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How can I find out if a list is empty without using the not command?
Here is what I tried:

if list3[0] == []:  
    print "No matches found"  
else:  
    print list3

I am very much a beginner so excuse me if I do dumb mistakes.

share|improve this question
3  
What's wrong with not? – halex Apr 15 '13 at 17:24
1  
Its for a school task, and I'm not supposed to know not right now. I only know about it because I searched for the answer before. – user2240288 Apr 15 '13 at 17:29
    
possible duplicate of Best way to check if a list is empty – Grijesh Chauhan Jan 2 '14 at 6:42
up vote 27 down vote accepted

In order of preference:

# Good
if not list3:

# Okay
if len(list3) == 0:

# Ugly
if list3 == []:

# Silly
try:
    next(iter(list3))
    # list has elements
except StopIteration:
    # list is empty

If you have both an if and an else you might also re-order the cases:

if list3:
    # list has elements
else:
    # list is empty
share|improve this answer
    
Indeed, empty lists are False in a boolean context. No need to explicitly test for len(). – Martijn Pieters Apr 15 '13 at 17:26
2  
It should be noted that under the hood, 1 and 2 are really doing the same thing most of the time. – Silas Ray Apr 15 '13 at 17:26
    
@sr2222 Sorry. Deleted comment due to syntax error in Python 2.x. Could do None if list3 else print("No matches found") in Python 3.x, though. – Aya Apr 15 '13 at 17:31
    
@Aya You could also do try: iter(l).next() except StopIteration: #do stuff. Of course, 'can' and 'should' are different things... Edit: Doh, John beat me to it... though try: l[0] except IndexError: #do stuff is equally silly... – Silas Ray Apr 15 '13 at 17:32
    
@sr2222 Indeed. Although it'd be interesting to see how many crazy ways people can come up with. list3 or print("No matches found") might also do the trick. ;-) – Aya Apr 15 '13 at 17:34

You find out if a list is empty by testing the 'truth' of it:

>>> bool([])
False
>>> bool([0])     
True

While in the second case 0 is False, but the list [0] is True because it contains something.

This results in this idiom:

if li:
    # li has something in it
else:
    # optional else -- li does not have something 

if not li:
    # react to li being empty
# optional else...

According to PEP 8, this is the proper way:

• For sequences, (strings, lists, tuples), use the fact that empty sequences are false.

Yes: if not seq:
     if seq:

No: if len(seq)
    if not len(seq)

You test if a list has a specific index existing by using try:

>>> try:
...    li[3]=6
... except IndexError:
...    print 'no bueno'
... 
no bueno

So you may want to reverse the order of your code to this:

if list3:  
    print list3  
else:  
    print "No matches found"
share|improve this answer

Check its length.

l = []
print len(l) == 0
share|improve this answer
    
Thanks, checking its length worked :) – user2240288 Apr 15 '13 at 17:26

Here:

if len(list3) == 0:
    print "No matches found"  
share|improve this answer

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