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DMGAN: Adversarial Learning-Based Decision Making for Human-Level Plant-Wide Operation of Process Industries Under Uncertainties

机译:DMGAN:基于对抗基于学习的人类学习的决策,用于在不确定因素下的工艺产业的植物范围内运营

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摘要

To achieve plant-wide operational optimization and dynamic adjustment of operational index for an industrial process, knowledge-based methods have been widely employed over the past years. However, the extraction of knowledge base is a bottleneck for most existing approaches. To address this problem, we propose a novel framework based on the generative adversarial networks (GANs), termed as decision-making GAN (DMGAN), which directly learns from operational data and performs human-level decision making of the operational indices for plant-wide operation. In the proposed DMGAN, two adversarial criteria and three cycle consistency criteria are incorporated to encourage efficient posterior inference. To improve the generalization power of a generator with an increasing complexity of the industrial processes, a reinforced U-Net (RU-Net) is presented that improves the traditional U-Net by providing a more general combinator, a building block design, and drop-level regularization. In this article, we also propose three quantitative metrics for assessing the plant-wide operation performance. A case study based on the largest mineral processing factory in Western China is carried out, and the experimental results demonstrate the promising performance of the proposed DMGAN when compared with decision-making based on domain experts.
机译:为实现工业过程的省级运营优化和动态调整工业过程的运营指标,在过去几年中已被广泛采用知识的方法。然而,知识库的提取是大多数现有方法的瓶颈。为了解决这一问题,我们提出了一种基于生成的对冲网络(GAN)的新颖框架,被称为决策甘(DMGAN),该网络(DMGAN)直接从运营数据中学习并执行人力级别的工厂的业务指数 - 广泛的操作。在所提出的DMGAN中,纳入了两个对抗性标准和三个循环一致性标准,以促进有效的后验。为了提高发电机的泛化功率随着工业过程的增加,提出了一种增强的U-Net(Ru-Net),通过提供更一般的组合器,构建块设计和掉落来提高增强U-Net(Ru-Net)。 - 整规则化。在本文中,我们还提出了三种定量指标,用于评估植物范围的操作性能。进行了基于中国西部最大的矿物加工厂的案例研究,实验结果表明,与基于领域专家的决策相比,建议DMGAN的有希望的表现。

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