Boston, Massachusetts, United States of America
  •  2
    Book Review (review)
    Studies in History and Philosophy of Science Part B: Studies in History and Philosophy of Modern Physics 41 (4): 368-370. 2010.
  •  32
    The Evolving Concepts of Nature, Time, and Causation
    Metascience 15 (1): 183-186. 2006.
  •  136
    Paul dirac and the Einstein-Bohr debate
    Perspectives on Science 16 (1): 103-114. 2008.
    : Although Dirac rarely participated in the interpretational debates over quantum theory, it is traditionally assumed that his views were aligned with Heisenberg and Bohr in the so-called Copenhagen-Göttingen camp. However, an unpublished—and apparently unknown—lecture of Dirac's reveals that this view is mistaken; in the famous debate between Einstein and Bohr, Dirac sided with Einstein. Surprisingly, Dirac believed that quantum mechanics was not complete, that the uncertainty principle would n…Read more
  •  142
    Horizontal models: From bakers to cats
    Philosophy of Science 70 (3): 609-627. 2003.
    At the center of quantum chaos research is a particular family of models known as quantum maps. These maps illustrate an important “horizontal” dimension to model construction that has been overlooked in the literature on models. Three ways in which quantum maps are being used to clarify the relationship between classical and quantum mechanics are examined. This study suggests that horizontal models may provide a new and fruitful framework for exploring intertheoretic relations.
  •  74
    A. Douglas Stone. Einstein and the Quantum: The Quest of the Valiant Swabian. (review)
    Hopos: The Journal of the International Society for the History of Philosophy of Science 5 (1): 177-79. 2015.
    While everyone knows of Einstein’s brilliant work on relativity theory and many know of his later opposition to quantum theory as immortalized in his remark “He [God] does not play dice,” few outside of limited academic circles know of Einstein’s many seminal contributions to the development of quantum theory. In this highly accessible and enjoyable popular science book, Douglas Stone seeks to revise our popular conception of Einstein and bring the story of his profound and revolutionary insight…Read more
  •  23
    Classical mechanics and quantum mechanics are two of the most successful scientific theories ever discovered, and yet how they can describe the same world is far from clear: one theory is deterministic, the other indeterministic; one theory describes a world in which chaos is pervasive, the other a world in which chaos is absent. Focusing on the exciting field of 'quantum chaos', this book reveals that there is a subtle and complex relation between classical and quantum mechanics. It challenges …Read more
  •  133
    Metaphysical Indeterminacy, Properties, and Quantum Theory
    Res Philosophica 91 (3): 449-475. 2014.
    It has frequently been suggested that quantum mechanics may provide a genuine case of ontic vagueness or metaphysical indeterminacy. However, discussions of quantum theory in the vagueness literature are often cursory and, as I shall argue, have in some respects been misguided. Hitherto much of the debate over ontic vagueness and quantum theory has centered on the “indeterminate identity” construal of ontic vagueness, and whether the quantum phenomenon of entanglement produces particles whose id…Read more
  •  180
    Can classical structures explain quantum phenomena?
    British Journal for the Philosophy of Science 59 (2): 217-235. 2008.
    In semiclassical mechanics one finds explanations of quantum phenomena that appeal to classical structures. These explanations are prima facie problematic insofar as the classical structures they appeal to do not exist. Here I defend the view that fictional structures can be genuinely explanatory by introducing a model-based account of scientific explanation. Applying this framework to the semiclassical phenomenon of wavefunction scarring, I argue that not only can the fictional classical trajec…Read more
  •  120
    Niels Bohr’s “correspondence principle” is typically believed to be the requirement that in the limit of large quantum numbers (n→∞) there is a statistical agreement between the quantum and classical frequencies. A closer reading of Bohr’s writings on the correspondence principle, however, reveals that this interpretation is mistaken. Specifically, Bohr makes the following three puzzling claims: First, he claims that the correspondence principle applies to small quantum numbers as well as large …Read more
  •  67
    Philosophy of quantum information and entanglement (edited book)
    Cambridge University Press. 2010.
    Recent work in quantum information science has produced a revolution in our understanding of quantum entanglement. Scientists now view entanglement as a physical resource with many important applications. These range from quantum computers, which would be able to compute exponentially faster than classical computers, to quantum cryptographic techniques, which could provide unbreakable codes for the transfer of secret information over public channels. These important advances in the study of quan…Read more
  •  659
    How scientific models can explain
    Synthese 180 (1). 2011.
    Scientific models invariably involve some degree of idealization, abstraction, or nationalization of their target system. Nonetheless, I argue that there are circumstances under which such false models can offer genuine scientific explanations. After reviewing three different proposals in the literature for how models can explain, I shall introduce a more general account of what I call model explanations, which specify the conditions under which models can be counted as explanatory. I shall illu…Read more
  •  58
    Scientific Structuralism (edited book)
    Springer Science+Business Media. 2011.
    This book will be of particular interest to those philosophers, scientists, and mathematicians who are interested in the foundations of science.
  •  144
    Open or closed? Dirac, Heisenberg, and the relation between classical and quantum mechanics
    Studies in History and Philosophy of Science Part B: Studies in History and Philosophy of Modern Physics 35 (3): 377-396. 2004.
    This paper describes a long-standing, though little-known, debate between Paul Dirac and Werner Heisenberg over the nature of scientific methodology, theory change, and intertheoretic relations. Following Heisenberg’s terminology, their disagreements can be summarized as a debate over whether the classical and quantum theories are “open” or “closed.” A close examination of this debate sheds new light on the philosophical views of two of the great founders of quantum theory.
  •  207
    Distinguishing Explanatory from Nonexplanatory Fictions
    Philosophy of Science 79 (5): 725-737. 2012.
    There is a growing recognition that fictions have a number of legitimate functions in science, even when it comes to scientific explanation. However, the question then arises, what distinguishes an explanatory fiction from a nonexplanatory one? Here I examine two cases—one in which there is a consensus in the scientific community that the fiction is explanatory and another in which the fiction is not explanatory. I shall show how my account of “model explanations” is able to explain this asymmet…Read more