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Application of artificial neural network to optimize sensor positions for accurate monitoring: an example with thermocouples in a crystal growth furnace

机译:人工神经网络在精确监测中优化传感器位置的应用:晶体生长炉热电偶示例

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We propose to utilize artificial neural network (ANN) to optimize positions of a limited number of sensors for accurate monitoring, and demonstrate its effectiveness by a case study of four thermocouples in a directional solidification furnace. Our concept consists of choosing the positions with ANN that has the lowest loss from a multiplicity of ANNs, which were trained by the simulated temperature distributions along the outer crucible wall. Interestingly, the top ten ranks of accurate predictions contain positions around the crucible?s bottom to suggest the importance of measuring temperatures carefully around high-temperature gradients that is the boundary between different materials.
机译:我们建议利用人工神经网络(ANN)来优化有限数量的传感器的位置,以便精确监测,并通过定向凝固炉中的四个热电偶的案例研究来证明其有效性。我们的概念包括选择具有从多个ANN的最低损耗的ANN的位置,其由沿着外坩埚壁的模拟温度分布训练。有趣的是,准确预测的前十个级别包含坩埚底部的位置,以提示仔细测量温度的高温梯度,即在不同材料之间的边界。

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  • 来源
    《Annales de l'I.H.P》 |2019年第12期|125503.1-125503.5|共5页
  • 作者单位

    Nagoya Univ Grad Sch Engn Nagoya Aichi 4648603 Japan;

    RIKEN Ctr Artificial Intelligence Project Tokyo 1030027 Japan;

    Nagoya Univ Grad Sch Informat Nagoya Aichi 4648601 Japan;

    Nagoya Univ Grad Sch Informat Nagoya Aichi 4648601 Japan;

    Nagoya Univ Grad Sch Informat Nagoya Aichi 4648601 Japan;

    Nagoya Univ Grad Sch Engn Nagoya Aichi 4648603 Japan;

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