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      Prediction of oxidation parameters of purified Kilka fish oil including gallic acid and methyl gallate by adaptive neuro-fuzzy inference system (ANFIS) and artificial neural network.

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          Abstract

          As a result of concerns regarding possible health hazards of synthetic antioxidants, gallic acid and methyl gallate may be introduced as natural antioxidants to improve oxidative stability of marine oil. Since conventional modelling could not predict the oxidative parameters precisely, artificial neural network (ANN) and neuro-fuzzy inference system (ANFIS) modelling with three inputs, including type of antioxidant (gallic acid and methyl gallate), temperature (35, 45 and 55 °C) and concentration (0, 200, 400, 800 and 1600 mg L(-1) ) and four outputs containing induction period (IP), slope of initial stage of oxidation curve (k1 ) and slope of propagation stage of oxidation curve (k2 ) and peroxide value at the IP (PVIP ) were performed to predict the oxidation parameters of Kilka oil triacylglycerols and were compared to multiple linear regression (MLR).

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          Author and article information

          Journal
          J. Sci. Food Agric.
          Journal of the science of food and agriculture
          Wiley
          1097-0010
          0022-5142
          Oct 2016
          : 96
          : 13
          Affiliations
          [1 ] Department of Food Science and Technology, Sari Agricultural Sciences & Natural Resources University (SANRU), P.O. Box 578, Sari, Iran.
          [2 ] Department of Food Science and Technology, Faculty of Agriculture, Ferdowsi University of Mashhad, P.O. Box 91775-1163, Mashhad, Iran.
          Article
          10.1002/jsfa.7677
          26909668
          b478a17f-b14e-49a7-ba92-82b6eb513c7d
          History

          ANFIS,Artificial neural network,Gallic acid,Kilka fish oil,Lipid oxidation,MLR,Methyl gallate,Sensitivity analysis

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