Determination of Spatial and Temporal Changes in Surface Water Quality of Filyos River (Turkey) Using Principal Component Analysis and Cluster Analysis
Yazarlar (4)
Elif Yağanoğlu Atatürk Üniversitesi, Türkiye
Doç. Dr. Aycan Mutlu Yağanoğlu Atatürk Üniversitesi, Türkiye
Gökhan Arslan Atatürk Üniversitesi
Prof. Dr. A. Y. Sonmez Kastamonu Üniversitesi, Türkiye
Makale Türü Açık Erişim Özgün Makale (Uluslararası alan indekslerindeki dergilerde yayınlanan tam makale)
Dergi Adı Marine Science and Technology Bulletin
Dergi ISSN 2147-9666
Dergi Tarandığı Indeksler Zoological Record
Makale Dili İngilizce Basım Tarihi 01-2020
Kabul Tarihi 09-10-2020 Yayınlanma Tarihi 31-12-2020
Cilt / Sayı / Sayfa 9 / 2 / 207–214 DOI 10.33714/masteb.784959
Makale Linki https://dergipark.org.tr/tr/doi/10.33714/masteb.784959
UAK Araştırma Alanları
Su Ürünleri Yetiştiriciliği
Özet
Monitoring water quality is one of the high priorities for the protection of water resources. Many different approaches are used to analyse and interpret the variables that determine the variance of water quality observed in various sources. Statistical methods, especially multivariate statistical techniques, constitute an important part of these approaches. In this study, ten water quality parameters, which were measured for twelve months from seven stations determined on Filyos River, were evaluated by carrying out principal component analysis (PCA) and cluster analysis (CA) from multivariate statistical methods. In addition, dominant quality parameters designating the quality of the water source were determined. According to PCA results, 4 principal components contained the key variables and accounted for 69.49% of total variance of surface water quality from Filyos River. Dominant water quality parameters were observed to be temperature, EC, DO and pH. While the study revealed that the river is exposed to agricultural pollution alongside with the water quality character generated by the climatic conditions, it also suggested that multivariate statistical methods are useful tools in evaluating complex data sets such as water quality data, and monitoring the quality of water resources.
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