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An integrated approach for operational knowledge acquisition of refuse incinerators

机译:垃圾焚烧炉操作知识的综合方法

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摘要

Refuse incinerator operation poses a tremendous challenge for efficient supervision due to the highly complexity of physical and chemical mechanisms inside the systems. It is difficult to comprehend operational knowledge without thorough study and long-term on site experiments. Fortunately, many sensors are installed in incineration plants and tremendous amounts of raw data about daily practices and system states are recorded to assist operations. Without proper analysis, however, these data are not beneficial to operators. An integrated approach is adopted in the current study using feature selection and data mining techniques. Feature selection was initially applied to cope with the heavy computation burden due to the huge data set. Data dimension can be reduced by discarding redundant information and leaving only relevant features for further analysis. Data mining analysis is then utilized to build two decision tree models based on steam production and NO_x emission target attributes. Implicit incinerator system relations, represented by production rules and predicting accuracies, can be acquired from the decision tree models. Such rule-based knowledge is expected to facilitate on-site oper- ations and enhance refuse incinerator efficiency.
机译:垃圾焚化炉的运行对系统进行有效的监管提出了巨大的挑战,因为系统内部的物理和化学机制非常复杂。没有深入的研究和长期的现场试验,很难理解操作知识。幸运的是,焚烧厂安装了许多传感器,并且记录了有关日常操作和系统状态的大量原始数据,以协助操作。但是,如果不进行适当的分析,这些数据将对运营商不利。在当前的研究中,采用了一种综合方法,使用了特征选择和数据挖掘技术。最初,功能选择是为了应对庞大的数据集而导致的繁重的计算负担。可以通过丢弃冗余信息并仅保留相关特征进行进一步分析来减少数据维度。然后利用数据挖掘分析来基于蒸汽产量和NO_x排放目标属性建立两个决策树模型。可以从决策树模型中获取由生产规则和预测精度表示的隐式焚化炉系统关系。这种基于规则的知识有望促进现场操作并提高垃圾焚烧炉的效率。

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