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Title: :  Comparative Analysis of Machine Learning-Based Estimation of Output Current Ripple in PFC-IBC Used in Electrical Vehicle Battery Chargers concerning LR, RF, and ANN Methods
PaperId: :  23235
Published in:   International Journal Of Advance Research And Innovative Ideas In Education
Publisher:   IJARIIE
e-ISSN:   2395-4396
Volume/Issue:    Volume 10 Issue 2 2024
DUI:    16.0415/IJARIIE-23235
Licence: :   IJARIIE is licensed under a Creative Commons Attribution-ShareAlike 4.0 International License.

Author NameAuthor Institute
SUKURU NAGA SAI SRINIVASUSanketika vidhya parishad engineering college
MUDUNURU RITHIK VAMSI VARMASanketika vidhya parishad engineering college
GEDALA JAGATH PAVANISanketika vidhya parishad engineering college
YELAMANCHILI PRIYANKA Sanketika vidhya parishad engineering colleg
PALAKOLLU SAI BALAJISanketika vidhya parishad engineering college
PAKKI MURARISanketika vidhya parishad engineering college

Abstract

Electrical Engineering
artificial neural network, machine learning, electrical vehicle, power factor adjustment, battery charging.
In this study, an artificial neural network (ANN) model is developed based on the inductance current ripple, switching frequency, and load changes to estimate the output current ripple of a power factor correction (PFC) AC/DC interleaved boost converter (IBC) used in battery chargers of electrical vehicles (EVs). Additionally, the enhanced ANN model is contrasted with a few other machines learning (ML) methods, such as random forest (RF) and linear regression (LR). To estimate the output current ripple, the PSIM simulation programme is used to simulate the PFC-IBC. Consequently, 336 output current ripple values are calculated using various switching frequencies, load variations, and inductance current ripple. Next, to manage the current harmonics obtained from the grid and ensure dependable battery charging, the output current ripple value is approximated by training the input parameters using LR, RF, and ANN machine learning methods (MLTs). It may be observed that the estimation value produced by MLTs is rather consistent with the real value that the simulation produced. Furthermore, the simulation-based study requires several days to yield the estimation findings; in contrast, the estimating process using machine learning techniques can be finished in a matter of minutes. This makes the benefit of MLTs very evident. As a result, this value is highly accurately approximated using MLTs prior to the design of the charging apparatus to keep the output current ripple at a safe level, which is crucial for the charging of batteries in electrical vehicles. Additionally, LR, RF, and created ANN approaches were used in this estimating process are looked at and contrasted independently in the WEKA programme, and it is found that the created ANN model offers superior outcomes than alternative methods.

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IJARIIE SUKURU NAGA SAI SRINIVASU, MUDUNURU RITHIK VAMSI VARMA, GEDALA JAGATH PAVANI, YELAMANCHILI PRIYANKA , PALAKOLLU SAI BALAJI, and PAKKI MURARI. "Comparative Analysis of Machine Learning-Based Estimation of Output Current Ripple in PFC-IBC Used in Electrical Vehicle Battery Chargers concerning LR, RF, and ANN Methods" International Journal Of Advance Research And Innovative Ideas In Education Volume 10 Issue 2 2024 Page 3325-3334
MLA SUKURU NAGA SAI SRINIVASU, MUDUNURU RITHIK VAMSI VARMA, GEDALA JAGATH PAVANI, YELAMANCHILI PRIYANKA , PALAKOLLU SAI BALAJI, and PAKKI MURARI. "Comparative Analysis of Machine Learning-Based Estimation of Output Current Ripple in PFC-IBC Used in Electrical Vehicle Battery Chargers concerning LR, RF, and ANN Methods." International Journal Of Advance Research And Innovative Ideas In Education 10.2(2024) : 3325-3334.
APA SUKURU NAGA SAI SRINIVASU, MUDUNURU RITHIK VAMSI VARMA, GEDALA JAGATH PAVANI, YELAMANCHILI PRIYANKA , PALAKOLLU SAI BALAJI, & PAKKI MURARI. (2024). Comparative Analysis of Machine Learning-Based Estimation of Output Current Ripple in PFC-IBC Used in Electrical Vehicle Battery Chargers concerning LR, RF, and ANN Methods. International Journal Of Advance Research And Innovative Ideas In Education, 10(2), 3325-3334.
Chicago SUKURU NAGA SAI SRINIVASU, MUDUNURU RITHIK VAMSI VARMA, GEDALA JAGATH PAVANI, YELAMANCHILI PRIYANKA , PALAKOLLU SAI BALAJI, and PAKKI MURARI. "Comparative Analysis of Machine Learning-Based Estimation of Output Current Ripple in PFC-IBC Used in Electrical Vehicle Battery Chargers concerning LR, RF, and ANN Methods." International Journal Of Advance Research And Innovative Ideas In Education 10, no. 2 (2024) : 3325-3334.
Oxford SUKURU NAGA SAI SRINIVASU, MUDUNURU RITHIK VAMSI VARMA, GEDALA JAGATH PAVANI, YELAMANCHILI PRIYANKA , PALAKOLLU SAI BALAJI, and PAKKI MURARI. 'Comparative Analysis of Machine Learning-Based Estimation of Output Current Ripple in PFC-IBC Used in Electrical Vehicle Battery Chargers concerning LR, RF, and ANN Methods', International Journal Of Advance Research And Innovative Ideas In Education, vol. 10, no. 2, 2024, p. 3325-3334. Available from IJARIIE, https://ijariie.com/AdminUploadPdf/Comparative_Analysis_of_Machine_Learning_Based_Estimation_of_Output_Current_Ripple_in_PFC_IBC_Used_in_Electrical_Vehicle_Battery_Chargers_concerning_LR__RF__and_ANN_Methods_ijariie23235.pdf (Accessed : 03 April 2025).
Harvard SUKURU NAGA SAI SRINIVASU, MUDUNURU RITHIK VAMSI VARMA, GEDALA JAGATH PAVANI, YELAMANCHILI PRIYANKA , PALAKOLLU SAI BALAJI, and PAKKI MURARI. (2024) 'Comparative Analysis of Machine Learning-Based Estimation of Output Current Ripple in PFC-IBC Used in Electrical Vehicle Battery Chargers concerning LR, RF, and ANN Methods', International Journal Of Advance Research And Innovative Ideas In Education, 10(2), pp. 3325-3334IJARIIE [Online]. Available at: https://ijariie.com/AdminUploadPdf/Comparative_Analysis_of_Machine_Learning_Based_Estimation_of_Output_Current_Ripple_in_PFC_IBC_Used_in_Electrical_Vehicle_Battery_Chargers_concerning_LR__RF__and_ANN_Methods_ijariie23235.pdf (Accessed : 03 April 2025)
IEEE SUKURU NAGA SAI SRINIVASU, MUDUNURU RITHIK VAMSI VARMA, GEDALA JAGATH PAVANI, YELAMANCHILI PRIYANKA , PALAKOLLU SAI BALAJI, and PAKKI MURARI, "Comparative Analysis of Machine Learning-Based Estimation of Output Current Ripple in PFC-IBC Used in Electrical Vehicle Battery Chargers concerning LR, RF, and ANN Methods," International Journal Of Advance Research And Innovative Ideas In Education, vol. 10, no. 2, pp. 3325-3334, Mar-App 2024. [Online]. Available: https://ijariie.com/AdminUploadPdf/Comparative_Analysis_of_Machine_Learning_Based_Estimation_of_Output_Current_Ripple_in_PFC_IBC_Used_in_Electrical_Vehicle_Battery_Chargers_concerning_LR__RF__and_ANN_Methods_ijariie23235.pdf [Accessed : 03 April 2025].
Turabian SUKURU NAGA SAI SRINIVASU, MUDUNURU RITHIK VAMSI VARMA, GEDALA JAGATH PAVANI, YELAMANCHILI PRIYANKA , PALAKOLLU SAI BALAJI, and PAKKI MURARI. "Comparative Analysis of Machine Learning-Based Estimation of Output Current Ripple in PFC-IBC Used in Electrical Vehicle Battery Chargers concerning LR, RF, and ANN Methods." International Journal Of Advance Research And Innovative Ideas In Education [Online]. volume 10 number 2 (03 April 2025).
Vancouver SUKURU NAGA SAI SRINIVASU, MUDUNURU RITHIK VAMSI VARMA, GEDALA JAGATH PAVANI, YELAMANCHILI PRIYANKA , PALAKOLLU SAI BALAJI, and PAKKI MURARI. Comparative Analysis of Machine Learning-Based Estimation of Output Current Ripple in PFC-IBC Used in Electrical Vehicle Battery Chargers concerning LR, RF, and ANN Methods. International Journal Of Advance Research And Innovative Ideas In Education [Internet]. 2024 [Cited : 03 April 2025]; 10(2) : 3325-3334. Available from: https://ijariie.com/AdminUploadPdf/Comparative_Analysis_of_Machine_Learning_Based_Estimation_of_Output_Current_Ripple_in_PFC_IBC_Used_in_Electrical_Vehicle_Battery_Chargers_concerning_LR__RF__and_ANN_Methods_ijariie23235.pdf
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