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I have a pandas data frame with few columns.

Now I know that certain rows are outliers based on a certain column value.

For instance

column 'Vol' has all values around 12xx and one value is 4000 (outlier).

Now I would like to exclude those rows that have Vol column like this.

So, essentially I need to put a filter on the data frame such that we select all rows where the values of a certain column are within, say, 3 standard deviations from mean.

What is an elegant way to achieve this?

0

19 Answers 19

398

Remove all rows that have outliers in, at least, one column

If you have multiple columns in your dataframe and would like to remove all rows that have outliers in at least one column, the following expression would do that in one shot:

import pandas as pd
import numpy as np
from scipy import stats


df = pd.DataFrame(np.random.randn(100, 3))

df[(np.abs(stats.zscore(df)) < 3).any(axis=1)]

Description:

  • For each column, it first computes the Z-score of each value in the column, relative to the column mean and standard deviation.
  • It then takes the absolute Z-score because the direction does not matter, only if it is below the threshold.
  • all(axis=1) ensures that for each row, all column satisfy the constraint.
  • Finally, the result of this condition is used to index the dataframe.

Filter other columns based on a single column

  • Specify a column for the zscore, df[0] for example, and remove .all(axis=1).
df[(np.abs(stats.zscore(df[0])) < 3)]
18
  • 11
    Can you explain what this code is doing? And perhaps provide an idea how I might remove all rows that have an outlier in a single specified column? Would be helpful. Thanks. Aug 26, 2015 at 18:51
  • 23
    For each column, first it computes the Z-score of each value in the column, relative to the column mean and standard deviation. Then is takes the absolute of Z-score because the direction does not matter, only if it is below the threshold. .all(axis=1) ensures that for each row, all column satisfy the constraint. Finally, result of this condition is used to index the dataframe. Jul 22, 2016 at 19:43
  • 7
    How would you handle the situation when there are Nulls/Nans in the columns. How can we have them ignored ?
    – asimo
    Aug 16, 2018 at 3:38
  • 10
    how do we deal with str columns for this solution? If some of the columns are non-numeric and we want to remove outliers based on all numeric columns.
    – ssp
    Mar 13, 2019 at 18:22
  • 6
    Got error: "TypeError: unsupported operand type(s) for /: 'str' and 'int'"
    – sak
    Jul 19, 2019 at 4:41
216

For each of your dataframe column, you could get quantile with:

q = df["col"].quantile(0.99)

and then filter with:

df[df["col"] < q]

If one need to remove lower and upper outliers, combine condition with an AND statement:

q_low = df["col"].quantile(0.01)
q_hi  = df["col"].quantile(0.99)

df_filtered = df[(df["col"] < q_hi) & (df["col"] > q_low)]
9
  • 5
    This article gives a very good overview of outlier removal techniques machinelearningmastery.com/… Apr 25, 2018 at 8:49
  • 3
    this might remove outliers only from upper bound.. not lower? Nov 7, 2019 at 17:40
  • 3
    @indolentdeveloper you are right, just invert the inequality to remove lower outliers, or combine them with an OR operator. Nov 8, 2019 at 13:23
  • @user6903745 AND statement or "OR"?
    – A.B
    Jan 1, 2020 at 23:15
  • @A.B yes that's an AND statement, mistake in my previous comment Jan 6, 2020 at 10:17
188

Use boolean indexing as you would do in numpy.array

df = pd.DataFrame({'Data':np.random.normal(size=200)})
# example dataset of normally distributed data. 

df[np.abs(df.Data-df.Data.mean()) <= (3*df.Data.std())]
# keep only the ones that are within +3 to -3 standard deviations in the column 'Data'.

df[~(np.abs(df.Data-df.Data.mean()) > (3*df.Data.std()))]
# or if you prefer the other way around

For a series it is similar:

S = pd.Series(np.random.normal(size=200))
S[~((S-S.mean()).abs() > 3*S.std())]
8
  • 6
    their is a DataFrame.abs() FYI, also DataFrame.clip()
    – Jeff
    Apr 21, 2014 at 16:41
  • 8
    In the case of clip(), Jeff, the outlines are not removed: df.SOME_DATA.clip(-3std,+3std) assign the outliners to either +3std or -3std
    – CT Zhu
    Apr 21, 2014 at 16:57
  • 1
    That is almost the same, @AMM
    – CT Zhu
    Apr 21, 2014 at 19:53
  • 1
    How can we do the same thing if our pandas data frame has 100 columns?
    – DreamerP
    Mar 27, 2018 at 10:06
  • 3
    Awesome, thanks for that answer @CTZhu. @DreamerP you can just apply it to the whole DataFrame with: df_new = df[np.abs(df - df.mean()) <= (3 * df.std())]. But in contrast to applying it to a Series or single column, this will replace outliers with np.nan and keep the shape of the DataFrame, so interpolation might be needed to fill the missing values.
    – JE_Muc
    Jul 3, 2018 at 16:34
52

This answer is similar to that provided by @tanemaki, but uses a lambda expression instead of scipy stats.

df = pd.DataFrame(np.random.randn(100, 3), columns=list('ABC'))

standard_deviations = 3
df[df.apply(lambda x: np.abs(x - x.mean()) / x.std() < standard_deviations)
   .all(axis=1)]

To filter the DataFrame where only ONE column (e.g. 'B') is within three standard deviations:

df[((df['B'] - df['B'].mean()) / df['B'].std()).abs() < standard_deviations]

See here for how to apply this z-score on a rolling basis: Rolling Z-score applied to pandas dataframe

1
40
#------------------------------------------------------------------------------
# accept a dataframe, remove outliers, return cleaned data in a new dataframe
# see http://www.itl.nist.gov/div898/handbook/prc/section1/prc16.htm
#------------------------------------------------------------------------------
def remove_outlier(df_in, col_name):
    q1 = df_in[col_name].quantile(0.25)
    q3 = df_in[col_name].quantile(0.75)
    iqr = q3-q1 #Interquartile range
    fence_low  = q1-1.5*iqr
    fence_high = q3+1.5*iqr
    df_out = df_in.loc[(df_in[col_name] > fence_low) & (df_in[col_name] < fence_high)]
    return df_out
1
  • I am getting error "ValueError: Cannot index with multidimensional key" in line " df_out = df_in.loc[(df_in[col_name] > fence_low) & (df_in[col_name] < fence_high)] " Will you help May 2, 2018 at 5:16
33

Before answering the actual question we should ask another one that's very relevant depending on the nature of your data:

What is an outlier?

Imagine the series of values [3, 2, 3, 4, 999] (where the 999 seemingly doesn't fit in) and analyse various ways of outlier detection

Z-Score

The problem here is that the value in question distorts our measures mean and std heavily, resulting in inconspicious z-scores of roughly [-0.5, -0.5, -0.5, -0.5, 2.0], keeping every value within two standard deviations of the mean. One very large outlier might hence distort your whole assessment of outliers. I would discourage this approach.

Quantile Filter

A way more robust approach is given is this answer, eliminating the bottom and top 1% of data. However, this eliminates a fixed fraction independant of the question if these data are really outliers. You might loose a lot of valid data, and on the other hand still keep some outliers if you have more than 1% or 2% of your data as outliers.

IQR-distance from Median

Even more robust version of the quantile principle: Eliminate all data that is more than f times the interquartile range away from the median of the data. That's also the transformation that sklearn's RobustScaler uses for example. IQR and median are robust to outliers, so you outsmart the problems of the z-score approach.

In a normal distribution, we have roughly iqr=1.35*s, so you would translate z=3 of a z-score filter to f=2.22 of an iqr-filter. This will drop the 999 in the above example.

The basic assumption is that at least the "middle half" of your data is valid and resembles the distribution well, whereas you also mess up if your distribution has wide tails and a narrow q_25% to q_75% interval.

Advanced Statistical Methods

Of course there are fancy mathematical methods like the Peirce criterion, Grubb's test or Dixon's Q-test just to mention a few that are also suitable for non-normally distributed data. None of them are easily implemented and hence not addressed further.

Code

Replacing all outliers for all numerical columns with np.nan on an example data frame. The method is robust against all dtypes that pandas provides and can easily be applied to data frames with mixed types:

import pandas as pd
import numpy as np                                     

# sample data of all dtypes in pandas (column 'a' has an outlier)         # dtype:
df = pd.DataFrame({'a': list(np.random.rand(8)) + [123456, np.nan],       # float64
                   'b': [0,1,2,3,np.nan,5,6,np.nan,8,9],                  # int64
                   'c': [np.nan] + list("qwertzuio"),                     # object
                   'd': [pd.to_datetime(_) for _ in range(10)],           # datetime64[ns]
                   'e': [pd.Timedelta(_) for _ in range(10)],             # timedelta[ns]
                   'f': [True] * 5 + [False] * 5,                         # bool
                   'g': pd.Series(list("abcbabbcaa"), dtype="category")}) # category
cols = df.select_dtypes('number').columns  # limits to a (float), b (int) and e (timedelta)
df_sub = df.loc[:, cols]


# OPTION 1: z-score filter: z-score < 3
lim = np.abs((df_sub - df_sub.mean()) / df_sub.std(ddof=0)) < 3

# OPTION 2: quantile filter: discard 1% upper / lower values
lim = np.logical_and(df_sub < df_sub.quantile(0.99, numeric_only=False),
                     df_sub > df_sub.quantile(0.01, numeric_only=False))

# OPTION 3: iqr filter: within 2.22 IQR (equiv. to z-score < 3)
iqr = df_sub.quantile(0.75, numeric_only=False) - df_sub.quantile(0.25, numeric_only=False)
lim = np.abs((df_sub - df_sub.median()) / iqr) < 2.22


# replace outliers with nan
df.loc[:, cols] = df_sub.where(lim, np.nan)

To drop all rows that contain at least one nan-value:

df.dropna(subset=cols, inplace=True) # drop rows with NaN in numerical columns
# or
df.dropna(inplace=True)  # drop rows with NaN in any column

Using pandas 1.3 functions:

2
  • 1
    To avoid dropping rows with NaNs in non-numerical columns use df.dropna(how='any', subset=cols, inplace=True) Jan 31, 2022 at 11:45
  • 1
    I believe np.logical_or should be np.logical_and to work properly (option 2) Jun 14, 2022 at 11:06
30

Since I haven't seen an answer that deal with numerical and non-numerical attributes, here is a complement answer.

You might want to drop the outliers only on numerical attributes (categorical variables can hardly be outliers).

Function definition

I have extended @tanemaki's suggestion to handle data when non-numeric attributes are also present:

from scipy import stats

def drop_numerical_outliers(df, z_thresh=3):
    # Constrains will contain `True` or `False` depending on if it is a value below the threshold.
    constrains = df.select_dtypes(include=[np.number]) \
        .apply(lambda x: np.abs(stats.zscore(x)) < z_thresh, reduce=False) \
        .all(axis=1)
    # Drop (inplace) values set to be rejected
    df.drop(df.index[~constrains], inplace=True)

Usage

drop_numerical_outliers(df)

Example

Imagine a dataset df with some values about houses: alley, land contour, sale price, ... E.g: Data Documentation

First, you want to visualise the data on a scatter graph (with z-score Thresh=3):

# Plot data before dropping those greater than z-score 3. 
# The scatterAreaVsPrice function's definition has been removed for readability's sake.
scatterAreaVsPrice(df)

Before - Gr Liv Area Versus SalePrice

# Drop the outliers on every attributes
drop_numerical_outliers(train_df)

# Plot the result. All outliers were dropped. Note that the red points are not
# the same outliers from the first plot, but the new computed outliers based on the new data-frame.
scatterAreaVsPrice(train_df)

After - Gr Liv Area Versus SalePrice

3
  • 3
    Great solution! As a heads up reduce=False has been deprecated since pandas version 0.23.0
    – RK1
    Sep 2, 2019 at 20:58
  • 2
    Substitute result_type='reduce' for reduce=False. Dec 9, 2019 at 17:06
  • 3
    @KeyMaker00 I'd really like to use this but I get the following error: ValueError: No axis named 1 for object type Series Oct 10, 2021 at 8:30
22

For each series in the dataframe, you could use between and quantile to remove outliers.

x = pd.Series(np.random.normal(size=200)) # with outliers
x = x[x.between(x.quantile(.25), x.quantile(.75))] # without outliers
2
  • 3
    Here you are selecting only data within the interquartile range (IQR), but keep in mind that there can be values outside this range that are not outliers.
    – BCArg
    Mar 6, 2019 at 10:00
  • 2
    Choosing e.g. 0.1 and 0.9 would be pretty safe I think. Using between and the quantiles like this is a pretty syntax. Jul 2, 2019 at 9:45
14

scipy.stats has methods trim1() and trimboth() to cut the outliers out in a single row, according to the ranking and an introduced percentage of removed values.

1
10

If you like method chaining, you can get your boolean condition for all numeric columns like this:

df.sub(df.mean()).div(df.std()).abs().lt(3)

Each value of each column will be converted to True/False based on whether its less than three standard deviations away from the mean or not.

1
  • This should be le(3) since its removing outliers. This way you get True for the outliers. Besides that +1 and this answer should be higher up
    – Erfan
    Aug 18, 2019 at 22:53
9

Another option is to transform your data so that the effect of outliers is mitigated. You can do this by winsorizing your data.

import pandas as pd
from scipy.stats import mstats
%matplotlib inline

test_data = pd.Series(range(30))
test_data.plot()

Original data

# Truncate values to the 5th and 95th percentiles
transformed_test_data = pd.Series(mstats.winsorize(test_data, limits=[0.05, 0.05])) 
transformed_test_data.plot()

Winsorized data

7

You can use boolean mask:

import pandas as pd

def remove_outliers(df, q=0.05):
    upper = df.quantile(1-q)
    lower = df.quantile(q)
    mask = (df < upper) & (df > lower)
    return mask

t = pd.DataFrame({'train': [1,1,2,3,4,5,6,7,8,9,9],
                  'y': [1,0,0,1,1,0,0,1,1,1,0]})

mask = remove_outliers(t['train'], 0.1)

print(t[mask])

output:

   train  y
2      2  0
3      3  1
4      4  1
5      5  0
6      6  0
7      7  1
8      8  1
3

Since I am in a very early stage of my data science journey, I am treating outliers with the code below.

#Outlier Treatment

def outlier_detect(df):
    for i in df.describe().columns:
        Q1=df.describe().at['25%',i]
        Q3=df.describe().at['75%',i]
        IQR=Q3 - Q1
        LTV=Q1 - 1.5 * IQR
        UTV=Q3 + 1.5 * IQR
        x=np.array(df[i])
        p=[]
        for j in x:
            if j < LTV or j>UTV:
                p.append(df[i].median())
            else:
                p.append(j)
        df[i]=p
    return df
3

Get the 98th and 2nd percentile as the limits of our outliers

upper_limit = np.percentile(X_train.logerror.values, 98) 
lower_limit = np.percentile(X_train.logerror.values, 2) # Filter the outliers from the dataframe
data[‘target’].loc[X_train[‘target’]>upper_limit] = upper_limit data[‘target’].loc[X_train[‘target’]<lower_limit] = lower_limit
2

a full example with data and 2 groups follows:

Imports:

from StringIO import StringIO
import pandas as pd
#pandas config
pd.set_option('display.max_rows', 20)

Data example with 2 groups: G1:Group 1. G2: Group 2:

TESTDATA = StringIO("""G1;G2;Value
1;A;1.6
1;A;5.1
1;A;7.1
1;A;8.1

1;B;21.1
1;B;22.1
1;B;24.1
1;B;30.6

2;A;40.6
2;A;51.1
2;A;52.1
2;A;60.6

2;B;80.1
2;B;70.6
2;B;90.6
2;B;85.1
""")

Read text data to pandas dataframe:

df = pd.read_csv(TESTDATA, sep=";")

Define the outliers using standard deviations

stds = 1.0
outliers = df[['G1', 'G2', 'Value']].groupby(['G1','G2']).transform(
           lambda group: (group - group.mean()).abs().div(group.std())) > stds

Define filtered data values and the outliers:

dfv = df[outliers.Value == False]
dfo = df[outliers.Value == True]

Print the result:

print '\n'*5, 'All values with decimal 1 are non-outliers. In the other hand, all values with 6 in the decimal are.'
print '\nDef DATA:\n%s\n\nFiltred Values with %s stds:\n%s\n\nOutliers:\n%s' %(df, stds, dfv, dfo)
2

My function for dropping outliers

def drop_outliers(df, field_name):
    distance = 1.5 * (np.percentile(df[field_name], 75) - np.percentile(df[field_name], 25))
    df.drop(df[df[field_name] > distance + np.percentile(df[field_name], 75)].index, inplace=True)
    df.drop(df[df[field_name] < np.percentile(df[field_name], 25) - distance].index, inplace=True)
2

I prefer to clip rather than drop. the following will clip inplace at the 2nd and 98th pecentiles.

df_list = list(df)
minPercentile = 0.02
maxPercentile = 0.98

for _ in range(numCols):
    df[df_list[_]] = df[df_list[_]].clip((df[df_list[_]].quantile(minPercentile)),(df[df_list[_]].quantile(maxPercentile)))
0

If your data frame has Outlier there are many ways you can handle those outliers:

Most of them are mentioned in my articles : Give this a read

Find the code here : Notebook

1
  • While this link may answer the question, it is better to include the essential parts of the answer here and provide the link for reference. Link-only answers can become invalid if the linked page changes. - From Review
    – Plagon
    Dec 26, 2022 at 13:53
-3

Deleting and dropping outliers I believe is wrong statistically. It makes the data different from original data. Also makes data unequally shaped and hence best way is to reduce or avoid the effect of outliers by log transform the data. This worked for me:

np.log(data.iloc[:, :])
1
  • 5
    Can't make assumptions about why the OP wants to do something.
    – RajeshM
    Nov 21, 2018 at 11:11

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