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Most Influential ICML 2009 Paper · 2026-03 edition

Herding Dynamical Weights To Learn

Max Welling

Venue
International Conference on Machine Learning (ICML) 2009
Recognition
Most Influential ICML 2009 Paper (Rank No. 12)
Edition
2026-03
Impact factor
7
Certificate ID
d9fb1861f7f82d0f

Abstract

A new "herding" algorithm is proposed which directly converts observed moments into a sequence of pseudo-samples. The pseudo-samples respect the moment constraints and may be used to estimate (unobserved) quantities of interest. The procedure allows us to sidestep the usual approach of first learning a joint model (which is intractable) and then sampling from that model (which can easily get stuck in a local mode). Moreover, the algorithm is fully deterministic, avoiding random number generation) and does not need expensive operations such as exponentiation.

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