Matrix And Tensor Factorization Techniques For Recommender Systems

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Matrix and Tensor Factorization Techniques for Recommender Systems

Author : Panagiotis Symeonidis,Andreas Zioupos
Publisher : Springer
Page : 102 pages
File Size : 55,9 Mb
Release : 2017-01-29
Category : Computers
ISBN : 9783319413570

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Matrix and Tensor Factorization Techniques for Recommender Systems by Panagiotis Symeonidis,Andreas Zioupos Pdf

This book presents the algorithms used to provide recommendations by exploiting matrix factorization and tensor decomposition techniques. It highlights well-known decomposition methods for recommender systems, such as Singular Value Decomposition (SVD), UV-decomposition, Non-negative Matrix Factorization (NMF), etc. and describes in detail the pros and cons of each method for matrices and tensors. This book provides a detailed theoretical mathematical background of matrix/tensor factorization techniques and a step-by-step analysis of each method on the basis of an integrated toy example that runs throughout all its chapters and helps the reader to understand the key differences among methods. It also contains two chapters, where different matrix and tensor methods are compared experimentally on real data sets, such as Epinions, GeoSocialRec, Last.fm, BibSonomy, etc. and provides further insights into the advantages and disadvantages of each method. The book offers a rich blend of theory and practice, making it suitable for students, researchers and practitioners interested in both recommenders and factorization methods. Lecturers can also use it for classes on data mining, recommender systems and dimensionality reduction methods.

Matrix and Tensor Factorization Techniques for Recommender Systems

Author : Panagiotis Symeonidis
Publisher : Unknown
Page : 128 pages
File Size : 49,5 Mb
Release : 2016
Category : Recommender systems (Information filtering)
ISBN : 3319413589

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Matrix and Tensor Factorization Techniques for Recommender Systems by Panagiotis Symeonidis Pdf

This book presents the algorithms used to provide recommendations by exploiting matrix factorization and tensor decomposition techniques. It highlights well-known decomposition methods for recommender systems, such as Singular Value Decomposition (SVD), UV-decomposition, Non-negative Matrix Factorization (NMF), etc. and describes in detail the pros and cons of each method for matrices and tensors. This book provides a detailed theoretical mathematical background of matrix/tensor factorization techniques and a step-by-step analysis of each method on the basis of an integrated toy example that runs throughout all its chapters and helps the reader to understand the key differences among methods. It also contains two chapters, where different matrix and tensor methods are compared experimentally on real data sets, such as Epinions, GeoSocialRec, Last.fm, BibSonomy, etc. and provides further insights into the advantages and disadvantages of each method. The book offers a rich blend of theory and practice, making it suitable for students, researchers and practitioners interested in both recommenders and factorization methods. Lecturers can also use it for classes on data mining, recommender systems and dimensionality reduction methods.

Graph-Based Social Media Analysis

Author : Ioannis Pitas
Publisher : CRC Press
Page : 436 pages
File Size : 44,6 Mb
Release : 2016-04-19
Category : Computers
ISBN : 9781498719056

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Graph-Based Social Media Analysis by Ioannis Pitas Pdf

Focused on the mathematical foundations of social media analysis, Graph-Based Social Media Analysis provides a comprehensive introduction to the use of graph analysis in the study of social and digital media. It addresses an important scientific and technological challenge, namely the confluence of graph analysis and network theory with linear alge

Artificial Intelligence and Data Science in Recommendation System: Current Trends, Technologies and Applications

Author : Abhishek Majumder,Joy Lal Sarkar,Arindam Majumder
Publisher : Bentham Science Publishers
Page : 319 pages
File Size : 49,9 Mb
Release : 2023-08-16
Category : Computers
ISBN : 9789815136753

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Artificial Intelligence and Data Science in Recommendation System: Current Trends, Technologies and Applications by Abhishek Majumder,Joy Lal Sarkar,Arindam Majumder Pdf

Artificial Intelligence and Data Science in Recommendation System: Current Trends, Technologies and Applications captures the state of the art in usage of artificial intelligence in different types of recommendation systems and predictive analysis. The book provides guidelines and case studies for application of artificial intelligence in recommendation from expert researchers and practitioners. A detailed analysis of the relevant theoretical and practical aspects, current trends and future directions is presented. The book highlights many use cases for recommendation systems: · Basic application of machine learning and deep learning in recommendation process and the evaluation metrics · Machine learning techniques for text mining and spam email filtering considering the perspective of Industry 4.0 · Tensor factorization in different types of recommendation system · Ranking framework and topic modeling to recommend author specialization based on content. · Movie recommendation systems · Point of interest recommendations · Mobile tourism recommendation systems for visually disabled persons · Automation of fashion retail outlets · Human resource management (employee assessment and interview screening) This reference is essential reading for students, faculty members, researchers and industry professionals seeking insight into the working and design of recommendation systems.

Non-negative Matrix Factorization Techniques

Author : Ganesh R. Naik
Publisher : Springer
Page : 194 pages
File Size : 46,7 Mb
Release : 2015-09-25
Category : Technology & Engineering
ISBN : 9783662483312

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Non-negative Matrix Factorization Techniques by Ganesh R. Naik Pdf

This book collects new results, concepts and further developments of NMF. The open problems discussed include, e.g. in bioinformatics: NMF and its extensions applied to gene expression, sequence analysis, the functional characterization of genes, clustering and text mining etc. The research results previously scattered in different scientific journals and conference proceedings are methodically collected and presented in a unified form. While readers can read the book chapters sequentially, each chapter is also self-contained. This book can be a good reference work for researchers and engineers interested in NMF, and can also be used as a handbook for students and professionals seeking to gain a better understanding of the latest applications of NMF.

New Trends in Databases and Information Systems

Author : Barbara Catania,Tania Cerquitelli,Silvia Chiusano,Giovanna Guerrini,Mirko Kämpf,Alfons Kemper,Boris Novikov,Themis Palpanas,Jaroslav Pokorný,Athena Vakali
Publisher : Springer Science & Business Media
Page : 398 pages
File Size : 52,6 Mb
Release : 2013-08-17
Category : Technology & Engineering
ISBN : 9783319018638

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New Trends in Databases and Information Systems by Barbara Catania,Tania Cerquitelli,Silvia Chiusano,Giovanna Guerrini,Mirko Kämpf,Alfons Kemper,Boris Novikov,Themis Palpanas,Jaroslav Pokorný,Athena Vakali Pdf

This book reports on state-of-art research and applications in the field of databases and information systems. It includes both fourteen selected short contributions, presented at the East-European Conference on Advances in Databases and Information Systems (ADBIS 2013, September 1-4, Genova, Italy), and twenty-six papers from ADBIS 2013 satellite events. The short contributions from the main conference are collected in the first part of the book, which covers a wide range of topics, like data management, similarity searches, spatio-temporal and social network data, data mining, data warehousing, and data management on novel architectures, such as graphics processing units, parallel database management systems, cloud and MapReduce environments. In contrast, the contributions from the satellite events are organized in five different parts, according to their respective ADBIS satellite event: BiDaTA 2013 - Special Session on Big Data: New Trends and Applications); GID 2013 – The Second International Workshop on GPUs in Databases; OAIS 2013 – The Second International Workshop on Ontologies Meet Advanced Information Systems; SoBI 2013 – The First International Workshop on Social Business Intelligence: Integrating Social Content in Decision Making; and last but not least, the Doctoral Consortium, a forum for Ph.D. students. The book, which addresses academics and professionals alike, provides the readers with a comprehensive and timely overview of new trends in database and information systems research, and promotes new ideas and collaborations among the different research communities of the eastern European countries and the rest of the world.

Proceedings of Sixth International Congress on Information and Communication Technology

Author : Xin-She Yang,Simon Sherratt,Nilanjan Dey,Amit Joshi
Publisher : Springer Nature
Page : 883 pages
File Size : 50,5 Mb
Release : 2021-10-26
Category : Technology & Engineering
ISBN : 9789811621024

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Proceedings of Sixth International Congress on Information and Communication Technology by Xin-She Yang,Simon Sherratt,Nilanjan Dey,Amit Joshi Pdf

This book gathers selected high-quality research papers presented at the Sixth International Congress on Information and Communication Technology, held at Brunel University, London, on February 25–26, 2021. It discusses emerging topics pertaining to information and communication technology (ICT) for managerial applications, e-governance, e-agriculture, e-education and computing technologies, the Internet of Things (IoT) and e-mining. Written by respected experts and researchers working on ICT, the book offers a valuable asset for young researchers involved in advanced studies. The book is presented in four volumes.

Educational Recommender Systems and Technologies: Practices and Challenges

Author : Santos, Olga C.
Publisher : IGI Global
Page : 362 pages
File Size : 40,5 Mb
Release : 2011-12-31
Category : Education
ISBN : 9781613504901

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Educational Recommender Systems and Technologies: Practices and Challenges by Santos, Olga C. Pdf

Recommender systems have shown to be successful in many domains where information overload exists. This success has motivated research on how to deploy recommender systems in educational scenarios to facilitate access to a wide spectrum of information. Tackling open issues in their deployment is gaining importance as lifelong learning becomes a necessity of the current knowledge-based society. Although Educational Recommender Systems (ERS) share the same key objectives as recommenders for e-commerce applications, there are some particularities that should be considered before directly applying existing solutions from those applications. Educational Recommender Systems and Technologies: Practices and Challenges aims to provide a comprehensive review of state-of-the-art practices for ERS, as well as the challenges to achieve their actual deployment. Discussing such topics as the state-of-the-art of ERS, methodologies to develop ERS, and architectures to support the recommendation process, this book covers researchers interested in recommendation strategies for educational scenarios and in evaluating the impact of recommendations in learning, as well as academics and practitioners in the area of technology enhanced learning.

Science of Cyber Security

Author : Feng Liu,Jia Xu,Shouhuai Xu,Moti Yung
Publisher : Springer Nature
Page : 387 pages
File Size : 54,6 Mb
Release : 2019-12-06
Category : Computers
ISBN : 9783030346379

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Science of Cyber Security by Feng Liu,Jia Xu,Shouhuai Xu,Moti Yung Pdf

This book constitutes the proceedings of the Second International Conference on Science of Cyber Security, SciSec 2019, held in Nanjing, China, in August 2019. The 20 full papers and 8 short papers presented in this volume were carefully reviewed and selected from 62 submissions. These papers cover the following subjects: Artificial Intelligence for Cybersecurity, Machine Learning for Cybersecurity, and Mechanisms for Solving Actual Cybersecurity Problems (e.g., Blockchain, Attack and Defense; Encryptions with Cybersecurity Applications).

Service-Oriented Computing

Author : Sami Yangui,Ismael Bouassida Rodriguez,Khalil Drira,Zahir Tari
Publisher : Springer Nature
Page : 593 pages
File Size : 48,6 Mb
Release : 2019-10-25
Category : Computers
ISBN : 9783030337025

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Service-Oriented Computing by Sami Yangui,Ismael Bouassida Rodriguez,Khalil Drira,Zahir Tari Pdf

This book constitutes the proceedings of the 17th International Conference on Service-Oriented Computing, ICSOC 2019, held in Toulouse, France, in October 2019. The 28 full and 12 short papers presented together with 7 poster and 2 invited papers in this volume were carefully reviewed and selected from 181 submissions. The papers have been organized in the following topical sections: Service Engineering; Run-time Service Operations and Management; Services and Data; Services in the Cloud; Services on the Internet of Things; Services in Organizations, Business and Society; and Services at the Edge.

Multimodal Analytics for Next-Generation Big Data Technologies and Applications

Author : Kah Phooi Seng,Li-minn Ang,Alan Wee-Chung Liew,Junbin Gao
Publisher : Springer
Page : 391 pages
File Size : 44,6 Mb
Release : 2019-07-18
Category : Computers
ISBN : 9783319975986

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Multimodal Analytics for Next-Generation Big Data Technologies and Applications by Kah Phooi Seng,Li-minn Ang,Alan Wee-Chung Liew,Junbin Gao Pdf

This edited book will serve as a source of reference for technologies and applications for multimodality data analytics in big data environments. After an introduction, the editors organize the book into four main parts on sentiment, affect and emotion analytics for big multimodal data; unsupervised learning strategies for big multimodal data; supervised learning strategies for big multimodal data; and multimodal big data processing and applications. The book will be of value to researchers, professionals and students in engineering and computer science, particularly those engaged with image and speech processing, multimodal information processing, data science, and artificial intelligence.

Machine Learning Meets Quantum Physics

Author : Kristof T. Schütt,Stefan Chmiela,O. Anatole von Lilienfeld,Alexandre Tkatchenko,Koji Tsuda,Klaus-Robert Müller
Publisher : Springer Nature
Page : 473 pages
File Size : 48,8 Mb
Release : 2020-06-03
Category : Science
ISBN : 9783030402457

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Machine Learning Meets Quantum Physics by Kristof T. Schütt,Stefan Chmiela,O. Anatole von Lilienfeld,Alexandre Tkatchenko,Koji Tsuda,Klaus-Robert Müller Pdf

Designing molecules and materials with desired properties is an important prerequisite for advancing technology in our modern societies. This requires both the ability to calculate accurate microscopic properties, such as energies, forces and electrostatic multipoles of specific configurations, as well as efficient sampling of potential energy surfaces to obtain corresponding macroscopic properties. Tools that can provide this are accurate first-principles calculations rooted in quantum mechanics, and statistical mechanics, respectively. Unfortunately, they come at a high computational cost that prohibits calculations for large systems and long time-scales, thus presenting a severe bottleneck both for searching the vast chemical compound space and the stupendously many dynamical configurations that a molecule can assume. To overcome this challenge, recently there have been increased efforts to accelerate quantum simulations with machine learning (ML). This emerging interdisciplinary community encompasses chemists, material scientists, physicists, mathematicians and computer scientists, joining forces to contribute to the exciting hot topic of progressing machine learning and AI for molecules and materials. The book that has emerged from a series of workshops provides a snapshot of this rapidly developing field. It contains tutorial material explaining the relevant foundations needed in chemistry, physics as well as machine learning to give an easy starting point for interested readers. In addition, a number of research papers defining the current state-of-the-art are included. The book has five parts (Fundamentals, Incorporating Prior Knowledge, Deep Learning of Atomistic Representations, Atomistic Simulations and Discovery and Design), each prefaced by editorial commentary that puts the respective parts into a broader scientific context.

Dynamic Network Representation Based on Latent Factorization of Tensors

Author : Hao Wu,Xuke Wu,Xin Luo
Publisher : Springer Nature
Page : 89 pages
File Size : 46,9 Mb
Release : 2023-03-07
Category : Computers
ISBN : 9789811989346

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Dynamic Network Representation Based on Latent Factorization of Tensors by Hao Wu,Xuke Wu,Xin Luo Pdf

A dynamic network is frequently encountered in various real industrial applications, such as the Internet of Things. It is composed of numerous nodes and large-scale dynamic real-time interactions among them, where each node indicates a specified entity, each directed link indicates a real-time interaction, and the strength of an interaction can be quantified as the weight of a link. As the involved nodes increase drastically, it becomes impossible to observe their full interactions at each time slot, making a resultant dynamic network High Dimensional and Incomplete (HDI). An HDI dynamic network with directed and weighted links, despite its HDI nature, contains rich knowledge regarding involved nodes’ various behavior patterns. Therefore, it is essential to study how to build efficient and effective representation learning models for acquiring useful knowledge. In this book, we first model a dynamic network into an HDI tensor and present the basic latent factorization of tensors (LFT) model. Then, we propose four representative LFT-based network representation methods. The first method integrates the short-time bias, long-time bias and preprocessing bias to precisely represent the volatility of network data. The second method utilizes a proportion-al-integral-derivative controller to construct an adjusted instance error to achieve a higher convergence rate. The third method considers the non-negativity of fluctuating network data by constraining latent features to be non-negative and incorporating the extended linear bias. The fourth method adopts an alternating direction method of multipliers framework to build a learning model for implementing representation to dynamic networks with high preciseness and efficiency.

Intelligent Systems Technologies and Applications

Author : Stefano Berretti,Sabu M. Thampi,Praveen Ranjan Srivastava
Publisher : Springer
Page : 580 pages
File Size : 54,8 Mb
Release : 2015-08-28
Category : Technology & Engineering
ISBN : 9783319230368

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Intelligent Systems Technologies and Applications by Stefano Berretti,Sabu M. Thampi,Praveen Ranjan Srivastava Pdf

This book contains a selection of refereed and revised papers of Intelligent Techniques and Applications track, and the Special Track on Intelligent Image Processing and Artificial Vision track originally presented at the International Symposium on Intelligent Systems Technologies and Applications (ISTA), August 10-13, 2015, Kochi, India.

Hybrid Artificial Intelligent Systems

Author : Hilde Pérez García,Lidia Sánchez González,Manuel Castejón Limas,Héctor Quintián Pardo,Emilio Corchado Rodríguez
Publisher : Springer Nature
Page : 782 pages
File Size : 51,7 Mb
Release : 2019-08-26
Category : Computers
ISBN : 9783030298593

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Hybrid Artificial Intelligent Systems by Hilde Pérez García,Lidia Sánchez González,Manuel Castejón Limas,Héctor Quintián Pardo,Emilio Corchado Rodríguez Pdf

This volume constitutes the refereed proceedings of the 14th International Conference on Hybrid Artificial Intelligent Systems, HAIS 2019, held in León, Spain, in September 2019. The 64 full papers published in this volume were carefully reviewed and selected from 134 submissions. They are organized in the following topical sections: data mining, knowledge discovery and big data; bio-inspired models and evolutionary computation; learning algorithms; visual analysis and advanced data processing techniques; data mining applications; and hybrid intelligent applications.