Deep knowledge
Welcome to Deep Knowledge – your go-to channel for mastering AI, machine learning, DevOps, and Azure cloud.
Welcome to Deep Knowledge – your go-to hub for mastering AI, Machine Learning, DevOps, and the Azure Cloud.
Learn fast with hands-on projects, real-world demos, and clear explanations.
🔥 Popular Playlists
📘 *Machine Learning: From Basics to Advanced* – Learn ML with Python & numbers
[ https://www.youtube.com/playlist?list=PL-kVqysGX5179csIx8Ujesglg6tNll9LI]
🚀 *Azure DevOps for Python Devs* – Git, CI/CD, code quality & automation
https://www.youtube.com/playlist?list=PL-kVqysGX514jD9Hm5sZqIJCCrtraHIiX
🤖 *Azure ML & MLOps* – Build, train, deploy with Python, CLI & CI/CD
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Optimizers in Deep Learning ⚡ SGD, Momentum & Adam Explained

Batch Size in Deep Learning 📊 Small vs Large Batches Explained

Early Stopping in Machine Learning ⏳ Prevent Overfitting & Save Time

Transfer Learning Explained 🤖 Step by Step Guide

Gradient Descent Explained ⛰️ Learning Rate Secrets

Model Selection for Small Data 📊 Best ML Models for Small Tabular Datasets

Dataset Versioning Explained 🚀 Reproducibility, DVC, Git LFS, Pachyderm & LakeFS

Data Augmentation Magic Multiply Your Dataset Without Collecting New Data

GitHub Branching Like a Pro! 🌳 From Beginner to Expert in ONE Guide! 💻✨

Cross Validation Types Explained K Fold, Stratified & Time Series ML Interview Prep

Class Imbalance in Machine Learning Beat Biased Models! 💡 Interview Prep

Random Forest vs Decision Tree Why Random Forest Reduces Overfitting

Random Forest vs Gradient Boosting Explained

AnomaVision vs Anomalib 🔥 Anomaly Detection Showdown on Google Colab GPU Benchmark ⚡

Precision, Recall & F1 Score Explained 🔥 Master These Metrics for Interviews & ML Projects

High Dimensional Data Made Easy! 🚀 ML Interview Guide

AnomaVision vs Anomalib 🔍 Best Anomaly Detection Framework MVTec & Visa Benchmark

TensorRT MAGIC! 🚀 Boost PyTorch Inference 10x Faster

AUC ROC Explained for Interviews Boost Your ML Skills for Imbalanced Data

Recall vs Precision Explained for Interviews 💡 Medical, Spam & Fraud Examples

🚀 From 38 ms to 1.4 ms: How We Pushed AnomaVision Beyond 500 FPS ⚡

Boost Your AI Models with INT8 Quantization 🚀 ONNX Static vs Dynamic + Python & C++ Speed Test

Decision Trees Explained Gini vs Entropy for Interviews! 🌳💡

Logistic Regression Explained for Interviews Beginner

Anomavision From Code to PyPI 📦 Build, Publish & Run Anomaly Detection

🚀 Update: AnomaVision: Deploy ONNX + OpenCV in C++ (vs Python) ⚡ Real-Time Anomaly Detection

🔥 AnomaVision vs Anomalib 🚀 | Edge-Ready Anomaly Detection (PaDiM) | Faster, Lighter & Sharper ⚡

AnomaVision: Deploy AI Models in C++ with ONNX LIGHTNING FAST! ⚡

AnomaVision Demystified From Training to Evaluation Complete Walkthrough

SVM Multi Class Classification EXPLAINED! Crack Data Science Interviews