scholarly journals Big Data in Internet of Things: Architecture and Open Research Challenges

Author(s):  
Iram Haider ◽  
Muhammad Arslan Haider ◽  
Arshad Saeed

Author(s):  
Hind Bangui ◽  
Mouzhi Ge ◽  
Barbora Buhnova

Due to the massive data increase in different Internet of Things (IoT) domains such as healthcare IoT and Smart City IoT, Big Data technologies have been emerged as critical analytics tools for analyzing the IoT data. Among the Big Data technologies, data clustering is one of the essential approaches to process the IoT data. However, how to select a suitable clustering algorithm for IoT data is still unclear. Furthermore, since Big Data technology are still in its initial stage for different IoT domains, it is thus valuable to propose and structure the research challenges between Big Data and IoT. Therefore, this article starts by reviewing and comparing the data clustering algorithms that can be applied in IoT datasets, and then extends the discussions to a broader IoT context such as IoT dynamics and IoT mobile networks. Finally, this article identifies a set of research challenges that harvest a research roadmap for the Big Data research in IoT domains. The proposed research roadmap aims at bridging the research gaps between Big Data and various IoT contexts.



2019 ◽  
Vol 145 ◽  
pp. 102409 ◽  
Author(s):  
Abdelmuttlib Ibrahim Abdalla Ahmed ◽  
Siti Hafizah Ab Hamid ◽  
Abdullah Gani ◽  
Suleman khan ◽  
Muhammad Khurram Khan


2016 ◽  
Vol 23 (5) ◽  
pp. 10-16 ◽  
Author(s):  
Ejaz Ahmed ◽  
Ibrar Yaqoob ◽  
Abdullah Gani ◽  
Muhammad Imran ◽  
Mohsen Guizani


Author(s):  
Ansif Arooj ◽  
Muhammad Shoaib Farooq ◽  
Aftab Akram ◽  
Razi Iqbal ◽  
Ashutosh Sharma ◽  
...  


Author(s):  
Maria K. Krommyda ◽  
Verena Kantere

Large datasets pertaining to many scientific fields and everyday activities are becoming available at an increasing rate. Processing, analyzing, and understanding the information that they offer poses significant technical challenges. There are many efforts dedicated to the development of big data exploration, analysis, and visualization applications that will improve the value of the information extracted from these datasets. An analysis of the state-of-the-art in these applications is presented here along with open research challenges that have not yet been tackled sufficiently. Also, specific domains where big data applications are needed are presented, and unique challenges are identified.





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