نتایج جستجو برای: topping pruning

تعداد نتایج: 10121  

Journal: :Misr Journal of Agricultural Engineering 2014

2017
Sajid Anwar Wonyong Sung

The learning capability of a neural network improves with increasing depth at higher computational costs. Wider layers with dense kernel connectivity patterns further increase this cost and may hinder real-time inference. We propose feature map and kernel pruning for reducing the computational complexity of a deep convolutional neural network. Due to coarse nature, these pruning granularities c...

Journal: :The Journal of Agriculture of the University of Puerto Rico 1969

2010
Volker Steinbiss Martin Sundermeyer Hermann Ney

The search for the optimal word sequence can be performed efficiently even in a speech recognizer with a very large vocabulary and complex models. This is achieved using pruning methods with empirically chosen parameters and the willingness to accept a certain amount of pruning errors. Quite unsatisfying though, it is state-of-the-art that such pruning errors are not directly detected but, inst...

H. Azarnivand Z. Badehian,

Climate change is known as one of the most important environmental challenges. Sequestration of carbon in terrestrial ecosystems is a low-cost option that may be available in the near-term to mitigate increasing atmospheric CO2 concentrations, while providing additional benefits. In this study, we estimated the effects of planting density and grazing intensity on the potential of Atriplex canes...

Journal: :Networks 2008
Matthew D. Bailey Robert L. Smith Jeffrey M. Alden

Node pruning is a commonly used technique for solution acceleration in a dynamic programming network. In pruning, nodes are adaptively removed from the dynamic programming network when they are determined to not lie on an optimal path. We introduce an ε-pruning condition that extends pruning to include a possible error in the pruning step. This results in a greater reduction of the computation ...

1994
Johannes Fürnkranz

Pre-Pruning and Post-Pruning are two standard methods of dealing with noise in concept learning. Pre-Pruning methods are very efficient, while Post-Pruning methods typically are more accurate, but much slower, because they have to generate an overly specific concept description first. We have experimented with a variety of pruning methods, including two new methods that try to combine and integ...

Journal: :Cell 2012
Martin M. Riccomagno Andrés Hurtado HongBin Wang Joshua G.J. Macopson Erin M. Griner Andrea Betz Nils Brose Marcelo G. Kazanietz Alex L. Kolodkin

Axon pruning and synapse elimination promote neural connectivity and synaptic plasticity. Stereotyped pruning of axons that originate in the hippocampal dentate gyrus (DG) and extend along the infrapyramidal tract (IPT) occurs during postnatal murine development by neurite retraction and resembles axon repulsion. The chemorepellent Sema3F is required for IPT axon pruning, dendritic spine remode...

2000
David Jensen

Overtting is a widely observed pathology of induction algorithms. For induction algorithms that build decision trees, pruning is a common approach to correct overtting. Most common pruning techniques , do not account for one potentially important factor | multiple comparisons. Multiple comparisons occur whenever an induction algorithm examines several candidate models and selects the one that b...

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