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3 notebooks covering Classification, Clustering Analysis and Frequent Pattern Mining in the scope of Data Mining lectures in Marmara University.
CS5228_Assignment1_a_Clustering including K-Means, DBSCAN, AGNES
A web app designed to conduct both offline and online clustering experiments using a dataset of archaeological sites in Vienna.
A collection of Machine Learning and Data Mining labs for the ML course taught at INSAT.
data mining class project for DNA sequences's clustering. Released on 2019.
Clustering for Anuran Calls with 4 different families
Agglomerative clustering is a "bottom-up" approach: each observation starts in its own cluster, and pairs of clusters are merged as one moves up the hierarchy.
A comparison on different clustering algorithms using different datasets with performance measurements is shown here.
Customer segmentation is essential for enhancing marketing efficiency and satisfaction. By categorizing customers based on demographics, interests, and purchasing behavior, companies tailor messages to engage each segment effectively. Our app utilizes advanced clustering algos like KMeans, DBSCAN, and AGNES to extract insights from data
This repository represents an academic workshop of data mining course. It contains a practical assignment to get in depth with both supervised and unsupervised learning
Techniques used for data cleaning, finding patterns in structured, text, and web data; with application to areas such as customer relationship management, fraud detection & homeland security.
A collection of Unsupervised Machine Learning algorithms in Ruby
Implementation of AGNES algorithm