Data Mining: Practical Machine Learning Tools and Techniques offers a thorough grounding in machine learning concepts as well as practical advice on applying machine learning tools and techniques in real-world data mining situations. This highly anticipated third edition of the most acclaimed work on data mining and machine learning will teach you everything you need to know about preparing inputs, interpreting outputs, evaluating results, and the algorithmic methods at the heart of successful data mining. Thorough updates reflect the technical changes and modernizations that have taken place in the field since the last edition, including new material on Data Transformations, Ensemble Learning, Massive Data Sets, Multi-instance Learning, plus a new version of the popular Weka machine learning software developed by the authors. Witten, Frank, and Hall include both tried-and-true techniques of today as well as methods at the leading edge of contemporary research.
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Ian H. Witten is a professor of computer science at the University of Waikato in New Zealand. He directs the New Zealand Digital Library research project. His research interests include information retrieval, machine learning, text compression, and programming by demonstration. He received an MA in Mathematics from Cambridge University, England; an MSc in Computer Science from the University of Calgary, Canada; and a PhD in Electrical Engineering from Essex University, England. He is a fellow of the ACM and of the Royal Society of New Zealand. He has published widely on digital libraries, machine learning, text compression, hypertext, speech synthesis and signal processing, and computer typography. He has written several books, the latest being Managing Gigabytes (1999) and Data Mining (2000), both from Morgan Kaufmann.
Data Mining: Practical Machine Learning Tools and Techniques offers a thorough grounding in machine learning concepts as well as practical advice on applying machine learning tools and techniques in real-world data mining situations. This highly anticipated third edition of the most acclaimed work on data mining and machine learning will teach you everything you need to know about preparing inputs, interpreting outputs, evaluating results, and the algorithmic methods at the heart of successful data mining.
Thorough updates reflect the technical changes and modernizations that have taken place in the field since the last edition, including new material on Data Transformations, Ensemble Learning, Massive Data Sets, Multi-instance Learning, plus a new version of the popular Weka machine learning software developed by the authors. Witten, Frank, and Hall include both tried-and-true techniques of today as well as methods at the leading edge of contemporary research.
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Zustand: Bueno. : Data Mining: Practical Machine Learning Tools and Techniques, Third Edition, ofrece una base sólida en los conceptos de aprendizaje automático, así como consejos prácticos sobre la aplicación de herramientas y técnicas de aprendizaje automático en situaciones reales de minería de datos. Esta tercera edición, muy esperada, de la obra más aclamada sobre minería de datos y aprendizaje automático le enseñará todo lo que necesita saber sobre la preparación de entradas, la interpretación de salidas, la evaluación de resultados y los métodos algorítmicos que son el corazón de la minería de datos exitosa. Las actualizaciones exhaustivas reflejan los cambios técnicos y las modernizaciones que han tenido lugar en el campo desde la última edición, incluido el nuevo material sobre transformaciones de datos, aprendizaje de conjuntos, conjuntos de datos masivos, aprendizaje de múltiples instancias, además de una nueva versión del popular software de aprendizaje automático Weka desarrollado por los autores. Witten, Frank y Hall incluyen tanto las técnicas probadas y verdaderas de hoy como los métodos a la vanguardia de la investigación contemporánea. EAN: 9780123748560 Tipo: Libros Categoría: Tecnología|Ciencias Título: Data Mining Autor: Ian H. Witten| Eibe Frank| Mark A. Hall Editorial: Morgan Kaufmann Publishers Inc. Idioma: en Páginas: 664 Formato: tapa blanda. Artikel-Nr. Happ-2026-07-07-8673a061
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