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Big Data Analytics in Telecommunications: Literature Review and Architecture Recommendations 被引量:6
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作者 Hira Zahid Tariq Mahmood +1 位作者 Ahsan Morshed Timos Sellis 《IEEE/CAA Journal of Automatica Sinica》 EI CSCD 2020年第1期18-38,共21页
This paper focuses on facilitating state-of-the-art applications of big data analytics(BDA) architectures and infrastructures to telecommunications(telecom) industrial sector.Telecom companies are dealing with terabyt... This paper focuses on facilitating state-of-the-art applications of big data analytics(BDA) architectures and infrastructures to telecommunications(telecom) industrial sector.Telecom companies are dealing with terabytes to petabytes of data on a daily basis. Io T applications in telecom are further contributing to this data deluge. Recent advances in BDA have exposed new opportunities to get actionable insights from telecom big data. These benefits and the fast-changing BDA technology landscape make it important to investigate existing BDA applications to telecom sector. For this, we initially determine published research on BDA applications to telecom through a systematic literature review through which we filter 38 articles and categorize them in frameworks, use cases, literature reviews, white papers and experimental validations. We also discuss the benefits and challenges mentioned in these articles. We find that experiments are all proof of concepts(POC) on a severely limited BDA technology stack(as compared to the available technology stack), i.e.,we did not find any work focusing on full-fledged BDA implementation in an operational telecom environment. To facilitate these applications at research-level, we propose a state-of-the-art lambda architecture for BDA pipeline implementation(called Lambda Tel) based completely on open source BDA technologies and the standard Python language, along with relevant guidelines.We discovered only one research paper which presented a relatively-limited lambda architecture using the proprietary AWS cloud infrastructure. We believe Lambda Tel presents a clear roadmap for telecom industry practitioners to implement and enhance BDA applications in their enterprises. 展开更多
关键词 Index Terms—Big data analytics BDA pipeline BDA technology stack lambda architecture python systematic literature review telecommunications.
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Microstructural Evolution of Surface Layer of TWIP Steel Deformed by Mechanical Attrition Treatment 被引量:4
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作者 LI Da-zhao1,2, WEI Ying-hui1, HOU Li-feng1, LIN Wan-ming1 (1. College of Materials and Engineering, Taiyuan University of Technology, Taiyuan 030024, Shanxi, China 2. College of Materials and Engineering, North University of China, Taiyuan 030051, Shanxi, China) 《Journal of Iron and Steel Research(International)》 SCIE EI CAS CSCD 2012年第3期38-46,共9页
A nanocrystalline layer was synthesized on the surface of TWIP steel samples by surface mechanical attri- tion treatment (SMAT) under varying durations. Microhardness variation was examined along the depth of the de... A nanocrystalline layer was synthesized on the surface of TWIP steel samples by surface mechanical attri- tion treatment (SMAT) under varying durations. Microhardness variation was examined along the depth of the de- formation layer. Microstructural characteristics of the surface at the TWIP steel SMATed for 90 min were observed and analyzed by optical microscope, x-ray diffraction, transmission and high-resolution electron microscope. The re- sults show that the orientation of austenite grains weakens, and a-martensite transformation occurs during SMAT. During the process of SMAT, the deformation twins generate and divide the austenite grains firstly~ then a-martens- ite transformation occurs beside and between the twin bundles~ after that the martensite and austenite grains rotate to accommodate deformation, and the orientations of martensite and between martensite and residual austenite increase; lastly the randomly oriented and uniform-sized nanocrystallir^e layers are formed under continuous deformation. 展开更多
关键词 SMAT technology twinning stacking fault energy deformation twin
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