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📈 Machine Learning

A field where algorithms improve automatically through experience and data.

Machine Learning

Instead of programming rules by hand, feed examples and let the algorithm find patterns. Machine learning builds models that improve with data, and it now underpins search, recommendations, fraud detection, and speech recognition.

The field splits by supervision. Supervised learning uses labeled data. Unsupervised learning finds structure without labels. Reinforcement learning learns from reward signals through interaction. Each suits different problems.

Common learning paradigms

Data dominates outcomes. A simple model on clean, relevant data often beats a complex model on noisy data. Practitioners spend most of their time on data collection, cleaning, and validation, not on architecture search.

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