Results for 'data-driven reasoning'

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  1.  76
    Knowledge-driven versus data-driven logics.Didier Dubois, Petr Hájek & Henri Prade - 2000 - Journal of Logic, Language and Information 9 (1):65--89.
    The starting point of this work is the gap between two distinct traditions in information engineering: knowledge representation and data - driven modelling. The first tradition emphasizes logic as a tool for representing beliefs held by an agent. The second tradition claims that the main source of knowledge is made of observed data, and generally does not use logic as a modelling tool. However, the emergence of fuzzy logic has blurred the boundaries between these two traditions by (...)
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  2. 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 (...)
     
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  3.  3
    Data-Driven Technology in Event-Based Vision.Ruolin Sun, Dianxi Shi, Yongjun Zhang, Ruihao Li & Ruoxiang Li - 2021 - Complexity 2021:1-19.
    Event cameras which transmit per-pixel intensity changes have emerged as a promising candidate in applications such as consumer electronics, industrial automation, and autonomous vehicles, owing to their efficiency and robustness. To maintain these inherent advantages, the trade-off between efficiency and accuracy stands as a priority in event-based algorithms. Thanks to the preponderance of deep learning techniques and the compatibility between bio-inspired spiking neural networks and event-based sensors, data-driven approaches have become a hot spot, which along with the dedicated (...)
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  4. 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 the (...)
     
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  5. 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 the (...)
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  6.  9
    Inducing semantic relations from conceptual spaces: A data-driven approach to plausible reasoning.Joaquín Derrac & Steven Schockaert - 2015 - Artificial Intelligence 228 (C):66-94.
  7. The Fate of Explanatory Reasoning in the Age of Big Data.Frank Cabrera - 2021 - Philosophy and Technology 34 (4):645-665.
    In this paper, I critically evaluate several related, provocative claims made by proponents of data-intensive science and “Big Data” which bear on scientific methodology, especially the claim that scientists will soon no longer have any use for familiar concepts like causation and explanation. After introducing the issue, in Section 2, I elaborate on the alleged changes to scientific method that feature prominently in discussions of Big Data. In Section 3, I argue that these methodological claims are in (...)
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  8.  10
    Developmental Trajectories in Diagnostic Reasoning: Understanding Data Are Confounded Develops Independently of Choosing Informative Interventions to Resolve Confounded Data.April Moeller, Beate Sodian & David M. Sobel - 2022 - Frontiers in Psychology 13.
    Two facets of diagnostic reasoning related to scientific thinking are recognizing the difference between confounded and unconfounded evidence and selecting appropriate interventions that could provide learners the evidence necessary to make an appropriate causal conclusion. The present study investigates both these abilities in 3- to 6-year-old children. We found both competence and developmental progress in the capacity to recognize that evidence is confounded. Similarly, children performed above chance in some tasks testing for the selection of a controlled test of (...)
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  9.  11
    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 (...)
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  10.  7
    Data Filtering for Automatic Classification of Rocks from Reflectance Spectra.Jonathan Moody, Ricardo Silva, Joseph Vanderwaart & Clark Glymour - unknown
    The ability to identify the mineral composition of rocks and softs is an important tool for the exploration of geological sites. For instance, NASA intends to design robots that are sufficiently autonomous to perform this task on planetary missions. Spectrometer readings provide one important source of data for identifying sites with minerals of interest. Reflectance spectrometers measure intensities of light reflected from surfaces over a range of wavelengths. Spectral intensity patterns may in some cases be sufficiently distinctive for proper (...)
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  11.  15
    A validation & verification driven ontology: An iterative process.Angelina Espinoza, Ernesto Del-Moral, Alfonso Martínez-Martínez & Nour Alí - forthcoming - Applied ontology:1-41.
    Designing an ontology that meets the needs of end-users, e.g., a medical team, is critical to support the reasoning with data. Therefore, an ontology design should be driven by the constant and efficient validation of end-users needs. However, there is not an existing standard process in knowledge engineering that guides the ontology design with the required quality. There are several ontology design processes, which range from iterative to sequential, but they fail to ensure the practical application of (...)
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  12.  13
    Afterword: data, knowledge, and e-discovery. [REVIEW]David D. Lewis - 2010 - Artificial Intelligence and Law 18 (4):481-486.
    Research in Artificial Intelligence (AI) and the Law has maintained an emphasis on knowledge representation and formal reasoning during a period when statistical, data-driven approaches have ascended to dominance within AI as a whole. Electronic discovery is a legal application area, with substantial commercial and research interest, where there are compelling arguments in favor of both empirical and knowledge-based approaches. We discuss the cases for both perspectives, as well as the opportunities for beneficial synergies.
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  13. Towards Knowledge-driven Distillation and Explanation of Black-box Models.Roberto Confalonieri, Guendalina Righetti, Pietro Galliani, Nicolas Toquard, Oliver Kutz & Daniele Porello - 2021 - In Proceedings of the Workshop on Data meets Applied Ontologies in Explainable {AI} {(DAO-XAI} 2021) part of Bratislava Knowledge September {(BAKS} 2021), Bratislava, Slovakia, September 18th to 19th, 2021. CEUR 2998.
    We introduce and discuss a knowledge-driven distillation approach to explaining black-box models by means of two kinds of interpretable models. The first is perceptron (or threshold) connectives, which enrich knowledge representation languages such as Description Logics with linear operators that serve as a bridge between statistical learning and logical reasoning. The second is Trepan Reloaded, an ap- proach that builds post-hoc explanations of black-box classifiers in the form of decision trees enhanced by domain knowledge. Our aim is, firstly, (...)
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  14. Principles of Reasoning in Historical Epidemiology.Dana Tulodziecki - 2012 - Journal of Evaluation in Clinical Practice 18 (5):968-973.
    The case of John Snow has long been important to epidemiologists and public health officials. However, despite the fact that there have been many discussions about the various aspects of Snow’s case, there has been virtually no discussion about what guided Snow’s reasoning in his coming to believe his various conclusions about cholera. Here, I want to take up this question in some detail and show that there are a number of specific principles of reasoning that played a (...)
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  15. Ontology-based fusion of sensor data and natural language.Erik Thomsen & Barry Smith - 2018 - Applied ontology 13 (4):295-333.
    We describe a prototype ontology-driven information system (ODIS) that exploits what we call Portion of Reality (POR) representations. The system takes both sensor data and natural language text as inputs and composes on this basis logically structured POR assertions. The goal of our prototype is to represent both natural language and sensor data within a single framework that is able to support both axiomatic reasoning and computation. In addition, the framework should be capable of discovering and (...)
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  16.  26
    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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  17.  14
    Data-driven sciences: From wonder cabinets to electronic databases.Bruno J. Strasser - 2012 - Studies in History and Philosophy of Science Part C: Studies in History and Philosophy of Biological and Biomedical Sciences 43 (1):85-87.
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  18.  78
    Data-driven sciences: From wonder cabinets to electronic databases.Bruno J. Strasser - 2012 - Studies in History and Philosophy of Science Part C: Studies in History and Philosophy of Biological and Biomedical Sciences 43 (1):85-87.
  19.  83
    Nurses’ ethical reasoning in cases of physical restraint in acute elderly care: a qualitative study.Sabine Goethals, Bernadette Dierckx de Casterlé & Chris Gastmans - 2013 - Medicine, Health Care and Philosophy 16 (4):983-991.
    In their practice, nurses make daily decisions that are ethically informed. An ethical decision is the result of a complex reasoning process based on knowledge and experience and driven by ethical values. Especially in acute elderly care and more specifically decisions concerning the use of physical restraint require a thoughtful deliberation of the different values at stake. Qualitative evidence concerning nurses’ decision-making in cases of physical restraint provided important insights in the complexity of decision-making as a trajectory. However (...)
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  20.  28
    DataDriven Discovery of Physical Laws.Pat Langley - 1981 - Cognitive Science 5 (1):31-54.
    BACON.3 is a production system that discovers empirical laws. Although it does not attempt to model the human discovery process in detail, it incorporates some general heuristics that can lead to discovery in a number of domains. The main heuristics detect constancies and trends in data, and lead to the formulation of hypotheses and the definition of theoretical terms. Rather than making a hard distinction between data and hypotheses, the program represents information at varying levels of description. The (...)
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  21.  50
    Understanding climate phenomena with data-driven models.Benedikt Knüsel & Christoph Baumberger - 2020 - Studies in History and Philosophy of Science Part A 84 (C):46-56.
    In climate science, climate models are one of the main tools for understanding phenomena. Here, we develop a framework to assess the fitness of a climate model for providing understanding. The framework is based on three dimensions: representational accuracy, representational depth, and graspability. We show that this framework does justice to the intuition that classical process-based climate models give understanding of phenomena. While simple climate models are characterized by a larger graspability, state-of-the-art models have a higher representational accuracy and representational (...)
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  22.  34
    Data Driven Methods for Nonlinear Granger Causality: Climate Teleconnection Mechanisms.Tianjiao Chu, David Danks & Clark Glymour - unknown
    Tianjaou Chu, David Danks, and Clark Glymour. Data Driven Methods for Nonlinear Granger Causality: Climate Teleconnection Mechanisms.
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  23.  32
    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 proposed (...)
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  24.  5
    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, groups (...)
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  25.  16
    Data-Driven Decision Making and Dewey's Science of Education.Natalie Schelling & Lance E. Mason - 2021 - Education and Culture 37 (1):41-59.
  26.  6
    The Role of Students’ Beliefs When Critically Reasoning From Multiple Contradictory Sources of Information in Performance Assessments.Olga Zlatkin-Troitschanskaia, Klaus Beck, Jennifer Fischer, Dominik Braunheim, Susanne Schmidt & Richard J. Shavelson - 2020 - Frontiers in Psychology 11:565910.
    Critical reasoning (CR) when confronted with contradictory information from multiple sources is a crucial ability in a knowledge-based society and digital world. Using information without critically reflecting on the content and its quality may lead to the acceptance of information based on unwarranted claims. Previous personal beliefs are assumed to play a decisive role when it comes to critically differentiating between assertions and claims and warranted knowledge and facts. The role of generic epistemic beliefs on critical stance and attitude (...)
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  27.  11
    Data-driven learning and academic oral discourse.Thi Thu Hoai Masset-Martin Tran - 2023 - Corpus 24 (24).
    Dans le cadre de ce travail, nous présentons une expérimentation menée auprès d’un public allophone inscrit à une formation universitaire. Ce travail a pour objectif de relever, d’une part, les spécificités dans les productions orales de ce public, et d’autre part, de démontrer l’intérêt d’un apprentissage sur corpus afin de construire un exposé structuré. Cette étude permet de s’ouvrir à d’autres perspectives didactiques en partant d’un corpus d’apprenants.
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  28.  3
    A Data-Driven Expectation Prediction Framework Based on Social Exchange Theory.Enguo Cao, Jinzhi Jiang, Yanjun Duan & Hui Peng - 2022 - Frontiers in Psychology 12.
    Along with the rapid application of new information technologies, the data-driven era is coming, and online consumption platforms are booming. However, massive user data have not been fully developed for design value, and the application of data-driven methods of requirement engineering needs to be further expanded. This study proposes a data-driven expectation prediction framework based on social exchange theory, which analyzes user expectations in the consumption process, and predicts improvement plans to assist designers (...)
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  29.  18
    Data-Driven Superheating Control of Organic Rankine Cycle Processes.Jianhua Zhang, Xiao Tian, Zhengmao Zhu & Mifeng Ren - 2018 - Complexity 2018:1-8.
    In this paper, a data-driven superheating control strategy is developed for organic Rankine cycle processes. Due to non-Gaussian stochastic disturbances imposed on heat sources, the quantized minimum error entropy is adopted to construct the performance index of superheating control systems. Furthermore, particle swarm optimization algorithm is applied to obtain optimal control law by minimizing the performance index. The implementation procedures of the presented superheating control system in an ORC-based waste heat recovery process are presented. The simulation results testify (...)
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  30.  9
    Data-driven approaches to empirical discovery.Pat Langley & Jan M. Zytkow - 1989 - Artificial Intelligence 40 (1-3):283-312.
  31.  33
    Sentiment or Reason?: Can Research on Offenders Tell Us?Simon Wilson - 2011 - Philosophy, Psychiatry, and Psychology 18 (4):365-366.
    Tankersley has provided an interesting collection of data about various groups of antisocial individuals. Is this a paper about the moral reasoning of psychopaths, or is it an attempt to address a philosophical question—whether moral behavior is primarily driven by emotions (moral sentimentalism) or by reasons (moral rationalism)—empirically? I think it attempts a little of both, although I concentrate on the latter. -/- The trouble with much of the literature on psychopathy is the terminological confusion, and Tankersley (...)
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  32.  50
    Data-Driven Hybrid Internal Temperature Estimation Approach for Battery Thermal Management.Kailong Liu, Kang Li, Qiao Peng, Yuanjun Guo & Li Zhang - 2018 - Complexity 2018:1-15.
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  33.  4
    Data-Driven Robust Optimization of the Vehicle Routing Problem with Uncertain Customers.Jingling Zhang, Yusu Sun, Qinbing Feng, Yanwei Zhao & Zheng Wang - 2022 - Complexity 2022:1-15.
    With the increasing proportion of the logistics industry in the economy, the study of the vehicle routing problem has practical significance for economic development. Based on the vehicle routing problem, the customer presence probability data are introduced as an uncertain random parameter, and the VRP model of uncertain customers is established. By optimizing the robust uncertainty model, combined with a data-driven kernel density estimation method, the distribution feature set of historical data samples can then be fitted, (...)
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  34.  12
    A Data-Driven Approach to Optimizing Medical-Legal Partnership Performance and Joint Advocacy.Andrew F. Beck, Adrienne W. Henize, Melissa D. Klein, Alexandra M. S. Corley, Elaine E. Fink & Robert S. Kahn - 2023 - Journal of Law, Medicine and Ethics 51 (4):880-888.
    Medical-legal partnerships connect legal advocates to healthcare providers and settings. Maintaining effectiveness of medical-legal partnerships and consistently identifying opportunities for innovation and adaptation takes intentionality and effort. In this paper, we discuss ways in which our use of data and quality improvement methods have facilitated advocacy at both patient (client) and population levels as we collectively pursue better, more equitable outcomes.
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  35.  11
    A data-driven machine learning approach for brain-computer interfaces targeting lower limb neuroprosthetics.Arnau Dillen, Elke Lathouwers, Aleksandar Miladinović, Uros Marusic, Fakhredinne Ghaffari, Olivier Romain, Romain Meeusen & Kevin De Pauw - 2022 - Frontiers in Human Neuroscience 16.
    Prosthetic devices that replace a lost limb have become increasingly performant in recent years. Recent advances in both software and hardware allow for the decoding of electroencephalogram signals to improve the control of active prostheses with brain-computer interfaces. Most BCI research is focused on the upper body. Although BCI research for the lower extremities has increased in recent years, there are still gaps in our knowledge of the neural patterns associated with lower limb movement. Therefore, the main objective of this (...)
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  36.  8
    A data-driven machine learning approach for brain-computer interfaces targeting lower limb neuroprosthetics.Arnau Dillen, Elke Lathouwers, Aleksandar Miladinović, Uros Marusic, Fakhreddine Ghaffari, Olivier Romain, Romain Meeusen & Kevin De Pauw - 2022 - Frontiers in Human Neuroscience 16.
    Prosthetic devices that replace a lost limb have become increasingly performant in recent years. Recent advances in both software and hardware allow for the decoding of electroencephalogram signals to improve the control of active prostheses with brain-computer interfaces. Most BCI research is focused on the upper body. Although BCI research for the lower extremities has increased in recent years, there are still gaps in our knowledge of the neural patterns associated with lower limb movement. Therefore, the main objective of this (...)
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  37.  11
    A Data-Driven Parameter Adaptive Clustering Algorithm Based on Density Peak.Tao Du, Shouning Qu & Qin Wang - 2018 - Complexity 2018:1-14.
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  38.  8
    Data-Driven Finite Element Models of Passive Filamentary Networks.Brian Adam & Sorin Mitran - 2018 - Complexity 2018:1-7.
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  39.  4
    A data-driven, hyper-realistic method for visualizing individual mental representations of faces.Daniel N. Albohn, Stefan Uddenberg & Alexander Todorov - 2022 - Frontiers in Psychology 13.
    Research in person and face perception has broadly focused on group-level consensus that individuals hold when making judgments of others. However, a growing body of research demonstrates that individual variation is larger than shared, stimulus-level variation for many social trait judgments. Despite this insight, little research to date has focused on building and explaining individual models of face perception. Studies and methodologies that have examined individual models are limited in what visualizations they can reliably produce to either noisy and blurry (...)
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  40.  7
    Data-Driven Detection of Figurative Language Use in Electronic Language Resources.Wim Peters & Yorick Wilks - 2003 - Metaphor and Symbol 18 (3):161-173.
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  41.  7
    Data-driven type checking in open domain question answering.Stefan Schlobach, David Ahn, Maarten de Rijke & Valentin Jijkoun - 2007 - Journal of Applied Logic 5 (1):121-143.
  42.  27
    Datadriven approaches to information access.Susan Dumais - 2003 - Cognitive Science 27 (3):491-524.
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  43.  5
    Data-Driven Method for Passenger Path Choice Inference in Congested Subway Network.Guanghui Su, Bingfeng Si, Fang Zhao & He Li - 2022 - Complexity 2022:1-13.
    In a congested large-scale subway network, the distribution of passenger flow in space-time dimension is very complex. Accurate estimation of passenger path choice is very important to understand the passenger flow distribution and even improve the operation service level. The availability of automated fare collection data, timetable, and network topology data opens up a new opportunity to study this topic based on multisource data. A probability model is proposed in this study to calculate the individual passenger’s path (...)
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  44.  31
    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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  45.  3
    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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  46.  9
    Data-Driven Dialogue Models: Applying Formal and Computational Tools to the Study of Financial And Moral Dialogues.Olena Yaskorska-Shah - 2020 - Studies in Logic, Grammar and Rhetoric 63 (1):185-208.
    This paper proposes two formal models for understanding real-life dialogues, aimed at capturing argumentative structures performatively enacted during conversations. In the course of the investigation, two types of discourse with a high degree of well-structured argumentation were chosen: moral debate and financial communication. The research project found itself confronted by a need to analyse, structure and formally describe large volumes of textual data, where this called for the application of computational tools. It is expected that the results of the (...)
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  47.  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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  48.  28
    Data driven Markov Chain Monte Carlo algorithm.Alan Yuille & Daniel Kersten - 2006 - Trends in Cognitive Sciences 10 (7):301-308.
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  49.  3
    Data-Driven Research on the Matching Degree of Eyes, Eyebrows and Face Shapes.Jian Zhao, Meng Zhang, Chen He & Kainan Zuo - 2019 - Frontiers in Psychology 10.
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  50.  58
    Interest-driven reasoning.John L. Pollock - 1988 - Synthese 74 (3):369 - 390.
1 — 50 / 987