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摘要:
Artificial neural networks have the abilities to learn by example and are capable of solving problems that are hard to solve using ordinary rule-based programming. They have many design parameters that affect their performance such as the number and sizes of the hidden layers. Large sizes are slow and small sizes are generally not accurate. Tuning the neural network size is a hard task because the design space is often large and training is often a long process. We use design of experiments techniques to tune the recurrent neural network used in an Arabic handwriting recognition system. We show that best results are achieved with three hidden layers and two subsampling layers. To tune the sizes of these five layers, we use fractional factorial experiment design to limit the number of experiments to a feasible number. Moreover, we replicate the experiment configuration multiple times to overcome the randomness in the training process. The accuracy and time measurements are analyzed and modeled. The two models are then used to locate network sizes that are on the Pareto optimal frontier. The approach described in this paper reduces the label error from 26.2% to 19.8%.
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篇名 Tuning Recurrent Neural Networks for Recognizing Handwritten Arabic Words
来源期刊 软件工程与应用(英文) 学科 工学
关键词 Optical CHARACTER Recognition Handwritten ARABIC WORDS RECURRENT NEURAL Networks Design of EXPERIMENTS
年,卷(期) 2013,(10) 所属期刊栏目
研究方向 页码范围 533-542
页数 10页 分类号 TP39
字数 语种
DOI
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研究主题发展历程
节点文献
Optical
CHARACTER
Recognition
Handwritten
ARABIC
WORDS
RECURRENT
NEURAL
Networks
Design
of
EXPERIMENTS
研究起点
研究来源
研究分支
研究去脉
引文网络交叉学科
相关学者/机构
期刊影响力
软件工程与应用(英文)
月刊
1945-3116
武汉市江夏区汤逊湖北路38号光谷总部空间
出版文献量(篇)
885
总下载数(次)
0
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0
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