330

How do I efficiently obtain the frequency count for each unique value in a NumPy array?

>>> x = np.array([1,1,1,2,2,2,5,25,1,1])
>>> freq_count(x)
[(1, 5), (2, 3), (5, 1), (25, 1)]
3

16 Answers 16

669

Use numpy.unique with return_counts=True (for NumPy 1.9+):

import numpy as np

x = np.array([1,1,1,2,2,2,5,25,1,1])
unique, counts = np.unique(x, return_counts=True)

>>> print(np.asarray((unique, counts)).T)
 [[ 1  5]
  [ 2  3]
  [ 5  1]
  [25  1]]

In comparison with scipy.stats.itemfreq:

In [4]: x = np.random.random_integers(0,100,1e6)

In [5]: %timeit unique, counts = np.unique(x, return_counts=True)
10 loops, best of 3: 31.5 ms per loop

In [6]: %timeit scipy.stats.itemfreq(x)
10 loops, best of 3: 170 ms per loop
10
  • 24
    Thanks for updating! This is now, IMO, the correct answer.
    – Erve1879
    Sep 25, 2014 at 12:43
  • 2
    BAM! this is why we update...when we find answers like these. So long numpy 1.8. How can we get this to the top of the list? Oct 29, 2014 at 21:08
  • If you get the error: TypeError: unique() got an unexpected keyword argument 'return_counts', just do: unique, counts = np.unique(x, True) Dec 2, 2014 at 14:10
  • 3
    @NumesSanguis What version of numpy are you using? Prior to v1.9, the return_counts keyword argument didn't exist, which might explain the exception. In that case, the docs suggest that np.unique(x, True) is equivalent to np.unique(x, return_index=True), which doesn't return counts.
    – jme
    Dec 2, 2014 at 15:05
  • 1
    In older numpy versions the typical idiom to get the same thing was unique, idx = np.unique(x, return_inverse=True); counts = np.bincount(idx). When this feature was added (see here) some informal testing had the use of return_counts clocking over 5x faster.
    – Jaime
    Jan 28, 2015 at 1:56
195

Take a look at np.bincount:

http://docs.scipy.org/doc/numpy/reference/generated/numpy.bincount.html

import numpy as np
x = np.array([1,1,1,2,2,2,5,25,1,1])
y = np.bincount(x)
ii = np.nonzero(y)[0]

And then:

zip(ii,y[ii]) 
# [(1, 5), (2, 3), (5, 1), (25, 1)]

or:

np.vstack((ii,y[ii])).T
# array([[ 1,  5],
         [ 2,  3],
         [ 5,  1],
         [25,  1]])

or however you want to combine the counts and the unique values.

5
  • 50
    Hi, This wouldn't work if elements of x have a dtype other than int.
    – Manoj
    Feb 24, 2014 at 8:20
  • 8
    It won't work if they're anything other than non negative ints, and it will be very space inefficient if the ints are spaced out.
    – Erik
    Jun 9, 2014 at 6:46
  • With numpy version 1.10 I found that, for counting integer, it is about 6 times faster than np.unique. Also, note that it does count negative ints too, if right parameters are given.
    – Jihun
    Jan 6, 2016 at 15:43
  • @Manoj : My elements x are arrays. I am testing the solution of jme. Feb 13, 2020 at 11:04
  • What would be a good analog then for the return_inverse option here?
    – Yuval
    Jan 25 at 16:14
151

Use this:

>>> import numpy as np
>>> x = [1,1,1,2,2,2,5,25,1,1]
>>> np.array(np.unique(x, return_counts=True)).T
    array([[ 1,  5],
           [ 2,  3],
           [ 5,  1],
           [25,  1]])

Original answer:

Use scipy.stats.itemfreq (warning: deprecated):

>>> from scipy.stats import itemfreq
>>> x = [1,1,1,2,2,2,5,25,1,1]
>>> itemfreq(x)
/usr/local/bin/python:1: DeprecationWarning: `itemfreq` is deprecated! `itemfreq` is deprecated and will be removed in a future version. Use instead `np.unique(..., return_counts=True)`
array([[  1.,   5.],
       [  2.,   3.],
       [  5.,   1.],
       [ 25.,   1.]])
5
  • 1
    Seems like the most pythonic approach by far. Also, I encountered issues with "object too deep for desired array" issues with np.bincount on 100k x 100k matrices. Mar 12, 2014 at 21:02
  • 1
    I rather suggest the original question poser to change the accpted answer from the first one to this one, to increase its visiblity
    – wiswit
    Jul 8, 2014 at 15:37
  • It's slow for versions before 0.14, though.
    – Jason S
    Sep 25, 2014 at 20:47
  • take note that if the array is full of strings, both elements in each of the items returned are strings too. Jun 23, 2015 at 4:48
  • Looks like itemfreq has been deprecated Oct 29, 2018 at 21:28
65

I was also interested in this, so I did a little performance comparison (using perfplot, a pet project of mine). Result:

y = np.bincount(a)
ii = np.nonzero(y)[0]
out = np.vstack((ii, y[ii])).T

is by far the fastest. (Note the log-scaling.)

enter image description here


Code to generate the plot:

import numpy as np
import pandas as pd
import perfplot
from scipy.stats import itemfreq


def bincount(a):
    y = np.bincount(a)
    ii = np.nonzero(y)[0]
    return np.vstack((ii, y[ii])).T


def unique(a):
    unique, counts = np.unique(a, return_counts=True)
    return np.asarray((unique, counts)).T


def unique_count(a):
    unique, inverse = np.unique(a, return_inverse=True)
    count = np.zeros(len(unique), dtype=int)
    np.add.at(count, inverse, 1)
    return np.vstack((unique, count)).T


def pandas_value_counts(a):
    out = pd.value_counts(pd.Series(a))
    out.sort_index(inplace=True)
    out = np.stack([out.keys().values, out.values]).T
    return out


b = perfplot.bench(
    setup=lambda n: np.random.randint(0, 1000, n),
    kernels=[bincount, unique, itemfreq, unique_count, pandas_value_counts],
    n_range=[2 ** k for k in range(26)],
    xlabel="len(a)",
)
b.save("out.png")
b.show()
2
  • 2
    Thanks for posting the code to generate the plot. Didn't know about perfplot before now. Looks handy.
    – ruffsl
    Mar 7, 2018 at 22:57
  • I was able to run your code by adding the option equality_check=array_sorteq in perfplot.show(). What was causing an error ( in Python 2) was pd.value_counts (even with sort=False). Jun 17, 2018 at 17:38
44

Using pandas module:

>>> import pandas as pd
>>> import numpy as np
>>> x = np.array([1,1,1,2,2,2,5,25,1,1])
>>> pd.value_counts(x)
1     5
2     3
25    1
5     1
dtype: int64
4
  • 5
    pd.Series() is not necessary. Otherwise, good example. Numpy as well. Pandas can take a simple list as input. Apr 23, 2017 at 8:06
  • 1
    @YohanObadia - depending on the size f the array, first converting it to a series has made the final operation faster for me. I would guess at the mark of around 50,000 values.
    – n1k31t4
    Oct 30, 2018 at 11:50
  • 1
    I edited my answer to take into account the relevant comment from @YohanObadia
    – ivankeller
    Nov 9, 2019 at 21:54
  • df = pd.DataFrame(x) df = df.astype('category') print(df.describe()) will give info like count 10 unique 4 top 1 freq 5 , which can be useful
    – Subham
    Mar 15, 2021 at 7:43
19

This is by far the most general and performant solution; surprised it hasn't been posted yet.

import numpy as np

def unique_count(a):
    unique, inverse = np.unique(a, return_inverse=True)
    count = np.zeros(len(unique), np.int)
    np.add.at(count, inverse, 1)
    return np.vstack(( unique, count)).T

print unique_count(np.random.randint(-10,10,100))

Unlike the currently accepted answer, it works on any datatype that is sortable (not just positive ints), and it has optimal performance; the only significant expense is in the sorting done by np.unique.

2
  • does not work: AttributeError: 'numpy.ufunc' object has no attribute 'at'
    – P.R.
    Feb 27, 2014 at 16:29
  • A simpler method would be to call np.bincount(inverse)
    – ali_m
    Oct 26, 2015 at 13:55
15

numpy.bincount is the probably the best choice. If your array contains anything besides small dense integers it might be useful to wrap it something like this:

def count_unique(keys):
    uniq_keys = np.unique(keys)
    bins = uniq_keys.searchsorted(keys)
    return uniq_keys, np.bincount(bins)

For example:

>>> x = array([1,1,1,2,2,2,5,25,1,1])
>>> count_unique(x)
(array([ 1,  2,  5, 25]), array([5, 3, 1, 1]))
8

Even though it has already been answered, I suggest a different approach that makes use of numpy.histogram. Such function given a sequence it returns the frequency of its elements grouped in bins.

Beware though: it works in this example because numbers are integers. If they where real numbers, then this solution would not apply as nicely.

>>> from numpy import histogram
>>> y = histogram (x, bins=x.max()-1)
>>> y
(array([5, 3, 0, 0, 1, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0,
       1]),
 array([  1.,   2.,   3.,   4.,   5.,   6.,   7.,   8.,   9.,  10.,  11.,
        12.,  13.,  14.,  15.,  16.,  17.,  18.,  19.,  20.,  21.,  22.,
        23.,  24.,  25.]))
5

Old question, but I'd like to provide my own solution which turn out to be the fastest, use normal list instead of np.array as input (or transfer to list firstly), based on my bench test.

Check it out if you encounter it as well.

def count(a):
    results = {}
    for x in a:
        if x not in results:
            results[x] = 1
        else:
            results[x] += 1
    return results

For example,

>>>timeit count([1,1,1,2,2,2,5,25,1,1]) would return:

100000 loops, best of 3: 2.26 µs per loop

>>>timeit count(np.array([1,1,1,2,2,2,5,25,1,1]))

100000 loops, best of 3: 8.8 µs per loop

>>>timeit count(np.array([1,1,1,2,2,2,5,25,1,1]).tolist())

100000 loops, best of 3: 5.85 µs per loop

While the accepted answer would be slower, and the scipy.stats.itemfreq solution is even worse.


A more indepth testing did not confirm the formulated expectation.

from zmq import Stopwatch
aZmqSTOPWATCH = Stopwatch()

aDataSETasARRAY = ( 100 * abs( np.random.randn( 150000 ) ) ).astype( np.int )
aDataSETasLIST  = aDataSETasARRAY.tolist()

import numba
@numba.jit
def numba_bincount( anObject ):
    np.bincount(    anObject )
    return

aZmqSTOPWATCH.start();np.bincount(    aDataSETasARRAY );aZmqSTOPWATCH.stop()
14328L

aZmqSTOPWATCH.start();numba_bincount( aDataSETasARRAY );aZmqSTOPWATCH.stop()
592L

aZmqSTOPWATCH.start();count(          aDataSETasLIST  );aZmqSTOPWATCH.stop()
148609L

Ref. comments below on cache and other in-RAM side-effects that influence a small dataset massively repetitive testing results.

4
  • 1
    This answer is really good, as it shows numpy is not necessarily the way to go.
    – Mahdi
    Apr 21, 2015 at 8:21
  • @Rain Lee interesting. Have you cross-validated the list-hypothesis also on some non-cache-able dataset size? Lets assume a 150.000 random items in either representation and measured a bit more accurate on a single run as by an example of aZmqStopwatch.start();count(aRepresentation);aZmqStopwatch.stop() ? Aug 4, 2015 at 19:17
  • Did some testing and yes, there are huge differences in real dataset performance. Testing requires a bit more insight into python internal mechanics than running just a brute-force scaled loops and quote non realistic in-vitro nanoseconds. As tested - a np.bincount() can be made to handle 150.000 array within less than 600 [us] while the above def-ed count() on a pre-converted list representation thereof took more than 122.000 [us] Aug 4, 2015 at 19:40
  • Yeah, my rule-of-thumb is numpy for anything that can handle small amounts of latency but has the potential to be very large, lists for smaller data sets where latency critical, and of course real benchmarking FTW :)
    – David
    Sep 8, 2015 at 19:28
5
import pandas as pd
import numpy as np
x = np.array( [1,1,1,2,2,2,5,25,1,1] )
print(dict(pd.Series(x).value_counts()))

This gives you: {1: 5, 2: 3, 5: 1, 25: 1}

2
  • 1
    collections.Counter(x) also give the same result. I believe the OP wants a output that resembles R table function. Keeping the Series may be more useful.
    – pylang
    May 18, 2017 at 8:12
  • Please note that it would be necessary to transfer to pd.Series(x).reshape(-1) if it is a multidimensional array.
    – natsuapo
    Dec 10, 2019 at 9:48
4

To count unique non-integers - similar to Eelco Hoogendoorn's answer but considerably faster (factor of 5 on my machine), I used weave.inline to combine numpy.unique with a bit of c-code;

import numpy as np
from scipy import weave

def count_unique(datain):
  """
  Similar to numpy.unique function for returning unique members of
  data, but also returns their counts
  """
  data = np.sort(datain)
  uniq = np.unique(data)
  nums = np.zeros(uniq.shape, dtype='int')

  code="""
  int i,count,j;
  j=0;
  count=0;
  for(i=1; i<Ndata[0]; i++){
      count++;
      if(data(i) > data(i-1)){
          nums(j) = count;
          count = 0;
          j++;
      }
  }
  // Handle last value
  nums(j) = count+1;
  """
  weave.inline(code,
      ['data', 'nums'],
      extra_compile_args=['-O2'],
      type_converters=weave.converters.blitz)
  return uniq, nums

Profile info

> %timeit count_unique(data)
> 10000 loops, best of 3: 55.1 µs per loop

Eelco's pure numpy version:

> %timeit unique_count(data)
> 1000 loops, best of 3: 284 µs per loop

Note

There's redundancy here (unique performs a sort also), meaning that the code could probably be further optimized by putting the unique functionality inside the c-code loop.

2

multi-dimentional frequency count, i.e. counting arrays.

>>> print(color_array    )
  array([[255, 128, 128],
   [255, 128, 128],
   [255, 128, 128],
   ...,
   [255, 128, 128],
   [255, 128, 128],
   [255, 128, 128]], dtype=uint8)


>>> np.unique(color_array,return_counts=True,axis=0)
  (array([[ 60, 151, 161],
    [ 60, 155, 162],
    [ 60, 159, 163],
    [ 61, 143, 162],
    [ 61, 147, 162],
    [ 61, 162, 163],
    [ 62, 166, 164],
    [ 63, 137, 162],
    [ 63, 169, 164],
   array([     1,      2,      2,      1,      4,      1,      1,      2,
         3,      1,      1,      1,      2,      5,      2,      2,
       898,      1,      1,  
2
import pandas as pd
import numpy as np

print(pd.Series(name_of_array).value_counts())
1
from collections import Counter
x = array( [1,1,1,2,2,2,5,25,1,1] )
mode = counter.most_common(1)[0][0]
1

Most of simple problems get complicated because simple functionality like order() in R that gives a statistical result in both and descending order is missing in various python libraries. But if we devise our thinking that all such statistical ordering and parameters in python are easily found in pandas, we can can result sooner than looking in 100 different places. Also, development of R and pandas go hand-in-hand because they were created for same purpose. To solve this problem I use following code that gets me by anywhere:

unique, counts = np.unique(x, return_counts=True)
d = {'unique':unique, 'counts':count}  # pass the list to a dictionary
df = pd.DataFrame(d) #dictionary object can be easily passed to make a dataframe
df.sort_values(by = 'count', ascending=False, inplace = True)
df = df.reset_index(drop=True) #optional only if you want to use it further
0

some thing like this should do it:

#create 100 random numbers
arr = numpy.random.random_integers(0,50,100)

#create a dictionary of the unique values
d = dict([(i,0) for i in numpy.unique(arr)])
for number in arr:
    d[j]+=1   #increment when that value is found

Also, this previous post on Efficiently counting unique elements seems pretty similar to your question, unless I'm missing something.

1
  • The linked question is kinda similar, but it looks like he's working with more complicated data types.
    – Abe
    May 24, 2012 at 16:44

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