A Review of Approaches for Rapid Data Clustering: Challenges, Opportunities, and Future Directions

被引:0
|
作者
Mahnoor, Imran [2 ]
Shafi, Imran [1 ]
Chaudhry, Mahnoor [1 ]
Caro Montero, Elizabeth [2 ,3 ,4 ]
Silva Alvarado, Eduardo [2 ,5 ,6 ]
de la Torre Diez, Isabel [7 ]
Abdus Samad, Md [8 ]
Ashraf, Imran [8 ]
机构
[1] Natl Univ Sci & Technol NUST, Coll Elect & Mech Engn, Islamabad 44000, Pakistan
[2] Univ Europea Atlantico, Santander 39011, Spain
[3] Univ Int Iberoamericana, Arecibo, PR 00613 USA
[4] Univ Int Cuanza, Cuito 22000, Bie, Angola
[5] Univ Int Iberoameri, Campeche 24560, Mexico
[6] Univ La Romana, La Romana, Dominican Rep
[7] Univ Valladolid, Dept Signal Theory Commun & Telemat Engn, Valladolid 47011, Spain
[8] Yeungnam Univ, Dept Informat & Commun Engn, Gyongsan 38541, South Korea
来源
IEEE ACCESS | 2024年 / 12卷
关键词
Clustering technique; hierarchical partition; clustering applications; data mining; PARTICLE SWARM OPTIMIZATION; DIFFERENTIAL EVOLUTION; GENETIC ALGORITHM; STREAM; INDEX;
D O I
10.1109/ACCESS.2024.3461798
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
For organizing and analyzing massive amounts of data and revealing hidden patterns and structures, clustering is a crucial approach. This paper examines unique strategies for rapid clustering, highlighting the problems and possibilities in this area. The paper includes a brief introduction to clustering, discussing various clustering algorithms, improvements in handling various data types, and appropriate evaluation metrics. It then highlights the unsupervised nature of clustering and emphasizes its importance in many different fields, including customer segmentation, market research, and anomaly detection. This review emphasizes ongoing efforts to address these issues through research and suggests exciting directions for future investigations. By examining the advancements, challenges, and future opportunities in clustering, this research aims to increase awareness of cutting-edge approaches and encourage additional innovations in this essential field of data analysis and pattern identification. It highlights the need for resilience to noise and outliers, domain knowledge integration, scalable and efficient algorithms, and interpretable clustering technologies. In addition to managing high-dimensional data, creating incremental and online clustering techniques, and investigating deep learning-based algorithms, the study suggests future research areas. Additionally featured are real-world applications from several sectors. Although clustering approaches have made a substantial contribution, more research is necessary to solve their limitations and fully realize their promise for data analysis.
引用
收藏
页码:138086 / 138120
页数:35
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