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   Data mining application in predicting Cryptosporidium SPP. oocysts and Giardia SPP. cysts concentrations in rivers  
   
نویسنده ogwueleka t.c. ,ogwueleka f.n.
منبع journal of engineering science and technology - 2010 - دوره : 5 - شماره : 3 - صفحه:342 -349
چکیده    Data mining is a set of computer-assisted techniques designed to automatically mine large volumes of integrated data for new,hidden or unexpected information,or patterns. two artificial neural networks (ann) models were developed for prediction of cryptosporidium oocysts and giardia cysts respectively using multiple water quality parameters as input. these neural models were feed forward networks,trained by back propagation algorithm. eight water quality parameters were used to predict cryptosporidium peak concentration and seven parameters were used to model giardia concentration in kano river,nigeria. the ann models correctly predicted oocysts and cysts concentration with accuracy of 90% and 92% respectively. the neural network model gave excellent results. © school of engineering,taylor's university college.
کلیدواژه Artificial neural networks; Data mining; Faecal pollution; Microbial contamination; Water quality
آدرس department of civil science,university of abuja,pmb 117,abuja, Nigeria, department of computer science,university of abuja,pmb 117,abuja, Nigeria
 
     
   
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