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  1. Toward a General Theory of Strategic Action Fields.Neil Fligstein & Doug McAdam - 2011 - Sociological Theory 29 (1):1 - 26.
    In recent years there has been an outpouring of work at the intersection of social movement studies and organizational theory. While we are generally in sympathy with this work, we think it implies a far more radical rethinking of structure and agency in modern society than has been realized to date. In this article, we offer a brief sketch of a general theory of strategic action fields (SAFs). We begin with a discussion of the main elements of the theory, describe (...)
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  • Politics of nature: how to bring the sciences into democracy.Bruno Latour - 2004 - Cambridge: Harvard University Press.
    From the book: What is to be done with political ecology? Nothing. What is to be done? Political ecology!
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  • Formalising trade-offs beyond algorithmic fairness: lessons from ethical philosophy and welfare economics.Michelle Seng Ah Lee, Luciano Floridi & Jatinder Singh - 2021 - AI and Ethics 3.
    There is growing concern that decision-making informed by machine learning (ML) algorithms may unfairly discriminate based on personal demographic attributes, such as race and gender. Scholars have responded by introducing numerous mathematical definitions of fairness to test the algorithm, many of which are in conflict with one another. However, these reductionist representations of fairness often bear little resemblance to real-life fairness considerations, which in practice are highly contextual. Moreover, fairness metrics tend to be implemented in narrow and targeted toolkits that (...)
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  • Own Data? Ethical Reflections on Data Ownership.Patrik Hummel, Matthias Braun & Peter Dabrock - 2020 - Philosophy and Technology 34 (3):545-572.
    In discourses on digitization and the data economy, it is often claimed that data subjects shall beownersof their data. In this paper, we provide a problem diagnosis for such calls fordata ownership: a large variety of demands are discussed under this heading. It thus becomes challenging to specify what—if anything—unites them. We identify four conceptual dimensions of calls for data ownership and argue that these help to systematize and to compare different positions. In view of this pluralism of data ownership (...)
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  • Democratizing Algorithmic Fairness.Pak-Hang Wong - 2020 - Philosophy and Technology 33 (2):225-244.
    Algorithms can now identify patterns and correlations in the (big) datasets, and predict outcomes based on those identified patterns and correlations with the use of machine learning techniques and big data, decisions can then be made by algorithms themselves in accordance with the predicted outcomes. Yet, algorithms can inherit questionable values from the datasets and acquire biases in the course of (machine) learning, and automated algorithmic decision-making makes it more difficult for people to see algorithms as biased. While researchers have (...)
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  • Federated data as a commons: a third way to subject-centric and collective-centric approaches to data epistemology and politics.Stefano Calzati - 2022 - Journal of Information, Communication and Ethics in Society 21 (1):16-29.
    Purpose This study advances a reconceptualization of data and information which overcomes normative understandings often contained in data policies at national and international levels. This study aims to propose a conceptual framework that moves beyond subject- and collective-centric normative understandings. Design/methodology/approach To do so, this study discusses the European Union (EU) and China’s approaches to data-driven technologies highlighting their similarities and differences when it comes to the vision underpinning how tech innovation is shaped. Findings Regardless of the different attention to (...)
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  • Group privacy.Bart van der Sloot, Luciano Floridi & Linnet Taylor (eds.) - 2016 - Springer Verlag.
    The goal of the book is to present the latest research on the new challenges of data technologies. It will offer an overview of the social, ethical and legal problems posed by group profiling, big data and predictive analysis and of the different approaches and methods that can be used to address them. In doing so, it will help the reader to gain a better grasp of the ethical and legal conundrums posed by group profiling. The volume first maps the (...)
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  • Public sector information in the European Union policy: The misbalance between economy and individuals.Sophie Weerts & Clarissa Valli Buttow - 2022 - Big Data and Society 9 (2).
    Algorithmic technologies and artificial intelligence are centred on data and generate new business models, known as the data-driven economy. In the European Union context, the development of such new business is accompanied by a regulatory and political framework. An important aspect of this regulatory framework regards the legal conditions that enable the data collection, availability, sharing, use and reuse. Within the larger context, this article analyses the development of the European Union regulatory framework governing the availability, sharing and reuse of (...)
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  • Public Actors Without Public Values: Legitimacy, Domination and the Regulation of the Technology Sector.Linnet Taylor - 2021 - Philosophy and Technology 34 (4):897-922.
    The scale and asymmetry of commercial technology firms’ power over people through data, combined with the increasing involvement of the private sector in public governance, means that increasingly, people do not have the ability to opt out of engaging with technology firms. At the same time, those firms are increasingly intervening on the population level in ways that have implications for social and political life. This creates the potential for power relations of domination, and demands that we decide what constitutes (...)
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  • Hackathons, data and discourse: Convolutions of the data.Edgar Gómez Cruz & Helen Thornham - 2016 - Big Data and Society 3 (2).
    This paper draws together empirical findings from our study of hackathons in the UK with literature on big data through three interconnected frameworks: data as discourse, data as datalogical and data as materiality. We suggest not only that hackathons resonate the wider socio-technical and political constructions of data that are currently enacted in policy, education and the corporate sector, but also that an investigation of hackathons reveals the extent to which ‘data’ operates as a powerful discursive tool; how the discourses (...)
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