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A Dense Initialization for Limited-Memory Quasi-Newton Methods

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arxiv 1710.02396 v5 pith:RALCF7UN submitted 2017-10-06 math.OC

classification math.OC
keywords initializationdensemethodsquasi-newtontrust-regionl-bfgslimited-memorymethod
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We consider a family of dense initializations for limited-memory quasi-Newton methods. The proposed initialization exploits an eigendecomposition-based separation of the full space into two complementary subspaces, assigning a different initialization parameter to each subspace. This family of dense initializations is proposed in the context of a limited-memory Broyden-Fletcher-Goldfarb-Shanno (L-BFGS) trust-region method that makes use of a shape-changing norm to define each subproblem. As with L-BFGS methods that traditionally use diagonal initialization, the dense initialization and the sequence of generated quasi-Newton matrices are never explicitly formed. Numerical experiments on the CUTEst test set suggest that this initialization together with the shape-changing trust-region method outperforms other L-BFGS methods for solving general nonconvex unconstrained optimization problems. While this dense initialization is proposed in the context of a special trust-region method, it has broad applications for more general quasi-Newton trust-region and line search methods. In fact, this initialization is suitable for use with any quasi-Newton update that admits a compact representation and, in particular, any member of the Broyden class of updates.

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  1. Quasi-Newton Optimization Methods For Deep Learning Applications

    cs.LG 2019-09 reject novelty 4.0 of 10

    L-BFGS with line search or trust region is applied to deep learning and deep Q-learning, with convergence theorems that rely on strong convexity and mixed empirical results on MNIST and Atari.

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