Articles
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What is Q-Learning? Basics, Q-Table, and How It Works
What is Reinforcement Learning? Basics of Q Learning Q-Table and Q-Values Exploration vs Exploitation Q Learning Algorithm Environment and Rewards Applications (e.g., Game AI) Summary What is Reinforcement Learning ? Reinforcement Learning in Machine Learning Training where an agent learns to make decisions by performing actions in an...
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Ridge Regression Explained: Taming Overfitting with L2 Regularization
Introduction to Regularization Understanding Overfitting Ridge vs Linear Regression Cost Function of Ridge Role of Lambda (Regularization Strength) Mathematical Formulation Implementation in Python Use Cases Summary Introduction to Regularization In machine learning, the goal is to build models that generalize well on unseen data....
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Bayes Theorem in Machine Learning
Introduction to Bayes Theorem Mathematical Explanation Conditional Probability Naive Bayes Classifier Assumptions and Limitations Bayesian Networks Spam Detection with Bayes Parameter Estimation Conclusion Introduction to Bayes Theorem Bayes Theorem in Machine Learning is a fundamental concept in probability theory and statistics that...
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TensorFlow Projects: A Practical Guide for Beginners and Beyond
Overview of TensorFlow Image Classification Project Object Detection Handwritten Digit Recognition Sentiment Analysis with TensorFlow Text Classification Time Series Forecasting TensorFlow with Keras Summary Overview of TensorFlow TensorFlow is an open-source Machine Learning Training framework developed by Google Brain. It’s...
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What Is A Gradient Of A Function And A Simple Learning Guide?
Introduction to Gradient of a Function Role in Optimization Mathematical Definition Partial Derivatives and Multivariable Functions Gradient Descent Algorithm Variants of Gradient Descent Applications in Machine Learning Visualization of Gradients Gradient vs Directional Derivative Challenges in Gradient Computation Summary...
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A Look At Recommendations System in Machine Learning
Introduction to Recommendation Systems in ML Collaborative Filtering Content Based Filtering Hybrid Methods Similarity Metrics (Cosine, Pearson) Cold Start Problem Real-Time Recommendation Engines Tools and Libraries (Surprise, LightFM) Business Applications (Netflix, Amazon) Conclusion Introduction to Recommendation...
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Gain Knowledge Through Efficient Time Series Analysis
What is Time Series Data? Components of Time Series (Trend, Seasonality) Time Series Decomposition Moving Averages and Smoothing Autocorrelation and ACF/PACF ARIMA Model LSTM for Time Series Forecasting Evaluation Metrics for Time Series Stationarity and Differencing Case Studies in Finance and Weather Conclusion ...
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The Bias And Variance Tradeoff Explained: A Guide for ML Practitioners
Introduction to Bias and Variance High Bias vs High Variance Underfitting and Overfitting Bias-Variance Decomposition Impact on Model Accuracy Visualization of the Tradeoff Regularization to Control Variance Cross-validation Techniques Conclusion Introduction to Bias and Variance In the field of machine learning, understanding the...
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An Introduction to Hidden Markov Models in Machine Learning
Introduction to HMM Components of HMM Markov Chains vs HMM Transition and Emission Probabilities Forward and Backward Algorithms Viterbi Algorithm Baum-Welch Training Algorithm Applications in NLP and Bioinformatics Conclusion Introduction to Hidden Markov Models (HMM) Hidden Markov Models (HMMs) are powerful statistical tools used for...
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What Does F1 Score in Machine Learning Explained?
Introduction to Evaluation Metrics Precision and Recall Explained Definition of F1 Score F1 Score Formula F1 Score in Imbalanced Datasets Macro vs Micro Averaging F1 Score vs Accuracy When to Use F1 Score ROC-AUC vs F1 Case Studies and Use Cases Conclusion Introduction to Evaluation Metrics In the world of machine...
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