Data Science for Business: What you need to know about data mining and data-analytic thinking. Dieser Artikel ist nicht verfügbar.
Sprache: Englisch
Verlag: O'Reilly Media, 2013
- Softcover
- Gebraucht

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Bestandsnummer des Verkäufers M01449361323-V
- Titel
- Data Science for Business: What you need to know about data mining and data-analytic thinking
- Autor
- Provost, Foster
- Verlag
- O'Reilly Media
- Veröffentlichungsjahr
- 2013
- Zustand
- very good
- Einband
- Softcover
- Sprache
- Englisch
- ISBN-10
- 1449361323
- ISBN-13
- 9781449361327
Written by renowned data science experts Foster Provost and Tom Fawcett, Data Science for Business introduces the fundamental principles of data science, and walks you through the "data-analytic thinking" necessary for extracting useful knowledge and business value from the data you collect. This guide also helps you understand the many data-mining techniques in use today.
Based on an MBA course Provost has taught at New York University over the past ten years, Data Science for Business provides examples of real-world business problems to illustrate these principles. You'll not only learn how to improve communication between business stakeholders and data scientists, but also how participate intelligently in your company's data science projects. You'll also discover how to think data-analytically, and fully appreciate how data science methods can support business decision-making.
- Understand how data science fits in your organization--and how you can use it for competitive advantage
- Treat data as a business asset that requires careful investment if you're to gain real value
- Approach business problems data-analytically, using the data-mining process to gather good data in the most appropriate way
- Learn general concepts for actually extracting knowledge from data
- Apply data science principles when interviewing data science job candidates
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Über die Autorin bzw. den Autor
Tom Fawcett holds a Ph.D. in machine learning and has worked in industry R&D for more than two decades for companies such as GTE Laboratories, NYNEX/Verizon Labs, and HP Labs. His published work has become standard reading in data science both on methodology (evaluating data mining results) and on applications (fraud detection and spam filtering).
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