Results for 'Data-driven analysis'

982 found
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  1.  35
    Data-Driven Visual Performance Analysis in Soccer: An Exploratory Prototype.Alejandro Benito Santos, Roberto Theron, Antonio Losada, Jaime E. Sampaio & Carlos Lago-Peñas - 2018 - Frontiers in Psychology 9.
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  2.  29
    A data-driven computational semiotics: The semantic vector space of Magritte’s artworks.Jean-François Chartier, Davide Pulizzotto, Louis Chartrand & Jean-Guy Meunier - 2019 - Semiotica 2019 (230):19-69.
    The rise of big digital data is changing the framework within which linguists, sociologists, anthropologists, and other researchers are working. Semiotics is not spared by this paradigm shift. A data-driven computational semiotics is the study with an intensive use of computational methods of patterns in human-created contents related to semiotic phenomena. One of the most promising frameworks in this research program is the Semantic Vector Space (SVS) models and their methods. The objective of this article is to (...)
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  3.  10
    Research on Chinese Consumers’ Attitudes Analysis of Big-Data Driven Price Discrimination Based on Machine Learning.Jun Wang, Tao Shu, Wenjin Zhao & Jixian Zhou - 2022 - Frontiers in Psychology 12:803212.
    From the end of 2018 in China, the Big-data Driven Price Discrimination (BDPD) of online consumption raised public debate on social media. To study the consumers’ attitude about the BDPD, this study constructed a semantic recognition frame to deconstruct the Affection-Behavior-Cognition (ABC) consumer attitude theory using machine learning models inclusive of the Labeled Latent Dirichlet Allocation (LDA), Long Short-Term Memory (LSTM), and Snow Natural Language Processing (NLP), based on social media comments text dataset. Similar to the questionnaires published (...)
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  4.  34
    Data-Driven Model-Free Adaptive Control of Particle Quality in Drug Development Phase of Spray Fluidized-Bed Granulation Process.Zhengsong Wang, Dakuo He, Xu Zhu, Jiahuan Luo, Yu Liang & Xu Wang - 2017 - Complexity:1-17.
    A novel data-driven model-free adaptive control approach is first proposed by combining the advantages of model-free adaptive control and data-driven optimal iterative learning control, and then its stability and convergence analysis is given to prove algorithm stability and asymptotical convergence of tracking error. Besides, the parameters of presented approach are adaptively adjusted with fuzzy logic to determine the occupied proportions of MFAC and DDOILC according to their different control performances in different control stages. Lastly, the (...)
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  5.  7
    Data-driven campaigns in public sensemaking: Discursive positions, contextualization, and maneuvers in American, British, and German debates around computational politics.Lena Fölsche & Christian Pentzold - 2020 - Communications 45 (s1):535-559.
    Our article examines how journalistic reports and online comments have made sense of computational politics. It treats the discourse around data-driven campaigns as its object of analysis and codifies four main perspectives that have structured the debates about the use of large data sets and data analytics in elections. We study American, British, and German sources on the 2016 United States presidential election, the 2017 United Kingdom general election, and the 2017 German federal election. There, (...)
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  6.  5
    The Emotional Content of Children's Writing: A DataDriven Approach.Yuzhen Dong, Yaling Hsiao, Nicola Dawson, Nilanjana Banerji & Kate Nation - 2024 - Cognitive Science 48 (3):e13423.
    Emotion is closely associated with language, but we know very little about how children express emotion in their own writing. We used a large‐scale, cross‐sectional, and datadriven approach to investigate emotional expression via writing in children of different ages, and whether it varies for boys and girls. We first used a lexicon‐based bag‐of‐words approach to identify emotional content in a large corpus of stories (N>100,000) written by 7‐ to 13‐year‐old children. Generalized Additive Models were then used to model (...)
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  7. Data driven methods for Granger causality and contemporaneous causality with non-linear corrections: Climate teleconnection mechanisms.Clark Glymour - unknown
    We describe a unification of old and recent ideas for formulating graphical models to explain time series data, including Granger causality, semi-automated search procedures for graphical causal models, modeling of contemporaneous influences in times series, and heuristic generalized additive model corrections to linear models. We illustrate the procedures by finding a structure of exogenous variables and mediating variables among time series of remote geospatial indices of ocean surface temperatures and pressures. The analysis agrees with known exogenous drivers of (...)
     
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  8. Data Driven Methods for Granger Causality and Contemporaneous Causality with Non-Linear Corrections: Climate Teleconnection Mechanisms.T. Chu & D. Danks - unknown
    We describe a unification of old and recent ideas for formulating graphical models to explain time series data, including Granger causality, semi-automated search procedures for graphical causal models, modeling of contemporaneous influences in times series, and heuristic generalized additive model corrections to linear models. We illustrate the procedures by finding a structure of exogenous variables and mediating variables among time series of remote geospatial indices of ocean surface temperatures and pressures. The analysis agrees with known exogenous drivers of (...)
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  9.  27
    Datadriven approaches to information access.Susan Dumais - 2003 - Cognitive Science 27 (3):491-524.
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  10.  11
    A Data-Driven Argument in Bioethics: Why Theologically Grounded Concepts May Not Provide the Necessary Intellectual Resources to Discuss Inequality and Injustice in Healthcare Contexts.Tomasz Żuradzki & Karolina Wiśniowska - 2020 - American Journal of Bioethics 20 (12):25-28.
    In this paper, we use an innovative, empirical, and–as yet–rarely applied method in bioethics, namely corpus analysis, which is commonly used in literature studies (Moretti 2013), linguistics (Bake...
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  11.  15
    ‘It depends on your threat model’: the anticipatory dimensions of resistance to data-driven surveillance.Becky Kazansky - 2021 - Big Data and Society 8 (1).
    While many forms of data-driven surveillance are now a ‘fact’ of contemporary life amidst datafication, obtaining concrete knowledge of how different institutions exploit data presents an ongoing challenge, requiring the expertise and power to untangle increasingly complex and opaque technological and institutional arrangements. The how and why of potential surveillance are thus wrapped in a form of continuously produced uncertainty. How then, do affected groups and individuals determine how to counter the threats and harms of surveillance? Responding (...)
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  12. Optimization of Scientific Reasoning: a Data-Driven Approach.Vlasta Sikimić - 2019 - Dissertation,
    Scientific reasoning represents complex argumentation patterns that eventually lead to scientific discoveries. Social epistemology of science provides a perspective on the scientific community as a whole and on its collective knowledge acquisition. Different techniques have been employed with the goal of maximization of scientific knowledge on the group level. These techniques include formal models and computer simulations of scientific reasoning and interaction. Still, these models have tested mainly abstract hypothetical scenarios. The present thesis instead presents data-driven approaches in (...)
     
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  13.  96
    Individual benefits and collective challenges: Experts’ views on data-driven approaches in medical research and healthcare in the German context.Silke Schicktanz & Lorina Buhr - 2022 - Big Data and Society 9 (1).
    Healthcare provision, like many other sectors of society, is undergoing major changes due to the increased use of data-driven methods and technologies. This increased reliance on big data in medicine can lead to shifts in the norms that guide healthcare providers and patients. Continuous critical normative reflection is called for to track such potential changes. This article presents the results of an interview-based study with 20 German and Swiss experts from the fields of medicine, life science research, (...)
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  14.  6
    Toward a historical ontology of the infopolitics of data-driven decision-making (DDDM) in education.Austin Pickup - 2022 - Educational Philosophy and Theory 54 (9):1476-1487.
    This paper interrogates the fundamental logic of data-driven decision-making as it has taken hold in education and argues for a critical analysis of data-driven education via an attitude of historical ontology. Though influenced by Foucault’s understanding of this concept, I center Colin Koopman’s recent analysis of the ‘informational person’ to point attention to the ways in which the very formatting of data may be understood as historically contingent and, thus, more contestable. After examining (...)
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  15.  18
    Alternative data and sentiment analysis: Prospecting non-standard data in machine learning-driven finance.Christian Borch & Kristian Bondo Hansen - 2022 - Big Data and Society 9 (1).
    Social media commentary, satellite imagery and GPS data are a part of ‘alternative data’, that is, data that originate outside of the standard repertoire of market data but are considered useful for predicting stock prices, detecting different risk exposures and discovering new price movement indicators. With the availability of sophisticated machine-learning analytics tools, alternative data are gaining traction within the investment management and algorithmic trading industries. Drawing on interviews with people working in investment management and (...)
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  16.  41
    Ethical assurance: a practical approach to the responsible design, development, and deployment of data-driven technologies.Christopher Burr & David Leslie - forthcoming - AI and Ethics.
    This article offers several contributions to the interdisciplinary project of responsible research and innovation in data science and AI. First, it provides a critical analysis of current efforts to establish practical mechanisms for algorithmic auditing and assessment to identify limitations and gaps with these approaches. Second, it provides a brief introduction to the methodology of argument-based assurance and explores how it is currently being applied in the development of safety cases for autonomous and intelligent systems. Third, it generalises (...)
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  17.  17
    Every word you say: algorithmic mediation and implications of data-driven scholarly communication.Luciana Monteiro-Krebs, Bieke Zaman, David Geerts & Sônia Elisa Caregnato - 2023 - AI and Society 38 (2):1003-1012.
    Implications of algorithmic mediation can be studied through the artefact itself, peoples’ practices, and the social/political/economical arrangements that affect and are affected by such interactions. Most studies in Academic social media (ASM) focus on one of these elements at a time, either examining design elements or the users’ behaviour on and perceptions of such platforms. We take a multi-faceted approach using affordances as a lens to analyze practices and arrangements traversed by algorithmic mediation. Following our earlier studies that examined the (...)
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  18.  12
    Technology-driven surrogates and the perils of epistemic misalignment: an analysis in contemporary microbiome science.Javier Suárez & Federico Boem - 2022 - Synthese 200 (6):1-28.
    A general view in philosophy of science says that the appropriateness of an object to act as a surrogate depends on the user’s decision to utilize it as such. This paper challenges this claim by examining the role of surrogative reasoning in high-throughput sequencing technologies as they are used in contemporary microbiome science. Drawing on this, we argue that, in technology-driven surrogates, knowledge about the type of inference practically permitted and epistemically justified by the surrogate constrains their use and (...)
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  19.  14
    Enabling the Nonhypothesis-Driven Approach: On Data Minimalization, Bias, and the Integration of Data Science in Medical Research and Practice.C. W. Safarlou, M. van Smeden, R. Vermeulen & K. R. Jongsma - 2023 - American Journal of Bioethics 23 (9):72-76.
    Cho and Martinez-Martin provide a wide-ranging analysis of what they label “digital simulacra”—which are in essence data-driven AI-based simulation models such as digital twins or models used for i...
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  20.  49
    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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  21. The epistemological foundations of data science: a critical analysis.Jules Desai, David Watson, Vincent Wang, Mariarosaria Taddeo & Luciano Floridi - manuscript
    The modern abundance and prominence of data has led to the development of “data science” as a new field of enquiry, along with a body of epistemological reflections upon its foundations, methods, and consequences. This article provides a systematic analysis and critical review of significant open problems and debates in the epistemology of data science. We propose a partition of the epistemology of data science into the following five domains: (i) the constitution of data (...)
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  22.  10
    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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  23.  3
    Geometry driven statistics.Ian L. Dryden & John T. Kent (eds.) - 2015 - Chichester, West Sussex: Wiley.
    A timely collection of advanced, original material in the area of statistical methodology motivated by geometric problems, dedicated to the influential work of Kanti V. Mardia This volume celebrates Kanti V. Mardia's long and influential career in statistics. A common theme unifying much of Mardia’s work is the importance of geometry in statistics, and to highlight the areas emphasized in his research this book brings together 16 contributions from high-profile researchers in the field. Geometry Driven Statistics covers a wide (...)
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  24.  7
    Does ‘big data’ provide a competitive advantage to firms: an antitrust analysis.Garima Gupta - 2022 - Asian Journal of Business Ethics 11 (2):423-442.
    Today’s economy has transitioned from the traditional brick and mortar structure of doing business to that of digitalized economy. The latter functions with the aid of technological tools with ‘data’ being the most significant tool in today’s context. The issue has become even more critical with the advent of ‘big data’. It is argued that accumulation, analysis and usage of ‘big data’ enable creation of varied forms of entry barriers for new entrants and information asymmetries for (...)
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  25.  19
    A MapReduce-Based Parallel Frequent Pattern Growth Algorithm for Spatiotemporal Association Analysis of Mobile Trajectory Big Data.Dawen Xia, Xiaonan Lu, Huaqing Li, Wendong Wang, Yantao Li & Zili Zhang - 2018 - Complexity 2018:1-16.
    Frequent pattern mining is an effective approach for spatiotemporal association analysis of mobile trajectory big data in data-driven intelligent transportation systems. While existing parallel algorithms have been successfully applied to frequent pattern mining of large-scale trajectory data, two major challenges are how to overcome the inherent defects of Hadoop to cope with taxi trajectory big data including massive small files and how to discover the implicitly spatiotemporal frequent patterns with MapReduce. To conquer these challenges, (...)
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  26.  7
    Secondary Use of Health Data for Medical AI: A Cross-Regional Examination of Taiwan and the EU.Chih-Hsing Ho - forthcoming - Asian Bioethics Review:1-16.
    This paper conducts a comparative analysis of data governance mechanisms concerning the secondary use of health data in Taiwan and the European Union (EU). Both regions have adopted distinctive approaches and regulations for utilizing health data beyond primary care, encompassing areas such as medical research and healthcare system enhancement. Through an examination of these models, this study seeks to elucidate the strategies, frameworks, and legal structures employed by Taiwan and the EU to strike a delicate balance (...)
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  27.  14
    Ethical conflicts during the process of deciding about ICU admission: an empirically driven ethical analysis.Mia Svantesson, Frances Griffiths, Catherine White, Chris Bassford & AnneMarie Slowther - 2021 - Journal of Medical Ethics 47 (12):e87-e87.
    BackgroundBesides balancing burdens and benefits of intensive care, ethical conflicts in the process of decision-making should also be recognised. This calls for an ethical analysis relevant to clinicians. The aim was to analyse ethically difficult situations in the process of deciding whether a patient is admitted to intensive care unit.MethodsAnalysis using the ‘Dilemma method’ and ‘wide reflective equilibrium’, on ethnographic data of 45 patient cases and 96 stakeholder interviews in six UK hospitals.Ethical analysisFour moral questions and associated value (...)
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  28.  28
    Towards data justice? The ambiguity of anti-surveillance resistance in political activism.Jonathan Cable, Arne Hintz & Lina Dencik - 2016 - Big Data and Society 3 (2).
    The Snowden leaks, first published in June 2013, provided unprecedented insights into the operations of state-corporate surveillance, highlighting the extent to which everyday communication is integrated into an extensive regime of control that relies on the ‘datafication’ of social life. Whilst such data-driven forms of governance have significant implications for citizenship and society, resistance to surveillance in the wake of the Snowden leaks has predominantly centred on techno-legal responses relating to the development and use of encryption and policy (...)
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  29. Driven to extinction? The ethics of eradicating mosquitoes with gene-drive technologies.Jonathan Pugh - 2016 - Journal of Medical Ethics 42 (9):578-581.
    Mosquito-borne diseases represent a significant global disease burden, and recent outbreaks of such diseases have led to calls to reduce mosquito populations. Furthermore, advances in ‘gene-drive’ technology have raised the prospect of eradicating certain species of mosquito via genetic modification. This technology has attracted a great deal of media attention, and the idea of using gene-drive technology to eradicate mosquitoes has been met with criticism in the public domain. In this paper, I shall dispel two moral objections that have been (...)
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  30.  7
    Institutions, infrastructures, and data friction – Reforming secondary use of health data in Finland.Ville Aula - 2019 - Big Data and Society 6 (2).
    New data-driven ideas of healthcare have increased pressures to reform existing data infrastructures. This article explores the role of data governing institutions during a reform of both secondary health data infrastructure and related legislation in Finland. The analysis elaborates on recent conceptual work on data journeys and data frictions, connecting them to institutional and regulatory issues. The study employs an interpretative approach, using interview and document data. The results show the stark (...)
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  31.  17
    Feminist Data Studies: Using Digital Methods for Ethical, Reflexive and Situated Socio-Cultural Research.Koen Leurs - 2017 - Feminist Review 115 (1):130-154.
    What could a social-justice oriented, feminist data studies look like? The current datalogical turn foregrounds the digital datafication of everyday life, increasing algorithmic processing and data as an emergent regime of power/knowledge. Scholars celebrate the politics of big data knowledge production for its omnipotent objectivity or dismiss it outright as data fundamentalism that may lead to methodological genocide. In this feminist and postcolonial intervention into gender-, race- and geography-blind ‘big data’ ideologies, I call for ethical, (...)
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  32.  23
    Value-driven career attitude and job performance: An intermediary role of organizational citizenship behavior.Muhammad Babar Iqbal, Jianxun Li, Shuili Yang & Paras Sindhu - 2022 - Frontiers in Psychology 13.
    BackgroundValue-driven career attitude is considered a dimension of a protean career attitude. Individuals with this attitude seek out personally meaningful experiences and set their own psychological career success standards. This study investigates the association between value-driven career attitude and job performance. It looks at how organizational citizenship behavior affects the relationship between value-driven career attitudes and job performance.MethodsA self-reported questionnaire was used to collect data from 400 random employees of SMEs in Pakistan during the early pandemic. (...)
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  33.  5
    Deep CNN and Deep GAN in Computational Visual Perception-Driven Image Analysis.R. Nandhini Abirami, P. M. Durai Raj Vincent, Kathiravan Srinivasan, Usman Tariq & Chuan-Yu Chang - 2021 - Complexity 2021:1-30.
    Computational visual perception, also known as computer vision, is a field of artificial intelligence that enables computers to process digital images and videos in a similar way as biological vision does. It involves methods to be developed to replicate the capabilities of biological vision. The computer vision’s goal is to surpass the capabilities of biological vision in extracting useful information from visual data. The massive data generated today is one of the driving factors for the tremendous growth of (...)
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  34.  7
    How and Why Does the Attitude-Behavior Gap Differ Between Product Categories of Sustainable Food? Analysis of Organic Food Purchases Based on Household Panel Data.Isabel Schäufele & Meike Janssen - 2021 - Frontiers in Psychology 12.
    Organic agriculture promotes the transformation toward sustainability because of positive effects for the environment. The organic label on food products enables consumers to make more sustainable purchasing decisions. Although the global market for organic food has grown rapidly in recent years, only a part of the organic product range benefits from this positive trend. To develop the organic market further, it is important to understand the food-related values and attitudes that drive the purchase of organic food. Previous research on this (...)
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  35.  53
    Ethics review of big data research: What should stay and what should be reformed?Effy Vayena, Minerva Rivas Velarde, Mahsa Shabani, Gabrielle Samuel, Camille Nebeker, S. Matthew Liao, Peter Kleist, Walter Karlen, Jeff Kahn, Phoebe Friesen, Bobbie Farsides, Edward S. Dove, Alessandro Blasimme, Mark Sheehan, Marcello Ienca & Agata Ferretti - 2021 - BMC Medical Ethics 22 (1):1-13.
    BackgroundEthics review is the process of assessing the ethics of research involving humans. The Ethics Review Committee (ERC) is the key oversight mechanism designated to ensure ethics review. Whether or not this governance mechanism is still fit for purpose in the data-driven research context remains a debated issue among research ethics experts.Main textIn this article, we seek to address this issue in a twofold manner. First, we review the strengths and weaknesses of ERCs in ensuring ethical oversight. Second, (...)
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  36.  5
    Data, democracy and school accountability: Controversy over school evaluation in the case of DeVasco High School.John West - 2017 - Big Data and Society 4 (1).
    Debate over the closure of DeVasco High School shows that data-driven accountability was a methodological and administrative processes that produced both transparency and opacity. Data, when applied to a system of accountability, produced new capabilities and powers, and as such were political. It created second-hand representations of important objects of analysis. Using these representations administrators spoke on behalf of the school, the student and the classroom, without having to rely on the first-person accounts of students, teachers (...)
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  37.  3
    Data as performance – Showcasing cities through open data maps.Morgan Currie - 2020 - Big Data and Society 7 (1).
    This article describes how the City of Los Angeles is showcasing data-driven services to the public through dynamic visualisations of open data. I frame an analysis of this aspect of datafication in local government through linguistics and cultural theory; drawing on this set of literature I theorise the use of public data as both a performative tool and a performance of data-driven city services. I then discuss examples of interactive maps on the City (...)
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  38. Here is the evidence, now what is the hypothesis? The complementary roles of inductive and hypothesis‐driven science in the post‐genomic era.Douglas B. Kell & Stephen G. Oliver - 2004 - Bioessays 26 (1):99-105.
    It is considered in some quarters that hypothesis‐driven methods are the only valuable, reliable or significant means of scientific advance. Datadriven or ‘inductive’ advances in scientific knowledge are then seen as marginal, irrelevant, insecure or wrong‐headed, while the development of technology—which is not of itself ‘hypothesis‐led’ (beyond the recognition that such tools might be of value)—must be seen as equally irrelevant to the hypothetico‐deductive scientific agenda. We argue here that data‐ and technology‐driven programmes are not (...)
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  39.  18
    Data and Model Operations in Computational Sciences: The Examples of Computational Embryology and Epidemiology.Fabrizio Li Vigni - 2022 - Perspectives on Science 30 (4):696-731.
    Computer models and simulations have become, since the 1960s, an essential instrument for scientific inquiry and political decision making in several fields, from climate to life and social sciences. Philosophical reflection has mainly focused on the ontological status of the computational modeling, on its epistemological validity and on the research practices it entails. But in computational sciences, the work on models and simulations are only two steps of a longer and richer process where operations on data are as important (...)
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  40.  17
    What ethical approaches are used by scientists when sharing health data? An interview study.Deborah Mascalzoni, Heidi Beate Bentzen & Jennifer Viberg Johansson - 2022 - BMC Medical Ethics 23 (1):1-12.
    BackgroundHealth data-driven activities have become central in diverse fields (research, AI development, wearables, etc.), and new ethical challenges have arisen with regards to privacy, integrity, and appropriateness of use. To ensure the protection of individuals’ fundamental rights and freedoms in a changing environment, including their right to the protection of personal data, we aim to identify the ethical approaches adopted by scientists during intensive data exploitation when collecting, using, or sharing peoples’ health data.MethodsTwelve scientists who (...)
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  41.  13
    Data critique and analytical opportunities for very large Facebook Pages: Lessons learned from exploring “We are all Khaled Said”.Liesbeth Zack, Robbert Woltering, Thomas Poell, Rasha Abdulla & Bernhard Rieder - 2015 - Big Data and Society 2 (2).
    This paper discusses the empirical, Application Programming Interface -based analysis of very large Facebook Pages. Looking in detail at the technical characteristics, conventions, and peculiarities of Facebook’s architecture and data interface, we argue that such technical fieldwork is essential to data-driven research, both as a crucial form of data critique and as a way to identify analytical opportunities. Using the “We are all Khaled Said” Facebook Page, which hosted the activities of nearly 1.9 million users (...)
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  42.  34
    Model driven quantification of individual and collective cell migration.Caroline Rosello, Pascal Ballet, Emmanuelle Planus & Philippe Tracqui - 2004 - Acta Biotheoretica 52 (4):343-363.
    While the control of cell migration by biochemical and biophysical factors is largely documented, a precise quantification of cell migration parameters in different experimental contexts is still questionable. Indeed, these phenomenological parameters can be evaluated from data obtained either at the cell population level or at the individual cell level. However, the range within which both characterizations of cell migration are equivalent remains unclear. We analyse here to which extent both sources of data could be integrated within a (...)
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  43.  26
    The social licence for data-intensive health research: towards co-creation, public value and trust.Johannes J. M. van Delden, Menno Mostert, Ghislaine J. M. W. van Thiel, Shona Kalkman & Sam H. A. Muller - 2021 - BMC Medical Ethics 22 (1):1-9.
    BackgroundThe rise of Big Data-driven health research challenges the assumed contribution of medical research to the public good, raising questions about whether the status of such research as a common good should be taken for granted, and how public trust can be preserved. Scandals arising out of sharing data during medical research have pointed out that going beyond the requirements of law may be necessary for sustaining trust in data-intensive health research. We propose building upon the (...)
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  44.  74
    Demand-Driven Care and Hospital Choice. Dutch Health Policy Toward Demand-Driven Care: Results from a Survey into Hospital Choice. [REVIEW]Christiaan J. Lako & Pauline Rosenau - 2008 - Health Care Analysis 17 (1):20-35.
    In the Netherlands, current policy opinion emphasizes demand-driven health care. Central to this model is the view, advocated by some Dutch health policy makers, that patients should be encouraged to be aware of and make use of health quality and health outcomes information in making personal health care provider choices. The success of the new health care system in the Netherlands is premised on this being the case. After a literature review and description of the new Dutch health care (...)
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  45.  15
    When open data is a Trojan Horse: The weaponization of transparency in science and governance.David Merritt Johns & Karen E. C. Levy - 2016 - Big Data and Society 3 (1).
    Openness and transparency are becoming hallmarks of responsible data practice in science and governance. Concerns about data falsification, erroneous analysis, and misleading presentation of research results have recently strengthened the call for new procedures that ensure public accountability for data-driven decisions. Though we generally count ourselves in favor of increased transparency in data practice, this Commentary highlights a caveat. We suggest that legislative efforts that invoke the language of data transparency can sometimes function (...)
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  46.  3
    The Pharmaceutical Market for Biological Products in Latin America: A Comprehensive Analysis of Regional Sales Data.Esteban Ortiz-Prado, Juan S. Izquierdo-Condoy, Jorge Eduardo Vasconez-González, Gabriela Dávila, Trigomar Correa & Raúl Fernández-Naranjo - 2023 - Journal of Law, Medicine and Ethics 51 (S1):39-61.
    The global market for biologics and biosimilar pharmaceutical products is experiencing rapid expansion, primarily driven by the continuous discovery of new molecules. However, information regarding Latin America’s biological market remains limited.
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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 (...) production and circulation is then introduced to problematize the view that digital data has ceased to stand for a formalization method (a possible kind of representation among others), and effectively “becomes the world itself” (a direct presentation of the world outperforming all other modes of representation). Following Charles Sanders Peirce’s semiotics and pragmaticist philosophy, we characterize digitalization as a hypersymbolic semiotic process, and we highlight the naturalization of meaning, the illusion of iconicity, and rhetorical efficiency on which data’s truth value relies within the context of its large-scale, profit-driven, and results-oriented research uses. This outlines some epistemological and ethical implications of data’s visualization, use, and authority, and indicates avenues for critical semiotics of contemporary data science and analysis. (shrink)
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    Fairness & friends in the data science era.Barbara Catania, Giovanna Guerrini & Chiara Accinelli - 2023 - AI and Society 38 (2):721-731.
    The data science era is characterized by data-driven automated decision systems (ADS) enabling, through data analytics and machine learning, automated decisions in many contexts, deeply impacting our lives. As such, their downsides and potential risks are becoming more and more evident: technical solutions, alone, are not sufficient and an interdisciplinary approach is needed. Consequently, ADS should evolve into data-informed ADS, which take humans in the loop in all the data processing steps. Data-informed ADS (...)
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  49. Annotating affective neuroscience data with the Emotion Ontology.Janna Hastings, Werner Ceusters, Kevin Mulligan & Barry Smith - 2012 - In Janna Hastings, Werner Ceusters, Kevin Mulligan & Barry Smith (eds.), Third International Conference on Biomedical Ontology. ICBO. pp. 1-5.
    The Emotion Ontology is an ontology covering all aspects of emotional and affective mental functioning. It is being developed following the principles of the OBO Foundry and Ontological Realism. This means that in compiling the ontology, we emphasize the importance of the nature of the entities in reality that the ontology is describing. One of the ways in which realism-based ontologies are being successfully used within biomedical science is in the annotation of scientific research results in publicly available databases. Such (...)
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  50.  4
    A dimensional analysis of inner strength in people ageing with serious illness.Brianna E. Morgan - 2020 - Nursing Inquiry 27 (4):e12353.
    Nursing models of care show promise in addressing the needs of older adults facing serious illness through supporting inner strength. However, previous conceptual and theoretical models of inner strength are limited. This concept analysis used dimensional analysis methods to explore inner strength in people ageing with serious illness to address limitations by defining a pragmatic, datadriven model. This study analyzed published literature of adults with serious illness that describes inner strength. Thirty articles were selected after review. (...)
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