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What would be an efficient and pythonic way to check list monotonicity?
i.e. that it has monotonically increasing or decreasing values?

Examples:

[0,1,2,3,3,4] # This is a monotonically increasing list
[4.3,4.2,-2]  # This is a monotonically decreasing list
[2,3,1]       # This is neither
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1  
It's better to use the terms "strictly increasing" or "non decreasing" to leave any ambiguity out (and in a similar way it's better to avoid "positive" and use instead either "non negative" or "strictly positive") –  6502 Feb 13 '11 at 10:26
5  
@6502 the term monotonic is defined as either a non-increasing or non-decreasing set of ordered values, so there was no ambiguity in the question. –  Autoplectic Feb 13 '11 at 18:33

7 Answers 7

up vote 44 down vote accepted
def strictly_increasing(L):
    return all(x<y for x, y in zip(L, L[1:]))

def strictly_decreasing(L):
    return all(x>y for x, y in zip(L, L[1:]))

def non_increasing(L):
    return all(x>=y for x, y in zip(L, L[1:]))

def non_decreasing(L):
    return all(x<=y for x, y in zip(L, L[1:]))
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7  
This is clear, idiomatic Python code, and its complexity is O(n) where the sorting answers are all O(n log n). An ideal answer would iterate over the list only once so it works on any iterator, but this is usually good enough and it's by far the best answer among the ones so far. (I'd offer a single-pass solution, but the OP prematurely accepting an answer curbs any urge I might have to do so...) –  Glenn Maynard Feb 13 '11 at 9:20
2  
just out of curiosity tested your implementation against using sorted. Yours is clearly a lot slower [ I used L = range(10000000) ]. It seems complexity of all is O(n), and I could not find implementation of zip. –  Asterisk Feb 13 '11 at 9:56
1  
Sort is specialized if the list is already sorted. Did you try the speed with a randomly shuffled list? Also note that with sort you cannot distinguish between strictly increasing and non decreasing. Also consider that with Python 2.x using itertools.izip instead of zip you can get an early exit (in python 3 zip already works like an iterator) –  6502 Feb 13 '11 at 10:17
3  
@6502: just one function needed: import operator; def monotone(L, op): return all(op(x,y) for x, y in zip(L, L[1:])) and then just feed in what you want: operator.le or .ge or whatever –  akira Feb 13 '11 at 10:55
4  
zip and the slice operator both return entire lists, obviating the shortcut abilities of all(); this could be greatly improved by using itertools.izip and itertools.islice, as either strictly_increasing or strictly_decreasing should shortcut-fail very early. –  Hugh Bothwell Feb 13 '11 at 15:05
import itertools
import operator

def monotone_increasing(lst):
    pairs = zip(lst, lst[1:])
    return all(itertools.starmap(operator.le, pairs))

def monotone_decreasing(lst):
    pairs = zip(lst, lst[1:])
    return all(itertools.starmap(operator.ge, pairs))

def monotone(lst):
    return monotone_increasing(lst) or monotone_decreasing(lst)

This approach is O(N) in the length of the list.

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3  
The Correct(TM) solution IMO. Functional paradigm for the win! –  progo Feb 13 '11 at 9:00
    
I would say it exchanges readability for cleverness. –  Zack Bloom Feb 13 '11 at 9:04
1  
why using itertools instead of plain generators? –  6502 Feb 13 '11 at 9:14
2  
Functional paradigms are usually not "the win" in Python. –  Glenn Maynard Feb 13 '11 at 9:15
3  
Calculating pairs is O(N) as well. You could make pairs = itertools.izip(lst, itertools.islice(lst, 1, None)). –  Tomasz Elendt Feb 13 '11 at 9:36

If you have large lists of numbers it might be best to use numpy, and if you are:

import numpy as np

def monotonic(x):
    dx = np.diff(x)
    return np.all(dx <= 0) or np.all(dx >= 0)

should do the trick.

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This clearly the best answer around! –  jb. Jun 2 at 20:05

@6502 has the perfect code for lists, I just want to add a general version that works for all sequences:

def pairwise(seq):
    items = iter(seq)
    last = next(items)
    for item in items:
        yield last, item
        last = item

def strictly_increasing(L):
    return all(x<y for x, y in pairwise(L))

def strictly_decreasing(L):
    return all(x>y for x, y in pairwise(L))

def non_increasing(L):
    return all(x>=y for x, y in pairwise(L))

def non_decreasing(L):
    return all(x<=y for x, y in pairwise(L))
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+1 for a sequence-friendly version –  Greg Hewgill May 8 '12 at 8:33
import operator, itertools

def is_monotone(lst):
    op = operator.le            # pick 'op' based upon trend between
    if not op(lst[0], lst[-1]): # first and last element in the 'lst'
        op = operator.ge
    return all(op(x,y) for x, y in itertools.izip(lst, lst[1:]))
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I was thinking about a solution like this - but it fails if the list is monotonically increasing and the first two elements are equal. –  Hugh Bothwell Feb 13 '11 at 15:02
    
@Hugh Bothwell: i check now the first and the last to get the trend: if they are equal then all other elements should be equal as well which then works for both operator.le and operator.ge –  akira Feb 14 '11 at 8:02
L = [1,2,3]
L == sorted(L)

L == sorted(L, reverse=True)
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I'd have gone for sorted() if it didn't actually sort anything, just check. Badly named -- sounds like a predicate when it isn't. –  progo Feb 13 '11 at 9:07
8  
What's next? Using sorted(L)[0] instead of min? –  6502 Feb 13 '11 at 9:12
3  
This is algorithmically poor; this solution is O(n log n), when this problem can be done trivially in O(n). –  Glenn Maynard Feb 13 '11 at 9:14
    
@all agree with all of you, thanks for constructive criticism. –  Asterisk Feb 13 '11 at 9:21
>>> l = [0,1,2,3,3,4]
>>> l == sorted(l) or l == sorted(l,reverse=True)
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