103

Given a list of numbers, how does one find differences between every (i)-th elements and its (i+1)-th?

Is it better to use a lambda expression or maybe a list comprehension?

For example:

Given a list t=[1,3,6,...], the goal is to find a list v=[2,3,...] because 3-1=2, 6-3=3, etc.

138
>>> t
[1, 3, 6]
>>> [j-i for i, j in zip(t[:-1], t[1:])]  # or use itertools.izip in py2k
[2, 3]
  • 13
    In case you need absolute differences, [abs(j-i) for i,j in zip(t, t[1:])] – Anil Jul 14 '15 at 0:09
  • In case you want to make it more efficient: list(itertools.starmap(operator.sub, zip(t[1:], t))) (after importing itertools and operator). – blhsing Jun 24 '18 at 18:31
  • 2
    Actually simply list(map(operator.sub, t[1:], t[:-1])) will do. – blhsing Aug 6 '18 at 15:24
  • Brilliant! I very love this answer! – Chayim Friedman Aug 29 at 15:52
101

The other answers are correct but if you're doing numerical work, you might want to consider numpy. Using numpy, the answer is:

v = numpy.diff(t)
  • Very helpful! Thanks! np.diff([2,4,9]) would be [2,5] – TravelTrader Oct 7 at 20:38
32

If you don't want to use numpy nor zip, you can use the following solution:

>>> t = [1, 3, 6]
>>> v = [t[i+1]-t[i] for i in range(len(t)-1)]
>>> v
[2, 3]
11

You can use itertools.tee and zip to efficiently build the result:

from itertools import tee
# python2 only:
#from itertools import izip as zip

def differences(seq):
    iterable, copied = tee(seq)
    next(copied)
    for x, y in zip(iterable, copied):
        yield y - x

Or using itertools.islice instead:

from itertools import islice

def differences(seq):
    nexts = islice(seq, 1, None)
    for x, y in zip(seq, nexts):
        yield y - x

You can also avoid using the itertools module:

def differences(seq):
    iterable = iter(seq)
    prev = next(iterable)
    for element in iterable:
        yield element - prev
        prev = element

All these solution work in constant space if you don't need to store all the results and support infinite iterables.


Here are some micro-benchmarks of the solutions:

In [12]: L = range(10**6)

In [13]: from collections import deque
In [15]: %timeit deque(differences_tee(L), maxlen=0)
10 loops, best of 3: 122 ms per loop

In [16]: %timeit deque(differences_islice(L), maxlen=0)
10 loops, best of 3: 127 ms per loop

In [17]: %timeit deque(differences_no_it(L), maxlen=0)
10 loops, best of 3: 89.9 ms per loop

And the other proposed solutions:

In [18]: %timeit [x[1] - x[0] for x in zip(L[1:], L)]
10 loops, best of 3: 163 ms per loop

In [19]: %timeit [L[i+1]-L[i] for i in range(len(L)-1)]
1 loops, best of 3: 395 ms per loop

In [20]: import numpy as np

In [21]: %timeit np.diff(L)
1 loops, best of 3: 479 ms per loop

In [35]: %%timeit
    ...: res = []
    ...: for i in range(len(L) - 1):
    ...:     res.append(L[i+1] - L[i])
    ...: 
1 loops, best of 3: 234 ms per loop

Note that:

  • zip(L[1:], L) is equivalent to zip(L[1:], L[:-1]) since zip already terminates on the shortest input, however it avoids a whole copy of L.
  • Accessing the single elements by index is very slow because every index access is a method call in python
  • numpy.diff is slow because it has to first convert the list to a ndarray. Obviously if you start with an ndarray it will be much faster:

    In [22]: arr = np.array(L)
    
    In [23]: %timeit np.diff(arr)
    100 loops, best of 3: 3.02 ms per loop
    
  • in the second solution, islice(seq, 1, None) instead of islice(seq, 1, len(seq)) makes it work with infinite iterables – braham-snyder May 12 '18 at 17:12
3

Ok. I think I found the proper solution:

v = [x[1]-x[0] for x in zip(t[1:],t[:-1])]
  • 2
    ya its good, but I think it should have been v = [x[0]-x[1] for x in zip(t[1:], t[:-1])] for sorted list! – Amit Karnik Jan 31 '16 at 10:38
3

A functional approach:

>>> import operator
>>> a = [1,3,5,7,11,13,17,21]
>>> map(operator.sub, a[1:], a[:-1])
[2, 2, 2, 4, 2, 4, 4]

Using generator:

>>> import operator, itertools
>>> g1,g2 = itertools.tee((x*x for x in xrange(5)),2)
>>> list(itertools.imap(operator.sub, itertools.islice(g1,1,None), g2))
[1, 3, 5, 7]

Using indices:

>>> [a[i+1]-a[i] for i in xrange(len(a)-1)]
[2, 2, 2, 4, 2, 4, 4]
  • The operator method is nice and elegant – bcattle Apr 4 '18 at 22:32
3

I would suggest using

v = np.diff(t)

this is simple and easy to read.

But if you want v to have the same line as t then

v = np.diff([t[0]] + t) # for python 3.x

or

v = np.diff(t + [t[-1]])

FYI: this will only work for lists.

for numpy arrays

v = np.diff(np.append(t[0], t))
0

Using the := walrus operator available in Python 3.8+:

>>> t = [1, 3, 6]
>>> prev = t[0]; [-prev + (prev := x) for x in t[1:]]
[2, 3]
-1

My way

>>>v = [1,2,3,4,5]
>>>[v[i] - v[i-1] for i, value in enumerate(v[1:], 1)]
[1, 1, 1, 1]

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