Results for 'Big Data epistemology'

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  1. Big Data, epistemology and causality: Knowledge in and knowledge out in EXPOsOMICS.Stefano Canali - 2016 - Big Data and Society 3 (2).
    Recently, it has been argued that the use of Big Data transforms the sciences, making data-driven research possible and studying causality redundant. In this paper, I focus on the claim on causal knowledge by examining the Big Data project EXPOsOMICS, whose research is funded by the European Commission and considered capable of improving our understanding of the relation between exposure and disease. While EXPOsOMICS may seem the perfect exemplification of the data-driven view, I show how causal (...)
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  2.  22
    From big data epistemology to AI politics: rescuing the public dimension over data-driven technologies.Stefano Calzati - 2023 - Journal of Information, Communication and Ethics in Society 21 (3):358-372.
    Purpose The purpose of this paper is to explore the epistemological tensions embedded within big data and data-driven technologies to advance a socio-political reconsideration of the public dimension in the assessment of their implementation. Design/methodology/approach This paper builds upon (and revisits) the European Union’s (EU) normative understanding of artificial intelligence (AI) and data-driven technologies, blending reflections rooted in philosophy of technology with issues of democratic participation in tech-related matters. Findings This paper proposes the conceptual design of sectorial (...)
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  3. Big data and their epistemological challenge.Luciano Floridi - 2012 - Philosophy and Technology 25 (4):435-437.
    Between 2006 and 2011, humanity accumulated 1,600 EB of data. As a result of this growth, there is now more data produced than available storage. This article explores the problem of “Big Data,” arguing for an epistemological approach as a possible solution to this ever-increasing challenge.
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  4. Big Data, new epistemologies and paradigm shifts.Rob Kitchin - 2014 - Big Data and Society 1 (1).
    This article examines how the availability of Big Data, coupled with new data analytics, challenges established epistemologies across the sciences, social sciences and humanities, and assesses the extent to which they are engendering paradigm shifts across multiple disciplines. In particular, it critically explores new forms of empiricism that declare ‘the end of theory’, the creation of data-driven rather than knowledge-driven science, and the development of digital humanities and computational social sciences that propose radically different ways to make (...)
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  5.  51
    Big Data for Biomedical Research and Personalised Medicine: an Epistemological and Ethical Cross-Analysis.Thierry Magnin & Mathieu Guillermin - 2017 - Human and Social Studies. Research and Practice 6 (3):13-36.
    Big data techniques, data-driven science and their technological applications raise many serious ethical questions, notably about privacy protection. In this paper, we highlight an entanglement between epistemology and ethics of big data. Discussing the mobilisation of big data in the fields of biomedical research and health care, we show how an overestimation of big data epistemic power – of their objectivity or rationality understood through the lens of neutrality – can become ethically threatening. Highlighting (...)
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    Conceptualizations of Big Data and their epistemological claims in healthcare: A discourse analysis.Antoinette de Bont, Rik Wehrens & Marthe Stevens - 2018 - Big Data and Society 5 (2).
    In recent years, the healthcare field welcomed an emerging field of practices captured under the umbrella term ‘Big Data’. This term is surrounded with positive rhetoric and promises about the ability to analyse real-world data quickly and comprehensively. Such rhetoric is highly consequential in shaping debates on Big Data. While the fields of Science and Technology Studies and Critical Data Studies have been instrumental in elaborating the neglected and problematic dimensions of Big Data, it remains (...)
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  7. Machine Epistemology and Big Data.Gregory Wheeler - 2016 - In Lee C. McIntyre & Alexander Rosenberg (eds.), The Routledge Companion to Philosophy of Social Science. New York: Routledge.
    In the age of big data and a machine epistemology that can anticipate, predict, and intervene on events in our lives, the problem once again is that a few individuals possess the knowledge of how to regulate these activities. But the question we face now is not how to share such knowledge more widely, but rather of how to enjoy the public benefits bestowed by this knowledge without freely sharing it. It is not merely personal privacy that is (...)
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  8.  92
    Ethics and Epistemology in Big Data Research.Wendy Lipworth, Paul H. Mason, Ian Kerridge & John P. A. Ioannidis - 2017 - Journal of Bioethical Inquiry 14 (4):489-500.
    Biomedical innovation and translation are increasingly emphasizing research using “big data.” The hope is that big data methods will both speed up research and make its results more applicable to “real-world” patients and health services. While big data research has been embraced by scientists, politicians, industry, and the public, numerous ethical, organizational, and technical/methodological concerns have also been raised. With respect to technical and methodological concerns, there is a view that these will be resolved through sophisticated information (...)
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  9.  21
    Ethics and Epistemology of Big Data.Ian Kerridge, Paul H. Mason & Wendy Lipworth - 2017 - Journal of Bioethical Inquiry 14 (4):485-488.
    In this Symposium on the Ethics and Epistemology of Big Data, we present four perspectives on the ways in which the rapid growth in size of research databanks—i.e. their shift into the realm of “big data”—has changed their moral, socio-political, and epistemic status. While there is clearly something different about “big data” databanks, we encourage readers to place the arguments presented in this Symposium in the context of longstanding debates about the ethics, politics, and epistemology (...)
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  10.  89
    Ethics and Epistemology of Big Data.Ian Kerridge, Paul H. Mason & Wendy Lipworth - 2017 - Journal of Bioethical Inquiry 14 (4):485-488.
    In this Symposium on the Ethics and Epistemology of Big Data, we present four perspectives on the ways in which the rapid growth in size of research databanks—i.e. their shift into the realm of “big data”—has changed their moral, socio-political, and epistemic status. While there is clearly something different about “big data” databanks, we encourage readers to place the arguments presented in this Symposium in the context of longstanding debates about the ethics, politics, and epistemology (...)
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  11.  49
    What difference does quantity make? On the epistemology of Big Data in biology.Sabina Leonelli - 2014 - Big Data and Society 1 (1):2053951714534395.
    Is Big Data science a whole new way of doing research? And what difference does data quantity make to knowledge production strategies and their outputs? I argue that the novelty of Big Data science does not lie in the sheer quantity of data involved, but rather in the prominence and status acquired by data as commodity and recognised output, both within and outside of the scientific community and the methods, infrastructures, technologies, skills and knowledge developed (...)
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  12. The ethics of big data: current and foreseeable issues in biomedical contexts.Brent Daniel Mittelstadt & Luciano Floridi - 2016 - Science and Engineering Ethics 22 (2):303–341.
    The capacity to collect and analyse data is growing exponentially. Referred to as ‘Big Data’, this scientific, social and technological trend has helped create destabilising amounts of information, which can challenge accepted social and ethical norms. Big Data remains a fuzzy idea, emerging across social, scientific, and business contexts sometimes seemingly related only by the gigantic size of the datasets being considered. As is often the case with the cutting edge of scientific and technological progress, understanding of (...)
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  13. Big Data, Scientific Research and Philosophy.Giovanni Landi - 2020 - Www.Intelligenzaartificialecomefilosofia.Com.
    What is the epistemological status of Big Data? Is there really place for them in a scientific search for new empirical laws?
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  14.  37
    Datatrust: Or, the political quest for numerical evidence and the epistemologies of Big Data.Gernot Rieder & Judith Simon - 2016 - Big Data and Society 3 (1).
    Recently, there has been renewed interest in so-called evidence-based policy making. Enticed by the grand promises of Big Data, public officials seem increasingly inclined to experiment with more data-driven forms of governance. But while the rise of Big Data and related consequences has been a major issue of concern across different disciplines, attempts to develop a better understanding of the phenomenon's historical foundations have been rare. This short commentary addresses this gap by situating the current push for (...)
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  15.  10
    Big Data, social physics, and spatial analysis: The early years.Matthew W. Wilson & Trevor J. Barnes - 2014 - Big Data and Society 1 (1).
    This paper examines one of the historical antecedents of Big Data, the social physics movement. Its origins are in the scientific revolution of the 17th century in Western Europe. But it is not named as such until the middle of the 19th century, and not formally institutionalized until another hundred years later when it is associated with work by George Zipf and John Stewart. Social physics is marked by the belief that large-scale statistical measurement of social variables reveals underlying (...)
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  16.  23
    Conceptual frameworks for social and cultural Big Data analytics: Answering the epistemological challenge.Lucy Resnyansky - 2019 - Big Data and Society 6 (1).
    This paper aims to contribute to the development of tools to support an analysis of Big Data as manifestations of social processes and human behaviour. Such a task demands both an understanding of the epistemological challenge posed by the Big Data phenomenon and a critical assessment of the offers and promises coming from the area of Big Data analytics. This paper draws upon the critical social and data scientists’ view on Big Data as an epistemological (...)
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  17.  32
    Big data and complexity: Is macroeconomics heading toward a new paradigm?Paola D’Orazio - 2017 - Journal of Economic Methodology 24 (4):410-429.
    The paper discusses the extent to which the availability of unprecedentedly rich data-sets and the need for new approaches – both epistemological and computational – is an emerging issue for Macroeconomics. By adopting an evolutionary approach, we describe the paradigm shifts experienced in the macroeconomic research field and emphasize that the types of data the macroeconomist has to deal with play an important role in the evolutionary process of the development of the discipline. After introducing the current debate (...)
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  18.  26
    Big Data.Wolfgang Pietsch - 2021 - Cambridge University Press.
    Big Data and methods for analyzing large data sets such as machine learning have in recent times deeply transformed scientific practice in many fields. However, an epistemological study of these novel tools is still largely lacking. After a conceptual analysis of the notion of data and a brief introduction into the methodological dichotomy between inductivism and hypothetico-deductivism, several controversial theses regarding big data approaches are discussed. These include, whether correlation replaces causation, whether the end of theory (...)
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  19.  26
    Big data, little wisdom: trouble brewing? Ethical implications for the information systems discipline.David J. Purleen, David Rooney & Ali Intezari - 2017 - Social Epistemology 31 (4):400-416.
    The question we pose in this paper is: How can wisdom and its inherent drive for integration help information systems in the development of practices for responsibly and ethically managing and using big data, ubiquitous information and algorithmic knowledge and so make the world a better place? We use the recent financial crises to illustrate the perils of an overreliance on and misuse of data, information and predictive knowledge when global Information Systems are not wisely integrated. Our analysis (...)
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  20.  51
    Data barns, ambient intelligence and cloud computing: the tacit epistemology and linguistic representation of Big Data.Lisa Portmess & Sara Tower - 2015 - Ethics and Information Technology 17 (1):1-9.
    The explosion of data grows at a rate of roughly five trillion bits a second, giving rise to greater urgency in conceptualizing the infosphere and understanding its implications for knowledge and public policy. Philosophers of technology and information technologists alike who wrestle with ontological and epistemological questions of digital information tend to emphasize, as Floridi does, information as our new ecosystem and human beings as interconnected informational organisms, inforgs at home in ambient intelligence. But the linguistic and conceptual representations (...)
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  21.  29
    Cybersyn, big data, variety engineering and governance.Raul Espejo - 2022 - AI and Society 37 (3):1163-1177.
    This contribution offers reflections about Chilean Cybersyn, 50 years ago. In recent years, Cybersyn, has received significant attention. It was the brainchild of Stafford Beer, who conceived it to support the transformation of the Chilean economy from its bureaucratic history to hopefully create a vibrant and modern society, driven by cybernetic tools. These aspects have received much attention in recent times; however, in this contribution, I want to discuss how working in Cybersyn influenced my work after the coup of 1973. (...)
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  22. Big data and information quality.Luciano Floridi - 2014 - In The philosophy of information quality. pp. 303–315.
    This paper is divided into two parts. In the first, I shall briefly analyse the phenomenon of “big data”, and argue that the real epistemological challenge posed by the zettabyte era is small patterns. The valuable undercurrents in the ocean of data that we are accumulating are invisible to the computationally-naked eye, so more and better technology will help. However, because the problem with big data is small patterns, ultimately, the game will be won by those who (...)
     
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  23.  38
    Big data, little wisdom: trouble brewing? Ethical implications for the information systems discipline.David J. Pauleen, David Rooney & Ali Intezari - 2017 - Social Epistemology 31 (4):400-416.
    The question we pose in this paper is: How can wisdom and its inherent drive for integration help information systems in the development of practices for responsibly and ethically managing and using big data, ubiquitous information and algorithmic knowledge and so make the world a better place? We use the recent financial crises to illustrate the perils of an overreliance on and misuse of data, information and predictive knowledge when global Information Systems are not wisely integrated. Our analysis (...)
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  24.  22
    From ecological records to big data: the invention of global biodiversity.Vincent Devictor & Bernadette Bensaude-Vincent - 2016 - History and Philosophy of the Life Sciences 38 (4).
    This paper is a critical assessment of the epistemological impact of the systematic quantification of nature with the accumulation of big datasets on the practice and orientation of ecological science. We examine the contents of big databases and argue that it is not just accumulated information; records are translated into digital data in a process that changes their meanings. In order to better understand what is at stake in the ‘datafication’ process, we explore the context for the emergence and (...)
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  25.  71
    Can we trust Big Data? Applying philosophy of science to software.John Symons & Ramón Alvarado - 2016 - Big Data and Society 3 (2).
    We address some of the epistemological challenges highlighted by the Critical Data Studies literature by reference to some of the key debates in the philosophy of science concerning computational modeling and simulation. We provide a brief overview of these debates focusing particularly on what Paul Humphreys calls epistemic opacity. We argue that debates in Critical Data Studies and philosophy of science have neglected the problem of error management and error detection. This is an especially important feature of the (...)
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  26.  15
    Genomics, Big Data and Privacy: Reflections upon the implications of direct-to-consumer genetic testing.Mariana Vitti Rodrigues - 2020 - Revista Natureza Humana 22 (1):21.
    This paper investigates epistemological and ethical implications of the growingavailability of direct-to-consumer genetic testing for the science and society. Direct-toconsumer genetic testing is characterized as the genetic testing sold directly to consumerswithout any assistance from professionals. By offering empowerment and control, companiesconvince consumers to sequence their genome by granting the company access to theirgenetic data in exchange to results that are not always accurate. To which extent doconsumers properly understand the results of their genetic testing? Are consumers aware ofthe (...)
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  27.  7
    The optical unconscious of Big Data: Datafication of vision and care for unknown futures.Daniela Agostinho - 2019 - Big Data and Society 6 (1).
    Ever since Big Data became a mot du jour across social fields, optical metaphors such as the microscope began to surface in popular discourse to describe and qualify its epistemological impact. While the persistence of optics seems to be at odds with the datafication of vision, this article suggests that the optical metaphor offers an opportunity to reflect about the material consequences of the modes of seeing and knowing that currently shape datafied worlds. Drawing on feminist new materialism, the (...)
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  28.  11
    The Qualitative Face of Big Data.Alexander Nicolai Wendt - forthcoming - Journal of Dynamic Decision Making:3-1.
    The technological possibilities for new data sources in media psychology, such as online live recordings, called Live Streaming, are growing continuously. These sources do not only offer plentiful quantitative material but also a fairly new access to ecologically valid and unobtrusive observation of problem-solving and decision-making processes. However, to exploit these potentials, epistemological and methodological reflection should guide research. The availability of Big Data and naturally occurring data sets allows to revise the historical controversies on the eligibility (...)
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  29. Big Data, Digital Traces and the Metaphysics of the Self.Soraj Hongladarom - 2017 - In Thomas Powers (ed.), Philosophy and Computing: Essays in Epistemology, Philosophy of Mind, Logic, and Ethics. Springer.
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  30.  5
    Small moments in Spatial Big Data: Calculability, authority and interoperability in everyday mobile mapping.Clancy Wilmott - 2016 - Big Data and Society 3 (2).
    This article considers how Spatial Big Data is situated and produced through embodied spatial experiences as data processes appear and act in small moments on mobile phone applications and other digital spatial technologies. Locating Spatial Big Data in the historical and geographical contexts of Sydney and Hong Kong, it traces how situated knowledges mediate and moderate the rising potency of discourses of cartographic reason and data logics as colonial cartographic imaginations expressed in land divisions and urban (...)
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  31. The Causal Nature of Modeling with Big Data.Wolfgang Pietsch - 2016 - Philosophy and Technology 29 (2):137-171.
    I argue for the causal character of modeling in data-intensive science, contrary to widespread claims that big data is only concerned with the search for correlations. After discussing the concept of data-intensive science and introducing two examples as illustration, several algorithms are examined. It is shown how they are able to identify causal relevance on the basis of eliminative induction and a related difference-making account of causation. I then situate data-intensive modeling within a broader framework of (...)
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  32.  17
    Evaluating the understanding of the ethical and moral challenges of Big Data and AI among Jordanian medical students, physicians in training, and senior practitioners: a cross-sectional study.Abdallah Al-Ani, Abdallah Rayyan, Ahmad Maswadeh, Hala Sultan, Ahmad Alhammouri, Hadeel Asfour, Tariq Alrawajih, Sarah Al Sharie, Fahed Al Karmi, Ahmad Azzam, Asem Mansour & Maysa Al-Hussaini - 2024 - BMC Medical Ethics 25 (1):1-14.
    Aims To examine the understanding of the ethical dilemmas associated with Big Data and artificial intelligence (AI) among Jordanian medical students, physicians in training, and senior practitioners. Methods We implemented a literature-validated questionnaire to examine the knowledge, attitudes, and practices of the target population during the period between April and August 2023. Themes of ethical debate included privacy breaches, consent, ownership, augmented biases, epistemology, and accountability. Participants’ responses were showcased using descriptive statistics and compared between groups using t-test (...)
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  33.  14
    Complementary social science? Quali-quantitative experiments in a Big Data world.Morten Axel Pedersen & Anders Blok - 2014 - Big Data and Society 1 (2).
    The rise of Big Data in the social realm poses significant questions at the intersection of science, technology, and society, including in terms of how new large-scale social databases are currently changing the methods, epistemologies, and politics of social science. In this commentary, we address such epochal questions by way of a experiment: at the Danish Technical University in Copenhagen, an interdisciplinary group of computer scientists, physicists, economists, sociologists, and anthropologists is setting up a large-scale data infrastructure, meant (...)
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  34.  7
    Emerging practices and perspectives on Big Data analysis in economics: Bigger and better or more of the same?Eric Meyer, Ralph Schroeder & Linnet Taylor - 2014 - Big Data and Society 1 (2).
    Although the terminology of Big Data has so far gained little traction in economics, the availability of unprecedentedly rich datasets and the need for new approaches – both epistemological and computational – to deal with them is an emerging issue for the discipline. Using interviews conducted with a cross-section of economists, this paper examines perspectives on Big Data across the discipline, the new types of data being used by researchers on economic issues, and the range of responses (...)
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  35.  16
    Personalization as a promise: Can Big Data change the practice of insurance?Arthur Charpentier & Laurence Barry - 2020 - Big Data and Society 7 (1).
    The aim of this article is to assess the impact of Big Data technologies for insurance ratemaking, with a special focus on motor products.The first part shows how statistics and insurance mechanisms adopted the same aggregate viewpoint. It made visible regularities that were invisible at the individual level, further supporting the classificatory approach of insurance and the assumption that all members of a class are identical risks. The second part focuses on the reversal of perspective currently occurring in (...) analysis with predictive analytics, and how this conceptually contradicts the collective basis of insurance. The tremendous volume of data and the personalization promise through accurate individual prediction indeed deeply shakes the homogeneity hypothesis behind pooling. The third part attempts to assess the extent of this shift in motor insurance. Onboard devices that collect continuous driving behavioural data could import this new paradigm into these products. An examination of the current state of research on models with telematics data shows however that the epistemological leap, for now, has not happened. (shrink)
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  36.  10
    The limits of computation: A philosophical critique of contemporary Big Data research.Petter Törnberg & Anton Törnberg - 2018 - Big Data and Society 5 (2).
    This paper reviews the contemporary discussion on the epistemological and ontological effects of Big Data within social science, observing an increased focus on relationality and complexity, and a tendency to naturalize social phenomena. The epistemic limits of this emerging computational paradigm are outlined through a comparison with the discussions in the early days of digitalization, when digital technology was primarily seen through the lens of dematerialization, and as part of the larger processes of “postmodernity”. Since then, the online landscape (...)
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  37.  8
    Social determinants of health in the Big Data mode of population health risk calculation.Rachel Rowe - 2021 - Big Data and Society 8 (2).
    Amidst the climate of crisis surrounding the rise in opioid-related overdose in the USA, early in 2019, Google and Deloitte launched ‘Opioid360’. Here came a platform combining browser histories, credit, insurance, social media, and traditional survey data to sell the service of risk calculation in population health. Opioid360's approach to automating risk calculation not only promised to identify persons ‘at risk’ of opioid dependence, but also paved the way for broader applications anticipating common chronic diseases and coordinating logistical operations (...)
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  38.  43
    The importance of expert knowledge in big data and machine learning.Jens Ulrik Hansen & Paula Quinon - 2023 - Synthese 201 (2):1-21.
    According to popular belief, big data and machine learning provide a wholly novel approach to science that has the potential to revolutionise scientific progress and will ultimately lead to the ‘end of theory’. Proponents of this view argue that advanced algorithms are able to mine vast amounts of data relating to a given problem without any prior knowledge and that we do not need to concern ourselves with causality, as correlation is sufficient for handling complex issues. Consequently, the (...)
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  39.  3
    On minorities and outliers: The case for making Big Data small.Brooke Foucault Welles - 2014 - Big Data and Society 1 (1).
    In this essay, I make the case for choosing to examine small subsets of Big Data datasets—making big data small. Big Data allows us to produce summaries of human behavior at a scale never before possible. But in the push to produce these summaries, we risk losing sight of a secondary but equally important advantage of Big Data—the plentiful representation of minorities. Women, minorities and statistical outliers have historically been omitted from the scientific record, with problematic (...)
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  40.  6
    The cancer multiple: Producing and translating genomic big data into oncology care.Peter A. Chow-White & Tiên-Dung Hà - 2021 - Big Data and Society 8 (1).
    This article provides an ethnographic account of how Big Data biology is produced, interpreted, debated, and translated in a Big Data-driven cancer clinical trial, entitled “Personalized OncoGenomics,” in Vancouver, Canada. We delve into epistemological differences between clinical judgment, pathological assessment, and bioinformatic analysis of cancer. To unpack these epistemological differences, we analyze a set of gazes required to produce Big Data biology in cancer care: clinical gaze, molecular gaze, and informational gaze. We are concerned with the interactions (...)
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  41.  7
    Ghosts of white methods? The challenges of Big Data research in exploring racism in digital context.Kaarina Nikunen - 2021 - Big Data and Society 8 (2).
    The paper explores the potential and limitations of big data for researching racism on social media. Informed by critical data studies and critical race studies, the paper discusses challenges of doing big data research and the problems of the so called ‘white method’. The paper introduces the following three types of approach, each with a different epistemological basis for researching racism in digital context: 1) using big data analytics to point out the dominant power relations and (...)
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  42. Theory of signs and statistical approach to big data in assessing the relevance of clinical biomarkers of inflammation and oxidative stress.Pietro Ghezzi, Kevin Davies, Aidan Delaney & Luciano Floridi - 2018 - Proceedings of the National Academy of Sciences of the United States of America 115 (10):2473-2477.
    Biomarkers are widely used not only as prognostic or diagnostic indicators, or as surrogate markers of disease in clinical trials, but also to formulate theories of pathogenesis. We identify two problems in the use of biomarkers in mechanistic studies. The first problem arises in the case of multifactorial diseases, where different combinations of multiple causes result in patient heterogeneity. The second problem arises when a pathogenic mediator is difficult to measure. This is the case of the oxidative stress (OS) theory (...)
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  43.  28
    Algorithmic rationality: Epistemology and efficiency in the data sciences.Ian Lowrie - 2017 - Big Data and Society 4 (1).
    Recently, philosophers and social scientists have turned their attention to the epistemological shifts provoked in established sciences by their incorporation of big data techniques. There has been less focus on the forms of epistemology proper to the investigation of algorithms themselves, understood as scientific objects in their own right. This article, based upon 12 months of ethnographic fieldwork with Russian data scientists, addresses this lack through an investigation of the specific forms of epistemic attention paid to algorithms (...)
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  44. Information Systems Governance and Industry 4.0 - epistemology of data and semiotic methodologies of IS in digital ecosystems.Ângela Lacerda Nobre, Rogério Duarte & Marc Jacquinet - 2018 - Advances in Information and Communication Technology 527:311-312.
    Contemporary Information Systems management incorporates the need to make explicit the links between semiotics, meaning-making and the digital age. This focus addresses, at its core, pure rationality, that is, the capacity of human interpretation and of human inscription upon reality. Creating the new real, that is the motto. Humans are intrinsically semiotic creatures. Consequently, semiotics is not a choice or an option but something that works like a second skin, establishing limits and permeable linkages between: human thought and human's infinite (...)
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  45.  29
    Data flows and water woes: The Utah Data Center.Mél Hogan - 2015 - Big Data and Society 2 (2).
    Using a new materialist line of questioning that looks at the agential potentialities of water and its entanglements with Big Data and surveillance, this article explores how the recent Snowden revelations about the National Security Agency have reignited media scholars to engage with the infrastructures that enable intercepting, hosting, and processing immeasurable amounts of data. Focusing on the expansive architecture, location, and resource dependence of the NSA’s Utah Data Center, I demonstrate how surveillance and privacy can never (...)
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  46. Social Epistemology as a New Paradigm for Journalism and Media Studies.Yigal Godler, Zvi Reich & Boaz Miller - forthcoming - New Media and Society.
    Journalism and media studies lack robust theoretical concepts for studying journalistic knowledge ‎generation. More specifically, conceptual challenges attend the emergence of big data and ‎algorithmic sources of journalistic knowledge. A family of frameworks apt to this challenge is ‎provided by “social epistemology”: a young philosophical field which regards society’s participation ‎in knowledge generation as inevitable. Social epistemology offers the best of both worlds for ‎journalists and media scholars: a thorough familiarity with biases and failures of obtaining ‎knowledge, (...)
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  47.  60
    Philosophy and Computing: Essays in epistemology, philosophy of mind, logic, and ethics.Thomas M. Powers (ed.) - 2017 - Cham: Springer.
    This book features papers from CEPE-IACAP 2015, a joint international conference focused on the philosophy of computing. Inside, readers will discover essays that explore current issues in epistemology, philosophy of mind, logic, and philosophy of science from the lens of computation. Coverage also examines applied issues related to ethical, social, and political interest. -/- The contributors first explore how computation has changed philosophical inquiry. Computers are now capable of joining humans in exploring foundational issues. Thus, we can ponder machine-generated (...)
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    Raw data or hypersymbols? Meaning-making with digital data, between discursive processes and machinic procedures.Lucile Crémier, Maude Bonenfant & Laura Iseut Lafrance St-Martin - 2019 - Semiotica 2019 (230):189-212.
    The large-scale and intensive collection and analysis of digital data (commonly called “Big Data”) has become a common, popular, and consensual research method for the social sciences, as the automation of data collection, mathematization of analysis, and digital objectification reinforce both its efficiency and truth-value. This article opens with a critical review of the literature on data collection and analysis, and summarizes current ethical discussions focusing on these technologies. A semiotic model of data production and (...)
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    Data-bodies and data activism: Presencing women in digital heritage research.Terrie Lynn Thompson - 2020 - Big Data and Society 7 (2).
    As heritage-as-the-already-occurred folds into heritage-in-the-making practices, temporal and spatial fluidity is made more complex by digital mediation and particularly by Big Data. Such liveliness evokes ontological, epistemological and methodological challenges. Drawing on more-than-human theorizing, this article reframes the notion of data-bodies to advance data activist-oriented research in heritage. Focused primarily on women, it examines how their distributed agency and voice with respect to data practices and the makings of heritage could be amplified. I describe three methodological (...)
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    Data Journeys in the Sciences.Sabina Leonelli & Niccolò Tempini (eds.) - 2020 - Springer.
    This groundbreaking, open access volume analyses and compares data practices across several fields through the analysis of specific cases of data journeys. It brings together leading scholars in the philosophy, history and social studies of science to achieve two goals: tracking the travel of data across different spaces, times and domains of research practice; and documenting how such journeys affect the use of data as evidence and the knowledge being produced. The volume captures the opportunities, challenges (...)
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