Categorical Features One-Hot Encoding, Scaling & Class Balancing | PD Model Dev - 2

Опубликовано: 28 Сентябрь 2024
на канале: Learnerea
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In this instalment, we explore advanced techniques for optimizing your PD models. Dive deep into the world of categorical features, discover the power of one-hot encoding, learn the importance of scaling, and understand strategies for class balancing.

📊 Key Topics Covered:

Categorical Features Handling
One-Hot Encoding Explained
Scaling Techniques for Model Optimization
Strategies for Balancing the Minority Class

🌐 Series Overview:
This video is the second part of our comprehensive PD Model Development Series. Whether you're a seasoned data scientist or just starting your journey, this series equips you with the skills to build robust predictive models for credit risk assessment.

🎓 Who is This For?
Data Scientists and Analysts
Credit Risk Modelers
Machine Learning Enthusiasts
Those Seeking Advanced PD Model Techniques

👍 Engage With Us:
If you find this content valuable, don't forget to like, share, and subscribe for more in-depth tutorials on predictive modelling and data science. Share your thoughts and questions in the comments below – we love hearing from our community!

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Resources -
Developed script in the video - https://github.com/LEARNEREA/Data_Sci...
Script to understand the diff. in scores - https://github.com/LEARNEREA/Data_Sci...
Automated Pre-processing - https://github.com/LEARNEREA/Data_Sci...
Logistic saved model - https://github.com/LEARNEREA/Data_Sci...
Random Forest saved model - https://github.com/LEARNEREA/Data_Sci...
XGB saved model - https://github.com/LEARNEREA/Data_Sci...

Raw data utilised in the development - https://github.com/LEARNEREA/Data_Sci...

Ready to take your PD modelling skills to the next level? Watch now and enhance your knowledge of categorical features and advanced model optimization techniques!

#DataScience #PredictiveModeling #PDModelDevelopment #CategoricalEncoding #DataOptimization #MachineLearning