9

I have this simplified dataframe:

ID, Date
1 8/24/1995
2 8/1/1899 :00

How can I use the power of pandas to recognize any date in the dataframe which has extra :00 and removes it.

Any idea how to solve this problem?

I have tried this syntax but did not help:

df[df["Date"].str.replace(to_replace="\s:00", value="")]

The Output Should Be Like:

ID, Date
1 8/24/1995
2 8/1/1899
  • Are you creating the data frame yourself? Because you could remove the extraneous :00 prior to making the df. – Harrison Aug 1 '16 at 19:40
  • I am reading a .csv file as a dataframe using pd.read.csv()... but I have noticed that some dates do actually have extraneous ` :00` prior to reading them as a dataframe – MEhsan Aug 1 '16 at 19:45
9

You need to assign the trimmed column back to the original column instead of doing subsetting, and also the str.replace method doesn't seem to have the to_replace and value parameter. It has pat and repl parameter instead:

df["Date"] = df["Date"].str.replace("\s:00", "")

df
#   ID       Date
#0   1  8/24/1995
#1   2   8/1/1899
4

To apply this to an entire dataframe, I'd stack then unstack

df.stack().str.replace(r'\s:00', '').unstack()

enter image description here

functionalized

def dfreplace(df, *args, **kwargs):
    s = pd.Series(df.values.flatten())
    s = s.str.replace(*args, **kwargs)
    return pd.DataFrame(s.values.reshape(df.shape), df.index, df.columns)

Examples

df = pd.DataFrame(['8/24/1995', '8/1/1899 :00'], pd.Index([1, 2], name='ID'), ['Date'])

dfreplace(df, '\s:00', '')

enter image description here


rng = range(5)
df2 = pd.concat([pd.concat([df for _ in rng]) for _ in rng], axis=1)

df2

enter image description here

dfreplace(df2, '\s:00', '')

enter image description here

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