An integrated programming environment represents a robust approach to building a valid model for landfill site selection. One of the main challenges in the integrated model is the complicated processing and modelling due to the programming stages and several limitations. An automation process helps avoid the limitations and improve the interoperability between integrated programming environments. This work targets the automation of a spatial data-mining model for landfill site selection by integrating between spatial programming environment (Python-ArcGIS) and non-spatial environment (MATLAB). The model was constructed using neural networks and is divided into nine stages distributed between Matlab and Python-ArcGIS. A case study was taken from the north part of Peninsular Malaysia. 22 criteria were selected to utilise as input data and to build the training and testing datasets. The outcomes show a high-performance accuracy percentage of 98.2% in the testing dataset using 10-fold cross validation. The automated spatial data mining model provides a solid platform for decision makers to performing landfill site selection and planning operations on a regional scale.
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16 October 2017
PROCEEDINGS OF THE INTERNATIONAL CONFERENCE OF GLOBAL NETWORK FOR INNOVATIVE TECHNOLOGY AND AWAM INTERNATIONAL CONFERENCE IN CIVIL ENGINEERING (IGNITE-AICCE’17): Sustainable Technology And Practice For Infrastructure and Community Resilience
8–9 August 2017
Penang, Malaysia
Research Article|
October 16 2017
Automating an integrated spatial data-mining model for landfill site selection Available to Purchase
Sohaib K. M. Abujayyab;
Sohaib K. M. Abujayyab
a)
1
School of Civil Engineering, Engineering Campus, Universiti Sains Malaysia
, 14300 Nibong Tebal, P. Pinang, Malaysia
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Mohd Sanusi S. Ahamad;
Mohd Sanusi S. Ahamad
b)
1
School of Civil Engineering, Engineering Campus, Universiti Sains Malaysia
, 14300 Nibong Tebal, P. Pinang, Malaysia
2
Solid Waste Management Cluster, Science and Engineering Research Centre, Engineering Campus, Universiti Sains Malaysia
, 14300 Nibong Tebal, Penang, Malaysia
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Ahmad Shukri Yahya;
Ahmad Shukri Yahya
c)
1
School of Civil Engineering, Engineering Campus, Universiti Sains Malaysia
, 14300 Nibong Tebal, P. Pinang, Malaysia
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Siti Zubaidah Ahmad;
Siti Zubaidah Ahmad
d)
1
School of Civil Engineering, Engineering Campus, Universiti Sains Malaysia
, 14300 Nibong Tebal, P. Pinang, Malaysia
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Hamidi Abdul Aziz
Hamidi Abdul Aziz
e)
1
School of Civil Engineering, Engineering Campus, Universiti Sains Malaysia
, 14300 Nibong Tebal, P. Pinang, Malaysia
2
Solid Waste Management Cluster, Science and Engineering Research Centre, Engineering Campus, Universiti Sains Malaysia
, 14300 Nibong Tebal, Penang, Malaysia
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Sohaib K. M. Abujayyab
1,a)
Mohd Sanusi S. Ahamad
1,2,b)
Ahmad Shukri Yahya
1,c)
Siti Zubaidah Ahmad
1,d)
Hamidi Abdul Aziz
1,2,e)
1
School of Civil Engineering, Engineering Campus, Universiti Sains Malaysia
, 14300 Nibong Tebal, P. Pinang, Malaysia
2
Solid Waste Management Cluster, Science and Engineering Research Centre, Engineering Campus, Universiti Sains Malaysia
, 14300 Nibong Tebal, Penang, Malaysia
b)
Corresponding author: [email protected]
AIP Conf. Proc. 1892, 130001 (2017)
Citation
Sohaib K. M. Abujayyab, Mohd Sanusi S. Ahamad, Ahmad Shukri Yahya, Siti Zubaidah Ahmad, Hamidi Abdul Aziz; Automating an integrated spatial data-mining model for landfill site selection. AIP Conf. Proc. 16 October 2017; 1892 (1): 130001. https://doi.org/10.1063/1.5005757
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