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How do you iterate through a pandas DataFrame based on the hour? Let's say we want to iterate only through the rows corresponding to the 10:00 hours; I've been using the "between_time()" method but is not enough flexible when using it with list comprehensions. What is the best approach for this?

                      Value
Time                                                                           
2018-11-09 10:00:00  3386.0
2018-11-09 11:00:00  2477.0
2018-11-09 12:00:00  2110.0
2018-11-09 13:00:00  4337.0
2018-11-12 10:00:00  3023.0
2018-11-12 11:00:00  2307.0
2018-11-12 12:00:00  1824.0 
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    You can filter your data frame. df.index = pd.to_datetime(df.index) then df.loc[df.index.hour == 10]
    – rafaelc
    Dec 5, 2019 at 22:28
  • Iterate and do what? As @rafaelc said, you can filter your dataframe and do the iteration on that df. Dec 5, 2019 at 22:33
  • @rafaelc read your comment after my answer - if you post an answer i'll remove mine.
    – brddawg
    Dec 5, 2019 at 22:53

2 Answers 2

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Start by converting your index to a date format:

df.index = pd.to_datetime(df.index)

You can iterate through the rows where the hour within datetime is equal to a given value in a lot of ways but this seems like the easiest:

for row in df.loc[df.index.hour == 10].iterrows():
    #insert task here
    print(row)
    print(row[0])

With this set up you could edit the value or add something to the row etc.

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  • Yes, when using it only the df.loc[df.index.hour == 10] it works perfect, but when using it in the for loop suggested, it prints all the hours ignoring the filter. Am I missing something? (novice coder here), also, is there a way to use it with list comprehensions as I've read that those are more efficient. What I'm trying to achieve is to compare the values between different rows/hours, for example: if 10:00 Value is greater than 11:00 Value, and return the answer in a new column next to the Value column
    – FX757
    Dec 5, 2019 at 23:41
  • thanks for the comment - my original answer printed the data frame when the row should have been referenced. answer has been updated. the last section of your comment is a separate question that is pretty easy with pandas. you'd need to provide an example of the output though.
    – brddawg
    Dec 6, 2019 at 4:01
  • if you do ask that question, leave a comment and I should be able to help with that
    – brddawg
    Dec 6, 2019 at 4:01
  • Doing it like this: for row in df.loc[df.index.hour == 10]: #insert task here print(row.Value) it gives an error pointing: "string indices must be integers"
    – FX757
    Dec 6, 2019 at 20:25
  • I've added the other related question here: stackoverflow.com/questions/59219870/… Thank you! :)
    – FX757
    Dec 6, 2019 at 20:26
-1

Iterate through

df.assign(stamp=lambda x: x.index.hour * 3600 + x.index.minute * 60 + x.index.second).query('stamp == 36000')

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