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Python Machine Learning Case Studies
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Chapter 1: Statistics and ProbabilityChapter Goal: Introduction and hands on approach to central limit theorem, distributions, confidence intervals, statistical tests, ROC curves, plots, probabilities, permutations and combinationsNo of pages: 70-80Sub -Topics1. Exploratory Data analysis2. Probability Distributions3. Concept of Permutations and Combinations4. Statistical tests5. Applications in the industry6. Case study
Chapter 2: RegressionChapter Goal: Introduction and hands on approach to the concept of regression, linear regression models, non linear regression models.No of pages: 50-60Sub - Topics1. Concept of Regression2. Linear regression3. Polynomial order regression4. Statistical tests5. Applications in the industry6. Case study<Chapter 3: Time series modelsChapter Goal: Introduction and hands on approach to concepts of trends, cycles, seasonal variations, anomaly detection, exponential smoothing, rolling moving averages, ARIMA, ARMA, over fitting.No of pages: 60-70Sub - Topics:1. Concept of trends, cycles, and seasonal variations2. Time series decomposition3. ARIMA, and ARMA models4. Concept of over fitting5. Statistical tests6. Applications in the industry7. Case study
Chapter 4: Classification and ClusteringChapter Goal: Introduction and hands on approach to supervised, semi supervised and unsupervised models. Emphasis on Logistic regression, k-means, Support Vector Machines, Neural networksNo of pages: 80-90Sub - Topics:1. Concept of Classification and clustering2. Deep neur3. Support Vector Machines4. Concept of Gradient descent5. Statistical tests6. Applications in the industry7. Case study
Chapter 5: Ensemble methodsChapter Goal: Introduction and hands on approach to Bagging, and Gradient BoostingNo of pages: 50-60Sub - Topics:1. Concept of ensemble methods2. Concept of Bagging 3. Concept of Gradient Boosting4. Statistical tests5. Applications in the industry6. Case study

About the Author

Danish Haroon currently leads the Data Sciences team at Market IQ Inc, a patented predictive analytics platform focused on providing actionable, real-time intelligence, culled from sentiment inflection points. He received his MBA from Karachi School for Business and Leadership, having served corporate clients and their data analytics requirements. Most recently, he led the data commercialization team at PredictifyME, a startup focused on providing predictive analytics for demand planning and real estate markets in the US market. His current research focuses on the amalgam of data sciences for improved customer experiences (CX).

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