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  1. Scientia formalitatum. The Emergence of a New Discipline in the Renaissance.Claus A. Andersen - 2024 - Noctua 11 (2):200-257.
    The Formalist tradition in late-scholastic philosophy has gone unnoticed in standard historiography. This article’s overall objective is to add the Formalist tradition to what we know about Renaissance philosophy. I first show how the Formalist tradition was born out of some innovative considerations of hierarchies of distinctions in the wake of the Franciscan John Duns Scotus’s teaching on the formal distinction in the beginning of the fourteenth century (especially Francis of Meyronnes’s model of four distinctions and Petrus Thomae’s more elaborate (...)
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  2. Timelines: Short Essays and Verse in the Philosophy of Time.Edward A. Francisco - 2024 - Morrisville, North Carolina: Lulu Press.
    Timelines is an inquiry into the nature of time, both as an apparent feature of the external physical world and as a fundamental feature of our experience of ourselves in the world. The principal argument of Timelines is that our coventional ideas about time are largely mistaken and that what we think of as independent physical time is actually our calibration of a certain relation between events. Namely, the relation between time-keeping events and the causal sequential differences of physical processes (...)
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  3. Nonlinear Problems with Complicating Variables: Theoretical Analysis and Numerical Experience.Maristela Rocha - 1986 - IEEE Transactions on Systems, Man, and Cybernetics:231-239.
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Computer Science
  1. Stability based on single-agent deviations in additively separable hedonic games.Felix Brandt, Martin Bullinger & Leo Tappe - 2024 - Artificial Intelligence 334 (C):104160.
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  2. Credit Score Classification Using Machine Learning.Mosa M. M. Megdad & Samy S. Abu-Naser - 2024 - International Journal of Academic Information Systems Research (IJAISR) 8 (5):1-10.
    Abstract: Ensuring the proactive detection of transaction risks is paramount for financial institutions, particularly in the context of managing credit scores. In this study, we compare different machine learning algorithms to effectively and efficiently. The algorithms used in this study were: MLogisticRegressionCV, ExtraTreeClassifier,LGBMClassifier,AdaBoostClassifier, GradientBoostingClassifier,Perceptron,RandomForestClassifier,KNeighborsClassifier,BaggingClassifier, DecisionTreeClassifier, CalibratedClassifierCV, LabelPropagation, Deep Learning. The dataset was collected from Kaggle depository. It consists of 164 rows and 8 columns. The best classifier with unbalanced dataset was the LogisticRegressionCV. The Accuracy 100.0%, precession 100.0%,Recall100.0% and the F1-score (...)
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  3. An Outlook for AI Innovation in Multimodal Communication Research.Alexander Henlein, Reetu Bhattacharjee & Jens Lemanski - 2024 - In Duffy Vincent G. (ed.), Digital Human Modeling and Applications in Health, Safety, Ergonomics and Risk Management (HCII 2024). pp. 182–234.
    In the rapidly evolving landscape of multimodal communication research, this paper explores the transformative role of machine learning (ML), particularly using multimodal large language models, in tracking, augmenting, annotating, and analyzing multimodal data. Building upon the foundations laid in our previous work, we explore the capabilities that have emerged over the past years. The integration of ML allows researchers to gain richer insights from multimodal data, enabling a deeper understanding of human (and non-human) communication across modalities. In particular, augmentation methods (...)
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  4. Optimizing pathfinding for goal legibility and recognition in cooperative partially observable environments.Sara Bernardini, Fabio Fagnani, Alexandra Neacsu & Santiago Franco - 2024 - Artificial Intelligence 333 (C):104148.
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  5. Acquiring and modeling abstract commonsense knowledge via conceptualization.Mutian He, Tianqing Fang, Weiqi Wang & Yangqiu Song - 2024 - Artificial Intelligence 333 (C):104149.
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  6. Joint learning of reward machines and policies in environments with partially known semantics.Christos K. Verginis, Cevahir Koprulu, Sandeep Chinchali & Ufuk Topcu - 2024 - Artificial Intelligence 333 (C):104146.
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  7. Colon Cancer Knowledge-Based System.Rawan N. A. Albanna, Dina F. Alborno, Raja E. Altarazi, Malak S. Hamad & Samy S. Abu-Naser - 2023 - International Journal of Engineering and Information Systems 7 (6):27-36.
    Abstract: Colon cancer is a prevalent and life-threatening disease, necessitating accurate and timely diagnosis for effective treatment and improved patient outcomes. This research paper presents the development of a knowledge-based system for diagnosing colon cancer using the CLIPS language. Knowledge-based systems offer the potential to assist healthcare professionals in making informed diagnoses by leveraging expert knowledge and reasoning mechanisms. The methodology involves acquiring and structuring medical knowledge specific to colon cancer, followed by the implementation of a knowledge- based system using (...)
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  8. Breast Cancer Knowledge Based System.Mohammed H. Aldeeb & Samy S. Abu-Naser - 2023 - International Journal of Engineering and Information Systems 7 (6):46-51.
    Abstract: The Knowledge-Based System for Diagnosing Breast Cancer aims to support medical students in enhancing their education regarding diagnosis and counseling. The system facilitates the analysis of biopsy images under a microscope, determination of tumor type, selection of appropriate treatment methods, and identification of disease-related questions. According to the Ministry of Health's annual report in Gaza, there were 7,069 cases of breast cancer between 2009 and 2014, with 1,502 cases reported in 2014. In an era dominated by visual information, where (...)
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  9. Using Deep Learning to Classify Eight Tea Leaf Diseases.Mai R. Ibaid & Samy S. Abu-Naser - 2024 - International Journal of Academic Information Systems Research (IJAISR) 8 (4):89-96.
    Abstract: People all over the world have been drinking tea for thousands of centuries, and for good reason. Many types of teas can help you stay healthy by boosting your immune system, reducing inflammation, and even preventing cancer and heart disease. There is sufficient material to show that regularly consuming tea can improve your health over the long term. A deep learning model that categorizes tea disorders has been completed. When focusing on the tea, we must also focus on and (...)
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  10. Fish Classification Using Deep Learning.M. N. Ayyad & Samy S. Abu-Naser - 2024 - International Journal of Academic Information Systems Research (IJAISR) 8 (4):51-58.
    Abstract: Fish are important for both nutritional and economic reasons. They are a good source of protein, vitamins, and minerals and play a significant role in human diets, especially in coastal and island communities. In addition, fishing and fish farming are major industries that provide employment and income for millions of people worldwide. Moreover, fish play a critical role in marine ecosystems, serving as prey for larger predators and helping to maintain the balance of aquatic food chains. Overall, fish play (...)
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  11. Classification of Dates Using Deep Learning.Raed Z. Sababa & Samy S. Abu-Naser - 2024 - International Journal of Academic Information Systems Research (IJAISR) 8 (4):18-25.
    Abstract: Dates are the fruit of date palm trees, and it is one of the fruits famous for its high nutritional value. It is a summer fruit spread in the Arab world. In the past, the Arabs relied on it in their daily lives. Dates take an oval shape and vary in size from 20 to 60 mm in length and 8 to 30 mm in diameter. The ripe fruit consists of a hard core surrounded by a papery cover called (...)
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  12. Classification of Rice Using Deep Learning.Mohammed H. S. Abueleiwa & Samy S. Abu-Naser - 2024 - International Journal of Academic Information Systems Research (IJAISR) 8 (4):26-36.
    Abstract: Rice is one of the most important staple crops in the world and serves as a staple food for more than half of the global population. It is a critical source of nutrition, providing carbohydrates, vitamins, and minerals to millions of people, particularly in Asia and Africa. This paper presents a study on using deep learning for the classification of different types of rice. The study focuses on five specific types of rice: Arborio, Basmati, Ipsala, Jasmine, and Karacadag. A (...)
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  13. Forest Fire Detection using Deep Leaning.Mosa M. M. Megdad & Samy S. Abu-Naser - 2024 - International Journal of Academic Information Systems Research (IJAISR) 8 (4):59-65.
    Abstract: Forests are areas with a high density of trees, and they play a vital role in the health of the planet. They provide a habitat for a wide variety of plant and animal species, and they help to regulate the climate by absorbing carbon dioxide from the atmosphere. While in 2010, the world had 3.92Gha of forest cover, covering 30% of its land area, in 2019, there was a loss of forest cover of 24.2Mha according to the Global Forest (...)
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  14. Using Deep Learning to Classify Corn Diseases.Mohanad H. Al-Qadi & Samy S. Abu-Naser - 2024 - International Journal of Academic Information Systems (Ijaisr) 8 (4):81-88.
    Abstract: A corn crop typically refers to a large-scale cultivation of corn (also known as maize) for commercial purposes such as food production, animal feed, and industrial uses. Corn is one of the most widely grown crops in the world, and it is a major staple food for many cultures. Corn crops are grown in various regions of the world with different climates, soil types, and farming practices. In the United States, for example, the Midwest is known as the "Corn (...)
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  15. The mindsponge concept and the bayesvl R package by 2021.Minh-Hoang Nguyen, Manh-Toan Ho, Tam-Tri Le, T. T. Huyen Nguyen & T. Hong-Kong Nguyen - manuscript
    We review the progress of the Mindsponge concept and the bayesvl R package in scientific research from 2018 to 2021.
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  16. Vegetable Classification Using Deep Learning.Mostafa El-Ghoul & Samy S. Abu-Naser - 2024 - International Journal of Academic Information Systems Research (IJAISR) 8 (4):105-112.
    Abstract: Vegetables are an essential component of a healthy diet and play a critical role in promoting overall health and well- being. Vegetables are rich in important vitamins and minerals, including vitamin C, folate, potassium, and iron. They also provide fiber, which helps maintain digestive health and prevent chronic diseases. We are proposing a deep learning model for the classification of vegetables. A dataset was collected from Kaggle depository for Vegetable with 15000 images for 15 different classes. The data was (...)
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  17. Pistachio Variety Classification using Convolutional Neural Networks.Ahmed S. Sabah & Samy S. Abu-Naser - 2024 - International Journal of Academic Information Systems Research (IJAISR) 8 (4):113-119.
    Abstract: Pistachio nuts are a valuable source of nutrition and are widely cultivated for commercial purposes. The accurate classification of different pistachio varieties is important for quality control and market analysis. In this study, we propose a new model for the classification of different pistachio varieties using Convolutional Neural Networks (CNNs). We collected a dataset of pistachio images form Kaggle depository with two varieties (Kirmizi and Siirt). The images were then preprocessed and used to train a CNN model based on (...)
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  18. Using Deep Learning to Detect the Quality of Lemons.Mohammed B. Karaja & Samy S. Abu-Naser - 2024 - International Journal of Academic Information Systems Research (IJAISR) 8 (4):97-104.
    Abstract: Lemons are an important fruit that have a wide range of uses and benefits, from culinary to health to household and beauty applications. Deep learning techniques have shown promising results in image classification tasks, including fruit quality detection. In this paper, we propose a convolutional neural network (CNN)-based approach for detecting the quality of lemons by analysing visual features such as colour and texture. The study aims to develop and train a deep learning model to classify lemons based on (...)
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  19. Tomato Leaf Diseases Classification using Deep Learning.Mohammed F. El-Habibi & Samy S. Abu-Naser - 2024 - International Journal of Academic Information Systems Research (IJAISR) 8 (4):73-80.
    Abstract: Tomatoes are among the most popular vegetables in the world due to their frequent use in many dishes, which fall into many varieties in common and traditional foods, and due to their rich ingredients such as vitamins and minerals, so they are frequently used on a daily basis, When we focus our attention on this vegetable, we must also focus and take into consideration the diseases that affect this vegetable, a deep learning model that classifies tomato diseases has been (...)
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  20. Grape Leaf Species Classification Using CNN.Mohammed M. Almassri & Samy S. Abu-Naser - 2024 - International Journal of Academic Information Systems Research (IJAISR) 8 (4):66-72.
    Abstract: Context: grapevine leaves are an important agricultural product that is used in many Middle Eastern dishes. The species from which the grapevine leaf originates can differ in terms of both taste and price. Method: In this study, we build a deep learning model to tackle the problem of grape leaf classification. 500 images were used (100 for each species) that were then increased to 10,000 using data augmentation methods. Convolutional Neural Network (CNN) algorithms were applied to build this model (...)
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  21. The Fast Food Image Classification using Deep Learning.Jehad El-Tantawi & Samy S. Abu-Naser - 2024 - International Journal of Academic Information Systems Research (IJAISR) 8 (4):37-43.
    Abstract: Fast food refers to quick, convenient, and ready-to-eat meals that are usually sold at chain restaurants or take-out establishments. Fast food is often criticized for its unhealthy ingredients, such as high levels of salt, sugar, and unhealthy fats, and its contribution to the growing obesity epidemic. Despite this, fast food remains popular due to its affordability, convenience, and widespread availability. Many fast food chains have attempted to respond to these criticisms by offering healthier options, such as salads and grilled (...)
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  22. Fine-tuning MobileNetV2 for Sea Animal Classification.Mohammed Marouf & Samy S. Abu-Naser - 2024 - International Journal of Academic Information Systems Research (IJAISR) 8 (4):44-50.
    Abstract: Classifying sea animals is an important problem in marine biology and ecology as it enables the accurate identification and monitoring of species populations, which is crucial for understanding and protecting marine ecosystems. This paper addresses the problem of classifying 19 different sea animals using convolutional neural networks (CNNs). The proposed solution is to use a pretrained MobileNetV2 model, which is a lightweight and efficient CNN architecture, and fine-tune it on a dataset of sea animals. The results of the study (...)
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  23. Classification of Chicken Diseases Using Deep Learning.Mohammed Al Qatrawi & Samy S. Abu-Naser - 2024 - Information Journal of Academic Information Systems Research (Ijaisr) 8 (4):9-17.
    Abstract: In recent years, the outbreak of various poultry diseases has posed a significant threat to the global poultry industry. Therefore, the accurate and timely detection of chicken diseases is critical to reduce economic losses and prevent the spread of diseases. In this study, we propose a method for classifying chicken diseases using a convolutional neural network (CNN). The proposed method involves preprocessing the chicken images, building and training a CNN model, and evaluating the performance of the model. The dataset (...)
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  24. Classification of Apple Diseases Using Deep Learning.Ola I. A. Lafi & Samy S. Abu-Naser - 2024 - International Journal of Academic Information Systems Research (IJAISR) 8 (4):1-9.
    Abstract: In this study, we explore the challenge of identifying and preventing diseases in apple trees, which is a popular activity but can be difficult due to the susceptibility of these trees to various diseases. To address this challenge, we propose the use of Convolutional Neural Networks, which have proven effective in automatically detecting plant diseases. To validate our approach, we use images of apple leaves, including Apple Rot Leaves, Leaf Blotch, Healthy Leaves, and Scab Leaves collected from Kaggle which (...)
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  25. Cybercriminal Networks and Operational Dynamics of Business Email Compromise (BEC) Scammers: Insights from the “Black Axe” Confraternity.Suleman Lazarus - 2024 - Deviant Behavior 46:1-25.
    I explored the relationship between the “Black Axe” Confraternity and cybercrime, with a particular emphasis on the structural dynamics of the Business Email Compromise (BEC) schemes. I investigated whether a conventional hierarchical system governs the membership and remuneration for BEC roles as perpetrators by interviewing an accused “leader” of the “Black Axe” affiliated cybercriminal incarcerated in a prominent Western nation. I supplemented the analysis of interview data with insights from tapped phone records monitored by a law enforcement entity. I merged (...)
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  26. Knowledge is power: Open-world knowledge representation learning for knowledge-based visual reasoning.Wenbo Zheng, Lan Yan & Fei-Yue Wang - 2024 - Artificial Intelligence 333 (C):104147.
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  27. Preconceptual Modeling in Software Engineering: Metaphysics of Diagrammatic Representations.Sabah Al-Fedaghi - manuscript
    Conceptual modeling of a portion of the world is a necessary prerequisite to set the stage and define software system boundaries. In this context, one of the challenges is to provide a unified framework to create a comprehensive representation of the targeted domain. According to many researchers, conceptual model (CM) development is a hard task, and system requirements are difficult to collect, causing many miscommunication problems. Accordingly, CMs require more than modeling ability alone: they first require an understanding of the (...)
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  28. Entrevista a Iván Martínez sobre el uso de Microsoft Azure en Ingeniería.Jesús Miguel Delgado Del Aguila - 2023 - Habitus. Semilleros de Investigación 3 (6):1-6.
    En esta entrevista se formularon preguntas al magíster Iván Martínez, docente universitario destacado por sus conocimientos especializados en infraestructuras de redes y por sus múltiples participaciones en eventos académicos. Los interrogantes que se le plantearon se basaron en sus recientes enfoques de estudio, como el empleo de la herramienta informática de Microsoft Azure. En la conversación se llega a comprender cuál es su utilidad y cómo esta puede servir al usuario en distintos ámbitos, como el laboral. Por otro lado, el (...)
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  29. Learning spatio-temporal dynamics on mobility networks for adaptation to open-world events.Zhaonan Wang, Renhe Jiang, Hao Xue, Flora D. Salim, Xuan Song, Ryosuke Shibasaki, Wei Hu & Shaowen Wang - forthcoming - Artificial Intelligence.
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  30. A multi-graph representation for event extraction.Hui Huang, Yanping Chen, Chuan Lin, Ruizhang Huang, Qinghua Zheng & Yongbin Qin - 2024 - Artificial Intelligence 332 (C):104144.
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  31. AI and the New God: Breaking Solomon's Cycle.Yu Chen - manuscript
    This article explores the profound impact of Artificial Intelligence (AI) on the realm of religion, exploring the potential for AI to catalyze the birth of new world religions and break the "Solomon's Cycle." Drawing inspiration from King Solomon's timeless declaration, "There is nothing new under the sun," the article examines the challenges faced by new religions in a world dominated by established faiths and traditions. By leveraging the transformative capabilities of AI to inspire creativity, foster cross-cultural dialogue, provide ethical guidance, (...)
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  32. Equal Desires and Self-Control.Daniel Coren - forthcoming - Inquiry: An Interdisciplinary Journal of Philosophy.
    Self-control requires intentionally resisting what we most want to do. Yet we do what we most want to do, if we do anything intentionally at that time (The Law of Desire). Therefore, self-control is impossible. So runs a well-studied puzzle. The three standard accounts assume that if a desire is our strongest desire, then it is stronger than all others. But that assumption is false. For we may have desires of equal strength. I describe cases which feature tied desires, self-control, (...)
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  33. Iterative Voting with Partial Preferences.Zoi Terzopoulou, Panagiotis Terzopoulos & Ulle Endriss - forthcoming - Artificial Intelligence.
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  34. A Unified Momentum-based Paradigm of Decentralized SGD for Non-Convex Models and Heterogeneous Data.Haizhou Du, Chaoqian Cheng & Chengdong Ni - forthcoming - Artificial Intelligence.
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  35. Probabilistic Reach-Avoid for Bayesian Neural Networks.Matthew Wicker, Luca Laurenti, Andrea Patane, Nicola Paoletti, Alessandro Abate & Marta Kwiatkowska - forthcoming - Artificial Intelligence.
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  36. Discrete preference games with logic-based agents: Formal framework, complexity, and islands of tractability.Gianluigi Greco & Marco Manna - 2024 - Artificial Intelligence 332 (C):104131.
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  37. Decentralized fused-learner architectures for Bayesian reinforcement learning.Augustin A. Saucan, Subhro Das & Moe Z. Win - 2024 - Artificial Intelligence 331 (C):104094.
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  38. Language Models as Critical Thinking Tools: A Case Study of Philosophers.Andre Ye, Jared Moore, Rose Novick & Amy Zhang - manuscript
    Current work in language models (LMs) helps us speed up or even skip thinking by accelerating and automating cognitive work. But can LMs help us with critical thinking -- thinking in deeper, more reflective ways which challenge assumptions, clarify ideas, and engineer new concepts? We treat philosophy as a case study in critical thinking, and interview 21 professional philosophers about how they engage in critical thinking and on their experiences with LMs. We find that philosophers do not find LMs to (...)
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  39. Matching papers and reviewers at large conferences.Kevin Leyton-Brown, Mausam, Yatin Nandwani, Hedayat Zarkoob, Chris Cameron, Neil Newman & Dinesh Raghu - 2024 - Artificial Intelligence 331 (C):104119.
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  40. Một số vấn đề an ninh thông tin trọng yếu trong kỷ nguyên AI.Vương Quân Hoàng, Lã Việt Phương, Nguyễn Hồng Sơn & Nguyễn Minh Hoàng - 2024 - Cổng Thông Tin Điện Tử Học Viện Cảnh Sát Nhân Dân.
    Sự tiến bộ nhanh chóng của các nền tảng Công nghệ Thông tin (CNTT) và ngôn ngữ lập trình đã làm thay đổi hình thái vận động và phát triển của xã hội loài người. Không gian mạng và các tiện ích đi kèm ngày càng được mở rộng, dẫn đến sự chuyển dịch dần từ đời sống trong thế giới thực sang đời sống trong thế giới ảo (còn gọi là không gian mạng hay không gian số). Trong bối (...)
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  41. Critical observations in model-based diagnosis.Cody James Christopher & Alban Grastien - 2024 - Artificial Intelligence 331 (C):104116.
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  42. Almost proportional allocations of indivisible chores: Computation, approximation and efficiency.Haris Aziz, Bo Li, Hervé Moulin, Xiaowei Wu & Xinran Zhu - 2024 - Artificial Intelligence 331 (C):104118.
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  43. Some discussions on critical information security issues in the artificial intelligence era.Vuong Quan Hoang, Viet-Phuong La, Hong-Son Nguyen & Minh-Hoang Nguyen - manuscript
    The rapid advancement of Information Technology (IT) platforms and programming languages has transformed the dynamics and development of human society. The cyberspace and associated utilities are expanding, leading to a gradual shift from real-world living to virtual life (also known as cyberspace or digital space). The expansion and development of Natural Language Processing (NLP) models and Large Language Models (LLMs) demonstrate human-like characteristics in reasoning, perception, attention, and creativity, helping humans overcome operational barriers. Alongside the immense potential of artificial intelligence (...)
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  44. Regular decision processes.Ronen I. Brafman & Giuseppe De Giacomo - 2024 - Artificial Intelligence 331 (C):104113.
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  45. Knowledge-driven profile dynamics.Eduardo Fermé, Marco Garapa, Maurício D. L. Reis, Yuri Almeida, Teresa Paulino & Mariana Rodrigues - 2024 - Artificial Intelligence 331 (C):104117.
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  46. Lifted algorithms for symmetric weighted first-order model sampling.Yuanhong Wang, Juhua Pu, Yuyi Wang & Ondřej Kuželka - 2024 - Artificial Intelligence 331 (C):104114.
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  47. Embedding justification theory in approximation fixpoint theory.Simon Marynissen, Bart Bogaerts & Marc Denecker - 2024 - Artificial Intelligence 331 (C):104112.
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