Evaluating,

max_val = max(a)

will cause the error,

ValueError: max() arg is an empty sequence

Is there a better way of safeguarding against this error other than a try, except catch?

a = []
try:
    max_val = max(a)
except ValueError:
    max_val = default 
  • 5
  • @vaultah Why you no post answer as answer?! – Martin Tournoij Mar 22 '16 at 15:07
  • 1
    @Carpetsmoker: because it's too simple. – vaultah Mar 22 '16 at 15:07
  • 1
    @vaultah ... What's wrong with posting answers that are "too simple"? Now someone else has to... – Martin Tournoij Mar 22 '16 at 15:08
  • Anyway if you are going to handle the error you should use except ValueError:, not except:. In your example, you will catch TypeError: 'builtin_function_or_method' object is not subscriptable, so no matter what value a has, max_val will end up False. – Steve Jessop Mar 22 '16 at 15:12
up vote 26 down vote accepted

In Python 3.4+, you can use default keyword argument:

>>> max([], default=99)
99

In lower version, you can use or:

>>> max([] or [99])
99

NOTE: The second approach does not work for all iterables. especially for iterator that yield nothing but considered truth value.

>>> max(iter([]) or 0)
Traceback (most recent call last):
  File "<stdin>", line 1, in <module>
ValueError: max() arg is an empty sequence
  • Another option for pre-3.4 would be to create a my_max function that mimics the newer behavior. – Steven Rumbalski Mar 22 '16 at 15:15
  • max(iter([]) or 0) is precisely what gave me the grief in the first place... Do you have any further suggestions on what do do with it? Secondly it never occurred to me to check the docs... I assumed such a simple function was a one-in-one-out process – Alexander McFarlane Mar 22 '16 at 15:24
  • @AlexanderMcFarlane, Duncan suggested a nice alternative. Check it out. – falsetru Mar 22 '16 at 15:28
  • @AlexanderMcFarlane, I'm not a native speaker. I don't understand what one-in-one-out process. Does it mean a common task? – falsetru Mar 22 '16 at 15:31
  • @falsetru by one-in-one-out I mean one argument in and one return value :) – Alexander McFarlane Mar 22 '16 at 16:18

In versions of Python older than 3.4 you can use itertools.chain() to add another value to the possibly empty sequence. This will handle any empty iterable but note that it is not precisely the same as supplying the default argument as the extra value is always included:

>>> from itertools import chain
>>> max(chain([42], []))
42

But in Python 3.4, the default is ignored if the sequence isn't empty:

>>> max([3], default=42)
3
  • is there any reason to use chain over simple list concatenation e.g. max( [42], [] ) where the default is 42? – MajorInc Sep 9 at 17:30
  • @MajorInc calling max with multiple arguments has a different meaning than calling it with a single argument. With a single iterable argument max will return the largest element it contains, but with multiple arguments it compares them directly (i.e. it won't iterate). e.g. max([42], []) is a list [42] but max(chain([42], [])) and max([], default=42) both give 42. – Duncan Sep 10 at 8:13

The max of an empty sequence "should" be an infinitely small thing of whatever type the elements of the sequence have. Unfortunately, (1) with an empty sequence you can't tell what type the elements were meant to have and (2) there is, e.g., no such thing as the most-negative integer in Python.

So you need to help max out if you want it to do something sensible in this case. In recent versions of Python there is a default argument to max (which seems to me a misleading name, but never mind) which will be used if you pass in an empty sequence. In older versions you will just have to make sure the sequence you pass in isn't empty -- e.g., by oring it with a singleton sequence containing the value you'd like to use in that case.

[EDITED long after posting because Yaakov Belch kindly pointed out in comments that I'd written "infinitely large" where I should have written "infinitely small".]

  • It's counter-intuitive: the max of an empty list should be infinitely small (so that max(x,list...)=max(x,max(list...))) and the min of an empty list should be infinitely large. – Yaakov Belch Dec 4 '16 at 19:00
  • Whoops, yes, I wrote that the wrong way around; my apologies. I will fix my answer and credit you for spotting the mistake. [... Done. Thanks again.] – Gareth McCaughan Dec 4 '16 at 23:46

Considering all the comments above it can be a wrapper like this:

def max_safe(*args, **kwargs):
    """
    Returns max element of an iterable.

    Adds a `default` keyword for any version of python that do not support it
    """
    if sys.version_info < (3, 4):  # `default` supported since 3.4
        if len(args) == 1:
            arg = args[0]
            if 'default' in kwargs:
                default = kwargs.pop('default')
                if not arg:
                    return default

                # https://stackoverflow.com/questions/36157995#comment59954203_36158079
                arg = list(arg)
                if not arg:
                    return default

                # if the `arg` was an iterator, it's exhausted already
                # so use a new list instead
                return max(arg, **kwargs)

    return max(*args, **kwargs)

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