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365 Data Science - Customer Analytics in Python [CoursesGhar]
磁力链接/BT种子名称
365 Data Science - Customer Analytics in Python [CoursesGhar]
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2023-12-18
最近下载:
2025-09-13
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文件列表
11. Deep Learning/4. Balancing the Dataset.mp4
46.8 MB
1. A Brief Marketing Introduction/4. Price Elasticity.mp4
33.7 MB
11. Deep Learning/5. Preprocessing the Data for Deep Learning.mp4
32.0 MB
2. Segmentation Data/2. Importing and Exploring Segmentation Data.mp4
31.5 MB
10. Modeling Purchase Quantity/2. Preparing the Data and Fitting the Model.mp4
31.0 MB
1. A Brief Marketing Introduction/2. Marketing Mix.mp4
29.6 MB
1. A Brief Marketing Introduction/1. Segmentation, Targeting, Positioning.mp4
29.1 MB
11. Deep Learning/7. Training the Deep Learning Model.mp4
28.3 MB
5. K-Means Clustering based on Principal Component Analysis/5. K-Means Clustering with Principal Components - Results.mp4
26.7 MB
1. A Brief Marketing Introduction/3. Physical and Online Retailers - Similarities and Differences..mp4
24.3 MB
11. Deep Learning/2. Exploring the Dataset.mp4
23.7 MB
6. Purchase Data/2. Getting to know the Purchase Dataset.mp4
21.4 MB
4. K-Means Clustering/3. K-Means Clustering - Results.mp4
21.2 MB
11. Deep Learning/11. Predicting on New Data.mp4
19.4 MB
8. Modeling Purchase Incidence/6. Purchase Probability by Segments.mp4
18.9 MB
11. Deep Learning/9. Obtaining the Probability of a Customer to Convert.mp4
17.9 MB
3. Hierarchical Clustering/2. Hierarchical Clustering - Implementation and Results.mp4
17.0 MB
9. Modeling Brand Choice/7. Own and Cross-Price Elasticity by Segment - Comparison.mp4
17.0 MB
9. Modeling Brand Choice/6. Own and Cross-Price Elasticity by Segment.mp4
16.9 MB
11. Deep Learning/8. Testing the Model.mp4
16.4 MB
7. Descriptive Analyses by Segments/4. Dissecting the revenue by segment.mp4
15.9 MB
8. Modeling Purchase Incidence/4. Calculating Price Elasticity of Purchase Probability.mp4
15.1 MB
9. Modeling Brand Choice/5. Cross Price Brand Choice Elasticity.mp4
14.8 MB
7. Descriptive Analyses by Segments/1. Purchase Analytics Descriptive Statistics - Segment Proportions.mp4
14.6 MB
8. Modeling Purchase Incidence/5. Price Elasticity of Purchase Probability - Results.mp4
13.1 MB
2. Segmentation Data/1. Getting to know the Segmentation Dataset.mp4
12.4 MB
7. Descriptive Analyses by Segments/3. Brand Choice.mp4
12.4 MB
9. Modeling Brand Choice/4. Own Price Brand Choice Elasticity.mp4
11.9 MB
11. Deep Learning/1. Introduction to Deep Learning for Customer Analytics.mp4
11.5 MB
4. K-Means Clustering/2. K-Means Clustering - Application.mp4
11.4 MB
10. Modeling Purchase Quantity/3. Calculating Price Elasticity of Purchase Quantity.mp4
11.3 MB
5. K-Means Clustering based on Principal Component Analysis/2. Principal Component Analysis - Application.mp4
11.0 MB
5. K-Means Clustering based on Principal Component Analysis/3. Principal Component Analysis - Results.mp4
10.3 MB
7. Descriptive Analyses by Segments/2. Purchase Analytics Descriptive Statistics - Purchase occasion and purchase Incidence.mp4
9.9 MB
6. Purchase Data/4. Applying the Segmentation Model.mp4
9.8 MB
8. Modeling Purchase Incidence/3. Model Estimation.mp4
9.7 MB
2. Segmentation Data/3. Standardizing Segmentation Data.mp4
9.6 MB
5. K-Means Clustering based on Principal Component Analysis/6. Saving the Models.mp4
9.2 MB
3. Hierarchical Clustering/1. Hierarchical Clustering - Background.mp4
9.2 MB
11. Deep Learning/6. Outlining the Deep Learning Model.mp4
8.9 MB
10. Modeling Purchase Quantity/1. Purchase Quantity Models. The Model - Linear Regression.mp4
8.2 MB
8. Modeling Purchase Incidence/9. Comparing Price Elasticities with and without Promotion.mp4
7.7 MB
4. K-Means Clustering/1. K-Means Clustering - Background.mp4
7.6 MB
5. K-Means Clustering based on Principal Component Analysis/4. K-Means Clustering with Principal Components - Application.mp4
7.3 MB
9. Modeling Brand Choice/1. Brand Choice Models. The Model - Multinomial Logistic Regression.mp4
7.3 MB
9. Modeling Brand Choice/3. Interpreting the Coefficients.mp4
7.0 MB
10. Modeling Purchase Quantity/4. Price Elasticity of Purchase Quantity - Results.mp4
6.9 MB
8. Modeling Purchase Incidence/1. Purchase Incidence Models. The Model - Binomial Logistic Regression.mp4
6.7 MB
8. Modeling Purchase Incidence/7. Purchase Probability Model with Promotion.mp4
6.3 MB
9. Modeling Brand Choice/2. Prepare Data and Fit the Model.mp4
5.4 MB
8. Modeling Purchase Incidence/8. Calculating Price Elasticities with Promotion.mp4
5.4 MB
11. Deep Learning/10. Saving the Model and Preparing for Deployment.mp4
4.6 MB
6. Purchase Data/3. Importing and Exploring Purchase Data.mp4
4.4 MB
5. K-Means Clustering based on Principal Component Analysis/1. Principal Component Analysis - Background.mp4
4.3 MB
6. Purchase Data/1. Purchase Analytics - Introduction.mp4
3.3 MB
11. Deep Learning/3. How Are We Going to Tackle the Business Case.mp4
3.2 MB
8. Modeling Purchase Incidence/2. Prepare the Dataset for Logistic Regression.mp4
3.2 MB
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