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Sleeping
| { | |
| "session_count": { | |
| "description": "Total number of user sessions recorded within the selected time window.", | |
| "business_insight": "Higher session_count indicates stronger engagement. Increasing this feature usually reduces churn probability.", | |
| "range": [0, 500], | |
| "unit": "sessions", | |
| "data_type": "numeric" | |
| }, | |
| "recency": { | |
| "description": "Number of days since the user last opened or interacted with the app.", | |
| "business_insight": "Higher recency means longer inactivity and higher churn risk. Decreasing this value implies users are returning more frequently.", | |
| "range": [0, 365], | |
| "unit": "days", | |
| "data_type": "numeric" | |
| }, | |
| "timestamp": { | |
| "description": "Date and time of the user's latest app activity. Useful for calculating recency or analyzing temporal churn patterns.", | |
| "business_insight": "Timestamp itself is not directly used for prediction but can help explain seasonal or temporal trends when analyzing churn patterns.", | |
| "data_type": "datetime" | |
| }, | |
| "userid": { | |
| "description": "Unique identifier for each user in the dataset.", | |
| "business_insight": "Used to identify specific users when listing churn predictions." | |
| }, | |
| "ChurnProbability": { | |
| "description": "Predicted probability that a user will churn based on the Random Forest model.", | |
| "business_insight": "Higher probability values indicate users at greater risk of churn. Useful for ranking top churn-prone users." | |
| } | |
| } | |