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darts gradio demo space
Browse files
app.py
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import gradio as gr
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import pypistats
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from datetime import date
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from dateutil.relativedelta import relativedelta
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from darts import TimeSeries
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from darts.models import ExponentialSmoothing
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from matplotlib import pyplot
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import pandas as pd
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def get_forecast(lib, time):
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data = pypistats.overall(lib, total=True, format="pandas")
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data = data.groupby("category").get_group("with_mirrors").sort_values("date")
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start_date = date.today() - relativedelta(months=int(time.split(" ")[0]))
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df = data[(data["date"] > str(start_date))]
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df1 = df[["date", "downloads"]]
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df1["date"] = pd.to_datetime(df1["date"])
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df1 = df1.set_index(["date"])
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target = TimeSeries.from_dataframe(df1, freq="D")
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model = ExponentialSmoothing()
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model.fit(target)
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prediction = model.predict(90, num_samples=500)
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fig, axes = pyplot.subplots(figsize=(20, 12))
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target.plot()
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prediction.plot()
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pyplot.legend()
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return fig
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with gr.Blocks() as demo:
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gr.Markdown(
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"""
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**Pypi Download Stats 📈 with Darts Forecasting**: see live download stats for popular open-source libraries 🤗 along with a 3 month forecast using Darts. The [ source code for this Gradio demo is here](https://huggingface.co/spaces/gradio/timeseries-forecasting-with-darts/blob/main/app.py).
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"""
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)
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with gr.Row():
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lib = gr.Dropdown(
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["pandas", "scikit-learn", "torch", "prophet", "darts"],
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label="Library",
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value="darts",
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)
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time = gr.Dropdown(
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["3 months", "6 months", "9 months", "12 months"],
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label="Downloads over the last...",
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value="12 months",
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)
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plt = gr.Plot()
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lib.change(get_forecast, [lib, time], plt, queue=False)
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time.change(get_forecast, [lib, time], plt, queue=False)
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demo.load(get_forecast, [lib, time], plt, queue=False)
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demo.launch()
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