DocumentCode :
244142
Title :
Parallel Hierarchical Affinity Propagation with MapReduce
Author :
Rose, Dennis M. ; Rouly, Jean Michel ; Haber, R. ; Mijatovic, Nenad ; Peter, Adrian M.
Author_Institution :
Comput. Sci. Dept., Florida Inst. of Technol., Melbourne, FL, USA
fYear :
2014
fDate :
11-14 March 2014
Firstpage :
367
Lastpage :
372
Abstract :
The accelerated evolution and explosion of the Internet and social media is generating voluminous quantities of data (on zettabyte scales). Paramount amongst the desires to manipulate and extract actionable intelligence from vast big data volumes is the need for scalable, performance-conscious analytics algorithms. To directly address this need, we propose a novel MapReduce implementation of the exemplar-based clustering algorithm known as Affinity Propagation. Our parallelization strategy extends to the multilevel Hierarchical Affinity Propagation algorithm and enables tiered aggregation of unstructured data with minimal free parameters, in principle requiring only a similarity measure between data points. We detail the linear run-time complexity of our approach, overcoming the limiting quadratic complexity of the original algorithm. Experimental validation of our clustering methodology on a variety of synthetic and real data sets (e.g. images and point data) demonstrates our competitiveness against other state-of-the-art MapReduce clustering techniques.
Keywords :
Big Data; computational complexity; parallel algorithms; pattern clustering; Internet; MapReduce implementation; big data volumes; exemplar-based clustering algorithm; linear run-time complexity; minimal free parameters; multilevel hierarchical affinity propagation algorithm; parallel hierarchical affinity propagation; parallelization strategy; quadratic complexity; scalable performance-conscious analytics algorithm; similarity measure; social media; unstructured data aggregation; Availability; Big data; Clustering algorithms; Complexity theory; Runtime; Tensile stress; Vectors; Affinity Propagation; Cluster; Hadoop; Hierarchical Affinity Propagation; MapReduce;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Cloud Engineering (IC2E), 2014 IEEE International Conference on
Conference_Location :
Boston, MA
Type :
conf
DOI :
10.1109/IC2E.2014.42
Filename :
6903497
Link To Document :
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