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Autoassociative Neural Networks for Fault Diagnosis in Semiconductor Manufacturing

机译:自联想神经网络在半导体制造中的故障诊断

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摘要

As yield and productivity are increasingly competing in importance with technology in integrated circuit manufacturing, semiconductor industry can benefit from advances on artificial intelligence. This paper shows a fault daignosis system based on autoassociative neural networks, a little exploited processing architecture in industrial applications. The systme integrates three autoassociative algorithms and it selects the most suitable in each case. It optimizes the processign time while guarantees an accurate diagnosis. The feasibility o the solution is justified and comparative results are presented and discussed.
机译:随着产量和生产率在集成电路制造技术中越来越重要地竞争,半导体行业可以从人工智能的进步中受益。本文展示了一种基于自缔合神经网络的故障诊断系统,在工业应用中很少使用处理架构。该系统集成了三种自动关联算法,并且在每种情况下都选择最合适的算法。它优化了处理时间,同时确保了准确的诊断。该解决方案的可行性是合理的,并给出和讨论了比较结果。

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