I have a timestamp
column where the timestamp is in the following format
2016-06-16T21:35:17.098+01:00
I want to extract date and time from it. I have done the following:
import datetime as dt
df['timestamp'] = df['timestamp'].apply(lambda x : pd.to_datetime(str(x)))
df['dates'] = df['timestamp'].dt.date
This worked for a while. But suddenly it does not.
If I again do df['dates'] = df['timestamp'].dt.date
I get the following error
Can only use .dt accessor with datetimelike values
Luckily, I have saved the data frame with dates
in the csv but I now want to create another column time
in the format 23:00:00.051
EDIT
From the raw data file (15 million samples), the timestamp
column looks like following (first 5 samples):
timestamp
0 2016-06-13T00:00:00.051+01:00
1 2016-06-13T00:00:00.718+01:00
2 2016-06-13T00:00:00.985+01:00
3 2016-06-13T00:00:02.431+01:00
4 2016-06-13T00:00:02.737+01:00
After the following command
df['timestamp'] = df['timestamp'].apply(lambda x : pd.to_datetime(str(x)))
the timestamp
column looks like with dtype
as dtype: datetime64[ns]
0 2016-06-12 23:00:00.051
1 2016-06-12 23:00:00.718
2 2016-06-12 23:00:00.985
3 2016-06-12 23:00:02.431
4 2016-06-12 23:00:02.737
Then finally
df['dates'] = df['timestamp'].dt.date
0 2016-06-12
1 2016-06-12
2 2016-06-12
3 2016-06-12
4 2016-06-12
EDIT 2
Found the mistake. I had cleaned the data and saved the data frame in a csv file, so I don't have to do the cleaning again. When I read the csv, the timestamp dtype
changes to object. Now how do I fix this?
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