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Supervised vs. Unsupervised Learning


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Supervised learning uses labeled data, like a student learning with a teacher. Unsupervised learning uses unlabeled data and is more like self-study.

  • Supervised learning knows the right answers in advance and aims for accuracy. It can classify data, like filtering spam, or predict values, like stock prices.

  • Unsupervised learning finds hidden patterns on its own. Think about grouping similar customers or discovering what products are often purchased together.

  • Semi-supervised learning combines both approaches, using a bit of labeled data to guide the learning from a larger set of unlabeled data. This can be useful for tasks like identifying medical conditions in scans where only a small number have been labeled by experts.

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    Code ConversationsBy ali heydari moghaddam