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  1. Population Issues in Social Choice Theory, Welfare Economics, and Ethics.Charles Blackorby, Walter Bossert & David J. Donaldson - 2005 - Cambridge University Press.
    This book presents an exploration of the idea of the common or social good, extended so that alternatives with different populations can be ranked. The approach is, in the main, welfarist, basing rankings on the well-being, broadly conceived, of those who are alive. The axiomatic method is employed, and topics investigated include: the measurement of individual well-being, social attitudes toward inequality of well-being, the main classes of population principles, principles that provide incomplete rankings, principles that rank uncertain alternatives, best choices (...)
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  • The Major Transitions in Evolution.John Maynard Smith & Eörs Szathmáry - 1996 - Journal of the History of Biology 29 (1):151-152.
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  • Plant Individuality and Multilevel Selection Theory.Ellen Clarke - 2011 - In Brett Calcott & Kim Sterelny (eds.), The Major Transitions in Evolution Revisited. MIT Press. pp. 227--250.
    This chapter develops the idea that the germ-soma split and the suppression of individual fitness differences within the corporate entity are not always essential steps in the evolution of corporate individuals. It illustrates some consequences for multilevel selection theory. It presents evidence that genetic heterogeneity may not always be a barrier to successful functioning as a higher-level individual. This chapter shows that levels-of-selection theorists are wrong to assume that the central problem in transitions is always that of minimizing within-group competition. (...)
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  • Darwinian Populations and Natural Selection.Peter Godfrey-Smith - 2009 - Oxford, GB: Oxford University Press.
    The book presents a new way of understanding Darwinism and evolution by natural selection, combining work in biology, philosophy, and other fields.
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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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  • On the transfer of fitness from the cell to the multicellular organism.Richard E. Michod - 2005 - Biology and Philosophy 20 (5):967-987.
    The fitness of any evolutionary unit can be understood in terms of its two basic components: fecundity (reproduction) and viability (survival). Trade-offs between these fitness components drive the evolution of life-history traits in extant multicellular organisms. We argue that these trade-offs gain special significance during the transition from unicellular to multicellular life. In particular, the evolution of germ–soma specialization and the emergence of individuality at the cell group (or organism) level are also consequences of trade-offs between the two basic fitness (...)
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  • Alternative formulations of multilevel selection.John Damuth & I. Lorraine Heisler - 1988 - Biology and Philosophy 3 (4):407-430.
    Hierarchical expansions of the theory of natural selection exist in two distinct bodies of thought in evolutionary biology, the group selection and the species selection traditions. Both traditions share the point of view that the principles of natural selection apply at levels of biological organization above the level of the individual organism. This leads them both to considermultilevel selection situations, where selection is occurring simultaneously at more than one level. Impeding unification of the theoretical approaches of the multilevel selection traditions (...)
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  • Evolutionary transitions in individuality: multicellularity and sex.Richard E. Michod - 2011 - In Brett Calcott & Kim Sterelny (eds.), The Major Transitions in Evolution Revisited. MIT Press. pp. 169--198.
    This chapter combines formal models of how the fitness of a collective can become decoupled from the fitness with more empirical work on the volvocine algae. It uses the Volvox clade as a model system. It describes the evolution of altruism in the volvocine green algae. This chapter suggests that altruism may evolve from genes involved in life-history trade-offs. It shows the several cooperation, conflict, and conflict mediation cycles in the volvocine green algae. This cycle of cooperation, conflict, and conflict (...)
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  • Individuals, groups, fitness and utility: Multi-level selection meets social choice theory.Samir Okasha - 2009 - Biology and Philosophy 24 (5):561-584.
    In models of multi-level selection, the property of Darwinian fitness is attributed to entities at more than one level of the biological hierarchy, e.g. individuals and groups. However, the relation between individual and group fitness is a controversial matter. Theorists disagree about whether group fitness should always, or ever, be defined as total (or average) individual fitness. This paper tries to shed light on the issue by drawing on work in social choice theory, and pursuing an analogy between fitness and (...)
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  • Evolution and the Levels of Selection.Samir Okasha - 2009 - Critica 41 (123):162-170.
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  • Optimal Choice in the Face of Risk: Decision Theory Meets Evolution.Samir Okasha - 2011 - Philosophy of Science 78 (1):83-104.
    The problem of how to make optimal choices in the face of risk arises in both economics/decision theory and also evolutionary biology; in the former, ‘optimal’ means utility maximizing, while in the latter it means fitness maximizing. This article explores the links, thematic and formal, between the economic and evolutionary theories of optimal choice in risky situations, with particular reference to the relationship between utility and fitness. It is argued that the link is strongest between evolution and ‘nonexpected’ utility theory, (...)
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  • A twelve‐step program for evolving multicellularity and a division of labor.David L. Kirk - 2005 - Bioessays 27 (3):299-310.
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