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K-means clustering algorithms: A comprehensive review, variants analysis, and advances in the era of big data
Advances in recent techniques for scientific data collection in the era of big data allow for the
systematic accumulation of large quantities of data at various data-capturing sites. Similarly …
systematic accumulation of large quantities of data at various data-capturing sites. Similarly …
Computer based diagnosis of some chronic diseases: a medical journey of the last two decades
Disease prediction from diagnostic reports and pathological images using artificial
intelligence (AI) and machine learning (ML) is one of the fastest emerging applications in …
intelligence (AI) and machine learning (ML) is one of the fastest emerging applications in …
Improving the diagnosis of liver disease using multilayer perceptron neural network and boosted decision trees
Early detection of liver disease is never easy, though it is one of the most important diseases
on earth. This study, thus, attempts to achieve efficient early detection through a Multilayer …
on earth. This study, thus, attempts to achieve efficient early detection through a Multilayer …
Hybrid reptile search algorithm and remora optimization algorithm for optimization tasks and data clustering
Data clustering is a complex data mining problem that clusters a massive amount of data
objects into a predefined number of clusters; in other words, it finds symmetric and …
objects into a predefined number of clusters; in other words, it finds symmetric and …
Multi-agent learning neural network and Bayesian model for real-time IoT skin detectors: a new evaluation and benchmarking methodology
This study aimed to develop a new methodology for evaluating and benchmarking a multi-
agent learning neural network and Bayesian model for real-time skin detectors based on …
agent learning neural network and Bayesian model for real-time skin detectors based on …
Merging user and item based collaborative filtering to alleviate data sparsity
Memory based algorithms, generally referred as similarity based Collaborative Filtering (CF)
algorithm, is one of the most widely accepted approaches to provide service …
algorithm, is one of the most widely accepted approaches to provide service …
Magnetic optimization algorithm for data clustering
In this paper, a new clustering algorithm inspired by magnetic force is proposed. This
algorithm is not sensitive to the initialization problem of cluster centroids. Centroid particles …
algorithm is not sensitive to the initialization problem of cluster centroids. Centroid particles …
Neighborhood search based improved bat algorithm for data clustering
A Kaur, Y Kumar - Applied Intelligence, 2022 - Springer
Clustering is an unsupervised data analytic technique that can determine the similarity
between data objects and put the similar data objects into one cluster. The similarity among …
between data objects and put the similar data objects into one cluster. The similarity among …
Variants of bat algorithm for solving partitional clustering problems
Y Kumar, A Kaur - Engineering with Computers, 2022 - Springer
Clustering is an exploratory data analysis technique that organize the data objects into
clusters with optimal distance efficacy. In this work, a bat algorithm is considered to obtain …
clusters with optimal distance efficacy. In this work, a bat algorithm is considered to obtain …
LeaderRank based k-means clustering initialization method for collaborative filtering
Abstract Collaborative filtering based Recommender System is one of the most common
technique used for personalized product ranking. It aids the consumer in decision-making …
technique used for personalized product ranking. It aids the consumer in decision-making …