DocumentCode :
3112808
Title :
A Speedy Data Uploading Approach for Twitter Trend and Sentiment Analysis Using HADOOP
Author :
Rajurkar, Gaurav D. ; Goudar, Rajeshwari M.
Author_Institution :
Comput. Eng. Dept., MIT AOE Alandi Pune Alandi(D), Pune, India
fYear :
2015
fDate :
26-27 Feb. 2015
Firstpage :
580
Lastpage :
584
Abstract :
The current Analytics tools and models that are available in the market are very costly, unable to handle Big Data and less secure. The traditional Analytics systems takes a long time to come up with results, so it is not beneficial to use for Real Time Analytics. So, the proposed work resolves all these problems by combining the Apache Open Source platform which solves the issues of Real Time Analytics using HADOOP. It also provides scalability and reduced cost over analytics by using open Source Software. The work proposes to combine the Apache Open Source Modules and configure them to get the required result. This system also provide solution for speedy data downloading on HDFS by using source and sink (data ingestion) mechanism. The Hadoop is flexible and scalable architecture. The proposed work is based upon the phenomenon of combination of open source software along with commodity hardware that will increase the profit of IT Industry.
Keywords :
Big Data; parallel processing; public domain software; real-time systems; social networking (online); Apache open source platform; Big Data; HDFS; Hadoop; IT industry; analytics tools; commodity hardware; data ingestion mechanism; real time analytics; sentiment analysis; sink mechanism; source mechanism; speedy data uploading approach; twitter trend; Computers; Data mining; Data models; Market research; Media; Servers; Twitter; Apache HADOOP; Apache HBase; Hive; Pig. Apache Oozie; Social media; Source and sink Mechanism; Twitter Trend Analysis; Zookeeper;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Computing Communication Control and Automation (ICCUBEA), 2015 International Conference on
Conference_Location :
Pune
Type :
conf
DOI :
10.1109/ICCUBEA.2015.119
Filename :
7155914
Link To Document :
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