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- ---
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- library_name: sklearn
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- tags:
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- - random-forest
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- - stroke-prediction
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- - sklearn
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- pipeline_tag: tabular-classification
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- license: mit
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- ---
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-
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-
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- # Stroke Prediction Random Forest Model
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-
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- This project uses a Random Forest model to predict the risk of strokes based on user input features. The model has been deployed on Hugging Face for seamless integration.
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-
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- ## Features
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- - Predicts the likelihood of a stroke based on various health parameters.
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- - Fast and efficient model, hosted on Hugging Face.
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-
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- ## Input Features
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- The model expects the following inputs:
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- - `age`: Patient's age (numeric)
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- - `age_group`: Patients age group child(Less than 18 ),Young Adult (18-34 ), Adult (35-59 ), Senior (60 and over )
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- - `hypertension`: 1 if the patient has hypertension, else 0
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- - `heart_disease`: 1 if the patient has heart disease, else 0
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- - `avg_glucose_level`: Average glucose level in the blood
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- - `bmi`: Body Mass Index
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- - `gender`: Male/Female/Other
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- - `ever_married`: Yes/No
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- - `work_type`: Type of work (e.g., Private, Self-employed, never_worked)
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- - `Residence_type`: Urban/Rural
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- - `smoking_status`: Smoking habits (e.g., never smoked, formerly smoked)
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-
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- ## Model Deployment
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- The model has been deployed on the [Hugging Face Hub](https://huggingface.co). You can access it via my repo [Random Forest Model for Stroke Prediction](https://huggingface.co/Asiya-Mohammed/random-forest-model).
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