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  1. Machine Learning for Data Analysis - Coursera

    Cluster analysis is an unsupervised machine learning method that partitions the observations in a data set into a smaller set of clusters where each observation belongs to only one cluster. The goal of cluster analysis is to group, or cluster, observations into subsets based on their similarity of responses on multiple variables.

  2. Data Science: Machine Learning | Harvard Online Course

    Oct 16, 2024 · In this course,part of our Professional Certificate Program in Data Science, you will learn popular machine learning algorithms, principal component analysis, and regularization by building a movie recommendation system. You will learn about training data, and how to use a set of data to discover potentially predictive relationships.

  3. Machine Learning for Data Analysis - Udacity

    Aug 7, 2020 · In technical terms, this machine-learning model frequently used in data analysis is known as the random forest approach: by training decision trees on random subsets of data points, and by adding some randomness into the training procedure itself, you build a forest of diverse trees that offer a more robust average than any individual tree.

  4. What is Machine Learning? Definition, Types, Tools & More

    Nov 8, 2024 · A data scientist uses scientific methods, processes, algorithms, and systems to extract knowledge and insights from structured and unstructured data. Machine learning is a key tool in a data scientist's arsenal, allowing them to make predictions and uncover patterns in data. Key skills: Statistical analysis; Programming (Python, R) Machine learning

  5. 8 Machine Learning Models Explained in 20 Minutes - DataCamp

    Sep 16, 2022 · Tree-based models are supervised machine learning algorithms that construct a tree-like structure to make predictions. They can be used for both classification and regression problems. In this section, we will explore two of the most commonly used tree-based machine learning models: decision trees and random forests. Decision Trees

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