Solving Global Water Crisis With Artificial Intelligence

Solving Global Water Crisis With Artificial Intelligence
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  • AI techniques such as Artificial Neural Networks and Support Vector Machine (SVM) are being popularly used as they are less cost-effective when compared to big data mechanisms.
  • They used the precipitation, temperature and groundwater level data as the vector for neural networks for prediction.
  • They used aquifer depth, aquifer sensitivity to pesticide, pesticide leaching and samples for a specific time as vectors for these ANN.
  • They used previous data of groundwater level, tide level and precipitation as vectors.
  • Performance of ANN prototypes was compared using correlation coefficient, mean squared error, and coefficient of efficiency.


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