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Dr. Bechoo Lal | Computer Science | Best Researcher Award

Associate Professor of KLEF- KL University Vijayawada Campus Andhra Pradesh, India

Dr. Bechoolal šŸŒŸ is an esteemed Associate Professor in Computer Science/Data Science with a passion for inspiring students through a deep understanding of technology and research. With a solid academic foundation that includes a PGP in Data Science from Purdue University and multiple PhDs in Information Systems and Computer Science šŸŽ“, he brings a wealth of expertise to his teaching and research. Dr. Bechoolal has extensive experience in various institutions, from KLEF KL Deemed University to Western College šŸ«, and has made significant contributions through his numerous research publications and certifications šŸ…. His interests span Machine Learning, Data Science, and programming languages, and he actively engages in projects that explore digital transformation and its societal impacts šŸ’»šŸ”. Fluent in English and Hindi šŸ‡¬šŸ‡§šŸ‡®šŸ‡³, he continues to advance knowledge and inspire the next generation of tech professionals.

Publication profile

Education

Dr. Bechoolal šŸŽ“ is a distinguished academic with a rich educational background in Computer Science and Data Science. He earned a PGP in Data Science from Purdue University šŸŒŸ, where he specialized in data regression models and predictive data modeling. Dr. Bechoolal holds multiple PhDsā€”one in Information Systems from the University of Mumbai and another in Computer Science from SJJT University šŸ§ . His foundational studies include a Master of Technology in Computer Science from AAI-Deemed University, a Master of Computer Applications from Banaras Hindu University, and an undergraduate degree in Statistics from MG. Kashi Vidyapeeth University šŸ“š. His continuous quest for knowledge is also reflected in his various certifications, including Machine Learning from Stanford University and an IBM Data Science Professional Certificate šŸ….

Academic Qualification

  • šŸ“œ PGP in Data Science (2020-2021) from Purdue University, USA – Specializing in data regression models, predictive data modeling, and accuracy analyzing using machine learning.
  • šŸ“œ PhD in Information System (2015-2019) from the University of Mumbai, India – Research Area: Data Science.
  • šŸ“œ PhD in Computer Science (2011-2015) from SJJT University, India – Research Area: Machine Learning.
  • šŸ“œ Master of Technology (M. Tech) in Computer Science and Engineering (2004-2006) from AAI-Deemed University, Allahabad, India.
  • šŸ“œ Master of Computer Application (MCA) (1995-1998) from Institute of Science, Banaras Hindu University (BHU), India.
  • šŸ“œ Graduation (Statistics-Hons) (1990-1993) from the Department of Mathematics and Statistics, MG Kashi Vidyapeeth University, India.

Data Science Certifications and Training

  • šŸŽ“ Machine Learning, Stanford University, USA (2020)
  • šŸŽ“ IBM Data Science Professional Certificate (2020)
  • šŸŽ“ Data Science and Big Data Analytics (2019), ICT Academy, Govt. of India
  • šŸŽ“ Security Fundamentals, Microsoft Technology Associate (2017)
  • šŸŽ“ Intelligent Multimedia Data Warehouse and Mining (2009), University of Mumbai
  • šŸŽ“ Python Programming (2017), University of Mumbai, India

 

Teaching InterestĀ 

  • šŸ“˜ Data Science/Machine Learning
  • šŸ“˜ Database šŸ“˜ C/C++/Python Programming Languages
  • šŸ“˜ Software Engineering

Research Interest

  • šŸ” Machine Learning
  • šŸ” Data Science

Computer Science/Data Science Skills

šŸ’» Machine Learning, Data Visualization, Big Data Analytics

šŸ“Š Predictive Modelling: Supervised Learning (Linear and Logistic Regression, Decision Tree, Support Vector Machine (SVM), NaĆÆve Bayes Classifiers), Unsupervised Learning (K-Means clustering, principal components analysis (PCA))

šŸ’» Programming Languages: Python (NumPy, Pandas, Matplotlib, Seaborn, Scikit-Learn), SPSS, R-Programming

šŸ’» Operating Systems/Platforms: UNIX/LINUX, WINDOWS, MS-DOS

šŸ’» C/C++, CORE JAVA Programming Languages

šŸ’» DBMS/RDBMS: Oracle, SQL, MySQL, NoSQL

Publication top notes

  • Improving migration forecasting for transitory foreign tourists using an Ensemble DNN-LSTM model
    Authors: Nanjappa, Y., Kumar Nassa, V., Varshney, G., Pandey, S., V Turukmane, A.
    Journal: Entertainment Computing
    Year: 2024
    Citations: 0 šŸ“…
  • Using social networking evidence to examine the impact of environmental factors on social followings: An innovative Machine learning method
    Authors: Murthy, S.V.N., Ramesh, P.S., Padmaja, P., Reddy, G.J., Chinthamu, N.
    Journal: Entertainment Computing
    Year: 2024
    Citations: 0 šŸ“…
  • Real-Time Convolutional Neural Networks for Emotion and Gender Classification
    Authors: Singh, J., Singh, A., Singh, K.K., Samudre, N., Raperia, H.
    Conference: Procedia Computer Science
    Year: 2024
    Citations: 0 šŸ“…
  • Identification of Brain Diseases using Image Classification: A Deep Learning Approach
    Authors: Singh, J., Singh, A., Singh, K.K., Turukmane, A.V., Kumar, A.
    Conference: Procedia Computer Science
    Year: 2024
    Citations: 0 šŸ“…
  • Fake News Detection Using Transfer Learning
    Authors: Singh, J., Sahu, D.P., Gupta, T., Lal, B., Turukmane, A.V.
    Conference: Communications in Computer and Information Science
    Year: 2024
    Citations: 0 šŸ“…
  • Reliability Evaluation of a Wireless Sensor Network in Terms of Network Delay and Transmission Probability for IoT Applications
    Authors: Mishra, P., Dash, R.K., Panda, D.K., Lal, B., Sujata Gupta, N.
    Journal: Contemporary Mathematics (Singapore)
    Year: 2024
    Citations: 0 šŸ“…
  • TRANSFER LEARNING METHOD FOR HANDLING THE INTRUSION DETECTION SYSTEM WITH ZERO ATTACKS USING MACHINE LEARNING AND DEEP LEARNING
    Authors: Upender, T., Lal, B., Nagaraju, R.
    Conference: ACM International Conference Proceeding Series
    Year: 2023
    Citations: 0 šŸ“…
  • Monitoring and Sensing of Real-Time Data with Deep Learning Through Micro- and Macro-analysis in Hardware Support Packages
    Authors: Lal, B., Chinthamu, N., Harichandana, B., Sharmaa, A., Kumar, A.R.
    Journal: SN Computer Science
    Year: 2023
    Citations: 0 šŸ“…
  • An Efficient QRS Detection and Pre-processing by Wavelet Transform Technique for Classifying Cardiac Arrhythmia
    Authors: Lal, B., Gopagoni, D.R., Barik, B., Kumar, R.D., Lakshmi, T.R.V.
    Journal: International Journal of Intelligent Systems and Applications in Engineering
    Year: 2023
    Citations: 0 šŸ“…
  • IOT-BASED Cyber Security Identification Model Through Machine Learning Technique
    Authors: Lal, B., Ravichandran, S., Kavin, R., Bordoloi, D., Ganesh Kumar, R.
    Journal: Measurement: Sensors
    Year: 2023
    Citations: 3 šŸ“…šŸ“ˆ
Bechoo Lal | Computer Science | Best Researcher Award

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