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Mathematica
@mathemetica
Math isn't escape. It's the map through the madness.
参加 October 2024
228 フォロー中    63.5K ファン
Every local minimum is global. When both the objective and the feasible set are convex, a point that cannot be improved in any neighborhood cannot be improved anywhere. The geometry itself forbids hidden valleys; first-order stationarity is already optimality. The same fact, isolated in the study of convex bodies around 1900, is why linear programs, positive-semidefinite quadratic programs, and a wide family of modern learning problems can be solved to proven global optimality.
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