Results for 'algorithmization of the process'

986 found
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  1.  13
    Meditations of Guigo, prior of the Charterhouse.I. Prior Of the Grande Chartreu Guigo - 1951 - Milwaukee, Wis.: Marquette University Press. Edited by John J. Jolin.
    This work has been selected by scholars as being culturally important and is part of the knowledge base of civilization as we know it. This work is in the public domain in the United States of America, and possibly other nations. Within the United States, you may freely copy and distribute this work, as no entity has a copyright on the body of the work. Scholars believe, and we concur, that this work is important enough to be preserved, reproduced, and (...)
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  2.  8
    Algorithm of the automated events classification process in the information space.Hrytsiuk V. V. - 2020 - Artificial Intelligence Scientific Journal 25 (2):42-52.
    The article defines the algorithm and details the sequential tasks for building an effective model of automated classification of events in the information space. On the eve and during the armed aggression of the Russian Federation against Ukraine, the consequences of external negative information influence were noticeable. Therefore, the organization and implementation of counteraction to such influence is urgent. An important component of this activity is the classification of information events in the information space in order to further analyze them (...)
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  3. The ethics of algorithms: mapping the debate.Brent Mittelstadt, Patrick Allo, Mariarosaria Taddeo, Sandra Wachter & Luciano Floridi - 2016 - Big Data and Society 3 (2):2053951716679679.
    In information societies, operations, decisions and choices previously left to humans are increasingly delegated to algorithms, which may advise, if not decide, about how data should be interpreted and what actions should be taken as a result. More and more often, algorithms mediate social processes, business transactions, governmental decisions, and how we perceive, understand, and interact among ourselves and with the environment. Gaps between the design and operation of algorithms and our understanding of their ethical implications can have severe consequences (...)
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  4.  80
    Clinical Ethics Committee in an Oncological Research Hospital: two-years Report.Marta Perin, Ludovica De Panfilis & on Behalf of the Clinical Ethics Committee of the Azienda Usl-Irccs di Reggio Emilia - 2023 - Nursing Ethics 30 (7-8):1217-1231.
    Research question and aimClinical Ethics Committees (CECs) aim to support healthcare professionals (HPs) and healthcare organizations to deal with the ethical issues of clinical practice. In 2020,...
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  5.  39
    Algorithms in the court: does it matter which part of the judicial decision-making is automated?Dovilė Barysė & Roee Sarel - 2024 - Artificial Intelligence and Law 32 (1):117-146.
    Artificial intelligence plays an increasingly important role in legal disputes, influencing not only the reality outside the court but also the judicial decision-making process itself. While it is clear why judges may generally benefit from technology as a tool for reducing effort costs or increasing accuracy, the presence of technology in the judicial process may also affect the public perception of the courts. In particular, if individuals are averse to adjudication that involves a high degree of automation, particularly (...)
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  6. Fair, Transparent, and Accountable Algorithmic Decision-making Processes: The Premise, the Proposed Solutions, and the Open Challenges.Bruno Lepri, Nuria Oliver, Emmanuel Letouzé, Alex Pentland & Patrick Vinck - 2018 - Philosophy and Technology 31 (4):611-627.
    The combination of increased availability of large amounts of fine-grained human behavioral data and advances in machine learning is presiding over a growing reliance on algorithms to address complex societal problems. Algorithmic decision-making processes might lead to more objective and thus potentially fairer decisions than those made by humans who may be influenced by greed, prejudice, fatigue, or hunger. However, algorithmic decision-making has been criticized for its potential to enhance discrimination, information and power asymmetry, and opacity. In this paper, we (...)
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  7. Who is afraid of black box algorithms? On the epistemological and ethical basis of trust in medical AI.Juan Manuel Durán & Karin Rolanda Jongsma - 2021 - Journal of Medical Ethics 47 (5):medethics - 2020-106820.
    The use of black box algorithms in medicine has raised scholarly concerns due to their opaqueness and lack of trustworthiness. Concerns about potential bias, accountability and responsibility, patient autonomy and compromised trust transpire with black box algorithms. These worries connect epistemic concerns with normative issues. In this paper, we outline that black box algorithms are less problematic for epistemic reasons than many scholars seem to believe. By outlining that more transparency in algorithms is not always necessary, and by explaining that (...)
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  8. Algorithmic Nudging: The Need for an Interdisciplinary Oversight.Christian Schmauder, Jurgis Karpus, Maximilian Moll, Bahador Bahrami & Ophelia Deroy - 2023 - Topoi 42 (3):799-807.
    Nudge is a popular public policy tool that harnesses well-known biases in human judgement to subtly guide people’s decisions, often to improve their choices or to achieve some socially desirable outcome. Thanks to recent developments in artificial intelligence (AI) methods new possibilities emerge of how and when our decisions can be nudged. On the one hand, algorithmically personalized nudges have the potential to vastly improve human daily lives. On the other hand, blindly outsourcing the development and implementation of nudges to (...)
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  9. Globalization and global processes : the algorithm of development.D. Ursul Arkady, V. Ilyin Ilya & A. Ursul Tatiana - 2022 - In Alexander N. Chumakov, Alyssa DeBlasio & Ilya V. Ilyin (eds.), Philosophical Aspects of Globalization: A Multidisciplinary Inquiry. Boston: BRILL.
     
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  10.  16
    Constructions of exclusion: the processes and outcomes of technological imperialism: Marie Hicks. Programmed inequality: how Britain discarded women technologists and lost its edge in computing. Cambridge, MA: MIT Press, 2018, 352pp, US$20.00 PB Safiya U. Noble. Algorithms of oppression: how search engines reinforce racism. New York: New York University Press, 2018, 217pp, US$28.00 PB.Britt S. Paris - 2018 - Metascience 27 (3):493-498.
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  11.  7
    How algorithms are reshaping the exploitation of labour-power: insights into the process of labour invisibilization in the platform economy.Lorenzo Cini - forthcoming - Theory and Society:1-27.
    Marx conceives of capitalism as a production mode based on the exploitation of labour-power, whose productive consumption in the labour process is considered as the main source of value creation. Capitalists seek to obscure and secure workers’ contribution to the production process, whereas workers strive to have their contribution fully recognized. The struggle between capitalists and workers over labour-time is thus central to capital’s valorization process. Hence, capital–labour antagonism is structured over the capture and exploitation of unpaid (...)
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  12.  41
    Culture, the process of knowledge, perception of the world and emergence of AI.Badrudin Amershi - 2020 - AI and Society 35 (2):417-430.
    Considering the technological development today, we are facing an emerging crisis. We are in the midst of a scientific revolution, which promises to radically change not only the way we live and work—but beyond that challenge the stability of the very foundations of our civilization and the international political order. All our attention and effort is thus focused on cushioning its impacts on life and society. Looking back in history, it would be pertinent to ask whether this process is (...)
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  13.  11
    Language and the rise of the algorithm.Jeffrey M. Binder - 2022 - London: University of Chicago Press.
    A wide-ranging history of the intellectual developments that produced the modern idea of the algorithm. Bringing together the histories of mathematics, computer science, and linguistic thought, Language and the Rise of the Algorithm reveals how recent developments in artificial intelligence are reopening an issue that troubled mathematicians long before the computer age. How do you draw the line between computational rules and the complexities of making systems comprehensible to people? Here Jeffrey M. Binder offers a compelling tour of four visions (...)
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  14.  6
    The Algorithms of Mindfulness.Johannes Bruder - 2022 - Science, Technology, and Human Values 47 (2):291-313.
    This paper analyzes notions and models of optimized cognition emerging at the intersections of psychology, neuroscience, and computing. What I somewhat polemically call the algorithms of mindfulness describes an ideal that determines algorithmic techniques of the self, geared at emotional resilience and creative cognition. A reframing of rest, exemplified in corporate mindfulness programs and the design of experimental artificial neural networks sits at the heart of this process. Mindfulness trainings provide cues as to this reframing, for they detail each (...)
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  15.  28
    Causality and the Modeling of the Measurement Process in Quantum Theory.Christian de Ronde - 2017 - Disputatio 9 (47):657-690.
    In this paper we provide a general account of the causal models which attempt to provide a solution to the famous measurement problem of Quantum Mechanics. We will argue that—leaving aside instrumentalism which restricts the physical meaning of QM to the algorithmic prediction of measurement outcomes—the many interpretations which can be found in the literature can be distinguished through the way they model the measurement process, either in terms of the efficient cause or in terms of the final cause. (...)
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  16.  5
    The age of the algorithmic society a Girardian analysis of mimesis, rivalry, and identity in the age of artificial intelligence.Lucas Freund - forthcoming - AI and Society:1-10.
    This paper explores the intersection of René Girard's mimetic theory and the algorithmic society, particularly in the context of the potential advent of Artificial General Intelligence (AGI). Girard's theory, which elucidates the dynamics of desire, rivalry, scapegoating, and the sacrificial crisis, provides a unique lens through which to examine the complexities of our relationship with AI and its role in the creation of the sacred. As individuals increasingly rely on AI recommendations, the distinction between personal choice and algorithmic manipulation becomes (...)
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  17.  5
    Algorithmic model of social processes.V. I. Shalack - forthcoming - Philosophical Problems of IT and Cyberspace.
    The development of the social sciences needs to rely on precise methods. The nomological model of explanation adopted in the natural sciences is ill-suited for the social sciences. An algorithmic model of society can be a promising solution to existing problems. In its most general form, an algorithm is a generally understood prescription for what actions to perform and in what order to achieve the desired result. Any algorithm can be represented as a set of rules of the form «If (...)
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  18.  9
    Triage of the elderly in the period of the COVID-19 pandemic crisis as a bioethical process.Peter Firment, Štefánia Andraščíková, Zuzana Novotná & Rudolf Novotný - 2021 - Ethics and Bioethics (in Central Europe) 11 (3-4):142-152.
    The paper discusses the problem of triaging the elderly in the period of the COVID-19 pandemic crisis by analyzing the triage process, caused by lack of resources, in Germany, Holland, the Czech Republic, and Slovakia. We apply inductive, deductive, and normative bioethical methods, comment on various recommendations for the indication of intensive care during a crisis, and discuss the utilitarianism of benefit maximization. As it follows from the evaluation of the elderly by the frailty parameter, medically inappropriate treatment, as (...)
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  19. Towards the emergence of meaning processes in computers from Peircean semiotics.Antônio Gomes, Ricardo Gudwin, Charbel Niño El-Hani & João Queiroz - 2007 - Mind and Society 6 (2):173-187.
    In this work, we propose a computational approach to the triadic model of Peircean semiosis (meaning processes). We investigate theoretical constraints about the feasibility of simulated semiosis. These constraints, which are basic requirements for the simulation of semiosis, refer to the synthesis of irreducible triadic relations (Sign–Object–Interpretant). We examine the internal organization of the triad S–O–I, that is, the relative position of its elements and how they relate to each other. We also suggest a multi-level approach based on self-organization principles. (...)
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  20. The Bias Dilemma: The Ethics of Algorithmic Bias in Natural-Language Processing.Oisín Deery & Katherine Bailey - 2022 - Feminist Philosophy Quarterly 8 (3).
    Addressing biases in natural-language processing (NLP) systems presents an underappreciated ethical dilemma, which we think underlies recent debates about bias in NLP models. In brief, even if we could eliminate bias from language models or their outputs, we would thereby often withhold descriptively or ethically useful information, despite avoiding perpetuating or amplifying bias. Yet if we do not debias, we can perpetuate or amplify bias, even if we retain relevant descriptively or ethically useful information. Understanding this dilemma provides for a (...)
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  21. Convergence properties of the k-means algorithms.Leon Bottou & Yoshua Bengio - 1995 - In G. Tesauro, D. Touretzky & T. Leen (eds.), Advances in Neural Information Processing Systems 7. MIT Press.
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  22. The paradox of the artificial intelligence system development process: the use case of corporate wellness programs using smart wearables.Alessandra Angelucci, Ziyue Li, Niya Stoimenova & Stefano Canali - forthcoming - AI and Society:1-11.
    Artificial intelligence systems have been widely applied to various contexts, including high-stake decision processes in healthcare, banking, and judicial systems. Some developed AI models fail to offer a fair output for specific minority groups, sparking comprehensive discussions about AI fairness. We argue that the development of AI systems is marked by a central paradox: the less participation one stakeholder has within the AI system’s life cycle, the more influence they have over the way the system will function. This means that (...)
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  23.  17
    Combining genetic algorithms and the finite element method to improve steel industrial processes.A. Sanz-García, A. V. Pernía-Espinoza, R. Fernández-Martínez & F. J. Martínez-de-Pisón-Ascacíbar - 2012 - Journal of Applied Logic 10 (4):298-308.
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  24.  34
    Cybersemiotics and the Problems of the Information-Processing Paradigm as a Candidate for a Unified Science of Information Behind Library Information Science.Søren Brier - 2004. - Library Trends 52 (3):629-657.
    As an answer to the humanistic, socially oriented critique of the information-processing paradigms used as a conceptual frame for library information science, this article formulates a broader and less objective concept of communication than that of the information-processing paradigm. Knowledge can be seen as the mental phenomenon that documents (combining signs into text, depending on the state of knowledge of the recipient) can cause through interpretation. The examination of these “correct circumstances” is an important part of information science. This article (...)
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  25.  17
    The ethics of algorithms from the perspective of the cultural history of consciousness: first look.Carlos Andres Salazar Martinez & Olga Lucia Quintero Montoya - 2023 - AI and Society 38 (2):763-775.
    Theories related to cognitive sciences, Human-in-the-loop Cyber-physical systems, data analysis for decision-making, and computational ethics make clear the need to create transdisciplinary learning, research, and application strategies to bring coherence to the paradigm of a truly human-oriented technology. Autonomous objects assume more responsibilities for individual and collective phenomena, they have gradually filtered into routines and require the incorporation of ethical practice into the professions related to the development, modeling, and design of algorithms. To make this possible, it is pertinent and (...)
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  26.  2
    Clustering and Prediction Analysis of the Coordinated Development of China’s Regional Economy Based on Immune Genetic Algorithm.Yang Yang - 2021 - Complexity 2021:1-12.
    Since the opening of the economy, China’s regional economy has developed rapidly, the overall national strength has been increasing, and the people’s living standards have been continuously improved. The issue of coordinated regional development has become an important issue in today’s society. Genetic algorithm is a kind of prediction algorithm that has developed rapidly in recent years and is widely used. However, when solving engineering prediction problems, there are often problems such as premature convergence and easiness to fall into local (...)
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  27.  53
    A New Mark of the Cognitive? Predictive Processing and Extended Cognition.Luke Kersten - 2022 - Synthese 200 (281):1-25.
    There is a longstanding debate between those who think that cognition extends into the external environment and those who think it is located squarely within the individual. Recently, a new actor has emerged on the scene, one that looks to play kingmaker. Predictive processing says that the mind/brain is fundamentally engaged in a process of minimising the difference between what is predicted about the world and how the world actually is, what is known as ‘prediction error minimisation’. The goal (...)
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  28.  14
    Computing taste: algorithms and the makers of music recommendation.Nick Seaver - 2022 - Chicago: University of Chicago Press.
    For the people who make them, music recommender systems hold a utopian promise: they can broaden listeners' horizons and help obscure musicians find audiences, taking advantage of the enormous catalogs offered by companies like Spotify, Apple Music, and their kin. But for critics, recommender systems have come to epitomize the potential harms of algorithms: they seem to reduce expressive culture to numbers, they normalize ever-broadening data collection, and they profile their users for commercial ends, tearing the social fabric into isolated (...)
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  29.  27
    Are Algorithmic Decisions Legitimate? The Effect of Process and Outcomes on Perceptions of Legitimacy of AI Decisions.Kirsten Martin & Ari Waldman - 2022 - Journal of Business Ethics 183 (3):653-670.
    Firms use algorithms to make important business decisions. To date, the algorithmic accountability literature has elided a fundamentally empirical question important to business ethics and management: Under what circumstances, if any, are algorithmic decision-making systems considered legitimate? The present study begins to answer this question. Using factorial vignette survey methodology, we explore the impact of decision importance, governance, outcomes, and data inputs on perceptions of the legitimacy of algorithmic decisions made by firms. We find that many of the procedural governance (...)
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  30.  16
    The elusive visual processing mode: Implications of the architecture/algorithm distinction.Roberta L. Klatzky - 1980 - Behavioral and Brain Sciences 3 (1):142-143.
  31.  3
    The problem of researching a recursive society: Algorithms, data coils and the looping of the social.David Beer - 2022 - Big Data and Society 9 (2).
    This commentary article outlines and explores the key problem that faces anyone interested in researching and understanding what might be thought of as a recursive society. It reflects on the problem that is posed by the layering of multiple feedback loops as a result of algorithmic sorting and data processes. This article is concerned with the difficulties of understanding the social where recursive algorithmic processes have repeatedly shaped outcomes, practices, relations and actions over time. This is not just about the (...)
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  32. AI Recruitment Algorithms and the Dehumanization Problem.Megan Fritts & Frank Cabrera - 2021 - Ethics and Information Technology (4):1-11.
    According to a recent survey by the HR Research Institute, as the presence of artificial intelligence (AI) becomes increasingly common in the workplace, HR professionals are worried that the use of recruitment algorithms will lead to a “dehumanization” of the hiring process. Our main goals in this paper are threefold: i) to bring attention to this neglected issue, ii) to clarify what exactly this concern about dehumanization might amount to, and iii) to sketch an argument for why dehumanizing the (...)
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  33.  22
    An Improved Strong Tracking Kalman Filter Algorithm for the Initial Alignment of the Shearer.Yuming Chen, Wei Li, Gaifang Xin, Hai Yang & Ting Xia - 2019 - Complexity 2019:1-12.
    The strap-down inertial navigation system is a commonly used sensor for autonomous underground navigation, which can be used for shearer positioning under a coal mine. During the process of initial alignment, inaccurate or time-varying noise covariance matrices will significantly degrade the accuracy of the initial alignment of the shearer. To overcome the performance degradation of the existing initial alignment algorithm under complex underground environment, a novel adaptive filtering algorithm is proposed by the integration of the strong tracking Kalman filter (...)
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  34.  36
    The ethics of Smart City (EoSC): moral implications of hyperconnectivity, algorithmization and the datafication of urban digital society.Patrici Calvo - 2020 - Ethics and Information Technology 22 (2):141-149.
    Cities, such as industry or the universities, are immersed in a process of digital transformation generated by the possibility and technological convergence of the Internet of Things, Big Data and Artificial Intelligence and its consequences: hyperconnectivity, datafication and algorithmization. A process of transformation towards what has come to be called as Smart Cities. The aim of this paper is to show the impacts and consequences of digital connectivity, algorithmization and the datafication of urban digital society to (...)
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  35.  24
    Multiconstrained Network Intensive Vehicle Routing Adaptive Ant Colony Algorithm in the Context of Neural Network Analysis.Shaopei Chen, Ji Yang, Yong Li & Jingfeng Yang - 2017 - Complexity:1-9.
    Neural network models have recently made significant achievements in solving vehicle scheduling problems. Adaptive ant colony algorithm provides a new idea for neural networks to solve complex system problems of multiconstrained network intensive vehicle routing models. The pheromone in the path is changed by adjusting the volatile factors in the operation process adaptively. It effectively overcomes the tendency of the traditional ant colony algorithm to fall easily into the local optimal solution and slow convergence speed to search for the (...)
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  36.  38
    Face recognition algorithms and the other‐race effect: computational mechanisms for a developmental contact hypothesis.Nicholas Furl, P. Jonathon Phillips & Alice J. O'Toole - 2002 - Cognitive Science 26 (6):797-815.
    People recognize faces of their own race more accurately than faces of other races. The “contact” hypothesis suggests that this “other‐race effect” occurs as a result of the greater experience we have with own‐ versus other‐race faces. The computational mechanisms that may underlie different versions of the contact hypothesis were explored in this study. We replicated the other‐race effect with human participants and evaluated four classes of computational face recognition algorithms for the presence of an other‐race effect. Consistent with the (...)
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  37.  19
    Social Media, Financial Algorithms and the Hack Crash.Tero Karppi & Kate Crawford - 2016 - Theory, Culture and Society 33 (1):73-92.
    ‘@AP: Breaking: Two Explosions in the White House and Barack Obama is injured’. So read a tweet sent from a hacked Associated Press Twitter account @AP, which affected financial markets, wiping out $136.5 billion of the Standard & Poor’s 500 Index’s value. While the speed of the Associated Press hack crash event and the proprietary nature of the algorithms involved make it difficult to make causal claims about the relationship between social media and trading algorithms, we argue that it helps (...)
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  38.  30
    Managing Algorithmic Accountability: Balancing Reputational Concerns, Engagement Strategies, and the Potential of Rational Discourse.Alexander Buhmann, Johannes Paßmann & Christian Fieseler - 2020 - Journal of Business Ethics 163 (2):265-280.
    While organizations today make extensive use of complex algorithms, the notion of algorithmic accountability remains an elusive ideal due to the opacity and fluidity of algorithms. In this article, we develop a framework for managing algorithmic accountability that highlights three interrelated dimensions: reputational concerns, engagement strategies, and discourse principles. The framework clarifies that accountability processes for algorithms are driven by reputational concerns about the epistemic setup, opacity, and outcomes of algorithms; that the way in which organizations practically engage with emergent (...)
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  39.  11
    Exploring in Between Small and Big: On Algorithmic Mediation, the Importance of Relation, and the Terms of Debate.Yoni Van Den Eede - 2022 - Foundations of Science 27 (4):1301-1305.
    In this contribution I reply to Heather Wiltse and Róisín Lally’s commentaries. Both stress the importance of not only looking at gaps, but also accounting for relation and connection—an endeavor which was less visible in my original piece but which I wholly support, and on which I elaborate more here, making use of the example of ‘algorithmic mediation.’ In the process, I attempt to clear up some possible misunderstandings with regard to my initial formulations, as concerns object-oriented ontology’s stance (...)
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  40.  25
    Tree-based machine learning algorithms in the Internet of Things environment for multivariate flood status prediction.Salama A. Mostafa, Bashar Ahmed Khalaf, Ahmed Mahmood Khudhur, Ali Noori Kareem & Firas Mohammed Aswad - 2021 - Journal of Intelligent Systems 31 (1):1-14.
    Floods are one of the most common natural disasters in the world that affect all aspects of life, including human beings, agriculture, industry, and education. Research for developing models of flood predictions has been ongoing for the past few years. These models are proposed and built-in proportion for risk reduction, policy proposition, loss of human lives, and property damages associated with floods. However, flood status prediction is a complex process and demands extensive analyses on the factors leading to the (...)
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  41.  57
    Algorithmic augmentation of democracy: considering whether technology can enhance the concepts of democracy and the rule of law through four hypotheticals.Paul Burgess - 2022 - AI and Society 37 (1):97-112.
    The potential use, relevance, and application of AI and other technologies in the democratic process may be obvious to some. However, technological innovation and, even, its consideration may face an intuitive push-back in the form of algorithm aversion (Dietvorst et al. J Exp Psychol 144(1):114–126, 2015). In this paper, I confront this intuition and suggest that a more ‘extreme’ form of technological change in the democratic process does not necessarily result in a worse outcome in terms of the (...)
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  42.  19
    “I don’t think people are ready to trust these algorithms at face value”: trust and the use of machine learning algorithms in the diagnosis of rare disease.Angeliki Kerasidou, Christoffer Nellåker, Aurelia Sauerbrei, Shirlene Badger & Nina Hallowell - 2022 - BMC Medical Ethics 23 (1):1-14.
    BackgroundAs the use of AI becomes more pervasive, and computerised systems are used in clinical decision-making, the role of trust in, and the trustworthiness of, AI tools will need to be addressed. Using the case of computational phenotyping to support the diagnosis of rare disease in dysmorphology, this paper explores under what conditions we could place trust in medical AI tools, which employ machine learning.MethodsSemi-structured qualitative interviews with stakeholders who design and/or work with computational phenotyping systems. The method of constant (...)
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  43.  68
    Expectation-Maximization Algorithm of Gaussian Mixture Model for Vehicle-Commodity Matching in Logistics Supply Chain.Qi Sun, Liwen Jiang & Haitao Xu - 2021 - Complexity 2021:1-11.
    A vehicle-commodity matching problem is presented for service providers to reduce the cost of the logistics system. The vehicle classification model is built as a Gaussian mixture model, and the expectation-maximization algorithm is designed to solve the parameter estimation of GMM. A nonlinear mixed-integer programming model is constructed to minimize the total cost of VCMP. The matching process between vehicle and commodity is realized by GMM-EM, as a preprocessing of the solution. The design of the vehicle-commodity matching platform for (...)
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  44. Inscrutable Processes: Algorithms, Agency, and Divisions of Deliberative Labour.Marinus Ferreira - 2021 - Journal of Applied Philosophy 38 (4):646-661.
    As the use of algorithmic decision‐making becomes more commonplace, so too does the worry that these algorithms are often inscrutable and our use of them is a threat to our agency. Since we do not understand why an inscrutable process recommends one option over another, we lose our ability to judge whether the guidance is appropriate and are vulnerable to being led astray. In response, I claim that a process being inscrutable does not automatically make its guidance inappropriate. (...)
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  45.  19
    Mass personalization: Predictive marketing algorithms and the reshaping of consumer knowledge.Baptiste Kotras - 2020 - Big Data and Society 7 (2).
    This paper focuses on the conception and use of machine-learning algorithms for marketing. In the last years, specialized service providers as well as in-house data scientists have been increasingly using machine learning to predict consumer behavior for large companies. Predictive marketing thus revives the old dream of one-to-one, perfectly adjusted selling techniques, now at an unprecedented scale. How do predictive marketing devices change the way corporations know and model their customers? Drawing from STS and the sociology of quantification, I propose (...)
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  46. Schema-Centred Unity and Process-Centred Pluralism of the Predictive Mind.Nina Poth - 2022 - Minds and Machines 32 (3):433-459.
    Proponents of the predictive processing (PP) framework often claim that one of the framework’s significant virtues is its unificatory power. What is supposedly unified are predictive processes in the mind, and these are explained in virtue of a common prediction error-minimisation (PEM) schema. In this paper, I argue against the claim that PP currently converges towards a unified explanation of cognitive processes. Although the notion of PEM systematically relates a set of posits such as ‘efficiency’ and ‘hierarchical coding’ into a (...)
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  47.  51
    On the Advantages of Distinguishing Between Predictive and Allocative Fairness in Algorithmic Decision-Making.Fabian Beigang - 2022 - Minds and Machines 32 (4):655-682.
    The problem of algorithmic fairness is typically framed as the problem of finding a unique formal criterion that guarantees that a given algorithmic decision-making procedure is morally permissible. In this paper, I argue that this is conceptually misguided and that we should replace the problem with two sub-problems. If we examine how most state-of-the-art machine learning systems work, we notice that there are two distinct stages in the decision-making process. First, a prediction of a relevant property is made. Secondly, (...)
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  48.  18
    Machine invention systems: a (r)evolution of the invention process?Dragos-Cristian Vasilescu & Michael Filzmoser - 2021 - AI and Society 36 (3):829-837.
    Current developments in fields such as quantum physics, fine arts, robotics, cognitive sciences or defense and security indicate the emergence of creative systems capable of producing new and innovative solutions through combinations of machine learning algorithms. These systems, called machine invention systems, challenge the established invention paradigm in promising the automation of – at least parts of – the innovation process. This paper’s main contribution is twofold. Based on the identified state-of-the-art examples in the above mentioned fields, key components (...)
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    Where Buddhism meets neuroscience: conversations with the Dalai Lama on the spiritual and scientific views of our minds.The Dalai Lama - 1999 - Boulder: Shambhala. Edited by Zara Houshmand, Robert B. Livingston, B. Alan Wallace, Thupten Jinpa, Patricia Smith Churchland, Antonio R. Damasio, J. Allan Hobson, Lewis L. Judd & Larry R. Squire.
    Organized by the Mind and Life Institute, this discussion addresses some of the most troublesome questions that have driven a wedge between Western science and religion. Where Buddhism Meets Neuroscience resulted from meetings of the Dalai Lama and a group of eminent neuroscientists and psychiatrists. Is the mind an ephemeral side effect of the brain's physical processes? Are there forms of consciousness so subtle that science has not yet identified them? How does consciousness happen? The Dalai Lama's incisive, open-minded approach (...)
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    The Semimeasure Property of Algorithmic Probability -- “Feature‘ or “Bug‘?Douglas Campbell - 2013 - In David L. Dowe (ed.), Algorithmic Probability and Friends. Bayesian Prediction and Artificial Intelligence: Papers From the Ray Solomonoff 85th Memorial Conference, Melbourne, Vic, Australia, November 30 -- December 2, 2011. Springer. pp. 79--90.
    An unknown process is generating a sequence of symbols, drawn from an alphabet, A. Given an initial segment of the sequence, how can one predict the next symbol? Ray Solomonoff’s theory of inductive reasoning rests on the idea that a useful estimate of a sequence’s true probability of being outputted by the unknown process is provided by its algorithmic probability (its probability of being outputted by a species of probabilistic Turing machine). However algorithmic probability is a “semimeasure”: i.e., (...)
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