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

Water ResearchPublished 1 May 2003
Joaquím Comas, Ignasi Rodríguez‐Roda, Miquel Sànchez–Marrè, Ulises Cortés, Àngel Freixó, J Arráez
Citations50
SJR quartileQ1
SJR score3.84
SNIP2.36

TL;DR

The results obtained in the application of this knowledge-based approach to the Granollers WWTP showed that the system was able to identify correctly the problem with reasonable accuracy, suggesting that this approach is a practical and valuable element to include in an intelligent supervisory system combining numerical and reasoning techniques.

Abstract

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 130000 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.

Keywords

Computer ScienceEnvironmental Science