Results for 'Data resampling'

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  1. Science without (parametric) models: the case of bootstrap resampling.Jan Sprenger - 2011 - Synthese 180 (1):65-76.
    Scientific and statistical inferences build heavily on explicit, parametric models, and often with good reasons. However, the limited scope of parametric models and the increasing complexity of the studied systems in modern science raise the risk of model misspecification. Therefore, I examine alternative, data-based inference techniques, such as bootstrap resampling. I argue that their neglect in the philosophical literature is unjustified: they suit some contexts of inquiry much better and use a more direct approach to scientific inference. Moreover, (...)
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  2.  14
    What Color Is Your Anger? Assessing Color-Emotion Pairings in English Speakers.Jennifer Marie Binzak Fugate & Courtny L. Franco - 2019 - Frontiers in Psychology 10.
    Do English-speakers think about anger as “red” and sadness as “blue”? Some theories of emotion suggests that color(s) - like other biologically-derived signals- should be reliably paired with an emotion, and that colors should differentiate across emotions. We assessed consistency and specificity for color-emotion pairings among English-speaking adults. In study 1, participants (n = 73) completed an online survey in which they could select up to three colors from 23 colored swatches (varying hue, saturation, and light) for each of ten (...)
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  3. B line.Kbytes Data Flash - 2009 - Nexus 2:3.
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  4. The 1 law of "absolute reality"." ~, , Data", , ", , Value", , = O. &Gt, Being", & Human - manuscript
  5.  25
    On board computing system for AMS-02 mission.Data Link Lrdl - 2005 - In Alan F. Blackwell & David MacKay (eds.), Power. Cambridge University Press. pp. x2.
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  6.  12
    Ordinary language analysis as'therapy'eugen Fischer Ludwig-maximilians-university, munich.Austin On Sense-Data - 2006 - Grazer Philosophische Studien 70 (1):67-99.
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  7. Sem tarefa.Turma Disciplina Data Entrega Tarefa, Prova Quimica, Tabela Periodica, Ed Fisica, Terminar Tarefa da, Pesquisar Sobre A. Vida Do, Educador Paulo Freire & Tarefa Guia de Estudo Pagina - 1928 - História 8 (4/09):08.
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  8. Electro Industries/Gauge Tech.Power Meter & Data Acquisition Node - 2003 - Nexus 1250.
     
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  9. An Ecofeminist Philosophical Perspective.".Taking Empirical Data Seriously - 1997 - In Karen Warren (ed.), Ecofeminism: Women, Culture, Nature. Indiana Univ Pr.
     
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  10.  22
    PMR-2450 Projeto de Máquinas agosto/2005 Professores.Julio C. Adamowski, Tarcisio Hess Coelho, Gilberto F. Martha de Souza, Cronograma de Atividades, Data Atividade Tipo de Atividade & C. N. C. Máquina - 2005 - Princípios 9:08.
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  11.  2
    Madilog: materialisme, dialektika, logika.Tan Malaka, Ronny Agustinus & Pusat Data Indikator - 1999 - Jakarta: Pusat Data Indikator. Edited by Ronny Agustinus.
    Philosophy of dialectical materialism and logic.
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  12. The Undetectable Difference: An Experimental Look at the ‘Problem’ of p-Values.William M. Goodman - 2010 - Statistical Literacy Website/Papers: Www.Statlit.Org/Pdf/2010GoodmanASA.Pdf.
    In the face of continuing assumptions by many scientists and journal editors that p-values provide a gold standard for inference, counter warnings are published periodically. But the core problem is not with p-values, per se. A finding that “p-value is less than α” could merely signal that a critical value has been exceeded. The question is why, when estimating a parameter, we provide a range (a confidence interval), but when testing a hypothesis about a parameter (e.g. µ = x) we (...)
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  13.  47
    Can Graphical Causal Inference Be Extended to Nonlinear Settings?Nadine Chlaß & Alessio Moneta - 2010 - In M. Dorato M. Suàrez (ed.), Epsa Epistemology and Methodology of Science. Springer. pp. 63--72.
    Graphical models are a powerful tool for causal model specification. Besides allowing for a hierarchical representation of variable interactions, they do not require any a priori specification of the functional dependence between variables. The construction of such graphs hence often relies on the mere testing of whether or not model variables are marginally or conditionally independent. The identification of causal relationships then solely requires some general assumptions on the relation between stochastic and causal independence, such as the Causal Markov Condition (...)
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  14.  42
    Application of change-point problem to the detection of plant patches.I. López, M. Gámez, J. Garay, T. Standovár & Z. Varga - 2009 - Acta Biotheoretica 58 (1):51-63.
    In ecology, if the considered area or space is large, the spatial distribution of individuals of a given plant species is never homogeneous; plants form different patches. The homogeneity change in space or in time (in particular, the related change-point problem) is an important research subject in mathematical statistics. In the paper, for a given data system along a straight line, two areas are considered, where the data of each area come from different discrete distributions, with unknown parameters. (...)
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  15.  12
    The Mediating Role of Self Compassion in the Relationship Between Childhood Traumas and God Image.Ferdi Kiraç - 2022 - Cumhuriyet İlahiyat Dergisi 26 (3):1111-1126.
    Previous research has demonstrated that a positive subjective relationship with God was associated with better mental health outcomes. On the other hand, it has been known that childhood traumas are the strongest risk factors for almost all common mental disorders. For that reason, investigating the relationship between childhood traumas and God image and the factors that mediate this relationship is crucial for the clinical works conducted with the religious clients who report a history of childhood trauma. Based on the Freud’s (...)
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  16.  4
    Evaluation of Prediction-Oriented Model Selection Metrics for Extended Redundancy Analysis.Sunmee Kim & Heungsun Hwang - 2022 - Frontiers in Psychology 13.
    Extended redundancy analysis is a statistical method that relates multiple sets of predictors to response variables. In ERA, the conventional approach of model evaluation tends to overestimate the performance of a model since the performance is assessed using the same sample used for model development. To avoid the overly optimistic assessment, we introduce a new model evaluation approach for ERA, which utilizes computer-intensive resampling methods to assess how well a model performs on unseen data. Specifically, we suggest several (...)
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  17.  4
    Measurement of Lexical Diversity in Children’s Spoken Language: Computational and Conceptual Considerations.Ji Seung Yang, Carly Rosvold & Nan Bernstein Ratner - 2022 - Frontiers in Psychology 13.
    BackgroundType-Token Ratio, given its relatively simple hand computation, is one of the few LSA measures calculated by clinicians in everyday practice. However, it has significant well-documented shortcomings; these include instability as a function of sample size, and absence of clear developmental profiles over early childhood. A variety of alternative measures of lexical diversity have been proposed; some, such as Number of Different Words/100 can also be computed by hand. However, others, such as Vocabulary Diversity and the Moving Average Type Token (...)
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  18.  10
    The Stability of Gene Selection in Microarray Experiments.Magdalena Wietlicka-Piszcz - 2013 - Studies in Logic, Grammar and Rhetoric 35 (1):87-101.
    This paper addresses the issue of the stability of lists of genes identified as differentially expressed in microarray experiments. The similarities be- tween gene rankings yielded by various gene selection methods performed with resampled datasets were assessed. The mean percentage of overlapping genes for two rankings varied from 10 to 90% depending on the applied gene selection method and the size of the list. The assessment of the stability of obtained gene rankings seems to be relevant in the analysis of (...)
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  19.  4
    Resampling of hypotheses after negative instances.Irwin D. Nahinsky, Rebecca L. Hollyfield & David E. Oeschger - 1975 - Bulletin of the Psychonomic Society 6 (5):520-522.
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  20. The Sense-Data Language and External World Skepticism.Jared Warren - 2024 - In Uriah Kriegel (ed.), Oxford Studies in Philosophy of Mind Vol 4. Oxford University Press.
    We face reality presented with the data of conscious experience and nothing else. The project of early modern philosophy was to build a complete theory of the world from this starting point, with no cheating. Crucial to this starting point is the data of conscious sensory experience – sense data. Attempts to avoid this project often argue that the very idea of sense data is confused. But the sense-data way of talking, the sense-data language, (...)
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  21.  4
    Philosophical data and the tri-level method.Kaj André Zeller - forthcoming - Metascience:1-3.
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  22.  24
    Against the resampling account of replication.Vera Matarese - 2023 - Journal of Theoretical and Philosophical Psychology 43 (2):108-115.
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  23. Brain Data in Context: Are New Rights the Way to Mental and Brain Privacy?Daniel Susser & Laura Y. Cabrera - 2023 - American Journal of Bioethics Neuroscience 15 (2):122-133.
    The potential to collect brain data more directly, with higher resolution, and in greater amounts has heightened worries about mental and brain privacy. In order to manage the risks to individuals posed by these privacy challenges, some have suggested codifying new privacy rights, including a right to “mental privacy.” In this paper, we consider these arguments and conclude that while neurotechnologies do raise significant privacy concerns, such concerns are—at least for now—no different from those raised by other well-understood (...) collection technologies, such as gene sequencing tools and online surveillance. To better understand the privacy stakes of brain data, we suggest the use of a conceptual framework from information ethics, Helen Nissenbaum’s “contextual integrity” theory. To illustrate the importance of context, we examine neurotechnologies and the information flows they produce in three familiar contexts—healthcare and medical research, criminal justice, and consumer marketing. We argue that by emphasizing what is distinct about brain privacy issues, rather than what they share with other data privacy concerns, risks weakening broader efforts to enact more robust privacy law and policy. (shrink)
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  24.  21
    Performance of Resampling Methods Based on Decision Trees, Parametric and Nonparametric Bayesian Classifiers for Three Medical Datasets.Małgorzata M. Ćwiklińska-Jurkowska - 2013 - Studies in Logic, Grammar and Rhetoric 35 (1):71-86.
    The figures visualizing single and combined classifiers coming from decision trees group and Bayesian parametric and nonparametric discriminant functions show the importance of diversity of bagging or boosting combined models and confirm some theoretical outcomes suggested by other authors. For the three medical sets examined, decision trees, as well as linear and quadratic discriminant functions are useful for bagging and boosting. Classifiers, which do not show an increasing tendency for resubstitution errors in subsequent boosting deterministic procedures loops, are not useful (...)
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  25. Open data, open review and open dialogue in making social sciences plausible.Quan-Hoang Vuong - 2017 - Nature: Scientific Data Updates 2017.
    Nowadays, protecting trust in social sciences also means engaging in open community dialogue, which helps to safeguard robustness and improve efficiency of research methods. The combination of open data, open review and open dialogue may sound simple but implementation in the real world will not be straightforward. However, in view of Begley and Ellis’s (2012) statement that, “the scientific process demands the highest standards of quality, ethics and rigour,” they are worth implementing. More importantly, they are feasible to work (...)
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  26.  14
    Data feminism.Catherine D'Ignazio - 2020 - Cambridge, Massachusetts: The MIT Press. Edited by Lauren F. Klein.
    We have seen through many examples that data science and artificial intelligence can reinforce structural inequalities like sexism and racism. Data is power, and that power is distributed unequally. This book offers a vision for a feminist data science that can challenge power and work towards justice. This book takes a stand against a world that benefits some (including the authors, two white women) at the expense of others. It seeks to provide concrete steps for data (...)
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  27. Smart contract based data trading mode using blockchain and machine learning.W. Xiong & L. Xiong - 2019 - IEEE Access 7.
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  28. Data models, representation and adequacy-for-purpose.Alisa Bokulich & Wendy Parker - 2021 - European Journal for Philosophy of Science 11 (1):1-26.
    We critically engage two traditional views of scientific data and outline a novel philosophical view that we call the pragmatic-representational view of data. On the PR view, data are representations that are the product of a process of inquiry, and they should be evaluated in terms of their adequacy or fitness for particular purposes. Some important implications of the PR view for data assessment, related to misrepresentation, context-sensitivity, and complementary use, are highlighted. The PR view provides (...)
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  29.  39
    Data as asset? The measurement, governance, and valuation of digital personal data by Big Tech.Callum Ward, D. T. Cochrane & Kean Birch - 2021 - Big Data and Society 8 (1).
    Digital personal data is increasingly framed as the basis of contemporary economies, representing an important new asset class. Control over these data assets seems to explain the emergence and dominance of so-called “Big Tech” firms, consisting of Apple, Microsoft, Amazon, Google/alphabet, and Facebook. These US-based firms are some of the largest in the world by market capitalization, a position that they retain despite growing policy and public condemnation—or “techlash”—of their market power based on their monopolistic control of personal (...)
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  30. Data quality, experimental artifacts, and the reactivity of the psychological subject matter.Uljana Feest - 2022 - European Journal for Philosophy of Science 12 (1):1-25.
    While the term “reactivity” has come to be associated with specific phenomena in the social sciences, having to do with subjects’ awareness of being studied, this paper takes a broader stance on this concept. I argue that reactivity is a ubiquitous feature of the psychological subject matter and that this fact is a precondition of experimental research, while also posing potential problems for the experimenter. The latter are connected to the worry about distorted data and experimental artifacts. But what (...)
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  31. 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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  32. Data Capitalism: Redefining the Logics of Surveillance and Privacy.Sarah Myers West - 2019 - Business and Society 58 (1):20-41.
    This article provides a history of private sector tracking technologies, examining how the advent of commercial surveillance centered around a logic of data capitalism. Data capitalism is a system in which the commoditization of our data enables an asymmetric redistribution of power that is weighted toward the actors who have access and the capability to make sense of information. It is enacted through capitalism and justified by the association of networked technologies with the political and social benefits (...)
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  33. Data and phenomena: a restatement and defense.James F. Woodward - 2011 - Synthese 182 (1):165-179.
    This paper provides a restatement and defense of the data/ phenomena distinction introduced by Jim Bogen and me several decades ago (e.g., Bogen and Woodward, The Philosophical Review, 303–352, 1988). Additional motivation for the distinction is introduced, ideas surrounding the distinction are clarified, and an attempt is made to respond to several criticisms.
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  34.  23
    A theoretical foundation of portfolio resampling.Gabriel Frahm - 2015 - Theory and Decision 79 (1):107-132.
    A portfolio-resampling procedure invented by Richard and Robert Michaud is a subject of highly controversial discussion and big scientific dispute. It has been evaluated in many empirical studies and Monte Carlo experiments. Apart from the contradictory findings, the Michaud approach still lacks a theoretical foundation. I prove that portfolio resampling has a strong foundation in the classic theory of rational behavior. Every noise trader could do better by applying the Michaud procedure. By contrast, a signal trader who has (...)
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  35.  58
    Data-owning democracy: Citizen empowerment through data ownership.Roberta Fischli - 2024 - European Journal of Political Theory 23 (2):204-223.
    This article extends property-owning democracy to the digital realm and introduces “data-owning democracy,” a new political economic regime characterized by the wide distribution of data as capital among citizens. Drawing on republican theory and acknowledging data's unique role in the digital economy, it proposes a two-tier model that combines different modes of data ownership and corresponding rights. The first layer of “data-owning democracy” is characterized by a digital public infrastructure that enables citizens to collectively generate (...)
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  36. 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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  37. Data science ethical considerations: a systematic literature review and proposed project framework.Jeffrey S. Saltz & Neil Dewar - 2019 - Ethics and Information Technology 21 (3):197-208.
    Data science, and the related field of big data, is an emerging discipline involving the analysis of data to solve problems and develop insights. This rapidly growing domain promises many benefits to both consumers and businesses. However, the use of big data analytics can also introduce many ethical concerns, stemming from, for example, the possible loss of privacy or the harming of a sub-category of the population via a classification algorithm. To help address these potential ethical (...)
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  38.  41
    Data science and molecular biology: prediction and mechanistic explanation.Ezequiel López-Rubio & Emanuele Ratti - 2021 - Synthese 198 (4):3131-3156.
    In the last few years, biologists and computer scientists have claimed that the introduction of data science techniques in molecular biology has changed the characteristics and the aims of typical outputs (i.e. models) of such a discipline. In this paper we will critically examine this claim. First, we identify the received view on models and their aims in molecular biology. Models in molecular biology are mechanistic and explanatory. Next, we identify the scope and aims of data science (machine (...)
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  39.  63
    Data, Metadata, Mental Data? Privacy and the Extended Mind.Spyridon Orestis Palermos - 2023 - American Journal of Bioethics Neuroscience 14 (2):84-96.
    It has been recently suggested that if the Extended Mind thesis is true, mental privacy might be under serious threat. In this paper, I look into the details of this claim and propose that one way of dealing with this emerging threat requires that data ontology be enriched with an additional kind of data—viz., mental data. I explore how mental data relates to both data and metadata and suggest that, arguably, and by contrast with these (...)
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  40.  12
    Data, Instruments, and Theory: A Dialectical Approach to Understanding Science.Robert John Ackermann - 1985 - Princeton University Press.
    Robert John Ackermann deals decisively with the problem of relativism that has plagued post-empiricist philosophy of science. Recognizing that theory and data are mediated by data domains (bordered data sets produced by scientific instruments), he argues that the use of instruments breaks the dependency of observation on theory and thus creates a reasoned basis for scientific objectivity. Originally published in 1985. The Princeton Legacy Library uses the latest print-on-demand technology to again make available previously out-of-print books from (...)
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  41. Data, Privacy, and the Individual.Carissa Véliz - 2020 - Center for the Governance of Change.
    The first few years of the 21st century were characterised by a progressive loss of privacy. Two phenomena converged to give rise to the data economy: the realisation that data trails from users interacting with technology could be used to develop personalised advertising, and a concern for security that led authorities to use such personal data for the purposes of intelligence and policing. In contrast to the early days of the data economy and internet surveillance, the (...)
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  42. Data subject rights as a research methodology: A systematic literature review.Adamu Adamu Habu & Tristan Henderson - 2023 - Journal of Responsible Technology 16 (C):100070.
    Data subject rights provide data controllers with obligations that can help with transparency, giving data subjects some control over their personal data. To date, a growing number of researchers have used these data subject rights as a methodology for data collection in research studies. No one, however, has gathered and analysed different academic research studies that use data subject rights as a methodology for data collection. To this end, we conducted a systematic (...)
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  43.  57
    Critical data studies: An introduction.Federica Russo & Andrew Iliadis - 2016 - Big Data and Society 3 (2).
    Critical Data Studies explore the unique cultural, ethical, and critical challenges posed by Big Data. Rather than treat Big Data as only scientifically empirical and therefore largely neutral phenomena, CDS advocates the view that Big Data should be seen as always-already constituted within wider data assemblages. Assemblages is a concept that helps capture the multitude of ways that already-composed data structures inflect and interact with society, its organization and functioning, and the resulting impact on (...)
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  44.  37
    Good Data.Angela Daly, Monique Mann & S. Kate Devitt - 2019 - Amsterdam, Netherlands: Institute of Network Cultures.
    Moving away from the strong body of critique of pervasive ‘bad data’ practices by both governments and private actors in the globalized digital economy, this book aims to paint an alternative, more optimistic but still pragmatic picture of the datafied future. The authors examine and propose ‘good data’ practices, values and principles from an interdisciplinary, international perspective. From ideas of data sovereignty and justice, to manifestos for change and calls for activism, this collection opens a multifaceted conversation (...)
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  45. Big data and prediction: Four case studies.Robert Northcott - 2020 - Studies in History and Philosophy of Science Part A 81:96-104.
    Has the rise of data-intensive science, or ‘big data’, revolutionized our ability to predict? Does it imply a new priority for prediction over causal understanding, and a diminished role for theory and human experts? I examine four important cases where prediction is desirable: political elections, the weather, GDP, and the results of interventions suggested by economic experiments. These cases suggest caution. Although big data methods are indeed very useful sometimes, in this paper’s cases they improve predictions either (...)
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  46. From data to phenomena: a Kantian stance.Michela Massimi - 2011 - Synthese 182 (1):101-116.
    This paper investigates some metaphysical and epistemological assumptions behind Bogen and Woodward’s data-to-phenomena inferences. I raise a series of points and suggest an alternative possible Kantian stance about data-to-phenomena inferences. I clarify the nature of the suggested Kantian stance by contrasting it with McAllister’s view about phenomena as patterns in data sets.
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  47. Open data, open review and open dialogue in making social sciences plausible.Quan-Hoang Vuong - 2017 - Scientific Data 4.
    A growing awareness of the lack of reproducibility has undermined society’s trust and esteem in social sciences. In some cases, well-known results have been fabricated or the underlying data have turned out to have weak technical foundations.
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  48.  65
    Big Data and Personalized Pricing.Etye Steinberg - 2019 - Business Ethics Quarterly 30 (1):97-117.
    ABSTRACT:Technological advances introduce the possibility that, in the future, firms will be able to use big-data analysis to discover and offer consumers their individual reservation price. This can generate some interesting benefits, such as a better state of affairs in terms of equality of both welfare and resources, as well as increased social welfare. However, these benefits are countered by considerations of relational equality. This article takes up the market-failures approach as its basis to demonstrate what is wrong with (...)
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  49.  24
    When data is capital: Datafication, accumulation, and extraction.Jathan Sadowski - 2019 - Big Data and Society 6 (1).
    The collection and circulation of data is now a central element of increasingly more sectors of contemporary capitalism. This article analyses data as a form of capital that is distinct from, but has its roots in, economic capital. Data collection is driven by the perpetual cycle of capital accumulation, which in turn drives capital to construct and rely upon a universe in which everything is made of data. The imperative to capture all data, from all (...)
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  50.  6
    Data retention: an assessment of a proposed national scheme.Matthew Warren & Shona Leitch - 2019 - Journal of Information, Communication and Ethics in Society 17 (1):98-112.
    Purpose The information society has developed rapidly since the end of the twentieth century. Many countries (including Australia) have been looking at ways to protect their citizens against the variety of risks associated with the continued evolution of the internet. The Australian Federal Government in 2013 proposed data retention as one possible method of protecting Australian society and aiding law enforcement agencies to investigate and prosecute cyber-crime. Design/methodology/approach The aim of this paper is to consider the issue of (...) retention from a stakeholder’s perspective by analysing the public submissions garnered by the Australian Federal Government and identify the key issues and concerns that were raised by these stakeholders. The paper used a qualitative approach to undertake theme analysis. Findings The paper shows the concerns and wishes that different stakes holders have regarding data retention within Australia. Originality/value This is a unique study into implementation of data retention at a national level, in terms of the paper focussing on Australia. (shrink)
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