Stack Overflow is a community of 4.7 million programmers, just like you, helping each other.

Join them; it only takes a minute:

Sign up
Join the Stack Overflow community to:
  1. Ask programming questions
  2. Answer and help your peers
  3. Get recognized for your expertise

if have a list, say a=[1,2,3], and I want to see if a[4] is null, is there a way to do that? without using an exception or assertion.

share|improve this question

len will tell you the length of the list. To quote the docs:

len(s)
    Return the length (the number of items) of an object. The argument may be a sequence
    (string, tuple or list) or a mapping (dictionary).

Of course, if you want to get the final element in a list, tuple, or string, since indexes are 0 based, and the length of an item is the element count, a[len(a)-1] will be the last item.


As an aside, generally, the proper way to access the last element in an object which allows numeric indexing (str, list, tuple, etc) is using a[-1]. Obviously, that does not involve len though.

share|improve this answer
    
an even simpler way to access the last element in a list, tuple or string: a[-1] – Óscar López Oct 5 '11 at 14:33

Use len

if len(a) <= index:
   ...

Note: Your question asks how you would find out "if a[4] is null". a[4] isn't anything, which is why you get an IndexError when you try to check it.

share|improve this answer

a[4] in this case will throw a IndexError exception, which isn't the same as comparing the value of a at index 4 to None. You can have values of None in a list, and if you were to compare values of a, then when you encounter a None, it doesn't mean that the index is not found in the list. For example:

>>> a=[1,None,2]
>>> a[1]==None
True
>>> a[3]
Traceback (most recent call last):
  File "<stdin>", line 1, in <module>
IndexError: list index out of range

Since lists are contiguous and indexed sequentially, the correct way to check if an index is in a list is to compare it to the len() of a list, but depending on the application, there are other ways around it, like catching an IndexError, or iteration.

>>> for index, value in enumerate(a):
...     print index, value
... 
0 1
1 None
2 2
share|improve this answer

You're not providing a specific use-case, but generally for a list your would use len to see how many elements are in the list.

if len(a) > 3:
    # Do something
share|improve this answer

The general way to check if you're currently looking at the element at the end of a list (in any language) is to compare the current index you're looking at with the length of the list minus one (since indexes start at 0).

a[4] isn't really anything, because it doesn't exist - some languages may implement that as being null (or undefined) but many will simply throw an exception if you try to access it instead.

share|improve this answer
    
ok, thanks, I suspected as much – dumpstercake Oct 5 '11 at 13:59

with a = [1,2,3] :

a[2:3] is [3]

a[3:4] is [ ]

So a[i:i+1] != [ ] tells if is an index of a

a[i:] does the same, but a[i:] creates another list, possible very long, while a[i:i+1] is 1 element if not empty

share|improve this answer

You could write a function which behaves kind of like dict.get() does for dictionaries:

def listget(list_, index, default=None):
    """Return the item for index if index is in the range of the list_,
    else default. If default is not given, it defaults to None, so that
    this method never raises an IndexError."""
    if index >= len(list_) or index < -len(list_):
        return default
    else:
        return list_[index]

Example usage:

>>> names = ["Mark","Frank","James"]
>>> listget(names, 2)
'James'
>>> listget(names,-3)
'Mark'
>>> listget(names,3) # returns None
>>> listget(names,4,0)
0

So it will always return a value and you get no exceptions.

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.