Results for 'Cathleen C. Loving'

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  1.  33
    Invoking Thomas Kuhn: What citation analysis reveals about science education.Cathleen C. Loving & William W. Cobern - 2000 - Science & Education 9 (1-2):187-206.
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  2.  35
    Defining" science" in a multicultural world: Implications for science education.William W. Cobern & Cathleen C. Loving - 2001 - Science Education 85 (1):50-67.
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  3. The religion‐in‐the‐science‐classroom issue: Seeking graduate student conceptual change.Cathleen C. Loving & Andrea Foster - 2000 - Science Education 84 (4):445-468.
  4.  17
    Cortes' multicultural empowerment model and generative teaching and learning in science.Cathleen C. Loving - 1998 - Science & Education 7 (6):533-552.
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  5. Comment on “multiculturalism, universalism, and science education”.Cathleen C. Loving - 1995 - Science Education 79 (3):341-348.
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  6. Reviewers for Science & Education.Zoubeida Dagher, Cathleen C. Loving, Charles J. Linder, Barbara J. Reeves, Maria Cecilia Gramajo, Dick Gunstone, Gregory J. Kelly, HsingChi A. Wang, Hugh Lacey & Robin H. Millar - 2005 - Science & Education 14:97-99.
     
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  7.  10
    Short Term Gains, Long Term Pains: How Cues About State Aid Learning in Dynamic Environments.Bradley C. Love Todd M. Gureckis - 2009 - Cognition 113 (3):293.
  8.  21
    When more is less: Feedback effects in perceptual category learning.J. Vincent Filoteo W. Todd Maddox, Bradley C. Love, Brian D. Glass - 2008 - Cognition 108 (2):578.
  9.  13
    European and American Philosophers.John Marenbon, Douglas Kellner, Richard D. Parry, Gregory Schufreider, Ralph McInerny, Andrea Nye, R. M. Dancy, Vernon J. Bourke, A. A. Long, James F. Harris, Thomas Oberdan, Paul S. MacDonald, Véronique M. Fóti, F. Rosen, James Dye, Pete A. Y. Gunter, Lisa J. Downing, W. J. Mander, Peter Simons, Maurice Friedman, Robert C. Solomon, Nigel Love, Mary Pickering, Andrew Reck, Simon J. Evnine, Iakovos Vasiliou, John C. Coker, Georges Dicker, James Gouinlock, Paul J. Welty, Gianluigi Oliveri, Jack Zupko, Tom Rockmore, Wayne M. Martin, Ladelle McWhorter, Hans-Johann Glock, Georgia Warnke, John Haldane, Joseph S. Ullian, Steven Rieber, David Ingram, Nick Fotion, George Rainbolt, Thomas Sheehan, Gerald J. Massey, Barbara D. Massey, David E. Cooper, David Gauthier, James M. Humber, J. N. Mohanty, Michael H. Dearmey, Oswald O. Schrag, Ralf Meerbote, George J. Stack, John P. Burgess, Paul Hoyningen-Huene, Nicholas Jolley, Adriaan T. Peperzak, E. J. Lowe, William D. Richardson, Stephen Mulhall & C. - 2017 - In Robert L. Arrington (ed.), A Companion to the Philosophers. Oxford, UK: Blackwell. pp. 109–557.
    Peter Abelard (1079–1142 ce) was the most wide‐ranging philosopher of the twelfth century. He quickly established himself as a leading teacher of logic in and near Paris shortly after 1100. After his affair with Heloise, and his subsequent castration, Abelard became a monk, but he returned to teaching in the Paris schools until 1140, when his work was condemned by a Church Council at Sens. His logical writings were based around discussion of the “Old Logic”: Porphyry's Isagoge, aristotle'S Categories and (...)
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  10.  30
    Conceptual Change in Biology: Scientific and Philosophical Perspectives on Evolution and Development.Alan C. Love (ed.) - 2015 - Berlin: Springer Verlag, Boston Studies in the Philosophy of Science.
    This volume explores questions about conceptual change from both scientific and philosophical viewpoints by analyzing the recent history of evolutionary developmental biology. It features revised papers that originated from the workshop "Conceptual Change in Biological Science: Evolutionary Developmental Biology, 1981-2011" held at the Max Planck Institute for the History of Science in Berlin in July 2010. The Preface has been written by Ron Amundson. In these papers, philosophers and biologists compare and contrast key concepts in evolutionary developmental biology and their (...)
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  11.  21
    Conceptual change and evolutionary developmental biology.A. C. Love - 2015 - In Alan C. Love (ed.), Conceptual Change in Biology: Scientific and Philosophical Perspectives on Evolution and Development. Berlin: Springer Verlag, Boston Studies in the Philosophy of Science. pp. 1-54.
    The 1981 Dahlem conference was a catalyst for contemporary evolutionary developmental biology (Evo-devo). This introductory chapter rehearses some of the details of the history surrounding the original conference and its associated edited volume, explicates the philosophical problem of conceptual change that provided the rationale for a workshop devoted to evaluating the epistemic revisions and transformations that occurred in the interim, explores conceptual change with respect to the concept of evolutionary novelty, and highlights some of the themes and patterns in the (...)
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  12. Evolution and Development: Conceptual Issues.Alan C. Love - 2024 - Cambridge University Press.
    The intersection of development and evolution has always harbored conceptual issues, but many of these are on display in contemporary evolutionary developmental biology (evo-devo). These issues include: (1) the precise constitution of evo-devo, with its focus on both the evolution of development and the developmental basis of evolution, and how it fits within evolutionary theory; (2) the nature of evo-devo model systems that comprise the material of comparative and experimental research; (3) the puzzle of how to understand the widely used (...)
     
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  13.  39
    Reflections on the Middle Stages of EvoDevo’s Ontogeny.Alan C. Love - 2006 - Biological Theory 1 (1):94-97.
    Evolutionary developmental biology (or developmental evolution) is in the middle stages of its “development.” Its early ontogeny cannot be traced back to fertilization but pivotal developmental events included Gould’s (1977) treatment of heterochrony, Riedl’s (1978) analysis of “burden”, the Dahlem conference of 1981, a British Society of Developmental Biologists Symposium, as well as books that incorporated developmental genetics into older comparative themes. A major inductive process began with the discovery of widespread phylogenetic conservation in homeobox-containing genes. One interpretation of these (...)
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  14.  31
    SUSTAIN: A Network Model of Category Learning.Bradley C. Love, Douglas L. Medin & Todd M. Gureckis - 2004 - Psychological Review 111 (2):309-332.
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  15.  99
    Explaining evolutionary innovations and novelties: Criteria of explanatory adequacy and epistemological prerequisites.Alan C. Love - 2008 - Philosophy of Science 75 (5):874-886.
    It is a common complaint that antireductionist arguments are primarily negative. Here I describe an alternative nonreductionist epistemology based on considerations taken from multidisciplinary research in biology. The core of this framework consists in seeing investigation as coordinated around sets of problems (problem agendas) that have associated criteria of explanatory adequacy. These ideas are developed in a case study, the explanation of evolutionary innovations and novelties, which demonstrates the applicability and fruitfulness of this nonreductionist epistemological perspective. This account also bears (...)
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  16. Functional homology and homology of function: Biological concepts and philosophical consequences.Alan C. Love - 2007 - Biology and Philosophy 22 (5):691-708.
    “Functional homology” appears regularly in different areas of biological research and yet it is apparently a contradiction in terms—homology concerns identity of structure regardless of form and function. I argue that despite this conceptual tension there is a legitimate conception of ‘homology of function’, which can be recovered by utilizing a distinction from pre-Darwinian physiology (use versus activity) to identify an appropriate meaning of ‘function’. This account is directly applicable to molecular developmental biology and shares a connection to the theme (...)
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  17.  96
    Typology Reconfigured: From the Metaphysics of Essentialism to the Epistemology of Representation.Alan C. Love - 2008 - Acta Biotheoretica 57 (1-2):51-75.
    The goal of this paper is to encourage a reconfiguration of the discussion about typology in biology away from the metaphysics of essentialism and toward the epistemology of classifying natural phenomena for the purposes of empirical inquiry. First, I briefly review arguments concerning ‘typological thinking’, essentialism, species, and natural kinds, highlighting their predominantly metaphysical nature. Second, I use a distinction between the aims, strategies, and tactics of science to suggest how a shift from metaphysics to epistemology might be accomplished. Typological (...)
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  18. Evolutionary morphology, innovation, and the synthesis of evolutionary and developmental biology.Alan C. Love - 2003 - Biology and Philosophy 18 (2):309-345.
    One foundational question in contemporarybiology is how to `rejoin evolution anddevelopment. The emerging research program(evolutionary developmental biology or`evo-devo) requires a meshing of disciplines,concepts, and explanations that have beendeveloped largely in independence over the pastcentury. In the attempt to comprehend thepresent separation between evolution anddevelopment much attention has been paid to thesplit between genetics and embryology in theearly part of the 20th century with itscodification in the exclusion of embryologyfrom the Modern Synthesis. This encourages acharacterization of evolutionary developmentalbiology as the marriage (...)
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  19.  43
    Dimensions of integration in interdisciplinary explanations of the origin of evolutionary novelty.Alan C. Love & Gary L. Lugar - 2013 - Studies in History and Philosophy of Science Part C: Studies in History and Philosophy of Biological and Biomedical Sciences 44 (4):537-550.
    Many philosophers of biology have embraced a version of pluralism in response to the failure of theory reduction but overlook how concepts, methods, and explanatory resources are in fact coordinated, such as in interdisciplinary research where the aim is to integrate different strands into an articulated whole. This is observable for the origin of evolutionary novelty—a complex problem that requires a synthesis of intellectual resources from different fields to arrive at robust answers to multiple allied questions. It is an apt (...)
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  20. The Idealization of Causation in Mechanistic Explanation.Alan C. Love & Marco J. Nathan - 2015 - Philosophy of Science 82 (5):761-774.
    Causal relations among components and activities are intentionally misrepresented in mechanistic explanations found routinely across the life sciences. Since several mechanists explicitly advocate accurately representing factors that make a difference to the outcome, these idealizations conflict with the stated rationale for mechanistic explanation. We argue that these idealizations signal an overlooked feature of reasoning in molecular and cell biology—mechanistic explanations do not occur in isolation—and suggest that explanatory practices within the mechanistic tradition share commonalities with model-based approaches prevalent in population (...)
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  21. Philosophical Dimensions of Individuality.Alan C. Love & Ingo Brigandt - 2017 - In Scott Lidgard & Lynn K. Nyhart (eds.), Biological Individuality: Integrating Scientific, Philosophical, and Historical Perspectives. Chicago: University of Chicago Press. pp. 318-348.
    Although natural philosophers have long been interested in individuality, it has been of interest to contemporary philosophers of biology because of its role in different aspects of evolutionary biology. These debates include whether species are individuals or classes, what counts as a unit of selection, and how transitions in individuality occur evolutionarily. Philosophical analyses are often conducted in terms of metaphysics (“what is an individual?”), rather than epistemology (“how can and do researchers conceptualize individuals so as to address some of (...)
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  22.  20
    Evolutionary morphology and evo-devo: hierarchy and novelty.A. C. Love - 2006 - Theory in Biosciences 124:317–333.
    Although the role of morphology in evolutionary theory remains a subject of debate, assessing the contributions of morphological investigation to evolutionary developmental biology (Evo-devo) is a more circumscribed issue of direct relevance to ongoing research. Historical studies of morphologically oriented researchers and the formation of the Modern Synthesis in the Anglo-American context identify a recurring theme: the synthetic theory of evolution did not capture multiple levels of biological organization. When this feature is incorporated into a philosophical framework for explaining the (...)
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  23.  65
    The Algorithmic Level Is the Bridge Between Computation and Brain.Bradley C. Love - 2015 - Topics in Cognitive Science 7 (2):230-242.
    Every scientist chooses a preferred level of analysis and this choice shapes the research program, even determining what counts as evidence. This contribution revisits Marr's three levels of analysis and evaluates the prospect of making progress at each individual level. After reviewing limitations of theorizing within a level, two strategies for integration across levels are considered. One is top–down in that it attempts to build a bridge from the computational to algorithmic level. Limitations of this approach include insufficient theoretical constraint (...)
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  24. Theory is as Theory Does: Scientific Practice and Theory Structure in Biology.Alan C. Love - 2013 - Biological Theory 7 (4):325-337, 430.
    Using the context of controversies surrounding evolutionary developmental biology (EvoDevo) and the possibility of an Extended Evolutionary Synthesis, I provide an account of theory structure as idealized theory presentations that are always incomplete (partial) and shaped by their conceptual content (material rather than formal organization). These two characteristics are salient because the goals that organize and regulate scientific practice, including the activity of using a theory, are heterogeneous. This means that the same theory can be structured differently, in part because (...)
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  25. Evolvability, dispositions, and intrinsicality.Alan C. Love - 2003 - Philosophy of Science 70 (5):1015-1027.
    In this paper I examine a dispositional property that has been receiving increased attention in biology, evolvability. First, I identify three compatible but distinct investigative approaches, distinguish two interpretations of evolvability, and treat the difference between dispositions of individuals versus populations. Second, I explore the relevance of philosophical distinctions about dispositions for evolvability, isolating the assumption that dispositions are intrinsically located. I conclude that some instances of evolvability cannot be understood as purely intrinsic to populations and suggest alternative strategies for (...)
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  26.  36
    Interdisciplinary lessons for the teaching of biology from the practice of Evo-devo.Alan C. Love - 2013 - Science & Education 22 (2):255–278.
    Evolutionary developmental biology (Evo-devo) is a vibrant area of contemporary life science that should be (and is) increasingly incorporated into teaching curricula. Although the inclusion of this content is important for biological pedagogy at multiple levels of instruction, there are also philosophical lessons that can be drawn from the scientific practices found in Evo-devo. One feature of particular significance is the interdisciplinary nature of Evo-devo investigations and their resulting explanations. Instead of a single disciplinary approach being the most explanatory or (...)
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  27.  60
    Microbes modeling ontogeny.Alan C. Love & Michael Travisano - 2013 - Biology and Philosophy 28 (2):161-188.
    Model organisms are central to contemporary biology and studies of embryogenesis in particular. Biologists utilize only a small number of species to experimentally elucidate the phenomena and mechanisms of development. Critics have questioned whether these experimental models are good representatives of their targets because of the inherent biases involved in their selection (e.g., rapid development and short generation time). A standard response is that the manipulative molecular techniques available for experimental analysis mitigate, if not counterbalance, this concern. But the most (...)
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  28. COMPARING PART-WHOLE REDUCTIVE EXPLANATIONS IN BIOLOGY AND PHYSICS.Alan C. Love & Andreas Hüttemann - 2011 - In Dennis Dieks, Wenceslao Gonzalo, Thomas Uebel, Stephan Hartmann & Marcel Weber (eds.), Explanation, Prediction, and Confirmation. Springer. pp. 183--202.
    Many biologists and philosophers have worried that importing models of reasoning from the physical sciences obscures our understanding of reasoning in the life sciences. In this paper we discuss one example that partially validates this concern: part-whole reductive explanations. Biology and physics tend to incorporate different models of temporality in part-whole reductive explanations. This results from differential emphases on compositional and causal facets of reductive explanations, which have not been distinguished reliably in prior philosophical analyses. Keeping these two facets distinct (...)
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  29.  66
    Hierarchy, causation and explanation: ubiquity, locality, and pluralism.Alan C. Love - 2012 - Interface Focus 2 (1):115–125..
    The ubiquity of top-down causal explanations within and across the sciences is prima facie evidence for the existence of top-down causation. Much debate has been focused on whether top-down causation is coherent or in conflict with reductionism. Less attention has been given to the question of whether these representations of hierarchical relations pick out a single, common hierarchy. A negative answer to this question undermines a commonplace view that the world is divided into stratified ‘levels’ of organization and suggests that (...)
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  30.  34
    Idealization in evolutionary developmental investigation: a tension between phenotypic plasticity and normal stages.Alan C. Love - 2010 - Philosophical Transactions of the Royal Society B 365:679–690.
    Idealization is a reasoning strategy that biologists use to describe, model and explain that purposefully departs from features known to be present in nature. Similar to other strategies of scientific reasoning, idealization combines distinctive strengths alongside of latent weaknesses. The study of ontogeny in model organisms is usually executed by establishing a set of normal stages for embryonic development, which enables researchers in different laboratory contexts to have standardized comparisons of experimental results. Normal stages are a form of idealization because (...)
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  31.  21
    Erratum to: Theory is as Theory Does: Scientific Practice and Theory Structure in Biology.Alan C. Love - 2013 - Biological Theory 7 (4):430-430.
    Erratum to Using the context of controversies surrounding evolutionary developmental biology (EvoDevo) and the possibility of an Extended Evolutionary Synthesis, I provide an account of theory structure as idealized theory presentations that are always incomplete (partial) and shaped by their conceptual content (material rather than formal organization). These two characteristics are salient because the goals that organize and regulate scientific practice, including the activity of using a theory, are heterogeneous. This means that the same theory can be structured differently, in (...)
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  32.  87
    Rethinking the structure of evolutionary theory for an extended synthesis.A. C. Love - 2010 - In M. Pigliucci & G. Müller (eds.), Evolution—The Extended Synthesis. MIT Press. pp. 403–441.
    This chapter describes the theoretical implications of Extended Synthesis and addresses the methodological options available for determining aspects of theoretical structure. It uses a “bottom-up” approach focused on evolutionary theory in particular, as opposed to a “top-down” strategy that attempts to characterize the structure of all scientific theories. The chapter shows that there are multiple stable components contained within a broad representation of evolutionary theory. It suggests that the philosophical analysis offered in the chapter regarding the structure of evolutionary theory (...)
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  33.  30
    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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  34.  16
    Morphological and paleontological perspectives for a history of evo-devo.A. C. Love - 2007 - In M. Laubichler & J. Maienschein (eds.), From Embryology to Evo-Devo: A History of Developmental Evolution. MIT Press. pp. 267–307.
    Exploring history pertinent to evolutionary developmental biology (hereafter, Evo-devo) is an exciting prospect given its current status as a cutting-edge field of research. The first and obvious question concerns where to begin searching for materials and sources. Since this new discipline adopts a moniker that intentionally juxtaposes ‘evolution’ and development’, individuals, disciplines, and institutional contexts relevant to the history of evolutionary studies and investigations of ontogeny prompt themselves. Each of these topics has received attention from historians and thus there is (...)
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  35.  13
    From philosophy to science (to natural philosophy): evolutionary developmental perspectives.A. C. Love - 2008 - The Quarterly Review of Biology 83:65–76.
    This paper focuses on abstraction as a mode of reasoning that facilitates a productive relationship between philosophy and science. Using examples from evolutionary developmental biology, I argue that there are two areas where abstraction can be relevant to science: reasoning explication and problem clarification. The value of abstraction is characterized in terms of methodology (modeling or data gathering) and epistemology (explanatory evaluation or data interpretation).
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  36.  20
    The erotetic organization of developmental biology.A. C. Love - 2014 - In A. Minelli & T. Pradeu (eds.), Towards a Theory of Development. Oxford University Press. pp. 33–55.
    Developmental biology is the science of explaining how a variety of interacting processes generate the heterogeneous shapes, size, and structural features of an organism as it develops rom embryo to adult, or more generally throughout its life cycle (Love, 2008b; Minelli, 2011a). Although it is commonplace in philosophy to associate sciences with theories such that the individuation of a science is dependent on a constitutive theory or group of models, it is uncommon to find presentations of developmental biology making reference (...)
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  37.  71
    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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  38.  13
    Developmental biology.A. C. Love - 2015 - The Stanford Encyclopedia of Philosophy.
    Developmental biology is the science of explaining how a variety of interacting processes generate an organism’s heterogeneous shapes, size, and structural features that arise on the trajectory from embryo to adult, or more generally throughout a life cycle. It represents an exemplary area of contemporary experimental biology that focuses on phenomena that have puzzled natural philosophers and scientists for more than two millennia.
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  39. Experiments, Intuitions and Images of Philosophy and Science.Alan C. Love - 2013 - Analysis 73 (4):785-797.
    According to Joshua Alexander, philosophers use intuitions routinely as a form of evidence to test philosophical theories but experimental philosophy demonstrates that these intuitions are unreliable and unrepresentative.1 According to Herman Cappelen, philosophers never use intuitions as evidence (despite the vacuous sentential leader ‘intuitively’) and experimental philosophy lacks a rationale for its much-touted existence.2 That two books are diametrically opposed on methodology in philosophy is not noteworthy. But eyebrows might be raised at such contradictory accounts of the phenomenology of philosophical (...)
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  40. Philosophy in the Trenches: Reflections on The Eugenic Mind Project.Alan C. Love - 2018 - Philosophy, Theory, and Practice in Biology 10.
    Robert Wilson’s The Eugenic Mind Project is a major achievement of engaged scholarship and socially relevant philosophy and history of science. It exemplifies the virtues of interdisciplinarity. As principal investigator of the Living Archives on Eugenics in Western Canada project, while employed in the Department of Philosophy at the University of Alberta, Wilson encountered a proverbial big ball of mud with questions and issues that involved local individuals living through a painful set of memories and implicated his institutional home in (...)
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  41.  34
    Larval ectoderm, organizational homology, and the origins of evolutionary novelty.A. C. Love & R. A. Raff - 2006 - Journal of Experimental Zoology (Mol Dev Evol) 306:18–34.
    Comprehending the origin of marine invertebrate larvae remains a key domain of research for evolutionary biologists, including the repeated origin of direct developmental modes in echinoids. In order to address the latter question, we surveyed existing evidence on relationships of homology between the ectoderm territories of two closely related sea urchin species in the genus Heliocidaris that differ in their developmental mode. Additionally, we explored a recently articulated idea about homology called ‘organizational homology’ (Muller 2003. In: Muller GB, Newman SA, (...)
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  42.  64
    ChINs, swarms, and variational modalities: concepts in the service of an evolutionary research program: Günter P. Wagner: Homology, Genes, and Evolutionary Innovation. Princeton University Press, Princeton, NJ, 2014. 496 pp, $60.00, £41.95 . ISBN 978-0-691-15646-0.Alan C. Love - 2015 - Biology and Philosophy 30 (6):873-888.
    Günter Wagner’s Homology, Genes, and Evolutionary Innovation collects and synthesizes a vast array of empirical data, theoretical models, and conceptual analysis to set out a progressive research program with a central theoretical commitment: the genetic theory of homology. This research program diverges from standard approaches in evolutionary biology, provides sharpened contours to explanations of the origin of novelty, and expands the conceptual repertoire of evolutionary developmental biology. I concentrate on four aspects of the book in this essay review: the genetic (...)
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  43.  45
    Evolutionary novelty and the Evo-devo synthesis: field notes.I. Brigandt & Alan C. Love - 2010 - Evolutionary Biology 37:93–99.
    Accounting for the evolutionary origins of morphological novelty is one of the core challenges of contemporary evolutionary biology. A successful explanatory framework requires the integration of different biological disciplines, but the relationships between developmental biology and standard evolutionary biology remain contested. There is also disagreement about how to define the concept of evolutionary novelty. These issues were the subjects of a workshop held in November 2009 at the University of Alberta. We report on the discussion and results of this workshop, (...)
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  44.  32
    Reduction.A. Hütterman & A. C. Love - 2016 - In Paul Humphreys (ed.), The Oxford Handbook of Philosophy of Science. Oxford University Press USA. pp. 460-484.
    Reduction and reductionism have been central philosophical topics in analytic philosophy of science for more than six decades. Together they encompass a diversity of issues from metaphysics and epistemology. This article provides an introduction to the topic that illuminates how contemporary epistemological discussions took their shape historically and limns the contours of concrete cases of reduction in specific natural sciences. The unity of science and the impulse to accomplish compositional reduction in accord with a layer-cake vision of the sciences, the (...)
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  45.  67
    When learning to classify by relations is easier than by features.Bradley C. Love & Marc T. Tomlinson - 2010 - Thinking and Reasoning 16 (4):372-401.
  46.  22
    Explaining the origins of multicellularity: between evolutionary dynamics and developmental mechanisms.A. C. Love - 2016 - In K. J. Niklas & S. A. Newman (eds.), Multicellularity: Origins and Evolution. MIT press. pp. 279–295.
    Overview The evolution of multicellularity raises questions regarding genomic and developmental commonalities and discordances, selective advantages and disadvantages, physical determinants of development, and the origins of morphological novelties. It also represents a change in the definition of individuality, because a new organism emerges from interactions among single cells. This volume considers these and other questions, with contributions that explore the origins and consequences of the evolution of multicellularity, addressing a range of topics, organisms, and experimental protocols. Each section focuses on (...)
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  47.  67
    More worry and less love?Alan C. Love, Ingo Brigandt, Karola Stotz, Daniel Schweitzer & Alexander Rosenberg - 2008 - Metascience 17 (1):1-26.
    Review symposium of Alexander Rosenberg’s Darwinian Reductionism: Or, How to Stop Worrying and Love Molecular Biology [2006]. -/- Worry carries with it a connotation of false concern, as in ‘your mother is always worried about you’. And yet some worrying, including that of your mother, turns out to be justified. Alexander Rosenberg’s new book is an extended argument intended to assuage false concerns about reductionism and molecular biology while encouraging a loving embrace of the two.
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  48.  14
    Teaching evolutionary developmental biology: concepts, problems, and controversy.A. C. Love - 2013 - In K. Kampourakis (ed.), Philosophy of Biology: A Companion for Educators. Springer. pp. 323-341.
    Although sciences are often conceptualized in terms of theory confirmation and hypothesis testing, an equally important dimension of scientific reasoning is the structure of problems that guide inquiry. This problem structure is evident in several concepts central to evolutionary developmental biology (Evo-devo)—constraints, modularity, evolvability, and novelty. Because problems play an important role in biological practice, they should be included in biological pedagogy, especially when treating the issue of scientific controversy. A key feature of resolving controversy is synthesizing methodologies from different (...)
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  49.  6
    Beyond the Meme.Alan Love & William C. Wimsatt - 2019 - Minneapolis, MN, USA: University of Minnesota Press.
    Contributors: Sabina Leonelli Nancy J. Nersessian Michel Janssen Jacob G. Foster James A. Evans Mark A. Bedau Marshall Abrams Gilbert B. Tostevin Salikoko S. Mufwene Massimo Maiocchi Joseph D. Martin Paul E. Smaldino Claes Andersson Anton Törnberg Petter Törnberg Beyond the Meme assembles interdisciplinary perspectives on cultural evolution, providing a nuanced understanding of it as a process in which dynamic structures interact on different scales of size and time. The volume demonstrates how a thick understanding of change in culture emerges (...)
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  50.  14
    Positional Information and the Measurement of Specificity.Alan C. Love - 2020 - Philosophy of Science 87 (5):1061-1072.
    Philosophical discussions of information and specificity in biology are now commonplace, but no consensus exists about whether the privileging of genetic causation in investigation and explanation...
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