drop if nan in column pandas
df = df[df['EPS'].notna()]
remove nan from list python
cleanedList = [x for x in countries if str(x) != 'nan']
how to delete nan values in python
x = x[~numpy.isnan(x)]
pandas drop row with nan
import pandas as pd
df = pd.DataFrame({'values_1': ['700','ABC','500','XYZ','1200'],
'values_2': ['DDD','150','350','400','5000']
})
df = df.apply (pd.to_numeric, errors='coerce')
df = df.dropna()
df = df.reset_index(drop=True)
print (df)
remove rows or columns with NaN value
df.dropna() #drop all rows that have any NaN values
df.dropna(how='all')
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