How to drop floating point values from dataframe in pandas? - python

I have a large dataframe but has similar contents to the one below.
d = {'col1': [1, -2.654, 3, 1.995]}
df = pd.DataFrame(data=d)
Output
col1
0 1
1 -2.654
2 3
3 1.995
I would like to delete the floating point values so rows 1 and 3 would be deleted.
Thanks for any help!


try:
d = {'col1': [1, -2.654, 3, 1.995]}
df = pd.DataFrame(data=d)
df[df.col1 == round(df.col1)]
# col1
# 0 1.0
# 2 3.0

Related

Create new dataframe and new column at the same time

I wonder if we can create new DataFrame and new column at once as below.
d = {'col1': [1, 2], 'col2': [3, 4]}
df = pd.DataFrame(data=d)
# Can I combine the 2 rows into 1
new_df = df
new_df['new column'] = new_df['col1'] * 2 + new_df['col2'] / 4
print(new_df)

You can do this with the .assign() method of a data frame, creating a copy and adding a new column at the same time:
>>> df
col1 col2
0 1 3
1 2 4
>>> new_df = df.assign(col3=df["col1"] * 2 + df["col2"] / 4)
>>> new_df
col1 col2 col3
0 1 3 2.75
1 2 4 5.00

If you just want to make the code looks shorter, use assign right after creating a dataframe.
The code snippet can look like below:
df = pd.DataFrame(d).assign(new_column=lambda x: x['col1'] * 2 + x['col2'] / 4)

Python Pandas find value in dataframe regardless of column

Is there a simple way to check for a value within a dataframe when it could possibly be in a variety of columns? Whether using iterrow and searching each row for the value and finding which column it is in or just checking the dataframe as a whole and getting its position like iat coords.

import pandas as pd
d = {'id': [1, 2, 3], 'col2': [3, 4, 5], 'col3': [8,3,9]}
df = pd.DataFrame(data=d)
df = df.set_index('id')
df
Sample Data
col2 col3
id
1 3 8
2 4 3
3 5 9
Find 3
df.isin([3]).any()
Output Column:
col2 True
col3 True
dtype: bool
Want more detals? Here you go:
df[df.isin([3])].stack().index.tolist()
Co-ordinates output:
[(1, 'col2'), (2, 'col3')]

You can search the value in dataframe and get the Boolean dataframe for your search. It
gives you all equalities of var1 in df.
df[df.eq(var1).any(1)]

Best way to add multiple list to existing dataframe [duplicate]

I'm trying to figure out how to add multiple columns to pandas simultaneously with Pandas. I would like to do this in one step rather than multiple repeated steps.
import pandas as pd
df = {'col_1': [0, 1, 2, 3],
'col_2': [4, 5, 6, 7]}
df = pd.DataFrame(df)
df[[ 'column_new_1', 'column_new_2','column_new_3']] = [np.nan, 'dogs',3] # I thought this would work here...

I would have expected your syntax to work too. The problem arises because when you create new columns with the column-list syntax (df[[new1, new2]] = ...), pandas requires that the right hand side be a DataFrame (note that it doesn't actually matter if the columns of the DataFrame have the same names as the columns you are creating).
Your syntax works fine for assigning scalar values to existing columns, and pandas is also happy to assign scalar values to a new column using the single-column syntax (df[new1] = ...). So the solution is either to convert this into several single-column assignments, or create a suitable DataFrame for the right-hand side.
Here are several approaches that will work:
import pandas as pd
import numpy as np
df = pd.DataFrame({
'col_1': [0, 1, 2, 3],
'col_2': [4, 5, 6, 7]
})
Then one of the following:
1) Three assignments in one, using list unpacking:
df['column_new_1'], df['column_new_2'], df['column_new_3'] = [np.nan, 'dogs', 3]
2) DataFrame conveniently expands a single row to match the index, so you can do this:
df[['column_new_1', 'column_new_2', 'column_new_3']] = pd.DataFrame([[np.nan, 'dogs', 3]], index=df.index)
3) Make a temporary data frame with new columns, then combine with the original data frame later:
df = pd.concat(
[
df,
pd.DataFrame(
[[np.nan, 'dogs', 3]],
index=df.index,
columns=['column_new_1', 'column_new_2', 'column_new_3']
)
], axis=1
)
4) Similar to the previous, but using join instead of concat (may be less efficient):
df = df.join(pd.DataFrame(
[[np.nan, 'dogs', 3]],
index=df.index,
columns=['column_new_1', 'column_new_2', 'column_new_3']
))
5) Using a dict is a more "natural" way to create the new data frame than the previous two, but the new columns will be sorted alphabetically (at least before Python 3.6 or 3.7):
df = df.join(pd.DataFrame(
{
'column_new_1': np.nan,
'column_new_2': 'dogs',
'column_new_3': 3
}, index=df.index
))
6) Use .assign() with multiple column arguments.
I like this variant on #zero's answer a lot, but like the previous one, the new columns will always be sorted alphabetically, at least with early versions of Python:
df = df.assign(column_new_1=np.nan, column_new_2='dogs', column_new_3=3)
7) This is interesting (based on https://stackoverflow.com/a/44951376/3830997), but I don't know when it would be worth the trouble:
new_cols = ['column_new_1', 'column_new_2', 'column_new_3']
new_vals = [np.nan, 'dogs', 3]
df = df.reindex(columns=df.columns.tolist() + new_cols) # add empty cols
df[new_cols] = new_vals # multi-column assignment works for existing cols
8) In the end it's hard to beat three separate assignments:
df['column_new_1'] = np.nan
df['column_new_2'] = 'dogs'
df['column_new_3'] = 3
Note: many of these options have already been covered in other answers: Add multiple columns to DataFrame and set them equal to an existing column, Is it possible to add several columns at once to a pandas DataFrame?, Add multiple empty columns to pandas DataFrame

You could use assign with a dict of column names and values.
In [1069]: df.assign(**{'col_new_1': np.nan, 'col2_new_2': 'dogs', 'col3_new_3': 3})
Out[1069]:
col_1 col_2 col2_new_2 col3_new_3 col_new_1
0 0 4 dogs 3 NaN
1 1 5 dogs 3 NaN
2 2 6 dogs 3 NaN
3 3 7 dogs 3 NaN

My goal when writing Pandas is to write efficient readable code that I can chain. I won't go into why I like chaining so much here, I expound on that in my book, Effective Pandas.
I often want to add new columns in a succinct manner that also allows me to chain. My general rule is that I update or create columns using the .assign method.
To answer your question, I would use the following code:
(df
.assign(column_new_1=np.nan,
column_new_2='dogs',
column_new_3=3
)
)
To go a little further. I often have a dataframe that has new columns that I want to add to my dataframe. Let's assume it looks like say... a dataframe with the three columns you want:
df2 = pd.DataFrame({'column_new_1': np.nan,
'column_new_2': 'dogs',
'column_new_3': 3},
index=df.index
)
In this case I would write the following code:
(df
.assign(**df2)
)

With the use of concat:
In [128]: df
Out[128]:
col_1 col_2
0 0 4
1 1 5
2 2 6
3 3 7
In [129]: pd.concat([df, pd.DataFrame(columns = [ 'column_new_1', 'column_new_2','column_new_3'])])
Out[129]:
col_1 col_2 column_new_1 column_new_2 column_new_3
0 0.0 4.0 NaN NaN NaN
1 1.0 5.0 NaN NaN NaN
2 2.0 6.0 NaN NaN NaN
3 3.0 7.0 NaN NaN NaN
Not very sure of what you wanted to do with [np.nan, 'dogs',3]. Maybe now set them as default values?
In [142]: df1 = pd.concat([df, pd.DataFrame(columns = [ 'column_new_1', 'column_new_2','column_new_3'])])
In [143]: df1[[ 'column_new_1', 'column_new_2','column_new_3']] = [np.nan, 'dogs', 3]
In [144]: df1
Out[144]:
col_1 col_2 column_new_1 column_new_2 column_new_3
0 0.0 4.0 NaN dogs 3
1 1.0 5.0 NaN dogs 3
2 2.0 6.0 NaN dogs 3
3 3.0 7.0 NaN dogs 3

Dictionary mapping with .assign():
This is the most readable and dynamic way to assign new column(s) with value(s) when working with many of them.
import pandas as pd
import numpy as np
new_cols = ["column_new_1", "column_new_2", "column_new_3"]
new_vals = [np.nan, "dogs", 3]
# Map new columns as keys and new values as values
col_val_mapping = dict(zip(new_cols, new_vals))
# Unpack new column/new value pairs and assign them to the data frame
df = df.assign(**col_val_mapping)
If you're just trying to initialize the new column values to be empty as you either don't know what the values are going to be or you have many new columns.
import pandas as pd
import numpy as np
new_cols = ["column_new_1", "column_new_2", "column_new_3"]
new_vals = [None for item in new_cols]
# Map new columns as keys and new values as values
col_val_mapping = dict(zip(new_cols, new_vals))
# Unpack new column/new value pairs and assign them to the data frame
df = df.assign(**col_val_mapping)

use of list comprehension, pd.DataFrame and pd.concat
pd.concat(
[
df,
pd.DataFrame(
[[np.nan, 'dogs', 3] for _ in range(df.shape[0])],
df.index, ['column_new_1', 'column_new_2','column_new_3']
)
], axis=1)

if adding a lot of missing columns (a, b, c ,....) with the same value, here 0, i did this:
new_cols = ["a", "b", "c" ]
df[new_cols] = pd.DataFrame([[0] * len(new_cols)], index=df.index)
It's based on the second variant of the accepted answer.

Just want to point out that option2 in #Matthias Fripp's answer
(2) I wouldn't necessarily expect DataFrame to work this way, but it does
df[['column_new_1', 'column_new_2', 'column_new_3']] = pd.DataFrame([[np.nan, 'dogs', 3]], index=df.index)
is already documented in pandas' own documentation
http://pandas.pydata.org/pandas-docs/stable/indexing.html#basics
You can pass a list of columns to [] to select columns in that order.
If a column is not contained in the DataFrame, an exception will be raised.
Multiple columns can also be set in this manner.
You may find this useful for applying a transform (in-place) to a subset of the columns.

You can use tuple unpacking:
df = pd.DataFrame({'col1': [1, 2], 'col2': [3, 4]})
df['col3'], df['col4'] = 'a', 10
Result:
col1 col2 col3 col4
0 1 3 a 10
1 2 4 a 10

If you just want to add empty new columns, reindex will do the job
df
col_1 col_2
0 0 4
1 1 5
2 2 6
3 3 7
df.reindex(list(df)+['column_new_1', 'column_new_2','column_new_3'], axis=1)
col_1 col_2 column_new_1 column_new_2 column_new_3
0 0 4 NaN NaN NaN
1 1 5 NaN NaN NaN
2 2 6 NaN NaN NaN
3 3 7 NaN NaN NaN
full code example
import numpy as np
import pandas as pd
df = {'col_1': [0, 1, 2, 3],
'col_2': [4, 5, 6, 7]}
df = pd.DataFrame(df)
print('df',df, sep='\n')
print()
df=df.reindex(list(df)+['column_new_1', 'column_new_2','column_new_3'], axis=1)
print('''df.reindex(list(df)+['column_new_1', 'column_new_2','column_new_3'], axis=1)''',df, sep='\n')
otherwise go for zeros answer with assign

I am not comfortable using "Index" and so on...could come up as below
df.columns
Index(['A123', 'B123'], dtype='object')
df=pd.concat([df,pd.DataFrame(columns=list('CDE'))])
df.rename(columns={
'C':'C123',
'D':'D123',
'E':'E123'
},inplace=True)
df.columns
Index(['A123', 'B123', 'C123', 'D123', 'E123'], dtype='object')

You could instantiate the values from a dictionary if you wanted different values for each column & you don't mind making a dictionary on the line before.
>>> import pandas as pd
>>> import numpy as np
>>> df = pd.DataFrame({
'col_1': [0, 1, 2, 3],
'col_2': [4, 5, 6, 7]
})
>>> df
col_1 col_2
0 0 4
1 1 5
2 2 6
3 3 7
>>> cols = {
'column_new_1':np.nan,
'column_new_2':'dogs',
'column_new_3': 3
}
>>> df[list(cols)] = pd.DataFrame(data={k:[v]*len(df) for k,v in cols.items()})
>>> df
col_1 col_2 column_new_1 column_new_2 column_new_3
0 0 4 NaN dogs 3
1 1 5 NaN dogs 3
2 2 6 NaN dogs 3
3 3 7 NaN dogs 3
Not necessarily better than the accepted answer, but it's another approach not yet listed.

import pandas as pd
df = pd.DataFrame({
'col_1': [0, 1, 2, 3],
'col_2': [4, 5, 6, 7]
})
df['col_3'], df['col_4'] = [df.col_1]*2
>> df
col_1 col_2 col_3 col_4
0 4 0 0
1 5 1 1
2 6 2 2
3 7 3 3

How to split a column by a delimiter, while respecting the relative position of items to be separated

Below is my script for a generic data frame in Python using pandas. I am hoping to split a certain column in the data frame that will create new columns, while respecting the original orientation of the items in the original column.
Please see below for my clarity. Thank you in advance!
My script:
import pandas as pd
import numpy as np
df = pd.DataFrame({'col1': ['x,y,z', 'a,b', 'c']})
print(df)
Here's what I want
df = pd.DataFrame({'col1': ['x',np.nan,np.nan],
'col2': ['y','a',np.nan],
'col3': ['z','b','c']})
print(df)
Here's what I get
df = pd.DataFrame({'col1': ['x','a','c'],
'col2': ['y','b',np.nan],
'col3': ['z',np.nan,np.nan]})
print(df)

You can use the justify function from this answer with Series.str.split:
dfn = pd.DataFrame(
justify(df['col1'].str.split(',', expand=True).to_numpy(),
invalid_val=None,
axis=1,
side='right')
).add_prefix('col')
col0 col1 col2
0 x y z
1 None a b
2 None None c

Here is a way of tweaking the split:
max_delim = df['col1'].str.count(',').max() #count the max occurance of `,`
delim_to_add = max_delim - df['col1'].str.count(',') #get difference of count from max
# multiply the delimiter and add it to series, followed by split
df[['col1','col2','col3']] = (df['col1'].radd([','*i for i in delim_to_add])
.str.split(',',expand=True).replace('',np.nan))
print(df)
col1 col2 col3
0 x y z
1 NaN a b
2 NaN NaN c

Try something like
s=df.col1.str.count(',')
#(s.max()-s).map(lambda x : x*',')
#0
#1 ,
#2 ,,
Name: col1, dtype: object
(s.max()-s).map(lambda x : x*',').add(df.col1).str.split(',',expand=True)
0 1 2
0 x y z
1 a b
2 c

Pandas DataFrame filter

My question is about the pandas.DataFrame.filter command. It seems that pandas creates a copy of the data frame to write any changes. How am I able to write on the data frame itself?
In other words:
d = {'col1': [1, 2], 'col2': [3, 4]}
df = pd.DataFrame(data=d)
df.filter(regex='col1').iloc[0]=10
Output:
col1 col2
0 1 3
1 2 4
Desired Output:
col1 col2
0 10 3
1 2 4

I think you need extract columns names and then use loc or iloc functions:
cols = df.filter(regex='col1').columns
df.loc[0, cols]=10
Or:
df.iloc[0, df.columns.get_indexer(cols)] = 10
print (df)
col1 col2
0 10 3
1 2 4
You cannnot use filter function, because subset returns a Series/DataFrame which may have its data as a view. That's why SettingWithCopyWarning is possible there (or raise if you set the option).

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