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title: DataSynthis ML Job Task
emoji: π
colorFrom: blue
colorTo: green
sdk: gradio
sdk_version: "4.44.0"
app_file: app.py
pinned: false
license: mit
---
# DataSynthis_ML_JobTask β Gradio Space
## Models
- **ARIMA** β classical statistical model.
- **Prophet** β trend + seasonality decomposition.
- **LSTM (Multivariate)** β deep learning with multiple features.
**Data:** AAPL daily prices (2015β2025)
## How it works
- **Forecast tab:** Choose horizon (7β90d). See future projections overlayed on history.
- **Backtest tab:** Evaluate models on the last N days (RMSE & MAPE table).
## Files
- `data/AAPL_stock_2015_2025.csv`
- `models/arima_model.pkl`, `models/prophet_model.pkl`, `models/lstm_model.h5`, `models/lstm_scaler.pkl`
- `app.py`, `requirements.txt`
> LSTM multi-step uses naive future covariates for demo. For production, predict covariates or use a univariate target model.
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