首页> 外文会议>Industrial Technology, 1996. (ICIT '96), Proceedings of The IEEE International Conference on >Prediction of learning process of human-machine interface with intermissions through a neural network
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Prediction of learning process of human-machine interface with intermissions through a neural network

机译:通过神经网络预测间歇性人机界面的学习过程

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In order to adapt a human-machine interface to individual user's learning condition, while enabling the user to easily use the interface, the individual learning process should be studied. After a long term intermission in operating a machine, the efficiency of the machine operation may worsen because the intermission weakens the learning results. In this research a hierarchical neural network with an intermediate layer has been developed in order to forecast the user's learning capability after the recommencement of the operation, based on the data gathered in previous operations. The number of units in the intermediate layer was determined by cross validating the data of experiments.
机译:为了使人机界面适应单个用户的学习条件,同时使用户能够轻松使用该界面,应该研究单个学习过程。长时间中断机器运行后,机器运行效率可能会降低,因为间歇会削弱学习效果。在这项研究中,已经开发了具有中间层的分层神经网络,以便根据先前操作中收集的数据来预测操作重新开始后的用户学习能力。通过交叉验证实验数据确定中间层中的单元数。

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