112

In my program, user inputs number n, and then inputs n number of strings, which get stored in a list.

I need to code such that if a certain list index exists, then run a function.

This is made more complicated by the fact that I have nested if statements about len(my_list).

Here's a simplified version of what I have now, which isn't working:

n = input ("Define number of actors: ")

count = 0

nams = []

while count < n:
    count = count + 1
    print "Define name for actor ", count, ":"
    name = raw_input ()
    nams.append(name)

if nams[2]: #I am trying to say 'if nams[2] exists, do something depending on len(nams)
    if len(nams) > 3:
        do_something
    if len(nams) > 4
        do_something_else

if nams[3]: #etc.
  • 1
    Looks like you want to type cast n as an integer, not a list. I'm confused. – mVChr Aug 2 '12 at 21:39
  • 2
    Yes, the real problem here is using n instead of nams in the ifs – Wooble Aug 2 '12 at 21:48
  • In your case n is not a list. First check (cast) it to be an integer, then you could iterate or enumerate depending on the effect you want to achieve. – laidback Aug 2 '12 at 21:48
  • Yep, mistyped. Fixed to nams[] – user1569317 Aug 2 '12 at 21:56
  • "the fact that I have sub if statements about len(my_list)." Have you thought about what is implied about which list indices exist, by the fact that the len of the list is at least a certain value? – Karl Knechtel Aug 2 '12 at 22:45

11 Answers 11

134

Could it be more useful for you to use the length of the list len(n) to inform your decision rather than checking n[i] for each possible length?

  • 4
    Yep. Upon reviewing the code, my set-up was completely superfluous; len(n) accomplished everything I needed. Thanks for a point in the right direction. – user1569317 Aug 3 '12 at 18:37
  • This doesn't account for negative indexes. The best way I know is try / except IndexError, but it'd be nice to have a concise way to get a bool – Abram Aug 6 at 19:55
  • In Python negative indexes on lists just count backwards from the end of the list. So they could not exist in a way that impacts the length of the list. – JonathanV Aug 7 at 18:00
79

I need to code such that if a certain list index exists, then run a function.

This is the perfect use for a try block:

ar=[1,2,3]

try:
    t=ar[5]
except IndexError:
    print('sorry, no 5')   

# Note: this only is a valid test in this context 
# with absolute (ie, positive) index
# a relative index is only showing you that a value can be returned
# from that relative index from the end of the list...

However, by definition, all items in a Python list between 0 and len(the_list)-1 exist (i.e., there is no need for a try, except if you know 0 <= index < len(the_list)).

You can use enumerate if you want the indexes between 0 and the last element:

names=['barney','fred','dino']

for i, name in enumerate(names):
    print(i + ' ' + name)
    if i in (3,4):
        # do your thing with the index 'i' or value 'name' for each item...

If you are looking for some defined 'index' thought, I think you are asking the wrong question. Perhaps you should consider using a mapping container (such as a dict) versus a sequence container (such as a list). You could rewrite your code like this:

def do_something(name):
    print('some thing 1 done with ' + name)

def do_something_else(name):
    print('something 2 done with ' + name)        

def default(name):
    print('nothing done with ' + name)     

something_to_do={  
    3: do_something,        
    4: do_something_else
    }        

n = input ("Define number of actors: ")
count = 0
names = []

for count in range(n):
    print("Define name for actor {}:".format(count+1))
    name = raw_input ()
    names.append(name)

for name in names:
    try:
        something_to_do[len(name)](name)
    except KeyError:
        default(name)

Runs like this:

Define number of actors: 3
Define name for actor 1: bob
Define name for actor 2: tony
Define name for actor 3: alice
some thing 1 done with bob
something 2 done with tony
nothing done with alice

You can also use .get method rather than try/except for a shorter version:

>>> something_to_do.get(3, default)('bob')
some thing 1 done with bob
>>> something_to_do.get(22, default)('alice')
nothing done with alice
  • The "try" block was a perfect solution for me, thank you! – armani Jun 24 '13 at 16:32
  • 3
    try block? I am a beginner in Python but this seems like a big no no in programming...exceptions for flow control? Exception should be for things we cannot control right? – Luis Jan 5 '15 at 14:42
  • 3
    @Luis I'm a beginner in Python as well, but from what I've read exception handling in these instances is the style Python promotes that C/Java/C# don't. See stackoverflow.com/questions/11360858/… – Tinister Jan 9 '15 at 21:49
  • The sentence 'all indices in a Python list between 0 and len(list)' is absolutely wrong. Let's say there's a list x = [1, 2, 3] which len_x = 3. There is no such index as 3. The sentence should have been: 'all indices in a Python list between 0 and len(list) - 1'. – Lior Magen Apr 12 '16 at 10:26
  • 9
    @LiorMagen: You are right and I edited it. That is kinda harsh to down vote a fairly popular post for such a pedantic error. A simple comment would suffice. – dawg Apr 14 '16 at 1:15
14

len(nams) should be equal to n in your code. All indexes 0 <= i < n "exist".

9

It can be done simply using the following code:

if index < len(my_list):
    print(index, 'exists in the list')
else:
    print(index, "doesn't exist in the list")
4

I need to code such that if a certain list index exists, then run a function.

You already know how to test for this and in fact are already performing such tests in your code.

The valid indices for a list of length n are 0 through n-1 inclusive.

Thus, a list has an index i if and only if the length of the list is at least i + 1.

  • Yep, I had the tools to solve my problem, just wasn't applying them clearly. Thanks for a point in the right direction. – user1569317 Aug 3 '12 at 18:40
  • Thanks for this, especially the last sentence, which is an important property of Python lists that make them different from JavaScript arrays and other similar constructs. – robert Feb 22 '16 at 20:46
4

Using the length of the list would be the fastest solution to check if an index exists:

def index_exists(ls, i):
    return (0 <= i < len(ls)) or (-len(ls) <= i < 0)

This also tests for negative indices, and most sequence types (Like ranges and strs) that have a length.

If you need to access the item at that index afterwards anyways, it is easier to ask forgiveness than permission, and it is also faster and more Pythonic. Use try: except:.

try:
    item = ls[i]
    # Do something with item
except IndexError:
    # Do something without the item

This would be as opposed to:

if index_exists(ls, i):
    item = ls[i]
    # Do something with item
else:
    # Do something without the item
2

If you want to iterate the inserted actors data:

for i in range(n):
    if len(nams[i]) > 3:
        do_something
    if len(nams[i]) > 4:
        do_something_else
0

ok, so I think it's actually possible (for the sake of argument):

>>> your_list = [5,6,7]
>>> 2 in zip(*enumerate(your_list))[0]
True
>>> 3 in zip(*enumerate(your_list))[0]
False
  • though this would be even simpler: 3 in range(len(your_list) – avloss Feb 2 '17 at 22:56
  • 1
    or even this 3 in xrange(len(your_list) - probably can't do better than this – avloss Feb 2 '17 at 23:02
0

You can try something like this

list = ["a", "b", "C", "d", "e", "f", "r"]

for i in range(0, len(list), 2):
    print list[i]
    if len(list) % 2 == 1 and  i == len(list)-1:
        break
    print list[i+1];
-1

A lot of answers, not the simple one.

To check if a index 'id' exists at dictionary dict:

if 'id' in Dict

returns true if 'id' exists.

-3

Do not let any space in front of your brackets.

Example:

n = input ()
         ^

Tip: You should add comments over and/or under your code. Not behind your code.


Have a nice day.

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