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180215s2018 xx 039 o vleng d |
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|a UMI
|b eng
|e rda
|e pn
|c UMI
|d OCLCF
|d S9I
|d UAB
|d OCLCQ
|d OCLCO
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|a (OCoLC)1023436345
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|a CL0500000939
|b Safari Books Online
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|a QA276.45.R3
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|a UAMI
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100 |
1 |
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|a Grogan, Michael,
|e speaker.
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245 |
1 |
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|a Machine learning in R :
|b automated algorithms for business analysis : applying K-Means clustering, decision trees, random forests, and neural networks /
|c with Michael Grogan.
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264 |
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1 |
|a [Place of publication not identified] :
|b O'Reilly,
|c [2018]
|
300 |
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|a 1 online resource (1 streaming video file (38 min., 44 sec.))
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336 |
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|a two-dimensional moving image
|b tdi
|2 rdacontent
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|a computer
|b c
|2 rdamedia
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|a video
|b v
|2 rdamedia
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|a online resource
|b cr
|2 rdacarrier
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347 |
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|a data file
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380 |
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|a Videorecording
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511 |
0 |
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|a Presenter, Michael Grogan.
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500 |
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|a Title from title screen (viewed February 13, 2018).
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|a Date of publication from resource description page.
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520 |
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|a "In the world of big data, analysis by traditional statistical methods is no longer sufficient. The amount of data and the number of potential relationships that could be analyzed is simply too complex to conduct manually. In this video, you'll learn a better way: how to automate the analysis of big data by using machine learning techniques in R. You'll explore the cornerstone methods of machine learning (i.e., k-means clustering, decision trees, random forests, and neural networks); you'll incorporate these methods inside R to construct a set of machine learning algorithms; and then you'll deploy these algorithms against a real-world dataset to perform a high-value business analysis of the data. Course prerequisites include basic knowledge of linear algebra, probability, statistics, and familiarity with R."--Resource description page
|
590 |
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|a O'Reilly
|b O'Reilly Online Learning: Academic/Public Library Edition
|
650 |
|
0 |
|a R (Computer program language)
|
650 |
|
0 |
|a Statistics
|x Data processing.
|
650 |
|
0 |
|a Machine learning.
|
650 |
|
0 |
|a Neural networks (Computer science)
|
650 |
|
0 |
|a Big data.
|
650 |
|
2 |
|a Neural Networks, Computer
|
650 |
|
6 |
|a R (Langage de programmation)
|
650 |
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6 |
|a Statistique
|x Informatique.
|
650 |
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6 |
|a Apprentissage automatique.
|
650 |
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6 |
|a Réseaux neuronaux (Informatique)
|
650 |
|
6 |
|a Données volumineuses.
|
650 |
|
7 |
|a Big data.
|2 fast
|0 (OCoLC)fst01892965
|
650 |
|
7 |
|a Machine learning.
|2 fast
|0 (OCoLC)fst01004795
|
650 |
|
7 |
|a Neural networks (Computer science)
|2 fast
|0 (OCoLC)fst01036260
|
650 |
|
7 |
|a R (Computer program language)
|2 fast
|0 (OCoLC)fst01086207
|
650 |
|
7 |
|a Statistics
|x Data processing.
|2 fast
|0 (OCoLC)fst01132113
|
856 |
4 |
0 |
|u https://learning.oreilly.com/videos/~/9781492028536/?ar
|z Texto completo (Requiere registro previo con correo institucional)
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994 |
|
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|a 92
|b IZTAP
|