187

I am iterating over a list and I want to print out the index of the item if it meets a certain condition. How would I do this?

Example:

testlist = [1,2,3,5,3,1,2,1,6]
for item in testlist:
    if item == 1:
        print position
0

15 Answers 15

302

Hmmm. There was an answer with a list comprehension here, but it's disappeared.

Here:

 [i for i,x in enumerate(testlist) if x == 1]

Example:

>>> testlist
[1, 2, 3, 5, 3, 1, 2, 1, 6]
>>> [i for i,x in enumerate(testlist) if x == 1]
[0, 5, 7]

Update:

Okay, you want a generator expression, we'll have a generator expression. Here's the list comprehension again, in a for loop:

>>> for i in [i for i,x in enumerate(testlist) if x == 1]:
...     print i
... 
0
5
7

Now we'll construct a generator...

>>> (i for i,x in enumerate(testlist) if x == 1)
<generator object at 0x6b508>
>>> for i in (i for i,x in enumerate(testlist) if x == 1):
...     print i
... 
0
5
7

and niftily enough, we can assign that to a variable, and use it from there...

>>> gen = (i for i,x in enumerate(testlist) if x == 1)
>>> for i in gen: print i
... 
0
5
7

And to think I used to write FORTRAN.

8
  • 9
    After probably 25 years of questioning functional programming, I think I'm finally getting the clue. list comprehension is da bomb. Dec 13, 2008 at 18:30
  • 15
    I presume you mean "single letter" and frankly, a longer name in this example would have no more information content. Dec 1, 2010 at 19:28
  • 2
    Thanks for great answer. I think @nailer's comment might relate to the fact that you use 'i' in two different contexts in a single line in the generator example; one inside the comprehension, and the other to iterate through it. I know it threw me off for a second.
    – Brown
    May 3, 2013 at 14:34
  • 1
    @CharlieMartin You use 'i' for the index rather than the item per the one common convention for single character variables. Naming the index 'index' and the item 'item' would remove ambiguity. Additionally you're replying to a parent that used 'item' and 'position' and it's good manners not to unnecessarily rename parts of the original code in your answer. May 3, 2013 at 14:54
  • 1
    Super syntax :o) You can easily get a command line parameter. Let there is an array of arguments: args = ['x', '-p1', 'v1', '-p2', 'v2']. Then the command args[[i for i, x in enumerate(args) if x == '-p1'][0] + 1] returns 'v1' Aug 15, 2014 at 11:20
199

What about the following?

print testlist.index(element)

If you are not sure whether the element to look for is actually in the list, you can add a preliminary check, like

if element in testlist:
    print testlist.index(element)

or

print(testlist.index(element) if element in testlist else None)

or the "pythonic way", which I don't like so much because code is less clear, but sometimes is more efficient,

try:
    print testlist.index(element)
except ValueError:
    pass
3
  • 7
    instead of testing before accessing, you could also just try and check for ValueError
    – kratenko
    Aug 18, 2013 at 20:45
  • I think that he wants for find all occurrences, you seem to give only the first one.
    – tfv
    Oct 5, 2017 at 8:32
  • @tfv I don't see how you can come to such conclusion since the question says "item" and not "items".
    – mmj
    Oct 8, 2017 at 21:53
43

Use enumerate:

testlist = [1,2,3,5,3,1,2,1,6]
for position, item in enumerate(testlist):
    if item == 1:
        print position
11
for i in xrange(len(testlist)):
  if testlist[i] == 1:
    print i

xrange instead of range as requested (see comments).

3
  • replace range() with xrange() -- range() creates a list, xrange() creates a iterator. xrange() uses waaaay less memory, and the inital call is faster.
    – gnud
    Dec 13, 2008 at 1:39
  • 3
    I agree for large lists in python 2 programs. Note that 'range' will still work in python 3 though (and work like xrange IIRC). 'xrange' is going the way of the dinosaurs.
    – jakber
    Dec 13, 2008 at 1:44
  • 4
    Update: xrange is depracted in Python 3.x, as the new range is the old xrange
    – tim-oh
    Mar 13, 2017 at 12:51
6

Here is another way to do this:

try:
   id = testlist.index('1')
   print testlist[id]
except ValueError:
   print "Not Found"
5

Try the below:

testlist = [1,2,3,5,3,1,2,1,6]    
position=0
for i in testlist:
   if i == 1:
      print(position)
   position=position+1
4
[x for x in range(len(testlist)) if testlist[x]==1]
2

If your list got large enough and you only expected to find the value in a sparse number of indices, consider that this code could execute much faster because you don't have to iterate every value in the list.

lookingFor = 1
i = 0
index = 0
try:
  while i < len(testlist):
    index = testlist.index(lookingFor,i)
    i = index + 1
    print index
except ValueError: #testlist.index() cannot find lookingFor
  pass

If you expect to find the value a lot you should probably just append "index" to a list and print the list at the end to save time per iteration.

2
  • I did some timing tests. The list comprehension technique runs 38% faster than this code. (I replaced your print statement with a outputlist.append call)
    – Deestan
    Dec 13, 2008 at 16:31
  • I also did some tests with list sizes of 100000 random values between 1 and 100. The code I wrote was in some cases twice as fast. No time testing is comparable to poster's application (they must test themselves to be sure, of course). I apologize if my opinion was detrimental to this post.
    – user44484
    Dec 13, 2008 at 17:05
1

I think that it might be useful to use the curselection() method from thte Tkinter library:

from Tkinter import * 
listbox.curselection()

This method works on Tkinter listbox widgets, so you'll need to construct one of them instead of a list.

This will return a position like this:

('0',) (although later versions of Tkinter may return a list of ints instead)

Which is for the first position and the number will change according to the item position.

For more information, see this page: http://effbot.org/tkinterbook/listbox.htm

Greetings.

3
  • 1
    Interesting idea. Since this requires importing the entire Tkinter library, though, it's not the most efficient way to solve the problem. Jun 20, 2013 at 22:47
  • 3
    This is such an inefficient and meandering path that I'd say it's a wrong answer, even if it somewhat addresses the question.
    – user559633
    Nov 9, 2013 at 20:48
  • This answer has nothing to do with the question. Aug 22, 2014 at 13:42
1

Why complicate things?

testlist = [1,2,3,5,3,1,2,1,6]
for position, item in enumerate(testlist):
    if item == 1:
        print position
1
l = list(map(int,input().split(",")))
num = int(input())
for i in range(len(l)):
    if l[i] == num:
        print(i)

Explanation:

Taken a list of integer "l" (separated by commas) in line 1. Taken a integer "num" in line 2. Used for loop in line 3 to traverse inside the list and checking if numbers(of the list) meets the given number(num) then it will print the index of the number inside the list.

1
  • Welcome to Stack Overflow! Please read How to Answer and edit your answer to contain an explanation as to why this code would actually solve the problem at hand. Always remember that you're not only solving the problem, but are also educating the OP and any future readers of this post. Dec 22, 2022 at 4:21
0

Just to illustrate complete example along with the input_list which has searies1 (example: input_list[0]) in which you want to do a lookup of series2 (example: input_list[1]) and get indexes of series2 if it exists in series1.

Note: Your certain condition will go in lambda expression if conditions are simple

input_list = [[1,2,3,4,5,6,7],[1,3,7]]
series1 = input_list[0]
series2 = input_list[1]
idx_list = list(map(lambda item: series1.index(item) if item in series1 else None, series2))
print(idx_list)

output:

[0, 2, 6]
-1
testlist = [1,2,3,5,3,1,2,1,6]
num = 1
for item in range(len(testlist)):
    if testlist[item] == num:
        print(item) 
2
  • 1
    test list != testlist
    – Vickel
    Dec 19, 2022 at 22:26
  • It's important to not just post code, but to also include a description of what the code does and why you are suggesting it. This helps others understand the context and purpose of the code, and makes it more useful for others who may be reading the question or answer, @Shivam Raj .
    – DSDmark
    Dec 21, 2022 at 15:27
-1

What about trying

list_ = ["pen", "david"]
for i in list_:
    list_.index(i)

The code literally takes each object and parses the postion of i

Additionally if you wanted to check a specific element you could try:

list_ = ["pen", "david"]
for i in list_:
    if list_.index(i) == 0:
        print(i, list_.index(i))
1
  • The question was asked in 2008! Isn't it a bit late to answer it now?
    – BoP
    Jul 10, 2023 at 16:12
-2
testlist = [1,2,3,5,3,1,2,1,6]
for id, value in enumerate(testlist):
    if id == 1:
        print testlist[id]

I guess that it's exacly what you want. ;-) 'id' will be always the index of the values on the list.

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service and acknowledge you have read our privacy policy.

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