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Course Details are given below:
Week |
Course Details /Syllabus |
Week-0: |
Ground Work |
1. Professional Social Media Growth2.Linkedin-13.Linkedin-24.Linkedin-35.Github-16.Github-27. How to take Notes-Must Watch |
|
Week-1: |
Travelling Path |
1. What is AI, How its created, end goal of AI?2. Where to Sell Ai Projects, the thumb rule to integrate Ai in any Department3. Comparison Between AI and Humans?4. Relationship Between Ai, Machine Learning, DL, NLP, TSA, and Data Science?5. Man like AI, Traditional Vs AI?6. Traditional vs AI-2?7. Thumb rule to make money over AI projects?8. Heart of AI projects?9.RealTime Applications?10.Baby-Step-1?11. How to select the domain for AI Projects?12. Why Data Science?13. Relationship between AI and Python14. Road Map to complete AI?Test-1 |
|
Week-2: |
Python |
1. Python Tool2. Where to Download Anaconda?3. How to open the Jupyter notebook?4. Introduction to Programming?5.7-Concepts, Print?6. Print-Name Error?7. Print hands-0n8. Variable and Assignment?9. Variable-Handson?10. Rules to write Variable Name?11. String?12. How to write an Efficient program?13. input statement?14. Recall Session?15.ControlStructures?16. If Statement?17. if-else?18.if-elif?19. if-Thumbrule?20. For Loop?Test – 221. How to Finish Assignments1. Baby Step-22. Extra Assignment-level-13. Extra Assignment-Level-24. Extra Assignment-322.OOPs23.Function-124.Function-225.Function-325.Function-426.Function-528. Function AssignmentsFunction Assignments29.Class-130.Class-231.Class-332. Class AssignmentsClass AssignmentsTest – 3 |
|
Week:3 |
Machine Learning-Regression |
1. Problem Identification2. How to identify – Supervised Learning3. How to identify – Unsupervised Learning4. Difference between supervised and unsupervised5. Semi-Supervised Learning6. Supervised- Classification and Regression7. Scenario-Based Example-18. Scenario-Based Example- 29. Problem Identification- Assignments10. Two Phases of AI11. Model Creation-Learning Phase-112. Deployment Pahse-213. Algorithm14. Simple Linear Regression15. Problem Identification in SLR16. Detailed Explanation of Model Creation17. Evaluation Metric-SSE, SSR, SST18.R_Square and Adjusted R_Square19. The purpose of Training and Test Set.20.AI in HR-Req-Problem Identification21. Mapping with phases22. Hands- on-1-Training Test Set23.Hands-on-2-Model Creation24.Hands-on-3- Evaluating25.Hands-on-4-How to save the model26. How to save model-227. Hands-on- Deployment28. Baby step229. Multiple Linear regression30.PS_AI in Business Intelligence31. Nominal and Ordinal32. Code Walkthrough33. Hands-on – MLR34. SVM35. Standard36. ML-Secret37. SVM-Hands-OnSVM-Assignment38. Decision Tree39. Hands-On-Decision Tree40. Random Forest41. Random Forest-Hands-on42. Assignment43. Boosting Algorithm44. How to Install the library45. Cross Validation46.GridSearchCV |
|
Week:4 |
Machine Learning-Classification |
1. Intro to Classification & Problem Statement2. Hands-On Walkthrough3. Confusion Matrix-14. Confusion Matrix-25. Hands-on-DT, SVM6. Logistic Classification7. Logistic- Hands-on8. KNN9. Hands-on-KNN10. Naive Bayes11. Hands-on-NB12. All Algorithms13. Grid Search-Classification-114. Grid Search-215. Assignment-ClassificationClassification AssignmentAssignment Confirmation16. Virtual Environment17. VE Creation |
|
Week:5 |
Machine Learning-Clustering |
1. K-means clustering2. Problem Statement for Clustering3. K-Means-Code Walkthrough4. K-Means-Hands-on5. Agglomerative-16.Agglomerative-27. Clustering Assignment |
|
Week:6 |
Data Science-Univariate |
1. Introduction to Data Science2. Inferential Analysis3. Application of Data Science4. Types of column5. Problem Statement6.Hands-on-QuanQual-17.Hands-on-QualQuan-28. Faircopy9. Introduction to Univariate10. Central Tendency-111. Central Tendency -212. Central Tendency-313. Hands-on-CT-114. Hands-on-CT-215. Percentile16. Hands-on-Percetile-117. IQR18.Hands-on-IQR-119.Hands-on-IQR-220. Hands-on-IQR-321. Frequency22. Frequency-hands-on23. Variance and Standard Deviation24. Hands-on Variance and Std25. Skewness26. Hands-on Skewness27. Kurtosis28. Hands-on Kurotsis29. Kurotsis Vs Skewness30. Normal Distribution |
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