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Preparing and visualizing the data

Accurate data preparation is key to building effective machine learning models. Now it's time to apply the skills you've learned.

Your data needs three columns for the statsforecast library:

  • unique_id: series ID
  • ds: series timestamp
  • y: series values

Apply the necessary steps to clean and reformat your data for time series forecasting. The dataset has been preloaded as ts, and pandas is imported as pd.

Este exercício faz parte do curso

Designing Forecasting Pipelines for Production

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Exercício interativo prático

Experimente este exercício completando este código de exemplo.

# Convert the period column to datetime and sort the data by period
ts["____"] = pd.____(ts["period"])
ts = ts.____("period")
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