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[Lecture Notes]David Hitchcock Applied Multivariate Statistics using SAS and R attachment winbugs及其他软件专版 Nicolle 2015-3-25 17 3818 xialiangjsxz 2016-2-4 05:24:38
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Real-Time Analytics: Techniques to Analyze and Visualize Streaming Data attach_img 数据分析与数据挖掘 大家开心 2014-7-23 28 5525 jgchen1966 2015-4-8 09:24:15
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Holistic UDAFs at streaming speeds 数据分析与数据挖掘 tanggp123 2009-7-28 0 1270 tanggp123 2009-7-28 11:10:10

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分享 What is big data?
science21 2014-9-22 02:43
Big data defined As far back as 2001, industry analyst Doug Laney (currently with Gartner) articulated the now mainstream definition of big data as the three Vs of big data: volume, velocity and variety1. Volume. Many factors contribute to the increase in data volume. Transaction-based data stored through the years. Unstructured data streaming in from social media. Increasing amounts of sensor and machine-to-machine data being collected. In the past, excessive data volume was a storage issue. But with decreasing storage costs, other issues emerge, including how to determine relevance within large data volumes and how to use analytics to create value from relevant data. Velocity. Data is streaming in at unprecedented speed and must be dealt with in a timely manner. RFID tags, sensors and smart metering are driving the need to deal with torrents of data in near-real time. Reacting quickly enough to deal with data velocity is a challenge for most organizations. Variety. Data today comes in all types of formats. Structured, numeric data in traditional databases. Information created from line-of-business applications. Unstructured text documents, email, video, audio, stock ticker data and financial transactions. Managing, merging and governing different varieties of data is something many organizations still grapple with.
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