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Science needs AI that reasons, not just pattern-matches — beyond AlphaFold

In 2024, Demis Hassabis and John Jumper of Google DeepMind won the Nobel Prize in chemistry for AlphaFold, a neural network that predicts protein 3D structures — a problem that had resisted science for half a century. But the wave of excitement about AI in science overlooks a key limitation: pattern-learning from data is not the same as scientific reasoning or discovery. The argument made here is that AI must develop genuine reasoning capabilities to become a true scientific tool.

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