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A Kakeya set is the smallest space a cat can spin in every direction.

That’s your ReLU network.
Track those spins, and you get tighter control than PAC-Bayes.

Cats don’t take random walks. Neither should your optimizer.

#CatsOfML #Kakeya #CSTheory

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PAC-Bayes tells you where the cat’s been.
Kakeya tells you where it can go.
We use cone crossings and directional bounds to track optimizer paths. Tighter than PAC-Bayes. No flat priors.
Wanna know how?
New ADAM paper drops soon.

#CatsOfML #Kakeya #OptimizerTheory #CSTheory

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Most TD(0) papers: keep the cat in a box, assume iid data, tiny steps, resets, data dropping, etc.
Ours: let the cat out. Nonlinear approximation, dependent data, real-world dynamics and it still finds the value function.
arxiv.org/pdf/2502.05706
#reinforcementlearning #catsofML #TDzero

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