Macroeconomic Forecasting In The Era Of Big Data

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Macroeconomic Forecasting in the Era of Big Data

Author : Peter Fuleky
Publisher : Springer Nature
Page : 716 pages
File Size : 53,5 Mb
Release : 2019-11-28
Category : Business & Economics
ISBN : 9783030311506

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Macroeconomic Forecasting in the Era of Big Data by Peter Fuleky Pdf

This book surveys big data tools used in macroeconomic forecasting and addresses related econometric issues, including how to capture dynamic relationships among variables; how to select parsimonious models; how to deal with model uncertainty, instability, non-stationarity, and mixed frequency data; and how to evaluate forecasts, among others. Each chapter is self-contained with references, and provides solid background information, while also reviewing the latest advances in the field. Accordingly, the book offers a valuable resource for researchers, professional forecasters, and students of quantitative economics.

Macroeconomic Forecasting Using Alternative Data

Author : Apurv Jain
Publisher : Academic Press
Page : 250 pages
File Size : 54,5 Mb
Release : 2020-12-01
Category : Business & Economics
ISBN : 9780128191224

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Macroeconomic Forecasting Using Alternative Data by Apurv Jain Pdf

Macroeconomic Forecasting Using Alternative Data: Techniques for Applying Big Data and Machine Learning applies computer science to the demands of macroeconomic forecasting. It is the first book to combine machine learning methods with macroeconomics. By using artificial intelligence and machine learning techniques, it unlocks the increased forecasting accuracy offered by alternative data sources. Through its interdisciplinary approach, readers learn how to use big datasets efficiently and effectively. Combines big data/machine learning with macroeconomic forecasting Explains how alternative data improves forecasting accuracy when controlled for traditional data sources Provides new innovative methods for handling large databases and improving forecasting accuracy

Dynamic Factor Models

Author : Anonim
Publisher : Emerald Group Publishing
Page : 688 pages
File Size : 43,9 Mb
Release : 2016-01-08
Category : Business & Economics
ISBN : 9781785603525

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Dynamic Factor Models by Anonim Pdf

This volume explores dynamic factor model specification, asymptotic and finite-sample behavior of parameter estimators, identification, frequentist and Bayesian estimation of the corresponding state space models, and applications.

Time Series Models for Business and Economic Forecasting

Author : Philip Hans Franses
Publisher : Cambridge University Press
Page : 300 pages
File Size : 55,9 Mb
Release : 1998-10-15
Category : Business & Economics
ISBN : 0521586410

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Time Series Models for Business and Economic Forecasting by Philip Hans Franses Pdf

An introduction to time series models for business and economic forecasting.

Big Data

Author : Cornelia Hammer,Ms.Diane C Kostroch,Mr.Gabriel Quiros
Publisher : International Monetary Fund
Page : 41 pages
File Size : 43,8 Mb
Release : 2017-09-13
Category : Business & Economics
ISBN : 9781484318973

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Big Data by Cornelia Hammer,Ms.Diane C Kostroch,Mr.Gabriel Quiros Pdf

Big data are part of a paradigm shift that is significantly transforming statistical agencies, processes, and data analysis. While administrative and satellite data are already well established, the statistical community is now experimenting with structured and unstructured human-sourced, process-mediated, and machine-generated big data. The proposed SDN sets out a typology of big data for statistics and highlights that opportunities to exploit big data for official statistics will vary across countries and statistical domains. To illustrate the former, examples from a diverse set of countries are presented. To provide a balanced assessment on big data, the proposed SDN also discusses the key challenges that come with proprietary data from the private sector with regard to accessibility, representativeness, and sustainability. It concludes by discussing the implications for the statistical community going forward.

Machine Learning, Optimization, and Data Science

Author : Giuseppe Nicosia,Varun Ojha,Emanuele La Malfa,Gabriele La Malfa,Giorgio Jansen,Panos M. Pardalos,Giovanni Giuffrida,Renato Umeton
Publisher : Springer Nature
Page : 571 pages
File Size : 48,6 Mb
Release : 2022-02-01
Category : Computers
ISBN : 9783030954703

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Machine Learning, Optimization, and Data Science by Giuseppe Nicosia,Varun Ojha,Emanuele La Malfa,Gabriele La Malfa,Giorgio Jansen,Panos M. Pardalos,Giovanni Giuffrida,Renato Umeton Pdf

This two-volume set, LNCS 13163-13164, constitutes the refereed proceedings of the 7th International Conference on Machine Learning, Optimization, and Data Science, LOD 2021, together with the first edition of the Symposium on Artificial Intelligence and Neuroscience, ACAIN 2021. The total of 86 full papers presented in this two-volume post-conference proceedings set was carefully reviewed and selected from 215 submissions. These research articles were written by leading scientists in the fields of machine learning, artificial intelligence, reinforcement learning, computational optimization, neuroscience, and data science presenting a substantial array of ideas, technologies, algorithms, methods, and applications.​

Proceedings of the 2022 International Conference on Bigdata Blockchain and Economy Management (ICBBEM 2022)

Author : Daowen Qiu,Yusheng Jiao,William Yeoh
Publisher : Springer Nature
Page : 1730 pages
File Size : 44,8 Mb
Release : 2022-12-28
Category : Business & Economics
ISBN : 9789464630305

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Proceedings of the 2022 International Conference on Bigdata Blockchain and Economy Management (ICBBEM 2022) by Daowen Qiu,Yusheng Jiao,William Yeoh Pdf

This is an open access book. As a leading role in the global megatrend of scientific innovation, China has been creating a more and more open environment for scientific innovation, increasing the depth and breadth of academic cooperation, and building a community of innovation that benefits all. These endeavors have made new contribution to globalization and creating a community of shared future. With the rapid development of modern economic society, in the process of economic management, informatization has become the mainstream of economic development in the future. At the same time, with the emergence of advanced management technologies such as blockchain technology and big data technology, real market information can be quickly obtained in the process of economic management, which greatly reduces the operating costs of the market economy and effectively enhances the management level of operators, thus contributing to the sustained, rapid and healthy development of the market economy. Under the new situation, the innovative application of economic management research is of great practical significance. 2022 International Conference on Bigdata, Blockchain and Economic Management (ICBBEM 2022) will be held on March 25–27, 2022 in Wuhan, China. ICBBEM 2022 will focus on the latest fields of Bigdata, Blockchain and Economic Management to provide an international platform for experts, professors, scholars and engineers from universities, scientific institutes, enterprises and government-affiliated institutions at home and abroad to share experiences, to expand professional fields, to exchange new ideas face to face, to present research results, and to discuss the key challenging issues and research directions facing the development of this field, with a view to promoting the development and application of theories and technologies in universities and enterprises.

Big Data

Author : Anonim
Publisher : Unknown
Page : 156 pages
File Size : 40,6 Mb
Release : 2011
Category : Competition, International
ISBN : OCLC:728081476

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Big Data by Anonim Pdf

Macroeconomic Forecasting with Real-time Data

Author : Christiaan Heij,Dirk Jacobus Cornelis Dijk,Patrick Groenen
Publisher : Unknown
Page : 128 pages
File Size : 50,5 Mb
Release : 2009
Category : Electronic
ISBN : OCLC:476827215

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Macroeconomic Forecasting with Real-time Data by Christiaan Heij,Dirk Jacobus Cornelis Dijk,Patrick Groenen Pdf

Proceedings of the Future Technologies Conference (FTC) 2021, Volume 1

Author : Kohei Arai
Publisher : Springer Nature
Page : 1020 pages
File Size : 48,5 Mb
Release : 2021-10-23
Category : Technology & Engineering
ISBN : 9783030899066

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Proceedings of the Future Technologies Conference (FTC) 2021, Volume 1 by Kohei Arai Pdf

This book covers a wide range of important topics including but not limited to Technology Trends, Computing, Artificial Intelligence, Machine Vision, Communication, Security, e-Learning, and Ambient Intelligence and their applications to the real world. The sixth Future Technologies Conference 2021 was organized virtually and received a total of 531 submissions from academic pioneering researchers, scientists, industrial engineers, and students from all over the world.. After a double-blind peer review process, 191 submissions have been selected to be included in these proceedings. One of the meaningful and valuable dimensions of this conference is the way it brings together a large group of technology geniuses in one venue to not only present breakthrough research in future technologies, but also to promote discussions and debate of relevant issues, challenges, opportunities and research findings. We hope that readers find the book interesting, exciting, and inspiring; it provides the state-of-the-art intelligent methods and techniques for solving real-world problems along with a vision of the future research.

Alternative Economic Indicators

Author : C. James Hueng
Publisher : W.E. Upjohn Institute
Page : 133 pages
File Size : 46,6 Mb
Release : 2020-09-08
Category : Business & Economics
ISBN : 9780880996761

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Alternative Economic Indicators by C. James Hueng Pdf

Policymakers and business practitioners are eager to gain access to reliable information on the state of the economy for timely decision making. More so now than ever. Traditional economic indicators have been criticized for delayed reporting, out-of-date methodology, and neglecting some aspects of the economy. Recent advances in economic theory, econometrics, and information technology have fueled research in building broader, more accurate, and higher-frequency economic indicators. This volume contains contributions from a group of prominent economists who address alternative economic indicators, including indicators in the financial market, indicators for business cycles, and indicators of economic uncertainty.

Machine Learning and Knowledge Discovery in Databases

Author : Frank Hutter,Kristian Kersting,Jefrey Lijffijt,Isabel Valera
Publisher : Springer Nature
Page : 783 pages
File Size : 48,7 Mb
Release : 2021-02-24
Category : Computers
ISBN : 9783030676643

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Machine Learning and Knowledge Discovery in Databases by Frank Hutter,Kristian Kersting,Jefrey Lijffijt,Isabel Valera Pdf

The 5-volume proceedings, LNAI 12457 until 12461 constitutes the refereed proceedings of the European Conference on Machine Learning and Knowledge Discovery in Databases, ECML PKDD 2020, which was held during September 14-18, 2020. The conference was planned to take place in Ghent, Belgium, but had to change to an online format due to the COVID-19 pandemic. The 232 full papers and 10 demo papers presented in this volume were carefully reviewed and selected for inclusion in the proceedings. The volumes are organized in topical sections as follows: Part I: Pattern Mining; clustering; privacy and fairness; (social) network analysis and computational social science; dimensionality reduction and autoencoders; domain adaptation; sketching, sampling, and binary projections; graphical models and causality; (spatio-) temporal data and recurrent neural networks; collaborative filtering and matrix completion. Part II: deep learning optimization and theory; active learning; adversarial learning; federated learning; Kernel methods and online learning; partial label learning; reinforcement learning; transfer and multi-task learning; Bayesian optimization and few-shot learning. Part III: Combinatorial optimization; large-scale optimization and differential privacy; boosting and ensemble methods; Bayesian methods; architecture of neural networks; graph neural networks; Gaussian processes; computer vision and image processing; natural language processing; bioinformatics. Part IV: applied data science: recommendation; applied data science: anomaly detection; applied data science: Web mining; applied data science: transportation; applied data science: activity recognition; applied data science: hardware and manufacturing; applied data science: spatiotemporal data. Part V: applied data science: social good; applied data science: healthcare; applied data science: e-commerce and finance; applied data science: computational social science; applied data science: sports; demo track.

Artificial Intelligence in Forecasting

Author : Sachi Mohanty,Preethi Nanjundan,Tejaswini Kar
Publisher : CRC Press
Page : 365 pages
File Size : 52,9 Mb
Release : 2024-07-19
Category : Computers
ISBN : 9781040051504

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Artificial Intelligence in Forecasting by Sachi Mohanty,Preethi Nanjundan,Tejaswini Kar Pdf

Forecasting deals with the uncertainty of the future. To be effective, forecasting models should be timely available, accurate, reliable, and compatible with existing database. Accurate projection of the future is of vital importance in supply chain management, inventory control, economic condition, technology, growth trend, social change, political change, business, weather forecasting, stock price prediction, earthquake prediction, etc. AI powered tools and techniques of forecasting play a major role in improving the projection accuracy. The software running AI forecasting models use machine learning to improve accuracy. The software can analyse the past data and can make better prediction about the future trends with higher accuracy and confidence that favours for making proper future planning and decision. In other words, accurate forecasting requires more than just the matching of models to historical data. The book covers the latest techniques used by managers in business today, discover the importance of forecasting and learn how it's accomplished. Readers will also be familiarised with the necessary skills to meet the increased demand for thoughtful and realistic forecasts.

Solar Irradiance and Photovoltaic Power Forecasting

Author : Dazhi Yang,Jan Kleissl
Publisher : CRC Press
Page : 682 pages
File Size : 46,8 Mb
Release : 2024-02-05
Category : Technology & Engineering
ISBN : 9781003830856

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Solar Irradiance and Photovoltaic Power Forecasting by Dazhi Yang,Jan Kleissl Pdf

Forecasting plays an indispensable role in grid integration of solar energy, which is an important pathway toward the grand goal of achieving planetary carbon neutrality. This rather specialized field of solar forecasting constitutes both irradiance and photovoltaic power forecasting. Its dependence on atmospheric sciences and implications for power system operations and planning make the multi-disciplinary nature of solar forecasting immediately obvious. Advances in solar forecasting represent a quiet revolution, as the landscape of solar forecasting research and practice has dramatically advanced as compared to just a decade ago. Solar Irradiance and Photovoltaic Power Forecasting provides the reader with a holistic view of all major aspects of solar forecasting: the philosophy, statistical preliminaries, data and software, base forecasting methods, post-processing techniques, forecast verification tools, irradiance-to-power conversion sequences, and the hierarchical and firm forecasting framework. The book’s scope and subject matter are designed to help anyone entering the field or wishing to stay current in understanding solar forecasting theory and applications. The text provides concrete and honest advice, methodological details and algorithms, and broader perspectives for solar forecasting. Both authors are internationally recognized experts in the field, with notable accomplishments in both academia and industry. Each author has many years of experience serving as editors of top journals in solar energy meteorology. The authors, as forecasters, are concerned not merely with delivering the technical specifics through this book, but more so with the hopes of steering future solar forecasting research in a direction that can truly expand the boundary of forecasting science.

Engineering Applications of Neural Networks

Author : Lazaros Iliadis,Ilias Maglogiannis,Serafin Alonso,Chrisina Jayne,Elias Pimenidis
Publisher : Springer Nature
Page : 636 pages
File Size : 52,8 Mb
Release : 2023-06-06
Category : Computers
ISBN : 9783031342042

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Engineering Applications of Neural Networks by Lazaros Iliadis,Ilias Maglogiannis,Serafin Alonso,Chrisina Jayne,Elias Pimenidis Pdf

This book constitutes the refereed proceedings of the 24th International Conference on Engineering Applications of Neural Networks, EANN 2023, held in León, Spain, in June 2023. The 41 revised full papers and 8 revised short papers presented were carefully reviewed and selected from 125 submissions. The papers are organized in topical sections on ​artificial intelligence - computational methods - ethology; classification - filtering - genetic algorithms; complex dynamic networks' optimization/ graph neural networks; convolutional neural networks/spiking neural networks; deep learning modeling; deep/machine learning in engineering; LEARNING (reinforcemet - federated - adversarial - transfer); natural language - recommendation systems.