In 2019, AI researcher François Chollet published a benchmark unlike any other: the Abstraction and Reasoning Corpus (ARC-AGI). Each task shows you two or three pairs of small colored grids — an "input" and its matching "output" — and then a new input grid with no output. Your job: figure out the hidden rule and draw the output yourself.
There is no vocabulary to learn, no world knowledge required, no language to translate. A curious ten-year-old can solve most of these puzzles in seconds by simply noticing the pattern: objects got bigger, colors got swapped, the shape got mirrored. And yet, for years, state-of-the-art AI systems — the same ones acing bar exams and coding interviews — scored close to zero.
That gap is the whole point. ARC-AGI was designed so that memorizing the internet doesn't help. Every puzzle is novel, and solving it requires acquiring a new skill on the spot from just a few examples — which is precisely how Chollet chose to define intelligence in the first place.
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