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Data Analysis and Pattern Recognition in Multiple Databases (Intelligent Systems Reference Library, 61, Band 61)
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Data Analysis and Pattern Recognition in Multiple Databases (Intelligent Systems Reference Library, 61, Band 61)

Erschienen 2013. - hardcover

253 Seiten; 9783319034096.3
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/ COMPUTERS Artificial Intelligence General TECHNOLOGY & ENGINEERING Engineering (General) Computer Vision & Pattern Recognition Data Science Data Analytics MATHEMATICS Probability & Statistics HC Technik Allgemeines, Lexika Informatik, EDV Anwendungs-Software Informatik Artificial intelligence Pattern recognition Data mining Expert systems knowledge-based systems

Produktart:
📚 Bücher
Autor(en):
Adhikari, Animesh, Jhimli Adhikari and Witold Pedrycz:
Anbieter:
Studibuch GmbH
Bestell-Nr.:
1328276
Lagerfach:
9783319034096.3
Katalog:
Varia
ISBN | EAN:
331903409X | 9783319034096
Stichworte:
COMPUTERS, Artificial, Intelligence, General, TECHNOLOGY, ENGINEERING, Engineering, (General), Computer, Vision, Pattern, Recognition, Data, Science, Analytics, MATHEMATICS, Probability, Statistics, Technik, Allgemeines, Lexika, Informatik, Anwendungs-Software, intelligence, recognition, mining, Expert, systems, knowledge-based
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Vorauskasse, PayPal
Gebraucht, gut66,28 EURKostenloser Versand
Data Analysis and Pattern Recognition in Multiple Databases (Intelligent Systems Reference Library, 61, Band 61)
Data Analysis and Pattern Recognition in Mul…
Gebraucht, gut
66,28 EUR
Kostenloser Versand
Pattern recognition in data is a well known classical problem that falls under the ambit of data analysis. As we need to handle different data, the nature of patterns, their recognition and the types of data analyses are bound to change. Since the number of data collection channels increases in the recent time and becomes more diversified, many real-world data mining tasks can easily acquire multiple databases from various sources. In these cases, data mining becomes more challenging for several essential reasons. We may encounter sensitive data originating from different sources - those cannot be amalgamated. Even if we are allowed to place different data together, we are certainly not able to analyze them when local identities of patterns are required to be retained. Thus, pattern recognition in multiple databases gives rise to a suite of new, challenging problems different from those encountered before. Association rule mining, global pattern discovery and mining patterns of select items provide different patterns discovery techniques in multiple data sources. Some interesting item-based data analyses are also covered in this book. Interesting patterns, such as exceptional patterns, icebergs and periodic patterns have been recently reported. The book presents a thorough influence analysis between items in time-stamped databases. The recent research on mining multiple related databases is covered while some previous contributions to the area are highlighted and contrasted with the most recent developments.
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