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Inferential Statistics for Hypothesis Testing & Confidence

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Section 1: Day 451 videos

Supervised Learning- Decision Trees

1h 25m
Section 2: Day 561 videos

Introduction to SQL for Data Science

1h 27m
Section 3: Day 141 videos

Data Structures and Functions in Python AIML

1h 30m
Section 4: Day 331 videos

Inferential Statistics for Hypothesis Testing & Confidence

1h 25mNow Playing
Section 5: Day 181 videos

Introduction to R Programming AIML

1h 30m
Section 6: Day 31 videos

AIML End to End Data Science Vs Traditional Analysis

1h 30m
Section 7: Day 341 videos

Introduction to Data Science Tools and Software AIML

1h 30m
Section 8: Data Science Day 11 videos

Data Science

1h 30m
Section 9: Day 131 videos

Introduction to Python Programming Part 2

1h 30m
Section 10: Day 121 videos

Introduction to Python Programming AIML

1h 30m
Section 11: Day 611 videos

Data Science in Practice- Case Study

1h 30m
Section 12: Day 281 videos

Introduction to Exploratory Data Analysis EDA

1h 30m
Section 13: Day 271 videos

Data Preprocessing AIML

1h 30m
Section 14: Day 521 videos

Introduction to Python Libraries for Data Science

1h 30m
Section 15: Day 461 videos

Unsupervised Learning- Clustering

1h 30m
Section 16: Day 711 videos

Introduction to Supervised Learning

1h 30m
Section 17: Day 741 videos

Machine Learning- Evaluating Model Fit

1h 30m
Section 18: Day 151 videos

End-to-End Python for AIML- Data Structures and Functions

1h 30m
Section 19: Machine Learning Day 691 videos

Introduction to Machine Learning

1h 30m
Section 20: Day 661 videos

Feature Engineering and Selection

1h 30m
Section 21: Day 491 videos

Unsupervised Learning- Dimensionality Reduction with t-SNE

1h 29m
Section 22: Day 381 videos

Data Integration & Transformation for Data Science

56m
Section 23: Day 41 videos

Data Scientist

1h 17m
Section 24: Day 211 videos

Data Structures in R AIML End to End Sesssion

1h 24m
Section 25: Day 501 videos

Model Evaluation and Validation Techniques

1h 27m
Section 26: Day 291 videos

EDA- Detecting Outliers and Anomalies in Data for AIML

1h 30m
Section 27: Day 231 videos

R Programming AIML Part 2

1h 30m
Section 28: Day 371 videos

Data Wrangling & EDA in Data Science

1h 30m
Section 29: Day 251 videos

Introduction to Data Collection Methods Experimental Studies

1h 28m
Section 30: Day 511 videos

Model Evaluation- Bias-Variance Tradeoffs

1h 30m
Section 31: Day 201 videos

Data Structures in R AIML

1h 22m
Section 32: Day 171 videos

Python Introduction to Numpy AIML

1h 30m
Section 33: Day 311 videos

Choosing the Right Visualization for Data in AIML

1h 30m
Section 34: Day 421 videos

Supervised Learning- Regression

1h 30m
Section 35: Day 51 videos

Data Science Process Overview

1h 30m
Section 36: Day 391 videos

Handling Missing Data and Outliers AIML

1h 5m
Section 37: Day 21 videos

Data Science Part 2

1h 4m
Section 38: Day 321 videos

Introduction to Statistical Analysis for Data Science

1h 13m
Section 39: Day 701 videos

Machine Learning- Reinforcement Learning

1h 30m
Section 40: Day 601 videos

SQL and Advanced Queries Part 2

1h 30m
Section 41: Day 71 videos

Data Science Process Overview End to End AIML

1h 30m
Section 42: Day 8 & 91 videos

Python Libraries for Data Science AIML

1h 30m
Section 43: Day 721 videos

Machine Learning Model Training and Evaluation

1h 30m
Section 44: Day 411 videos

ML Unsupervised Learning AIML

1h 30m
Section 45: Day 551 videos

Introduction to R Libraries for Data Science Statistical Modeling

1h 21m
Section 46: Day 541 videos

Introduction to R Libraries for Data Science

1h 30m
Section 47: Day 351 videos

Tableau and Data Visualization AIML

1h 30m
Section 48: Day 161 videos

Working with Libraries and Handling Files

1h 30m
Section 49: Day 681 videos

Application Working with Data Science - Data Manipulation

1h 30m
Section 50: Day 101 videos

Introduction to R for Data Science AIML

1h 30m
Section 51: Day 61 videos

Introduction to Python for Data Science AIML

1h 30m
Section 52: Day 241 videos

Introduction to Data Collection Methods AIML

1h 16m
Section 53: Day 651 videos

Data Science Project Lifecycle

1h 30m
Section 54: Day 631 videos

Introduction to Data Science Ethics

1h 30m
Section 55: Day 471 videos

Unsupervised Learning DBSCAN Clustering

1h 30m
Section 56: Day 301 videos

Data Visualization in Data Science for AIML

1h 30m
Section 57: Day 571 videos

SQL Queries for Data Science

1h 26m
Section 58: Day 111 videos

R Programmig Basics AIML

1h 30m
Section 59: Day 1441 videos

Artificial Neural Networks- The Backbone of Deep Learning

1h 20m
Section 60: Day 671 videos

Application- Working with Data Science

1h 30m
Section 61: Deep Learning Day 1421 videos

Introduction to Deep Learning

1h 30m
Section 62: Day 431 videos

Evaluation Metrics for Regression Models

1h 30m
Section 63: Day 641 videos

Ethical Challenges in Data Collection and Curation

1h 30m
Section 64: Day 751 videos

Application of Machine Learning- Supervised Learning

1h 30m
Section 65: Day 401 videos

Introduction to Machine Learning AIML

1h 30m
Section 66: Day 941 videos

Master Hyperparameter Tuning in Machine Learning

1h 16m
Section 67: Day 731 videos

Machine Learning Linear Regression

1h 22m
Section 68: Day 591 videos

SQL and Advanced Queries Part 1

1h 30m
Section 69: Day 1261 videos

FP-Growth Algorithm Explained

35m
Section 70: Day 1351 videos

Introduction to Q Learning Algorim AIML

54m
Section 71: Day 991 videos

Unsupervised Learning Explained- Anomaly Detection

1h 30m
Section 72: Day 1091 videos

Introduction to Principal Component Analysis (PCA)

1h
Section 73: Day 361 videos

Data Wrangling in Data Science AIML

1h 30m
Section 74: Day 1341 videos

Solving Markov Decision Processes (MDPs)

1h 26m
Section 75: Day 1451 videos

Backpropagation- The Heart of Artificial Neural Networks

1h 22m
Section 76: Day 801 videos

Machine Learning Application- Logistic Regression

1h 30m
Section 77: Day 951 videos

Machine Learning Application of Gradient Boosting

1h 30m
Section 78: Day 1081 videos

Application Advanced Unsupervised Learning with DBSCAN

1h 30m
Section 79: Day 1161 videos

Unsupervised Learning- How t-SNE Works

1h 28m
Section 80: Day 1111 videos

Application of Principal Components in PCA ML

1h 30m
Section 81: Day 581 videos

SQL and Advanced Queries

1h 30m
Section 82: Master Machine Learning- Support Vector Machines (SVM)1 videos

Master Machine Learning- Support Vector Machines (SVM)

1h 30m
Section 83: Day 1311 videos

What is Reinforcement Learning

1h 30m
Section 84: Day 481 videos

Unsupervised Learning- Dimensionality Reduction

1h 30m
Section 85: Day 811 videos

Machine Learning Decision Trees

1h 30m
Section 86: Day 761 videos

Introduction to Multiple Linear Regression

1h 30m
Section 87: Day 1071 videos

Advanced Clustering Techniques- Unsupervised Learning

1h 25m
Section 88: Day 861 videos

Machine Learning Decision Trees Random Forest

1h 30m
Section 89: Day 1321 videos

What is Deep Reinforcement Learning

1h 16m
Section 90: Day 1381 videos

Policy Gradient Method in Reinforcement Learning

37m
Section 91: Day 1251 videos

Apriori Algorithm Step-by-Step Explained

1h 15m
Section 92: Day 971 videos

Machine Learning ROC Curve and AUC Explained

1h 30m
Section 93: Day 771 videos

Multiple Linear Regression- Evaluating Model Performance

1h 30m
Section 94: Day 851 videos

Master Machine Learning Hyperparameter Tuning

1h 17m
Section 95: Day 1141 videos

Application of LDA Machine Learning Dimensionality Reduction

1h 11m
Section 96: Day 961 videos

Machine Learning Model Evaluation Metrics

1h 30m
Section 97: Day 1241 videos

Apriori Algorithm Association Rule Mining & Market Basket Analysis

1h 30m
Section 98: Day 901 videos

Machine Learning K-Nearest Neighbor (KNN) Algorithm

1h 30m
Section 99: Day 1191 videos

Dimensionality Reduction Evaluation Metrics

39m
Section 100: Day 1391 videos

Model Evaluation Metrics for Reinforcement Learning

1h 30m
Section 101: Day 1041 videos

Unsupervised Learning Dendrogram Visualization

1h 30m
Section 102: Day 1181 videos

Unsupervised Learning Model Evaluation Metrics

1h 1m
Section 103: Day 191 videos

Introduction to R Programming AIML End to End

1h 23m
Section 104: Day 1061 videos

Advanced Clustering Techniques Unsupervised Learning

1h 30m
Section 105: Day 441 videos

Supervised Learning- Classification

1h 30m
Section 106: Day 1361 videos

Applications of Q-Learning Algorithm

40m
Section 107: Day 931 videos

Machine Learning Gradient Boosting Algorithm

1h 30m
Section 108: Day 1271 videos

FP-Growth Algorithm- Step-by-Step Exploration

1h 5m
Section 109: Day 1231 videos

Association Rule Mining- Confidence & Support Explained

1h 30m
Section 110: Day 921 videos

Machine Learning Application KNN Algorithm

1h 30m
Section 111: Unsupervised Machine Learning Day 981 videos

Unsupervised Machine Learning Explained Clustering & Dimensionality Reduction

1h 30m
Section 112: Day 831 videos

Machine Learning Application- Decision Trees

1h 30m
Section 113: Day 911 videos

Machine Learning Preprocessing for KNN Algorithm

1h 17m
Section 114: Day 1471 videos

Convolutional Neural Networks (CNN) Explained

47m
Section 115: Day 1331 videos

Markov Decision Processes (MDPs) in Reinforcement Learning

1h 30m
Section 116: Day 1291 videos

Leverage and Certainty Factor in Association Rule Mining

57m
Section 117: Day 881 videos

Master Machine Learning- Kernel Functions in Support Vector Machine

1h
Section 118: Day 1121 videos

Unsupervised Learning with Linear Discriminant Analysis (LDA)

56m
Section 119: Day 891 videos

Machine Learning Application- Support Vector Machines (SVM)

1h 30m
Section 120: Day 1131 videos

PCA vs LDA Machine Learning Dimensionality Reduction

1h 8m
Section 121: Day 221 videos

R Programming AIML

1h 6m
Section 122: Day 1051 videos

Application Hierarchical Clustering Explained- Master Unsupervised ML

1h 30m
Section 123: Day 1281 videos

Model Evaluation Metrics for Association Rule Mining

50m
Section 124: Day 1031 videos

Mastering Hierarchical Clustering in Unsupervised Learning

1h 30m
Section 125: Day 1491 videos

Convolutional Neural Network (CNN) Deep Dive

1h 30m
Section 126: Day 1301 videos

Application of Association Rules in Data Science

1h 30m
Section 127: Day 821 videos

Machine Learning- Evaluating Decision Trees Performance

1h 30m
Section 128: Day 1461 videos

Applications of Artificial Neural Networks (ANN)

1h 30m
Section 129: Day 1001 videos

Mastering K-Means Clustering in Unsupervised Learning

1h 13m
Section 130: Day 1101 videos

Selecting Principal Component Analysis (PCA) ML

1h 30m
Section 131: Day 1211 videos

Unsupervised Learning with Bayesian Optimization

54m
Section 132: Day 841 videos

Machine Learning Random Forests

1h 30m
Section 133: Day 1221 videos

Introduction to Association Rule Mining Market Basket Analysis

1h 30m
Section 134: Day 1171 videos

Application of t-SNE- Mastering Dimensionality Reduction

1h 30m
Section 135: Day 1691 videos

Image Processing with Deep Learning

40m
Section 136: Day 791 videos

Machine Learning Feature Engineering- Logistic Regression

1h 30m
Section 137: Day 1371 videos

Policy Value Actor-Critic Architecture in Reinforcement Learning

46m
Section 138: Day 782 videos

Machine Learning Application- Multiple Linear Regression

1h 30m

Machine Learning Application- Multiple Linear Regression

1h 30m
Section 139: Day 1791 videos

Facial Recognition and Analysis in Computer Vision

37m
Section 140: Day 2021 videos

LSTM vs GRU for NLP- Understanding Recurrent Neural Networks

33m
Section 141: Day 2011 videos

Sequence to Sequence Modeling with RNN in NLP

34m
Section 142: Day 2041 videos

Attention Mechanism & Transformers in NLP

42m
Section 143: Day 1931 videos

Bag of Words and TF-IDF Explained

38m
Section 144: Day 2121 videos

Model Evaluation Metrics for NLP

37m
Section 145: Day 2191 videos

Introduction to Image Generation Using GenAI

42m
Section 146: Day 1711 videos

Image Features and Detection for Computer Vision

1h 30m
Section 147: Generative Ai Day 2141 videos

Introduction to Generative Ai

54m
Section 148: Day 1901 videos

Introduction to Model Evaluation in Deep Learning

1h 4m
Section 149: Day 1731 videos

Object Detection in Computer Vision

1h 26m
Section 150: Day 2071 videos

NLG Techniques and Approaches in NLP

59m
Section 151: Day 1681 videos

Deep Learning Models for Computer Vision

1h 5m
Section 152: Day 1201 videos

Unsupervised Learning Hyperparameter Tuning

1h 18m
Section 153: Day 1941 videos

Text Preprocessing- Preparing Data for NLP

31m
Section 154: Day 1651 videos

Model Evaluation Techniques for Deep Learning

51m
Section 155: Day 1851 videos

Segmentation and Grouping Moving Objects

47m
Section 156: Day 2231 videos

Transformer Architecture in Generative AI

41m
Section 157: Day 2001 videos

Recurrent Neural Networks (RNN) in NLP

41m
Section 158: Day 1781 videos

Handwriting Recognition vs. Printed Text

49m
Section 159: Day 1411 videos

Applications of Reinforcement Learning

1h 16m
Section 160: NLP Day 1921 videos

Introduction to NLP

1h 14m
Section 161: Day 2221 videos

Enhancing Artists' Workflow with Iterative Gen AI

1h 11m
Section 162: Day 1871 videos

Applications of Computer Vision

51m
Section 163: Day 1021 videos

Application of K-Means Clustering Algorithm in Unsupervised ML

1h 30m
Section 164: Day 1981 videos

NLP Models and Techniques Explained

42m
Section 165: Day 2091 videos

Fine-Tuning Pre-Trained Models in NLP Mastering AI Model

49m
Section 166: Day 1541 videos

Applications of LSTM in Data Science

1h 30m
Section 167: Day 2241 videos

Modeling Long-Range Dependencies in Text Generation AI

36m
Section 168: Day 2151 videos

How Generative AI Works End-to-End

43m
Section 169: Day 1881 videos

Applications of Image Segmentation in Computer Vision

41m
Section 170: Day 2061 videos

Natural Language Generation (NLG)

1h 3m
Section 171: Day 2111 videos

NLP Capstone Project AIMLDL

1h 8m
Section 172: Day 1551 videos

Applcation Short Term Memory LSTM

47m
Section 173: Day 2181 videos

How RAG Works with LLMs- Mastering Retrieval-Augmented

35m
Section 174: Day 1971 videos

Application of Word Embeddings in NLP

36m
Section 175: Day 1661 videos

Deep Learning Confusion Matrix Explained

1h 11m
Section 176: Day 1991 videos

Language Models and Embeddings

35m
Section 177: Day 1521 videos

Applications of Recurrent Neural Networks (RNN)

1h 7m
Section 178: Day 2031 videos

GRU Architecture & Functionality in NLP

37m
Section 179: Day 1571 videos

Gating Mechanisms In GRU AIML

51m
Section 180: Computer Vision Day 1671 videos

Introduction to Computer Vision

56m
Section 181: Day 1481 videos

Applications of Convolutional Neural Networks (CNN)

1h 30m
Section 182: Day 1431 videos

Applications of Deep Learning in Real-World Scenarios

1h 30m
Section 183: Day 2081 videos

Transfer Learning in NLP Mastering NLP

35m
Section 184: Day 1721 videos

SIFT (Scale-Invariant Feature Transform) Explained

1h 12m
Section 185: Day 1631 videos

Choosing the Right Pre-Trained Model for Your AI Project

1h 26m
Section 186: Day 1501 videos

Introduction to Recurrent Neural Networks (RNN)

58m
Section 187: Day 1531 videos

Long Short-Term Memory Networks (LSTM) Simplified

1h 30m
Section 188: Day 1801 videos

Facial Recognition Algorithms and Techniques

38m
Section 189: Day 1891 videos

Real-Time Case Study Applications of Computer Vision

1h 30m
Section 190: Day 1511 videos

Vanishing and Exploding Gradient Problem in Deep Learning

1h 12m
Section 191: Day 2051 videos

Transformer Architecture and Components

56m
Section 192: Day 1741 videos

Datasets and Benchmarks in Computer Vision

1h 13m
Section 193: Day 2101 videos

NLP Tasks with Examples & Applications

1h 11m
Section 194: Day 1761 videos

Supervised Segmentation Methods in Computer Vision

41m
Section 195: Day 1841 videos

D Vision and Reconstruction in Computer Vision

42m
Section 196: Day 1861 videos

Stereoscopic Vision and Depth Perception in Computer Vision

54m
Section 197: Day 2301 videos

Enforcing Accountability & Responsibility in AI Model

50m
Section 198: Day 1591 videos

GANs The Future of Data Generation

57m
Section 199: Day 1811 videos

Camera Models and Calibrations in Computer Vision

34m
Section 200: Day 1151 videos

Unsupervised Learning with t-SNE- Mastering Dimensionality Reduction

1h 16m
Section 201: Day 1771 videos

Unlocking the Power of Optical Character Recognition (OCR)

56m
Section 202: Day 2172 videos

Challenges and Limitations of Current Text Generation AI

34m

Retrieval-Augmented Generation (RAG) in AI- Enhancing Model

42m
Section 203: Day 1701 videos

Computer Vision Image Segmentation Explained

59m
Section 204: Day 2291 videos

Ethical Considerations in Generative AI

1h 2m
Section 205: Day 2211 videos

Music and Art Creation Using Generative AI

1h 22m
Section 206: Day 1821 videos

Camera Calibration Process in Computer Vision

34m
Section 207: Day 1601 videos

Applications of GANs- Revolutionizing AI

1h 30m
Section 208: Day 1611 videos

Generative Adversarial Networks (GANs)

1h 30m
Section 209: Day 2311 videos

Chatbot with LangChain + OpenAI

1h 20m
Section 210: Day 1581 videos

Applications of Gated Recurrent Unit (GRU) Networks

45m
Section 211: Day 2131 videos

Perplexity- Measuring Language Model Performance

30m
Section 212: Day 2281 videos

Multimodal Retrieval-Augmented Generation (RAG)

36m
Section 213: Day 1961 videos

Word Embeddings in NLP Word2Vec, GloVe

42m
Section 214: Day 2261 videos

Techniques for Domain-Specific Fine-Tuning in Generative AI

1h 4m
Section 215: Day 2161 videos

Text Generation Using Generative AI

33m
Section 216: Day 1011 videos

Iterating K-Means Clustering Algorithm in Unsupervised ML

1h 30m
Section 217: Day 1911 videos

Intersection Over Union (IoU) in Deep Learning

1h 11m
Section 218: Day 1831 videos

Motion Analysis and Tracking in Computer Vision

41m
Section 219: Day 2271 videos

Multimodal Generative Models Explained

40m
Section 220: Day 1951 videos

Text Normalization Techniques in NLP Deep Learning

37m
Section 221: Day 1751 videos

Segmentation in Computer Vision

37m
Section 222: Day 2321 videos

Evaluation Metrics for GenAI Models Explained

40m
Section 223: Day 2251 videos

Fine-Tuning Pre-Trained Models for Generative AI

44m
Section 224: Day 1641 videos

Applications of Transfer Learning in AI

1h 30m