forecasting values for each category using Prophet in python(在 python 中使用 Prophet 预测每个类别的值)
问题描述
我对用 Python 和 Prophet 做时间序列非常陌生.我有一个包含变量文章代码、日期和销售数量的数据集.我正在尝试使用 Python 中的 Prophet 预测每个月每篇文章的销售量.
I am very new to doing time series in Python and Prophet. I have a dataset with the variables article code, date and quantity sold. I am trying to forecast the quantity sold for each article for each month using Prophet in python.
我尝试使用 for 循环对每篇文章执行预测,但我不确定如何在输出(预测)数据中显示文章类型,以及如何直接从for 循环"将其写入文件.
I tried using for loop for performing the forecast for each article, But I am not sure how to display the article type in output(forecast) data and also write it to a file directly from the "for loop".
df2 = df2.rename(columns={'Date of the document': 'ds','Quantity sold': 'y'})
for article in df2['Article bar code']:
# set the uncertainty interval to 95% (the Prophet default is 80%)
my_model = Prophet(weekly_seasonality= True, daily_seasonality=True,seasonality_prior_scale=1.0)
my_model.fit(df2)
future_dates = my_model.make_future_dataframe(periods=6, freq='MS')
forecast = my_model.predict(future_dates)
return forecast
我想要如下所示的输出,并希望将其直接从for 循环"写入输出文件.
I want the output like below, and want this to be written to an output file directly from the "for loop".
提前致谢.
推荐答案
通过 articletype
分隔数据框,然后尝试将所有预测值存储在字典中
Separate your dataframe by articletype
and then try storing all your predicted values in a dictionary
def get_prediction(df):
prediction = {}
df = df.rename(columns={'Date of the document': 'ds','Quantity sold': 'y', 'Article bar code': 'article'})
list_articles = df2.article.unique()
for article in list_articles:
article_df = df2.loc[df2['article'] == article]
# set the uncertainty interval to 95% (the Prophet default is 80%)
my_model = Prophet(weekly_seasonality= True, daily_seasonality=True,seasonality_prior_scale=1.0)
my_model.fit(article_df)
future_dates = my_model.make_future_dataframe(periods=6, freq='MS')
forecast = my_model.predict(future_dates)
prediction[article] = forecast
return prediction
现在预测将对每种类型的文章进行预测.
now the prediction will have forecasts for each type of article.
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