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Automated machine learning, often abbreviated as AutoML, refers to the process of automating the end-to-end process of applying machine learning to real-world problems. It allows users, even those without deep knowledge in data science, to create and deploy machine learning models efficiently by automating tasks like data preprocessing, model selection, and hyperparameter tuning. This not only accelerates the workflow but also enhances productivity by minimizing manual efforts and technical expertise needed in developing effective machine learning solutions.
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