Story.Charissa S. Varma - 2009 - Journal of the History of Biology 42 (1):119-149.
    Nineteenth-century British entomologist William Kirby is best known for his generic division of bees based on tongues and his vigorous defence of natural theology. Focusing on these aspects of Kirby's work has lead many current scholars to characterise Kirby as an "essentialist." As a result of this characterisation, many important aspects of his work, Monographia Apum Angliœ (1802) have been over-looked or misunderstood. Kirby's religious devotion, for example, have lead some scholars to assume Kirby used the term "type" for connecting (...)
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  • Philosophy of biology today: No grounds for complacency. [REVIEW]Michael Ruse - 1979 - Philosophia 8 (4):785-796.
  • The importance of homology for biology and philosophy.Ingo Brigandt & Paul Edmund Griffiths - 2007 - Biology and Philosophy 22 (5):633-641.
    Editors' introduction to the special issue on homology (Biology and Philosophy Vol. 22, Issue 5, 2007).
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  • Kuhnian values and cladistic parsimony.Richard Richards - 2002 - Perspectives on Science 10 (1):1-27.
    : According to Kuhn, theory choice is not governed by algorithms, but by values, which influence yet do not determine theory choice. Cladistic hypotheses, however, seem to be evaluated relative to a parsimony algorithm, which asserts that the best phylogenetic hypothesis is the one that requires the fewest character changes. While this seems to be an unequivocal evaluative rule, it is not. The application of the parsimony principle is ultimately indeterminate because the choice and individuation of characters that figure in (...)
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  • Darwinian metaphysics: Species and the question of essentialism.Samir Okasha - 2002 - Synthese 131 (2):191-213.
    Biologists and philosophers of biology typically regard essentialism about speciesas incompatible with modern Darwinian theory. Analytic metaphysicians such asKripke, Putnam and Wiggins, on the other hand, believe that their essentialist thesesare applicable to biological kinds. I explore this tension. I show that standard anti-essentialist considerations only show that species do not have intrinsic essential properties. I argue that while Putnam and Kripke do make assumptions that contradict received biological opinion, their model of natural kinds, suitably modified, is partially applicable to (...)
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  • Towards a more historical conception of biology?Nils Roll‐Hansen - 1974 - Inquiry: An Interdisciplinary Journal of Philosophy 17 (1-4):131-142.
  • Population thinking as trope nominalism.Bence Nanay - 2010 - Synthese 177 (1):91 - 109.
    The concept of population thinking was introduced by Ernst Mayr as the right way of thinking about the biological domain, but it is difficult to find an interpretation of this notion that is both unproblematic and does the theoretical work it was intended to do. I argue that, properly conceived, Mayr’s population thinking is a version of trope nominalism: the view that biological property-types do not exist or at least they play no explanatory role. Further, although population thinking has been (...)
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  • David Hull’s Natural Philosophy of Science.Paul E. Griffiths - 2000 - Biology and Philosophy 15 (3):301-310.
    Throughout his career David Hull has sought to bring the philosophy of science into closer contact with science and especially with biological science (Hull 1969, 1997b). This effort has taken many forms. Sometimes it has meant ‘either explaining basic biology to philosophers or explaining basic philosophy to biologists’ (Hull 1996, p. 77). The first of these tasks, simple as it sounds, has been responsible for revolutionary changes. It is well known that traditional philosophy of science, modeled as it was on (...)
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  • Current Issues in the Philosophy of Biology.Marjorie Grene - 1997 - Perspectives on Science 5 (2):255-281.
  • Scientific kinds.Marc Ereshefsky & Thomas A. C. Reydon - 2015 - Philosophical Studies 172 (4):969-986.
    Richard Boyd’s Homeostatic Property Cluster Theory is becoming the received view of natural kinds in the philosophy of science. However, a problem with HPC Theory is that it neglects many kinds highlighted by scientific classifications while at the same time endorsing kinds rejected by science. In other words, there is a mismatch between HPC kinds and the kinds of science. An adequate account of natural kinds should accurately track the classifications of successful science. We offer an alternative account of natural (...)
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  • Spiral dependence between theories and taxonomy1.Berent Enç - 1976 - Inquiry: An Interdisciplinary Journal of Philosophy 19 (1-4):41-71.
    This paper analyses the traditionally recognized dependence between observation statements and theories. The analysis proceeds by working out the interrelationship between classification systems and theoretical frameworks. Cuvier's and Darwin's theories are used as examples to illustrate this issue. The second part of the paper develops a model designed to give an account of the historical development of this interrelationship. It is argued that the interdependence is not circular and that it is an integral part of scientific research. It is suggested (...)
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  • What are biological species? : the impact of the current debate in taxonomy on the species problem.Nicole Leroux - unknown
    For the past twenty years, taxonomy has been in a state of turmoil. This confusion brings along with it four distinct schools of thought, each of which offers a different concept of biological species. The thesis will show that these concepts are purely operational and have only a weak theoretical force. In turn, it will be argued that a sound definition of species uses the notion of natural kinds, which is itself defined in term of non-causal nomological regularities.
     
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  • A history of character concepts in evolutionary biology.Kurt M. Fristrup - 2001 - In G. P. Wagner (ed.), The Character Concept in Evolutionary Biology. Academic Press. pp. 15--37.
  • How many kingdoms of life? Eukaryotic phylogeny and philosophy of systematics.Lukasz Lamza - 2019 - Philosophical Problems in Science 66:203-227.
    According to contemporary understanding of the universal tree of life, the traditionally recognized kingdoms of eukaryotic organisms—Protista, Fungi, Animalia and Plantae—are irregularly interspersed in a vast phylogenetic tree. There are numerous groups that in any Linnaean classification advised by phylogenetic relationships would form sister groups to those kingdoms, therefore requiring us to admit them the same rank. In practice, this would lead to the creation of ca. 25-30 new kingdoms that would now be listed among animals and plants as “major (...)
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