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Volume 14 | Issue 7 |

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  Paper Title: INTELLIGENT CONTROL OF INTERLEAVED DC-DC BUCK CONVERTER USING ANFIS FOR ELECTRIC VEHICLE CHARGING APPLICATIONS

  Author Name(s): Shruthi, Dr.G S Sheshadri

  Published Paper ID: - IJCRTBY02063

  Register Paper ID - 312803

  Publisher Journal Name: IJPUBLICATION, IJCRT

  DOI Member ID: 10.6084/m9.doi.one.IJCRTBY02063 and DOI : https://doi.org/10.56975/ijcrt.v14i7.312803

  Author Country : Indian Author, India, - , -, - , | Research Area: Science and Technology

Published Paper URL: http://ijcrt.org/viewfull.php?&p_id=IJCRTBY02063
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  Your Paper Publication Details:

  Title: INTELLIGENT CONTROL OF INTERLEAVED DC-DC BUCK CONVERTER USING ANFIS FOR ELECTRIC VEHICLE CHARGING APPLICATIONS

 DOI (Digital Object Identifier) : https://doi.org/10.56975/ijcrt.v14i7.312803

 Pubished in Volume: 14  | Issue: 7  | Year: July 2026

 Publisher Name : IJCRT | www.ijcrt.org | ISSN : 2320-2882

 Subject Area: Science and Technology

 Author type: Indian Author

 Pubished in Volume: 14

 Issue: 7

 Pages: 518-530

 Year: July 2026

 Downloads: 91

  E-ISSN Number: 2320-2882

 Abstract


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 Keywords

Adaptive Neuro-Fuzzy Inference System (ANFIS), Electric Vehicle Charging, Interleaved DC-DC Boost Converter, Pulse Width Modulation (PWM)

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  Paper Title: A Review of Recent Developments in BLDC Motor Control Systems for EV

  Author Name(s): Shilpa S K., Dr. U.M.Netravati

  Published Paper ID: - IJCRTBY02062

  Register Paper ID - 310005

  Publisher Journal Name: IJPUBLICATION, IJCRT

  DOI Member ID: 10.6084/m9.doi.one.IJCRTBY02062 and DOI : https://doi.org/10.56975/ijcrt.v14i7.310005

  Author Country : Indian Author, India, - , -, - , | Research Area: Science and Technology

Published Paper URL: http://ijcrt.org/viewfull.php?&p_id=IJCRTBY02062
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  Title: A REVIEW OF RECENT DEVELOPMENTS IN BLDC MOTOR CONTROL SYSTEMS FOR EV

 DOI (Digital Object Identifier) : https://doi.org/10.56975/ijcrt.v14i7.310005

 Pubished in Volume: 14  | Issue: 7  | Year: July 2026

 Publisher Name : IJCRT | www.ijcrt.org | ISSN : 2320-2882

 Subject Area: Science and Technology

 Author type: Indian Author

 Pubished in Volume: 14

 Issue: 7

 Pages: 505-517

 Year: July 2026

 Downloads: 158

  E-ISSN Number: 2320-2882

 Abstract

This research reviews the transformative role of Artificial Intelligence (AI) in enhancing the control, diagnostic, and estimation frameworks of Brush-less DC (BLDC) motors within electric vehicle (EV) and fuel cell electric vehicle (FCEV) environments. Traditional Proportional-Integral (PI) controllers often fail to maintain stability under the high nonlinearity, parameter variations, and load disturbances inherent in modern propulsion systems. To address these limitations, this paper examines advanced AI methodologies, including Adaptive Neuro-Fuzzy Inference Systems (ANFIS), Deep Reinforcement Learning (DRL), and Deep Transfer Learning (DTL). These tools are utilized for real-time parameter tuning, sensorless position estimation, and predictive maintenance through Remaining Useful Life (RUL) forecasting. Experimental and simulation results across the reviewed literature consistently demonstrate that AI-integrated systems significantly reduce settling time, eliminate overshoot, and minimize torque ripple. Ultimately, the integration of AI acts as a "virtual sensing" and "intelligent decision-making" layer that optimizes energy efficiency and extends the operational lifespan of EV powertrains.


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 Keywords

BLDC motor, ANFIS, sensorless control, Electric Vehicles.

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  Paper Title: NEW-GENERATION AUTONOMOUS BATTERY-FREE ELECTRIC VEHICLE

  Author Name(s): Abhishek G.P, Yashwanth G, Sheeba Aaliyah K.J, Dr. Yogananda B.S

  Published Paper ID: - IJCRTBY02061

  Register Paper ID - 310003

  Publisher Journal Name: IJPUBLICATION, IJCRT

  DOI Member ID: 10.6084/m9.doi.one.IJCRTBY02061 and DOI : https://doi.org/10.56975/ijcrt.v14i7.310003

  Author Country : Indian Author, India, - , -, - , | Research Area: Science and Technology

Published Paper URL: http://ijcrt.org/viewfull.php?&p_id=IJCRTBY02061
Published Paper PDF: download.php?file=IJCRTBY02061
Published Paper PDF: http://www.ijcrt.org/papers/IJCRTBY02061.pdf

  Your Paper Publication Details:

  Title: NEW-GENERATION AUTONOMOUS BATTERY-FREE ELECTRIC VEHICLE

 DOI (Digital Object Identifier) : https://doi.org/10.56975/ijcrt.v14i7.310003

 Pubished in Volume: 14  | Issue: 7  | Year: July 2026

 Publisher Name : IJCRT | www.ijcrt.org | ISSN : 2320-2882

 Subject Area: Science and Technology

 Author type: Indian Author

 Pubished in Volume: 14

 Issue: 7

 Pages: 494-504

 Year: July 2026

 Downloads: 157

  E-ISSN Number: 2320-2882

 Abstract

Dynamic Wireless Power Transfer (DWPT) is proposed as a pathway toward eliminating onboard batteries in electric vehicles (EVs), thereby addressing the weight, cost, and end-of-life disposal challenges associated with conventional lithium-ion packs. A prototype EV system is presented that operates with zero onboard energy storage, receiving power continuously from 18 road-embedded transmitter coils operating at 120 kHz through a fixed 5 mm air gap. Three relay switches, sequenced by a hardware timer circuit, activate coil zones autonomously without the need for a programmable controller. A hybrid supply combining solar photovoltaic energy with a 12 V AC-DC adapter powers the transmitter infrastructure, while a separate 5 V adapter maintains the isolated control plane. Experimental validation confirms continuous battery-free vehicle motion, reliable autonomous coil sequencing, and seamless hybrid supply switchover across all test conditions.


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 Keywords

Dynamic Wireless Power Transfer; Battery-Free Electric Vehicle; Inductive Coupling; Timer-Controlled Relay Sequencing; Hybrid Solar-AC Supply; 120 kHz Resonant Transfer; Autonomous Coil Activation.

  License

Creative Commons Attribution 4.0 and The Open Definition


  Paper Title: INTEGRATION OF SOLAR AND WIND ENERGY SYSTEM FOR SUSTAINABLE ELECTRIC VEHICLE

  Author Name(s): Rakesh YD, Darshan KP, Nikhil M Singh, Sumaya Banu

  Published Paper ID: - IJCRTBY02060

  Register Paper ID - 310002

  Publisher Journal Name: IJPUBLICATION, IJCRT

  DOI Member ID: 10.6084/m9.doi.one.IJCRTBY02060 and DOI : https://doi.org/10.56975/ijcrt.v14i7.310002

  Author Country : Indian Author, India, - , -, - , | Research Area: Science and Technology

Published Paper URL: http://ijcrt.org/viewfull.php?&p_id=IJCRTBY02060
Published Paper PDF: download.php?file=IJCRTBY02060
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  Your Paper Publication Details:

  Title: INTEGRATION OF SOLAR AND WIND ENERGY SYSTEM FOR SUSTAINABLE ELECTRIC VEHICLE

 DOI (Digital Object Identifier) : https://doi.org/10.56975/ijcrt.v14i7.310002

 Pubished in Volume: 14  | Issue: 7  | Year: July 2026

 Publisher Name : IJCRT | www.ijcrt.org | ISSN : 2320-2882

 Subject Area: Science and Technology

 Author type: Indian Author

 Pubished in Volume: 14

 Issue: 7

 Pages: 488-493

 Year: July 2026

 Downloads: 144

  E-ISSN Number: 2320-2882

 Abstract

The increasing demand for clean and sustainable transportation has accelerated the adoption of electric vehicles (EVs) worldwide. However, the dependency of EV charging systems on conventional grid power creates challenges related to carbon emissions, energy shortage, and grid instability. This paper presents the integration of solar and wind energy systems for sustainable electric vehicle charging applications. The proposed hybrid renewable energy system combines photovoltaic (PV) panels and wind turbines to provide reliable, eco-friendly, and continuous power for EV charging stations. An energy management system is employed to optimize power flow between renewable sources, battery storage, and the electric vehicle load. The hybrid approach enhances system reliability by compensating for the intermittency of individual renewable sources. Solar energy contributes during daytime conditions, while wind energy supports power generation during low sunlight or nighttime periods. The proposed system reduces dependence on fossil fuels, minimizes greenhouse gas emissions, and improves energy efficiency. Simulation and performance analysis demonstrate that the integrated solar-wind EV charging system can effectively meet charging demands with reduced operational cost and environmental impact. The study highlights the potential of renewable energy integration in developing sustainable and smart transportation infrastructure for future energy systems.


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 Keywords

Electric Vehicle (EV), Solar Energy, Wind Energy, Hybrid System, Renewable Energy, EV Charging, Sustainable Energy, Battery Storage, Smart Grid.

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Creative Commons Attribution 4.0 and The Open Definition


  Paper Title: MULTIPURPOSE SMART AGRICULUTRE ROBOT CONTROLLED BY SMART PHONE

  Author Name(s): Mrs. Shaheena Khanum, Vidya Y N, Madhu D S, Manish Kumar P N, Yashwanth Y M

  Published Paper ID: - IJCRTBY02059

  Register Paper ID - 310001

  Publisher Journal Name: IJPUBLICATION, IJCRT

  DOI Member ID: 10.6084/m9.doi.one.IJCRTBY02059 and DOI : https://doi.org/10.56975/ijcrt.v14i7.310001

  Author Country : Indian Author, India, - , -, - , | Research Area: Science and Technology

Published Paper URL: http://ijcrt.org/viewfull.php?&p_id=IJCRTBY02059
Published Paper PDF: download.php?file=IJCRTBY02059
Published Paper PDF: http://www.ijcrt.org/papers/IJCRTBY02059.pdf

  Your Paper Publication Details:

  Title: MULTIPURPOSE SMART AGRICULUTRE ROBOT CONTROLLED BY SMART PHONE

 DOI (Digital Object Identifier) : https://doi.org/10.56975/ijcrt.v14i7.310001

 Pubished in Volume: 14  | Issue: 7  | Year: July 2026

 Publisher Name : IJCRT | www.ijcrt.org | ISSN : 2320-2882

 Subject Area: Science and Technology

 Author type: Indian Author

 Pubished in Volume: 14

 Issue: 7

 Pages: 482-487

 Year: July 2026

 Downloads: 180

  E-ISSN Number: 2320-2882

 Abstract

Agriculture is a fundamental sector that requires continuous innovation to improve productivity and reduce manual labor. This paper presents the design and implementation of a multipurpose smart agriculture robot controlled using a smartphone. The proposed system integrates modern technologies such as wireless communication, sensors, and automation to perform multiple farming operations efficiently. The robot is capable of executing tasks such as seed sowing, irrigation, pesticide spraying, and soil monitoring with minimal human intervention. A mobile application is used to control and monitor the robot in real time, providing flexibility and ease of operation to farmers. The system utilizes components such as microcontrollers, motor drivers, and environmental sensors to ensure accurate and reliable performance. Experimental results demonstrate that the robot improves operational efficiency, reduces labor costs, and enhances precision in agricultural practices. This smart solution contributes to sustainable farming and supports the advancement of modern agriculture.


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 Keywords

Smart agriculture, automation, smartphone control, agricultural robot, IoT, sensors.

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  Paper Title: Smart AI-Based Human Motion Synchronised Robotic Arm using Arduino for Bomb Disposal

  Author Name(s): Likhitha U N, Yadav Prince Sanjay, Chethan S, Chethana Bai, Hemanth D N

  Published Paper ID: - IJCRTBY02058

  Register Paper ID - 310000

  Publisher Journal Name: IJPUBLICATION, IJCRT

  DOI Member ID: 10.6084/m9.doi.one.IJCRTBY02058 and DOI : https://doi.org/10.56975/ijcrt.v14i7.310000

  Author Country : Indian Author, India, - , -, - , | Research Area: Science and Technology

Published Paper URL: http://ijcrt.org/viewfull.php?&p_id=IJCRTBY02058
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Published Paper PDF: http://www.ijcrt.org/papers/IJCRTBY02058.pdf

  Your Paper Publication Details:

  Title: SMART AI-BASED HUMAN MOTION SYNCHRONISED ROBOTIC ARM USING ARDUINO FOR BOMB DISPOSAL

 DOI (Digital Object Identifier) : https://doi.org/10.56975/ijcrt.v14i7.310000

 Pubished in Volume: 14  | Issue: 7  | Year: July 2026

 Publisher Name : IJCRT | www.ijcrt.org | ISSN : 2320-2882

 Subject Area: Science and Technology

 Author type: Indian Author

 Pubished in Volume: 14

 Issue: 7

 Pages: 478-481

 Year: July 2026

 Downloads: 138

  E-ISSN Number: 2320-2882

 Abstract

Bomb disposal operations involve significant risks to human life due to the possibility of accidental explosions and exposure to hazardous environments. To improve operator safety and operational efficiency, robotic systems are increasingly being adopted for remote handling applications. This paper presents the design and development of a smart AI-based human motion synchronised robotic arm using Arduino for bomb disposal applications. The proposed system captures human hand movements using flex sensors and accelerometer sensors integrated into a wearable glove. The sensed motion data is processed using Arduino and transmitted wirelessly through RF communication to a robotic arm. Artificial Intelligence techniques are incorporated for gesture recognition, motion prediction, and movement optimization to improve synchronization accuracy and response performance. Servo motors attached to the robotic arm replicate the operator's hand movements in real time, enabling safe remote handling of suspicious objects. Experimental results demonstrate reliable wireless communication, accurate gesture synchronization, reduced response delay, and stable object manipulation. The proposed system is economical, portable, and suitable for defense, hazardous material handling, and industrial automation applications.


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 Keywords

Arduino, Bomb Disposal Robot, Flex Sensor, Human Motion Synchronization, RF Communication, Robotic Arm, Servo Motor, Wireless Control,Artificial Intelligence

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  Paper Title: Graph Neural Network-Based Cardiovascular Risk Prediction Using Electronic Health Record Data

  Author Name(s): Mr. P Ankamarao, Dr. G Chamundeswari, Mr. G Hari Hara Kumar, Mrs. B Rajeswari, Mr. B Venkateswara Rao , Mrs. K Lehamma

  Published Paper ID: - IJCRTBY02057

  Register Paper ID - 309999

  Publisher Journal Name: IJPUBLICATION, IJCRT

  DOI Member ID: 10.6084/m9.doi.one.IJCRTBY02057 and DOI : https://doi.org/10.56975/ijcrt.v14i7.309999

  Author Country : Indian Author, India, - , -, - , | Research Area: Science and Technology

Published Paper URL: http://ijcrt.org/viewfull.php?&p_id=IJCRTBY02057
Published Paper PDF: download.php?file=IJCRTBY02057
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  Your Paper Publication Details:

  Title: GRAPH NEURAL NETWORK-BASED CARDIOVASCULAR RISK PREDICTION USING ELECTRONIC HEALTH RECORD DATA

 DOI (Digital Object Identifier) : https://doi.org/10.56975/ijcrt.v14i7.309999

 Pubished in Volume: 14  | Issue: 7  | Year: July 2026

 Publisher Name : IJCRT | www.ijcrt.org | ISSN : 2320-2882

 Subject Area: Science and Technology

 Author type: Indian Author

 Pubished in Volume: 14

 Issue: 7

 Pages: 468-477

 Year: July 2026

 Downloads: 149

  E-ISSN Number: 2320-2882

 Abstract

The cardiovascular diseases (CVDs) can be listed among the significant causes of mortality in the world and this is why there is a need of a reliable and early answer to the risk. Since Electronic Health Records (EHRs) are integrated in numerous hospitals, the amount of structured patient data to analyze and predict is enormous. However, the historical machine learning techniques typically assume the existence of individual samples of patient records and ignore the already existing interrelations among individuals within the same clinical phenotype. This is a weakness because it narrows their ability to adopt complex relationships, which are present in real medical records.


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 Keywords

Gra.ph Neural Netw.ork (GNN), Cardiov.ascular Disease Predi.ction, Elect.ronic Hea.lth Reco.rds (EHR), Gra.ph Convolu.tional Netw.ork (GCN), Gra.ph Atten.tion Netw.ork (GAT), Deep Lear.ning, Risk Asses.sment, Clin.ical Deci.sion Supp.ort Sys.tem, Machine Lear.ning, Healt.hcare Analy.tics

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  Paper Title: AI-Based Mental Health Assessment System Using Multimodal Speech and Text Analysis

  Author Name(s): Ms. B Manasa Purna, Dr. K Swetha S Joseph Sastry, Mr. Y Nagendra Kumar, Mr. CH Venkatesh, Mrs. D Rathan Kumar , Mr. G Sridhar

  Published Paper ID: - IJCRTBY02056

  Register Paper ID - 309998

  Publisher Journal Name: IJPUBLICATION, IJCRT

  DOI Member ID: 10.6084/m9.doi.one.IJCRTBY02056 and DOI : https://doi.org/10.56975/ijcrt.v14i7.309998

  Author Country : Indian Author, India, - , -, - , | Research Area: Science and Technology

Published Paper URL: http://ijcrt.org/viewfull.php?&p_id=IJCRTBY02056
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  Your Paper Publication Details:

  Title: AI-BASED MENTAL HEALTH ASSESSMENT SYSTEM USING MULTIMODAL SPEECH AND TEXT ANALYSIS

 DOI (Digital Object Identifier) : https://doi.org/10.56975/ijcrt.v14i7.309998

 Pubished in Volume: 14  | Issue: 7  | Year: July 2026

 Publisher Name : IJCRT | www.ijcrt.org | ISSN : 2320-2882

 Subject Area: Science and Technology

 Author type: Indian Author

 Pubished in Volume: 14

 Issue: 7

 Pages: 454-467

 Year: July 2026

 Downloads: 144

  E-ISSN Number: 2320-2882

 Abstract

Mental health problems like stress, anxiety, and depression are becoming quite widespread owing to rapidly changing lifestyles, academic stress, and social factors. In order to mitigate the risk of negative psychological outcomes, it is important to recognize such mental disorders at an early stage. However, existing assessment practices are based mainly on clinical interviews and the use of questionnaire tools, which may be insufficient or unavailable in certain situations. Therefore, the current research proposes an innovative solution in the form of an AI-based mental health assessment system.


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 Keywords

Artif.icial Intelligence, Mental Hea.lth Asses.sment, Spe.ech Anal.ysis, Text Anal.ysis, Natu.ral Lang.uage Proce.ssing (NLP), Mach.ine Lear.ning, Emot.ion Detec.tion, MFCC, Logi.stic Regre.ssion, Ran.dom For.est

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  Paper Title: Machine Learning-Based Prediction of Hospital-Acquired Infections for Intelligent Healthcare Decision Support

  Author Name(s): Mr. M Ramu, Mr. R Siva, Mr. G Hari Hara Kumar, Mr. G Sridhar, Mrs. D Tejaswi, Mr. B Venkateswara Rao

  Published Paper ID: - IJCRTBY02055

  Register Paper ID - 309990

  Publisher Journal Name: IJPUBLICATION, IJCRT

  DOI Member ID: 10.6084/m9.doi.one.IJCRTBY02055 and DOI : https://doi.org/10.56975/ijcrt.v14i7.309990

  Author Country : Indian Author, India, - , -, - , | Research Area: Science and Technology

Published Paper URL: http://ijcrt.org/viewfull.php?&p_id=IJCRTBY02055
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  Your Paper Publication Details:

  Title: MACHINE LEARNING-BASED PREDICTION OF HOSPITAL-ACQUIRED INFECTIONS FOR INTELLIGENT HEALTHCARE DECISION SUPPORT

 DOI (Digital Object Identifier) : https://doi.org/10.56975/ijcrt.v14i7.309990

 Pubished in Volume: 14  | Issue: 7  | Year: July 2026

 Publisher Name : IJCRT | www.ijcrt.org | ISSN : 2320-2882

 Subject Area: Science and Technology

 Author type: Indian Author

 Pubished in Volume: 14

 Issue: 7

 Pages: 439-453

 Year: July 2026

 Downloads: 140

  E-ISSN Number: 2320-2882

 Abstract

Hospital-acquired infections remain an issue of great concern in contemporary health care systems. In addition to posing significant dangers to patients' wellbeing, HAIs result in increased mortality rates, prolonged hospitalization periods, and increased costs. The classical infection prevention and control rely on manual surveillance, laboratory tests, and retrospective analysis, which cannot detect infection warning signs promptly enough to prevent infections. With a steady increase in healthcare information becoming available through electronic health records, there is a need for intelligent, data-based techniques that would analyze vast amounts of data and predict the potential risks of infection.


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 Keywords

Hospital.-Acquired Infec.tions (HAIs), Mach.ine Learning, Infec.tion Risk Predi.ction, Healt.hcare Analy.tics, Clin.ical Deci.sion Supp.ort Syst.ems, Electronic Health Reco.rds (EHR), Ran.dom For.est, Data Preproc.essing, Predi.ctive Modeling, Infec.tion Cont.rol

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  Paper Title: A Hybrid Machine Learning and Deep Learning Framework for Fertility Prediction Using Clinical and Ultrasound Data

  Author Name(s): Mrs. K Apurva, Mr. Y Nagendra Kumar, Dr. B Prasad Babu, Mrs. D Rathna Kumari, Ms. J Neeraja , Mrs. P Anusha

  Published Paper ID: - IJCRTBY02054

  Register Paper ID - 309988

  Publisher Journal Name: IJPUBLICATION, IJCRT

  DOI Member ID: 10.6084/m9.doi.one.IJCRTBY02054 and DOI : https://doi.org/10.56975/ijcrt.v14i7.309988

  Author Country : Indian Author, India, - , -, - , | Research Area: Science and Technology

Published Paper URL: http://ijcrt.org/viewfull.php?&p_id=IJCRTBY02054
Published Paper PDF: download.php?file=IJCRTBY02054
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  Your Paper Publication Details:

  Title: A HYBRID MACHINE LEARNING AND DEEP LEARNING FRAMEWORK FOR FERTILITY PREDICTION USING CLINICAL AND ULTRASOUND DATA

 DOI (Digital Object Identifier) : https://doi.org/10.56975/ijcrt.v14i7.309988

 Pubished in Volume: 14  | Issue: 7  | Year: July 2026

 Publisher Name : IJCRT | www.ijcrt.org | ISSN : 2320-2882

 Subject Area: Science and Technology

 Author type: Indian Author

 Pubished in Volume: 14

 Issue: 7

 Pages: 426-438

 Year: July 2026

 Downloads: 157

  E-ISSN Number: 2320-2882

 Abstract

Infertility is a complicated health issue that involves numerous complex relations between several different physiological, hormonal, and even lifestyle variables. The traditional means of diagnosing infertility include separate testing and manual image analysis that can be inconsistent and time-consuming. In order to overcome these drawbacks, this paper proposes a hybrid Artificial Intelligence (AI) model for predicting fertility status that will incorporate techniques of Machine Learning (ML) and Deep Learning (DL).


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 Keywords

Fertility Predi.ction, Hyb.rid Mach.ine Lear.ning Mod.el, Deep Learning, Ran.dom Forest Class.ifier, Convolu.tional Neu.ral Network, Medi.cal Ima.ge Anal.ysis, Ultra.sound Imag.ing, Predictive Healt.hcare, Clin.ical Deci.sion Supp.ort Sys.tem, Artif.icial Intell.igence in Healt.hcare, Feat.ure Fus.ion, Reprod.uctive Hea.lth Analy.tics

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