Results for 'data mining, knowledge representation, decision tree, MDL'

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  1.  19
    複合属性による領域分割を用いた決定木 Dtmacc.Inazumi Hiroshige Kushi Yusuke - 2002 - Transactions of the Japanese Society for Artificial Intelligence 17:44-52.
    A decision tree is one of the machine learning techniques and also one of the major knowledge representations of data mining results.This is because it is easy to understand its meaning for human analysts.Even ID3, the representative algorithm, is known to exhibit remarkable performance deterioration under certain circumstances, particularly due to strong correlation between attributes representing the class of examples. One of the approaches to get more preferable decision trees is pre-processing the training data to (...)
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  2. Ontology-based knowledge representation of experiment metadata in biological data mining.Scheuermann Richard, Kong Megan, Dahlke Carl, Cai Jennifer, Lee Jamie, Qian Yu, Squires Burke, Dunn Patrick, Wiser Jeff, Hagler Herb, Herb Hagler, Barry Smith & David Karp - 2009 - In Jake Chen & Stefano Lonardi (eds.), Biological Data Mining. Boca Raton: Chapman Hall / Taylor and Francis. pp. 529-559.
    According to the PubMed resource from the U.S. National Library of Medicine, over 750,000 scientific articles have been published in the ~5000 biomedical journals worldwide in the year 2007 alone. The vast majority of these publications include results from hypothesis-driven experimentation in overlapping biomedical research domains. Unfortunately, the sheer volume of information being generated by the biomedical research enterprise has made it virtually impossible for investigators to stay aware of the latest findings in their domain of interest, let alone to (...)
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  3.  6
    The Evaluation of Online Education Course Performance Using Decision Tree Mining Algorithm.Yongxian Yang - 2021 - Complexity 2021:1-13.
    With the continuous development of “Internet + Education”, online learning has become a hot topic of concern. Decision tree is an important technique for solving classification problems from a set of random and unordered data sets. Decision tree is not only an effective method to generate classifier from data set, but also an active research field in data mining technology. The decision tree mining algorithm can classify the data, grasp the teaching process of (...)
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  4.  85
    Data Mining and Privacy of Social Network Sites’ Users: Implications of the Data Mining Problem.Yeslam Al-Saggaf & Md Zahidul Islam - 2015 - Science and Engineering Ethics 21 (4):941-966.
    This paper explores the potential of data mining as a technique that could be used by malicious data miners to threaten the privacy of social network sites users. It applies a data mining algorithm to a real dataset to provide empirically-based evidence of the ease with which characteristics about the SNS users can be discovered and used in a way that could invade their privacy. One major contribution of this article is the use of the decision (...)
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  5.  5
    Online English Teaching Course Score Analysis Based on Decision Tree Mining Algorithm.Xiaojun Jiang - 2021 - Complexity 2021:1-10.
    With the advent of the Big Data era, information and data are growing in spurts, fueling the deep application of information technology in all levels of society. It is especially important to use data mining technology to study the industry trends behind the data and to explore the information value contained in the massive data. As teaching and learning in higher education continue to advance, student academic and administrative data are growing at a rapid (...)
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  6.  4
    Intelligent Data Mining of Computer-Aided Extension Residential Building Design Based on Algorithm Library.Gao Zhihui & Zou Guangtian - 2021 - Complexity 2021:1-9.
    In recent years, with the development of construction industry, more scientific, systematic, fast, and intelligent calculation methods are needed to coordinate urban development and fierce market competition, and mathematical algorithm library plays an important role in artificial intelligence. Therefore, the author uses computer mathematical algorithm and extension theory to study and analyze the residential building design and intelligent data mining. It is found that the research of the computer-aided expression method of extension building planning is mainly the expression of (...)
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  7.  76
    Decision support systems for police: Lessons from the application of data mining techniques to “soft” forensic evidence. [REVIEW]Giles Oatley, Brian Ewart & John Zeleznikow - 2006 - Artificial Intelligence and Law 14 (1-2):35-100.
    The paper sets out the challenges facing the Police in respect of the detection and prevention of the volume crime of burglary. A discussion of data mining and decision support technologies that have the potential to address these issues is undertaken and illustrated with reference the authors’ work with three Police Services. The focus is upon the use of “soft” forensic evidence which refers to modus operandi and the temporal and geographical features of the crime, rather than “hard” (...)
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  8.  6
    An Exploration of Factors Linked to Academic Performance in PISA 2018 Through Data Mining Techniques.Adriana Gamazo & Fernando Martínez-Abad - 2020 - Frontiers in Psychology 11.
    International large-scale assessments, such as PISA, provide structured and static data. However, due to its extensive databases, several researchers place it as a reference in Big Data in Education. With the goal of exploring which factors at country, school and student level have a higher relevance in predicting student performance, this paper proposes an Educational Data Mining approach to detect and analyze factors linked to academic performance. To this end, we conducted a secondary data analysis and (...)
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  9. Towards Knowledge-driven Distillation and Explanation of Black-box Models.Roberto Confalonieri, Guendalina Righetti, Pietro Galliani, Nicolas Toquard, Oliver Kutz & Daniele Porello - 2021 - In Roberto Confalonieri, Guendalina Righetti, Pietro Galliani, Nicolas Toquard, Oliver Kutz & Daniele Porello (eds.), 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 (...)
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  10.  9
    Application of data mining technology in college mental health education.Xiaocong Sun - 2022 - Frontiers in Psychology 13.
    In order to improve education and teaching methods and meet the “heart” needs of college students in the era of big data, this paper analyzes the application of data mining technology in college mental health education, and introduces database technology and decision tree algorithm to support college mental health work. This process verifies the feasibility of this kind of system with the help of an example. Using the test standards outlined in this document, 1.5 previous test tasks (...)
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  11.  34
    Knowledge representation and acquisition for ethical AI: challenges and opportunities.Vaishak Belle - 2023 - Ethics and Information Technology 25 (1):1-12.
    Machine learning (ML) techniques have become pervasive across a range of different applications, and are now widely used in areas as disparate as recidivism prediction, consumer credit-risk analysis, and insurance pricing. Likewise, in the physical world, ML models are critical components in autonomous agents such as robotic surgeons and self-driving cars. Among the many ethical dimensions that arise in the use of ML technology in such applications, analyzing morally permissible actions is both immediate and profound. For example, there is the (...)
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  12.  23
    Formal ontologies in biomedical knowledge representation.S. Schulz & L. Jansen - 2013 - In M.-C. Jaulent, C. U. Lehmann & B. Séroussi (eds.), Yearbook of Medical Informatics 8. pp. 132-146.
    Objectives: Medical decision support and other intelligent applications in the life sciences depend on increasing amounts of digital information. Knowledge bases as well as formal ontologies are being used to organize biomedical knowledge and data. However, these two kinds of artefacts are not always clearly distinguished. Whereas the popular RDF(S) standard provides an intuitive triple-based representation, it is semantically weak. Description logics based ontology languages like OWL-DL carry a clear-cut semantics, but they are computationally expensive, and (...)
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  13.  30
    Comparing assessments of the decision-making competencies of psychiatric inpatients as provided by physicians, nurses, relatives and an assessment tool.Rahime Er & Mine Sehiralti - 2014 - Journal of Medical Ethics 40 (7):453-457.
    Objective To compare assessments of the decision-making competencies of psychiatric inpatients as provided by physicians, nurses, relatives and an assessment tool.Methods This study was carried out at the psychiatry clinic of Kocaeli University Hospital from June 2007 to February 2008. The decision-making competence of the 83 patients who participated in the study was assessed by physicians, nurses, relatives and MacCAT-T.Results Of the 83 patients, the relatives of 73.8% of them, including the parents of 47.7%, were interviewed during the (...)
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  14.  1
    Predicting insurance claims through a variety of data mining techniques: facing lots of missing values and moderate class-imbalanced levels.Paola Santana-Morales & Antonio J. Tallón-Ballesteros - forthcoming - Logic Journal of the IGPL.
    This paper copes with a real-world classification problem related to the management of claims received in an insurance company. The way to obtain the classifier is not easy due to the high amount of missing values as well as the inherent imbalanced scenario within class labels. Once the data partition has been done, the training set is submitted to an intensive double grid search in order to obtain the most promising type of missing value imputation approach and then a (...)
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  15.  44
    Construction of Student Information Management System Based on Data Mining and Clustering Algorithm.XueHong Yin - 2021 - Complexity 2021:1-11.
    Data mining is a new technology developed in recent years. Through data mining, people can discover the valuable and potential knowledge hidden behind the data and provide strong support for scientifically making various business decisions. This paper applies data mining technology to the college student information management system, mines student evaluation information data, uses data mining technology to design student evaluation information modules, and digs out the factors that affect student development and the (...)
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  16.  20
    Influence of context availability and soundness in predicting soil moisture using the Context-Aware Data Mining approach.Anca Avram, Oliviu Matei, Camelia-M. Pintea & Petrica C. Pop - 2023 - Logic Journal of the IGPL 31 (4):762-774.
    Knowing the level of quality from which the context is no longer valuable in a Context-Aware Data Mining (CADM) system is an important information. The main goal of this research is to study the variations of the predictions in case of different levels of noise and missing context data in practical scenarios for predicting soil moisture. The research has been performed on two locations from the Transylvanian Plain, Romania and two locations from Canada. The values predicted for the (...)
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  17.  7
    The Influence of Knowledge Base on the Dual-Innovation Performance of Firms.Liping Zhang, Hailin Li, Chunpei Lin & Xiaoji Wan - 2022 - Frontiers in Psychology 13.
    Dual innovation, which includes exploratory innovation and exploitative innovation, is crucial for firms to obtain a sustainable competitive advantage. The knowledge base of firms greatly influences or even determines the scope, direction, and path of their dual-innovation activities, which drive their innovation process and produce different innovation performances. This study uses data source patents obtained by 285 focal firms in the Chinese new-energy vehicle industry in the period 2015–2020. Five knowledge-base features are selected by analyzing the correlation (...)
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  18.  11
    Flood Detection and Susceptibility Mapping Using Sentinel-1 Time Series, Alternating Decision Trees, and Bag-ADTree Models.Ayub Mohammadi, Khalil Valizadeh Kamran, Sadra Karimzadeh, Himan Shahabi & Nadhir Al-Ansari - 2020 - Complexity 2020:1-21.
    Flooding is one of the most damaging natural hazards globally. During the past three years, floods have claimed hundreds of lives and millions of dollars of damage in Iran. In this study, we detected flood locations and mapped areas susceptible to floods using time series satellite data analysis as well as a new model of bagging ensemble-based alternating decision trees, namely, bag-ADTree. We used Sentinel-1 data for flood detection and time series analysis. We employed twelve conditioning parameters (...)
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  19. Defeasible reasoning about utilities and decision trees.R. Loui - 1990 - In Kyburg Henry E., Loui Ronald P. & Carlson Greg N. (eds.), Knowledge Representation and Defeasible Reasoning. Kluwer Academic Publishers. pp. 345--359.
  20.  7
    Data Mining Approach Improving Decision-Making Competency along the Business Digital Transformation Journey: A Case Study – Home Appliances after Sales Service.Hyrmet Mydyti - 2021 - Seeu Review 16 (1):45-65.
    Data mining, as an essential part of artificial intelligence, is a powerful digital technology, which makes businesses predict future trends and alleviate the process of decision-making and enhancing customer experience along their digital transformation journey. This research provides a practical implication – a case study - to provide guidance on analyzing information and predicting repairs in home appliances after sales services business. The main benefit of this practical comparative study of various classification algorithms, by using the Weka tool, (...)
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  21.  43
    Discovering Psychological Principles by Mining Naturally Occurring Data Sets.Robert L. Goldstone & Gary Lupyan - 2016 - Topics in Cognitive Science 8 (3):548-568.
    The very expertise with which psychologists wield their tools for achieving laboratory control may have had the unwelcome effect of blinding psychologists to the possibilities of discovering principles of behavior without conducting experiments. When creatively interrogated, a diverse range of large, real-world data sets provides powerful diagnostic tools for revealing principles of human judgment, perception, categorization, decision-making, language use, inference, problem solving, and representation. Examples of these data sets include patterns of website links, dictionaries, logs of group (...)
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  22.  52
    Data barns, ambient intelligence and cloud computing: the tacit epistemology and linguistic representation of Big Data.Lisa Portmess & Sara Tower - 2015 - Ethics and Information Technology 17 (1):1-9.
    The explosion of data grows at a rate of roughly five trillion bits a second, giving rise to greater urgency in conceptualizing the infosphere and understanding its implications for knowledge and public policy. Philosophers of technology and information technologists alike who wrestle with ontological and epistemological questions of digital information tend to emphasize, as Floridi does, information as our new ecosystem and human beings as interconnected informational organisms, inforgs at home in ambient intelligence. But the linguistic and conceptual (...)
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  23.  14
    An improved association rule mining algorithm for large data.Saeed Rubaiee, Mehedi Masud, Roobaea Alroobaea, Gurjot Singh Gaba, Zhou Jian & Zhenyi Zhao - 2021 - Journal of Intelligent Systems 30 (1):750-762.
    The data with the advancement of information technology are increasing on daily basis. The data mining technique has been applied to various fields. The complexity and execution time are the major factors viewed in existing data mining techniques. With the rapid development of database technology, many data storage increases, and data mining technology has become more and more important and expanded to various fields in recent years. Association rule mining is the most active research technique (...)
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  24.  3
    Rough Set Approach toward Data Modelling and User Knowledge for Extracting Insights.Xiaoqun Liao, Shah Nazir, Junxin Shen, Bingliang Shen & Sulaiman Khan - 2021 - Complexity 2021:1-9.
    Information is considered to be the major part of an organization. With the enhancement of technology, the knowledge level is increasing with the passage of time. This increase of information is in volume, velocity, and variety. Extracting meaningful insights is the dire need of an individual from such information and knowledge. Visualization is a key tool and has become one of the most significant platforms for interpreting, extracting, and communicating information. The current study is an endeavour toward (...) modelling and user knowledge by using a rough set approach for extracting meaningful insights. The technique has used different rough set algorithms such as K-nearest neighbours, decision rules, decomposition tree, and local transfer function classifier for an experimental setup. The approach has found its accuracy for the optimal use of data modelling and user knowledge. The experimental setup of the proposed method is validated by using the dataset available in the UCI web repository. Results of the proposed study show that the model is effective and efficient with an accuracy of 96% for KNN, 87% for decision rules, 91% for decision trees, 85.04% for cross validation architecture, and 94.3% for local transfer function classifier. The validity of the proposed classification algorithms is tested using different performance metrics such as F-score, precision, accuracy, recall, specificity, and misclassification rates. For all these performance metrics, the KNN classifier outperformed, and this high performance shows the applicability of the KNN classifier in the proposed problem. (shrink)
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  25. Data Mining, Retrieval and Management-Using Rough Set to Find the Factors That Negate the Typical Dependency of a Decision Attribute on Some Condition Attributes.Honghai Feng, Hao Xu, Baoyan Liu, Bingru Yang, Zhuye Gao & Yueli Li - 2006 - In O. Stock & M. Schaerf (eds.), Lecture Notes in Computer Science. Springer Verlag. pp. 713-720.
  26.  27
    Using Decision Trees and Soft Labeling to Filter Mislabeled Data.Xinchuan Zeng & Tony Martinez - 2008 - Journal of Intelligent Systems 17 (4):331-354.
  27.  20
    Decision tree algorithms for image data type identification.Khoa Nguyen, Dat Tran, Wanli Ma & Dharmendra Sharma - 2017 - Logic Journal of the IGPL 25 (1):67-82.
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  28.  4
    The Analysis of Internet Commercial Judicial Based on Big Data Alliance and Mining Service Process Model.Zhao Zhonglong & Wang Hongliang - 2021 - Complexity 2021:1-17.
    At present, a series of economic structural changes created by the network economy have brought challenges to the entire economy and society. Traditional social commerce has also suffered severe tests under the background of network economy and global integration, and the rise and development of network commercial activities lack legal constraints. Based on the Big Data technology, in view of the characteristics of data mining services, this paper expands and changes the traditional model and proposes the Big (...) alliance data mining service process model. Moreover, this paper uses intelligent decision-making theory and knowledge reasoning methods to construct a fast-responding, service-reusable, and intelligent service model to realize the scalability of data mining services. In addition, this paper constructs system function modules according to the requirements of Internet commercial judicial data mining and verifies the performance of the system constructed in this paper through experimental analysis. The research results show that the system constructed in this paper has certain practical effects. (shrink)
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  29.  12
    Knowledge Representations Derived From Semantic Fluency Data.Jeffrey C. Zemla - 2022 - Frontiers in Psychology 13.
    The semantic fluency task is commonly used as a measure of one’s ability to retrieve semantic concepts. While performance is typically scored by counting the total number of responses, the ordering of responses can be used to estimate how individuals or groups organize semantic concepts within a category. I provide an overview of this methodology, using Alzheimer’s disease as a case study for how the approach can help advance theoretical questions about the nature of semantic representation. However, many open questions (...)
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  30.  32
    From data to knowledge: implications of data mining.Joseph S. Fulda - 1997 - Acm Sigcas Computers and Society 27 (4):28.
  31.  64
    A Cognition Knowledge Representation Model Based on Multidimensional Heterogeneous Data.Dong Zhong, Yi-An Zhu, Lanqing Wang, Junhua Duan & Jiaxuan He - 2020 - Complexity 2020:1-17.
    The information in the working environment of industrial Internet is characterized by diversity, semantics, hierarchy, and relevance. However, the existing representation methods of environmental information mostly emphasize the concepts and relationships in the environment and have an insufficient understanding of the items and relationships at the instance level. There are also some problems such as low visualization of knowledge representation, poor human-machine interaction ability, insufficient knowledge reasoning ability, and slow knowledge search speed, which cannot meet the needs (...)
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  32.  9
    Advances in Artificial Intelligence: From Theory to Practice: 30th International Conference on Industrial Engineering and Other Applications of Applied Intelligent Systems, Iea/Aie 2017, Arras, France, June 27-30, 2017, Proceedings, Part I.Salem Benferhat, Karim Tabia & Moonis Ali (eds.) - 2017 - Springer Verlag.
    The two-volume set LNCS 10350 and 10351 constitutes the thoroughly refereed proceedings of the 30th International Conference on Industrial, Engineering and Other Applications of Applied Intelligent Systems, IEA/AIE 2017, held in Arras, France, in June 2017. The 70 revised full papers presented together with 45 short papers and 3 invited talks were carefully reviewed and selected from 180 submissions. They are organized in topical sections: constraints, planning, and optimization; data mining and machine learning; sensors, signal processing, and data (...)
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  33. KDD, data mining, and the challenge for normative privacy.Herman T. Tavani - 1999 - Ethics and Information Technology 1 (4):265-273.
    The present study examines certain challenges that KDD (Knowledge Discovery in Databases) in general and data mining in particular pose for normative privacy and public policy. In an earlier work (see Tavani, 1999), I argued that certain applications of data-mining technology involving the manipulation of personal data raise special privacy concerns. Whereas the main purpose of the earlier essay was to show what those specific privacy concerns are and to describe how exactly those concerns have been (...)
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  34.  44
    Better decision support through exploratory discrimination-aware data mining: foundations and empirical evidence.Bettina Berendt & Sören Preibusch - 2014 - Artificial Intelligence and Law 22 (2):175-209.
    Decision makers in banking, insurance or employment mitigate many of their risks by telling “good” individuals and “bad” individuals apart. Laws codify societal understandings of which factors are legitimate grounds for differential treatment —or are considered unfair discrimination, including gender, ethnicity or age. Discrimination-aware data mining implements the hope that information technology supporting the decision process can also keep it free from unjust grounds. However, constraining data mining to exclude a fixed enumeration of potentially discriminatory features (...)
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  35. Ethical issues in web data mining.Lita van Wel & Lambèr Royakkers - 2004 - Ethics and Information Technology 6 (2):129-140.
    Web mining refers to the whole of data miningand related techniques that are used toautomatically discover and extract informationfrom web documents and services. When used in abusiness context and applied to some type ofpersonal data, it helps companies to builddetailed customer profiles, and gain marketingintelligence. Web mining does, however, pose athreat to some important ethical values likeprivacy and individuality. Web mining makes itdifficult for an individual to autonomouslycontrol the unveiling and dissemination of dataabout his/her private life. To study (...)
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  36.  20
    A New Robust Classifier on Noise Domains: Bagging of Credal C4.5 Trees.Joaquín Abellán, Javier G. Castellano & Carlos J. Mantas - 2017 - Complexity:1-17.
    The knowledge extraction from data with noise or outliers is a complex problem in the data mining area. Normally, it is not easy to eliminate those problematic instances. To obtain information from this type of data, robust classifiers are the best option to use. One of them is the application of bagging scheme on weak single classifiers. The Credal C4.5 model is a new classification tree procedure based on the classical C4.5 algorithm and imprecise probabilities. It (...)
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  37.  5
    Transforming Data Into Knowledge: Applications of Data-Based Decision Making to Improve Instructional Practice:A Special Issue of the Journal of Education for Students Placed at Risk.Jeffrey C. Wayman (ed.) - 2005 - Routledge.
    First Published in 2005. Routledge is an imprint of Taylor & Francis, an informa company.
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  38.  9
    Prescription Data Mining and the Protection of Patients' Interests.David Orentlicher - 2010 - Journal of Law, Medicine and Ethics 38 (1):74-84.
    Pharmaceutical companies have long relied on direct marketing of their drugs to physicians through one-on-one meetings with sales representatives. This practice of “detailing” is substantial in its costs and its number of participants. Every year, pharmaceutical companies spend billions of dollars on millions of visits to physicians by tens of thousands of sales representatives.Critics have argued that drug detailing results in sub-optimal prescribing decisions by physicians, compromising patient health and driving up spending on medical care. In this view, physicians often (...)
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  39.  40
    Explainable Artificial Intelligence in Data Science.Joaquín Borrego-Díaz & Juan Galán-Páez - 2022 - Minds and Machines 32 (3):485-531.
    A widespread need to explain the behavior and outcomes of AI-based systems has emerged, due to their ubiquitous presence. Thus, providing renewed momentum to the relatively new research area of eXplainable AI (XAI). Nowadays, the importance of XAI lies in the fact that the increasing control transference to this kind of system for decision making -or, at least, its use for assisting executive stakeholders- already affects many sensitive realms (as in Politics, Social Sciences, or Law). The decision-making power (...)
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  40.  5
    Predicting Students' Attitudes Toward Collaboration: Evidence From Structural Equation Model Trees and Forests.Jialing Li, Minqiang Zhang, Yixing Li, Feifei Huang & Wei Shao - 2021 - Frontiers in Psychology 12.
    Numerous studies have shed some light on the importance of associated factors of collaborative attitudes. However, most previous studies aimed to explore the influence of these factors in isolation. With the strategy of data-driven decision making, the current study applied two data mining methods to elucidate the most significant factors of students' attitudes toward collaboration and group students to draw a concise model, which is beneficial for educators to focus on key factors and make effective interventions at (...)
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  41.  7
    Data Mining Algorithm for Demand Forecast Analysis on Flash Sales Platform.Mingyang Zhang, Yixin Wang & Zhiguo Wu - 2021 - Complexity 2021:1-12.
    With the development of the digital economy, the emerging marketing strategy of the e-commerce flash sales has been changing the traditional purchasing habits of customers. This imposes new decision-making challenges for companies involved in flash sales. It is important for companies to build the accurate product demand forecast analysis focusing on the characteristics of the flash sales and customer behaviors. In this paper, VIPS is taken as a case study with the key focus on how sentiment factors in customer (...)
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  42.  43
    Fairer machine learning in the real world: Mitigating discrimination without collecting sensitive data.Reuben Binns & Michael Veale - 2017 - Big Data and Society 4 (2):205395171774353.
    Decisions based on algorithmic, machine learning models can be unfair, reproducing biases in historical data used to train them. While computational techniques are emerging to address aspects of these concerns through communities such as discrimination-aware data mining and fairness, accountability and transparency machine learning, their practical implementation faces real-world challenges. For legal, institutional or commercial reasons, organisations might not hold the data on sensitive attributes such as gender, ethnicity, sexuality or disability needed to diagnose and mitigate emergent (...)
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  43. Foundations for Knowledge-Based Decision Theories.Zeev Goldschmidt - forthcoming - Australasian Journal of Philosophy.
    Several philosophers have proposed Knowledge-Based Decision Theories (KDTs)—theories that require agents to maximize expected utility as yielded by utility and probability functions that depend on the agent’s knowledge. Proponents of KDTs argue that such theories are motivated by Knowledge-Reasons norms that require agents to act only on reasons that they know. However, no formal derivation of KDTs from Knowledge-Reasons norms has been suggested, and it is not clear how such norms justify the particular ways in (...)
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  44.  20
    A Novel Fuzzy Algorithm to Introduce New Variables in the Drug Supply Decision-Making Process in Medicine.Jose M. Gonzalez-Cava, José Antonio Reboso, José Luis Casteleiro-Roca, José Luis Calvo-Rolle & Juan Albino Méndez Pérez - 2018 - Complexity 2018:1-15.
    One of the main challenges in medicine is to guarantee an appropriate drug supply according to the real needs of patients. Closed-loop strategies have been widely used to develop automatic solutions based on feedback variables. However, when the variable of interest cannot be directly measured or there is a lack of knowledge behind the process, it turns into a difficult issue to solve. In this research, a novel algorithm to approach this problem is presented. The main objective of this (...)
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  45.  6
    Using Selected Data-Mining Methods in the Analysis of Data Concerning the Attitudes of Students towards the Issue of Vaccination.Anna Justyna Milewska, Karolina Milewska & Marcin Milewski - 2021 - Studies in Logic, Grammar and Rhetoric 66 (3):549-559.
    Preventive vaccination is one of the greatest successes of modern medicine. The SARS-CoV-2 epidemic, during which vaccination is the main method of prevention against death and severe disease, gave rise to a resurgence of anti-vaccine movements. The aim of this study was to analyse the attitudes of students towards vaccination and the COVID-19 pandemic. The statistical analysis was performed with the use of the following data-mining methods: correspondence analysis and basket analysis. The obtained results show that students of medicine (...)
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  46.  14
    Applying Educational Data Mining to Explore Viewing Behaviors and Performance With Flipped Classrooms on the Social Media Platform Facebook.Yu-Sheng Su & Chin-Feng Lai - 2021 - Frontiers in Psychology 12.
    In recent years, learning materials have gradually been applied to flipped classrooms. Teachers share learning materials, and students can preview the learning materials before class. During class, the teacher can discuss students' questions from their notes from previewing the learning materials. The social media platform Facebook provides access to learning materials and diversified interactions, such as sharing knowledge, annotating learning materials, and establishing common objectives. Previous studies have explored the effect of flipped classrooms on students' learning engagement, attitudes, and (...)
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  47. Topic 5-Parallel and Distributed Databases, Data Mining and Knowledge Discovery-Supporting a Real-Time Distributed Intrusion Detection Application on GATES.Qian Zhu, Liang Chen & Gagan Agrawal - 2006 - In O. Stock & M. Schaerf (eds.), Lecture Notes in Computer Science. Springer Verlag. pp. 4128--360.
     
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  48. Knowledge, Belief and Counterfactual Reasoning in Games.Robert Stalnaker - 1996 - Economics and Philosophy 12 (2):133.
    Deliberation about what to do in any context requires reasoning about what will or would happen in various alternative situations, including situations that the agent knows will never in fact be realized. In contexts that involve two or more agents who have to take account of each others' deliberation, the counterfactual reasoning may become quite complex. When I deliberate, I have to consider not only what the causal effects would be of alternative choices that I might make, but also what (...)
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  49.  56
    Knowledge representation by schemata in financial expert systems.P. Lévine & J. -Ch Pomerol - 1989 - Theory and Decision 27 (1-2):147-161.
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    Personnel Decision Making of Chosen Czech Banking Subjects During the Economic Recession.Martin Petříček, Iva Nedomlelová & Jiří Kraft - 2011 - Creative and Knowledge Society 1 (2):6-15.
    Personnel Decision Making of Chosen Czech Banking Subjects During the Economic Recession The article focuses on personnel decision making of important banking subjects during the ongoing economic recession with the specialization on financial crisis in 2008. Main objective of the article is to verify the implicit contract theory and to answer the question of how the selected banks solve problem of reducing labour costs during the crisis. Four important banks in years 2005 - 2010 are examined. To identify (...)
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