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A knowledge-based approach to the deflocculation problem: integrating on-line, off-line, and heuristic information

机译:基于知识的解絮凝方法:集成在线,离线和启发式信息

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A knowledge-based approach for the supervision of the deflocculation problem in activated sludge processes was considered and successfully applied to a full-scale plant. To do that, a methodology that integrates on-line, off-line and heuristic information has been proposed. This methodology consists of three steps: (ⅰ) development of a decision tree (which involves knowledge acquisition and representation); (ⅱ) implementation into a rule-based system; and (ⅲ) validation. The set of symptoms most useful in diagnosing the deflocculation problem has been identified, the different branches to diagnose pin-point floc and dispersed growth have been built (using generic and specific knowledge), and all this knowledge has been codified into an object-oriented shell. The results obtained in the application of this knowledge-based approach to the Granollers WWTP (which treats about 130,000 inhabitants-equivalents) showed that the system was able to identify correctly the problem with reasonable accuracy. Our positive experience building this system suggests that this approach is a practical and valuable element to include in an intelligent supervisory system combining numerical and reasoning techniques.
机译:考虑了一种基于知识的方法来监控活性污泥工艺中的絮凝问题,并将其成功应用于大规模工厂。为此,已经提出了一种集成在线,离线和启发式信息的方法。该方法包括三个步骤:(ⅰ)开发决策树(涉及知识获取和表示); (ⅱ)实施到基于规则的系统中;和(ⅲ)验证。已经确定了最有助于诊断絮凝问题的一组症状,已建立了用于诊断针状絮状物和分散生长的不同分支(使用通用知识和特定知识),并且所有这些知识已被整理为面向对象贝壳。在将这种基于知识的方法应用于Granollers污水处理厂(治疗约13万居民当量)时获得的结果表明,该系统能够以合理的准确度正确识别问题。我们在构建此系统方面的积极经验表明,此方法是将数值和推理技术相结合的智能监管系统的实用且有价值的元素。

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