Results for 'Big data Social aspects.'

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  1.  15
    Distrust: big data, data-torturing, and the assault on science.Gary Smith - 2023 - Oxford: Oxford University Press.
    There is no doubt science is currently suffering from a credibility crisis. This thought-provoking book argues that, ironically, science's credibility is being undermined by tools created by scientists themselves. Scientific disinformation and damaging conspiracy theories are rife because of the internet that science created, the scientific demand for empirical evidence and statistical significance leads to data torturing and confirmation bias, and data mining is fuelled by the technological advances in Big Data and the development of ever-increasingly powerfulcomputers. (...)
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  2.  85
    Big Data e Intelligenza Artificiale: Che Futuro Ci Aspetta?Giuseppe Longo - 2018 - Scienza E Filosofia 20:12–63.
    BIG DATA AND ARTIFICIAL INTELLIGENCE: A LOOK INTO THE FUTURE To say or write something innovative on the ongoing revolution in the fields of Big Data and Artificial Intelligence is very difficult. The advent of these two new technologies is in fact among the most relevant events in human history since in a little more than a decade it will likely lead to the creation of the First Artificial Intelligence of the Fourth level: i.e capable to think and (...)
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  3.  22
    COVID-19 is spatial: Ensuring that mobile Big Data is used for social good.Tuuli Toivonen, Matthew Zook, Olle Järv & Age Poom - 2020 - Big Data and Society 7 (2).
    The mobility restrictions related to COVID-19 pandemic have resulted in the biggest disruption to individual mobilities in modern times. The crisis is clearly spatial in nature, and examining the geographical aspect is important in understanding the broad implications of the pandemic. The avalanche of mobile Big Data makes it possible to study the spatial effects of the crisis with spatiotemporal detail at the national and global scales. However, the current crisis also highlights serious limitations in the readiness to take (...)
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  4.  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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  5.  17
    Ethical Issues in Social Science Research Employing Big Data.Mohammad Hosseini, Michał Wieczorek & Bert Gordijn - 2022 - Science and Engineering Ethics 28 (3):1-21.
    This paper analyzes the ethics of social science research employing big data. We begin by highlighting the research gap found on the intersection between big data ethics, SSR and research ethics. We then discuss three aspects of big data SSR which make it warrant special attention from a research ethics angle: the interpretative character of both SSR and big data, complexities of anticipating and managing risks in publication and reuse of big data SSR, and (...)
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  6.  17
    Opening the black boxes of the black carpet in the era of risk society: a sociological analysis of AI, algorithms and big data at work through the case study of the Greek postal services.Christos Kouroutzas & Venetia Palamari - forthcoming - AI and Society:1-14.
    This article draws on contributions from the Sociology of Science and Technology and Science and Technology Studies, the Sociology of Risk and Uncertainty, and the Sociology of Work, focusing on the transformations of employment regarding expanded automation, robotization and informatization. The new work patterns emerging due to the introduction of software and hardware technologies, which are based on artificial intelligence, algorithms, big data gathering and robotic systems are examined closely. This article attempts to “open the black boxes” of the (...)
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  7.  4
    Erziehungswissenschaftliche Reflexion und pädagogisch-politisches Engagement: Wolfgang Klafki weiterdenken.Karl Heinz Braun, Frauke Stübig & Heinz Stübig (eds.) - 2018 - Wiesbaden: Springer VS.
    Zentrale Denkfiguren der von Wolfgang Klafki begründeten kritisch-konstruktiven Erziehungswissenschaft werden in diesem Buch aufgegriffen und in ihrem Innovationswert für die wissenschaftliche Pädagogik reflektiert. Namhafte Autorinnen und Autoren unterschiedlicher Subdisziplinen und Generationen vertiefen Klafkis Ansatz theoretisch wie methodisch und öffnen Problemstellungen, die bisher nicht bearbeitet worden sind.
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  8.  14
    Data makes the story come to life:” understanding the ethical and legal implications of Big Data research involving ethnic minority healthcare workers in the United Kingdom—a qualitative study.Robert Free, David Ford, Kamlesh Khunti, Sue Carr, Louise Wain, Martin D. Tobin, Keith R. Abrams, Amit Gupta, Ibrahim Abubakar, Katherine Woolf, I. Chris McManus, Catherine Johns, Anna L. Guyatt, Laura B. Nellums, Laura Gray, Manish Pareek, Ruby Reed-Berendt & Edward S. Dove - 2022 - BMC Medical Ethics 23 (1):1-14.
    The aim of UK-REACH (“The United Kingdom Research study into Ethnicity And COVID-19 outcomes in Healthcare workers”) is to understand if, how, and why healthcare workers (HCWs) in the United Kingdom (UK) from ethnic minority groups are at increased risk of poor outcomes from COVID-19. In this article, we present findings from the ethical and legal stream of the study, which undertook qualitative research seeking to understand and address legal, ethical, and social acceptability issues around data protection, privacy, (...)
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  9.  11
    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 (...)
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  10.  3
    We, robots: staying human in the age of big data.Curtis White - 2015 - Brooklyn: Melville House.
    In the noble tradition of Jaron Lanier's You Are Not a Gadget (Penguin, 2011), Curtis White's We, Robots takes the radical position that maybe we shouldn't cede every bit of control, humanity, and decision making to technology, and that the techno-futurists in our mix have things dangerously backwards. What a notion! In this sharply argued and rousing book, White not only attacks the technology-loving establishment, but offers a beautiful and essential alternative.
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  11.  9
    The social superpower: the big truth about little lies.Kathleen Wyatt - 2022 - London: Biteback Publishing.
    In an era of fake news, alternative truths and leaked secrets making constant headlines, we are telling stories about ourselves all the time, and we are telling them in so many different ways. From vlogs and blogs to tweets and posts, from photos and gifs to live streams. From instant updates that disappear to rash words that last for ever and data trails that chart every step we take. While people around her shake their heads and mutter bad things (...)
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  12.  15
    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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  13.  19
    The social imaginaries of data activism.Minna Ruckenstein & Tuukka Lehtiniemi - 2018 - Big Data and Society 6 (1).
    Data activism, promoting new forms of civic and political engagement, has emerged as a response to problematic aspects of datafication that include tensions between data openness and data ownership, and asymmetries in terms of data usage and distribution. In this article, we discuss MyData, a data activism initiative originating in Finland, which aims to shape a more sustainable citizen-centric data economy by means of increasing individuals' control of their personal data. Using data (...)
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  14.  8
    Big Data and historical social science.Peter Bearman - 2015 - Big Data and Society 2 (2).
    “Big Data” can revolutionize historical social science if it arises from substantively important contexts and is oriented towards answering substantively important questions. Such data may be especially important for answering previously largely intractable questions about the timing and sequencing of events, and of event boundaries. That said, “Big Data” makes no difference for social scientists and historians whose accounts rest on narrative sentences. Since such accounts are the norm, the effects of Big Data on (...)
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  15.  14
    Big Data in Computational Social Science and Humanities.Shu-Heng Chen (ed.) - 2018 - Springer Verlag.
    This edited volume focuses on big data implications for computational social science and humanities from management to usage. The first part of the book covers geographic data, text corpus data, and social media data, and exemplifies their concrete applications in a wide range of fields including anthropology, economics, finance, geography, history, linguistics, political science, psychology, public health, and mass communications. The second part of the book provides a panoramic view of the development of big (...)
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  16.  3
    Big Data in the 1800s in surgical science: A social history of early large data set development in urologic surgery in Paris and Glasgow.Dennis J. Mazur - 2014 - Big Data and Society 1 (2).
    “Big Data” in health and medicine in the 21st century differs from “Big Data” used in health and medicine in the 1700s and 1800s. However, the old data sets share one key component: large numbers. The term “Big Data” is not synonymous with large numbers. Large numbers are a key component of Big Data in health and medicine, both for understanding the full range of how a disease presents in a human for diagnosis, and for (...)
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  17.  13
    Navigating Big Data dilemmas: Feminist holistic reflexivity in social media research.Danielle J. Corple, Jasmine R. Linabary & Cheryl Cooky - 2018 - Big Data and Society 5 (2).
    Social media offers an attractive site for Big Data research. Access to big social media data, however, is controlled by companies that privilege corporate, governmental, and private research firms. Additionally, Institutional Review Boards’ regulative practices and slow adaptation to emerging ethical dilemmas in online contexts creates challenges for Big Data researchers. We examine these challenges in the context of a feminist qualitative Big Data analysis of the hashtag event #WhyIStayed. We argue power, context, and (...)
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  18.  10
    Big Data solutions on a small scale: Evaluating accessible high-performance computing for social research.Sawyer A. Bowman & Dhiraj Murthy - 2014 - Big Data and Society 1 (2).
    Though full of promise, Big Data research success is often contingent on access to the newest, most advanced, and often expensive hardware systems and the expertise needed to build and implement such systems. As a result, the accessibility of the growing number of Big Data-capable technology solutions has often been the preserve of business analytics. Pay as you store/process services like Amazon Web Services have opened up possibilities for smaller scale Big Data projects. There is high demand (...)
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  19.  13
    We Have Big Data, But Do We Need Big Theory? Review-Based Remarks on an Emerging Problem in the Social Sciences.Hermann Astleitner - 2024 - Philosophy of the Social Sciences 54 (1):69-92.
    Big data represents a significant challenge for the social sciences. From a philosophy-of-science perspective, it is important to reflect on related theories and processes for developing them. In this paper, we start by examining different views on the role of theories in big data-related social research. Then, we try to show how big data is related to standards for evaluating theories. We also outline how big data affects theory- and data-based research approaches and (...)
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  20.  10
    Counting feminicide: data feminism in action.Catherine D'Ignazio - 2024 - Cambridge, Massachusetts: The MIT Press.
    This book explores the work of activists in the Americas who are documenting feminicide, arguing that feminist activists at the margins have much to teach mainstream data scientists about data ethics: how to work with data ethically amidst extreme and durable structural inequalities.
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  21.  9
    Institutionalizing Big Data methods in social and political research.Pertti Ahonen - 2015 - Big Data and Society 2 (2).
    We expect Big Data methods to contribute to research with results that are not inferior to those attained in other ways but possibly better, or hard or impossible to generate in other ways. Those who apply these methods may also aspire to augment the arsenal of research methods, offer surrogates for existing research designs, and re-orient research. Moreover, we can critically examine the institutional, societal and political effects of the Big Data methods and the conditions for the solid (...)
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  22.  14
    Social Big Data: Mining, Applications, and Beyond.Xiuzhen Zhang, Shuliang Wang, Gao Cong & Alfredo Cuzzocrea - 2019 - Complexity 2019:1-2.
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  23.  38
    Big data, algorithms and politics: the social sciences in the era of social media.Felipe González - 2019 - Cinta de Moebio 65:267-280.
    Resumen: El presente artículo ofrece un estado del arte de cómo se ha venido a estudiar empíricamente la relación entre política y redes sociales en la última década, desde el punto de vista de la naturaleza del objeto de estudio, las nuevas técnicas de análisis y métodos sobre las que se han apoyado las ciencias sociales, las agendas de investigación a que ha dado lugar y algunos de los dilemas éticos que suscita. El artículo consta de tres partes. Primero, desarrollamos (...)
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  24.  3
    Small Big Data: Using multiple data-sets to explore unfolding social and economic change.Colin Hay, Stephen Farrall, Will Jennings & Emily Gray - 2015 - Big Data and Society 2 (1).
    Bold approaches to data collection and large-scale quantitative advances have long been a preoccupation for social science researchers. In this commentary we further debate over the use of large-scale survey data and official statistics with ‘Big Data’ methodologists, and emphasise the ability of these resources to incorporate the essential social and cultural heredity that is intrinsic to the human sciences. In doing so, we introduce a series of new data-sets that integrate approximately 30 years (...)
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  25.  66
    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 (...)
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  26.  92
    AI, big data, and the future of consent.Adam J. Andreotta, Nin Kirkham & Marco Rizzi - 2022 - AI and Society 37 (4):1715-1728.
    In this paper, we discuss several problems with current Big data practices which, we claim, seriously erode the role of informed consent as it pertains to the use of personal information. To illustrate these problems, we consider how the notion of informed consent has been understood and operationalised in the ethical regulation of biomedical research (and medical practices, more broadly) and compare this with current Big data practices. We do so by first discussing three types of problems that (...)
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  27.  17
    Big Data in the workplace: Privacy Due Diligence as a human rights-based approach to employee privacy protection.Jeremias Adams-Prassl, Isabelle Wildhaber & Isabel Ebert - 2021 - Big Data and Society 8 (1).
    Data-driven technologies have come to pervade almost every aspect of business life, extending to employee monitoring and algorithmic management. How can employee privacy be protected in the age of datafication? This article surveys the potential and shortcomings of a number of legal and technical solutions to show the advantages of human rights-based approaches in addressing corporate responsibility to respect privacy and strengthen human agency. Based on this notion, we develop a process-oriented model of Privacy Due Diligence to complement existing (...)
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  28. Big Data and Changing Concepts of the Human.Carrie Figdor - 2019 - European Review 27 (3):328-340.
    Big Data has the potential to enable unprecedentedly rigorous quantitative modeling of complex human social relationships and social structures. When such models are extended to nonhuman domains, they can undermine anthropocentric assumptions about the extent to which these relationships and structures are specifically human. Discoveries of relevant commonalities with nonhumans may not make us less human, but they promise to challenge fundamental views of what it is to be human.
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  29. 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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  30. 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 (...)
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  31. Social Implications of Big Data and Fog Computing.Jeremy Horne - 2018 - International Journal of Fog Computing 1 (2):50.
    In the last half century we have gone from storing data on 5-1/4 inch floppy diskettes to cloud and now fog computing. But one should ask why so much data is being collected. Part of the answer is simple in light of scientific projects but why is there so much data on us? Then, we ask about its “interface” through fog computing. Such questions prompt this chapter on the philosophy of big data and fog computing. After (...)
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  32.  13
    Prediction of Big Data Analytics (BDA) on Social Media: Empirical Study.Ahed J. Alkhatib, Shadi Mohammad Alkhatib & Hani Bani Salameh - 2020 - Dialogo 7 (1):225-240.
    Currently, most studies are moving towards Big Data Analytics because they are important in research, and this is becoming increasingly important as Internet and Web 2.0 technologies become increasingly popular and how to handle this massive data. Moreover, this proliferation of the Internet and social media has revolutionized the search process. With this Big Data of data generated by users using social media or electronic platforms, the use of these details and daily activities is (...)
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  33. 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 (...)
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  34.  15
    The (Big) Data-security assemblage: Knowledge and critique.Tobias Blanke & Claudia Aradau - 2015 - Big Data and Society 2 (2).
    The Snowden revelations and the emergence of ‘Big Data’ have rekindled questions about how security practices are deployed in a digital age and with what political effects. While critical scholars have drawn attention to the social, political and legal challenges to these practices, the debates in computer and information science have received less analytical attention. This paper proposes to take seriously the critical knowledge developed in information and computer science and reinterpret their debates to develop a critical intervention (...)
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  35.  84
    Big Data ethics.Andrej Zwitter - 2014 - Big Data and Society 1 (2).
    The speed of development in Big Data and associated phenomena, such as social media, has surpassed the capacity of the average consumer to understand his or her actions and their knock-on effects. We are moving towards changes in how ethics has to be perceived: away from individual decisions with specific and knowable outcomes, towards actions by many unaware that they may have taken actions with unintended consequences for anyone. Responses will require a rethinking of ethical choices, the lack (...)
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  36.  9
    Big data and ethics: the medical datasphere.Jérôme Béranger - 2016 - Kidlington, Oxford, UK: Elsevier.
    Faced with the exponential development of Big Data and both its legal and economic repercussions, we are still slightly in the dark concerning the use of digital information. In the perpetual balance between confidentiality and transparency, this data will lead us to call into question how we understand certain paradigms, such as the Hippocratic Oath in medicine. As a consequence, a reflection on the study of the risks associated with the ethical issues surrounding the design and manipulation of (...)
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  37.  50
    Big Data: A Normal Accident Waiting to Happen?Daniel Nunan & Marialaura Di Domenico - 2017 - Journal of Business Ethics 145 (3):481-491.
    Widespread commercial use of the internet has significantly increased the volume and scope of data being collected by organisations. ‘Big data’ has emerged as a term to encapsulate both the technical and commercial aspects of this growing data collection activity. To date, much of the discussion of big data has centred upon its transformational potential for innovation and efficiency, yet there has been less reflection on its wider implications beyond commercial value creation. This paper builds upon (...)
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  38.  13
    Big Data and reality.Ryan Shaw - 2015 - Big Data and Society 2 (2).
    DNA sequencers, Twitter, MRIs, Facebook, particle accelerators, Google Books, radio telescopes, Tumblr: what do these things have in common? According to the evangelists of “data science,” all of these are instruments for observing reality at unprecedentedly large scales and fine granularities. This perspective ignores the social reality of these very different technological systems, ignoring how they are made, how they work, and what they mean in favor of an exclusive focus on what they generate: Big Data. But (...)
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  39.  6
    Big Data and the danger of being precisely inaccurate.H. Richard McFarland & Daniel A. McFarland - 2015 - Big Data and Society 2 (2).
    Social scientists and data analysts are increasingly making use of Big Data in their analyses. These data sets are often “found data” arising from purely observational sources rather than data derived under strict rules of a statistically designed experiment. However, since these large data sets easily meet the sample size requirements of most statistical procedures, they give analysts a false sense of security as they proceed to focus on employing traditional statistical methods. We (...)
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  40.  41
    Big Data from the bottom up.Alison Powell & Nick Couldry - 2014 - Big Data and Society 1 (2).
    This short article argues that an adequate response to the implications for governance raised by ‘Big Data’ requires much more attention to agency and reflexivity than theories of ‘algorithmic power’ have so far allowed. It develops this through two contrasting examples: the sociological study of social actors used of analytics to meet their own social ends and the study of actors’ attempts to build an economy of information more open to civic intervention than the existing one. The (...)
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  41.  20
    Restoring sense out of disorder? Farmers’ changing social identities under big data and algorithms.Ayorinde Ogunyiola & Maaz Gardezi - 2022 - Agriculture and Human Values 39 (4):1451-1464.
    AbstractAdvances in precision agriculture, driven by big data technologies and machine learning algorithms can transform agriculture by enhancing crop and livestock productivity and supporting faster and more accurate on and off-farm decision making. However, little is known about how PA can influence farmers’ sense of self, their skills and competencies, and the meanings that farmers ascribe to farming. This study is animated by scholarly commitment to social identity research, and draws from socio-cyber-physical systems research, domestication theory, and activity (...)
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  42.  47
    Big Data and Public-Private Partnerships in Healthcare and Research: The Application of an Ethics Framework for Big Data in Health and Research.Angela Ballantyne & Cameron Stewart - 2019 - Asian Bioethics Review 11 (3):315-326.
    Public-private partnerships are established to specifically harness the potential of Big Data in healthcare and can include partners working across the data chain—producing health data, analysing data, using research results or creating value from data. This domain paper will illustrate the challenges that arise when partners from the public and private sector collaborate to share, analyse and use biomedical Big Data. We discuss three specific challenges for PPPs: working within the social licence, public (...)
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  43.  14
    Big Data, urban governance, and the ontological politics of hyperindividualism.Robert W. Lake - 2017 - Big Data and Society 4 (1).
    Big Data’s calculative ontology relies on and reproduces a form of hyperindividualism in which the ontological unit of analysis is the discrete data point, the meaning and identity of which inheres in itself, preceding, separate, and independent from its context or relation to any other data point. The practice of Big Data governed by an ontology of hyperindividualism is also constitutive of that ontology, naturalizing and diffusing it through practices of governance and, from there, throughout myriad (...)
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  44.  23
    Big Data and Democracy.Kevin Macnish & Jai Galliott (eds.) - 2020 - Edinburgh University Press.
    What's wrong with targeted advertising in political campaigns? Are echo chambers a matter of genuine concern? How does data collection impact on trust in society? As decision-making becomes increasingly automated, how can decision-makers be held to account? This collection consider potential solutions to these challenges.
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  45.  27
    The Big Data razor.Ezequiel López-Rubio - 2020 - European Journal for Philosophy of Science 10 (2):1-20.
    Classic conceptions of model simplicity for machine learning are mainly based on the analysis of the structure of the model. Bayesian, Frequentist, information theoretic and expressive power concepts are the best known of them, which are reviewed in this work, along with their underlying assumptions and weaknesses. These approaches were developed before the advent of the Big Data deluge, which has overturned the importance of structural simplicity. The computational simplicity concept is presented, and it is argued that it is (...)
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  46.  36
    Big Data, Big Waste? A Reflection on the Environmental Sustainability of Big Data Initiatives.Federica Lucivero - 2020 - Science and Engineering Ethics 26 (2):1009-1030.
    This paper addresses a problem that has so far been neglected by scholars investigating the ethics of Big Data and policy makers: that is the ethical implications of Big Data initiatives’ environmental impact. Building on literature in environmental studies, cultural studies and Science and Technology Studies, the article draws attention to the physical presence of data, the material configuration of digital service, and the space occupied by data. It then explains how this material and situated character (...)
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  47.  18
    Big Data, Big Waste? A Reflection on the Environmental Sustainability of Big Data Initiatives.Federica Lucivero - 2020 - Science and Engineering Ethics 26 (2):1009-1030.
    This paper addresses a problem that has so far been neglected by scholars investigating the ethics of Big Data and policy makers: that is the ethical implications of Big Data initiatives’ environmental impact. Building on literature in environmental studies, cultural studies and Science and Technology Studies, the article draws attention to the physical presence of data, the material configuration of digital service, and the space occupied by data. It then explains how this material and situated character (...)
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    Big Data for a Fairer Democracy?Jessica Heesen - 2016 - International Review of Information Ethics 24.
    Big data-analysis is linked to the expectation to provide a general image of socially relevant topics and processes. Similar to this, the idea of the public sphere involves being representative of all citizens and of important topics and problems. This contribution, on one side, aims to explain how a normative concept of the public sphere could be infiltrated by big data. On the other, it will discuss how participative processes and common wealth can profit from a thorough use (...)
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    Unlocking data: Where is the key?María C. Sánchez & Antonio Sarría‐Santamera - 2019 - Bioethics 33 (3):367-376.
    Health‐related data uses and data sharing have been in the spotlight for a while. Since the beginning of the big data era, massive data mining and its inherent possibilities have only increased the debate about what the limits are. Data governance is a relevant aspect addressed in ethics guidelines. In this context, the European project BRIDGE Health (BRidging Information and Data Generation for Evidence‐based Health policy and research) strove to achieve a comprehensive, integrated and (...)
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    Big data and Belmont: On the ethics and research implications of consumer-based datasets.Remy Stewart - 2021 - Big Data and Society 8 (2).
    Consumer-based datasets are the products of data brokerage firms that agglomerate millions of personal records on the adult US population. This big data commodity is purchased by both companies and individual clients for purposes such as marketing, risk prevention, and identity searches. The sheer magnitude and population coverage of available consumer-based datasets and the opacity of the business practices that create these datasets pose emergent ethical challenges within the computational social sciences that have begun to incorporate consumer-based (...)
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