35

if I have a list, say:

ll = ['xx','yy','zz']

and I want to assign each element of this list to a separate variable:

var1 = xx
var2 = yy
var3 = zz

without knowing how long the list is, how would I do this? I have tried:

max = len(ll)
count = 0
for ii in ll:
    varcount = ii
    count += 1
    if count == max:
        break

I know that varcount is not a valid way to create a dynamic variable, but what I'm trying to do is create var0, var1, var2, var3 etc based on what the count is.

Edit::

Never mind, I should start a new question.

11
  • 25
    why on earth would you want to do that?
    – Rohit Jain
    Oct 10, 2013 at 15:34
  • 3
    Variables are just names. What is wrong with ll[0], ll[1], ll[2] ... etc?
    – dansalmo
    Oct 10, 2013 at 15:35
  • What is the usecase ? Looks like what could rethink your approach
    – karthikr
    Oct 10, 2013 at 15:35
  • 2
    Please see Keep data out of your variable names Oct 10, 2013 at 15:40
  • 1
    If you don't know how long the list is, how would you expect to name all the variables?
    – twalberg
    Oct 10, 2013 at 15:50

8 Answers 8

60

Generally speaking, it is not recommended to use that kind of programming for a large number of list elements / variables.

However, the following statement works fine and as expected

a,b,c = [1,2,3]

This is called "destructuring" or "unpacking".

It could save you some lines of code in some cases, e.g. I have a,b,c as integers and want their string values as sa,sb,sc:

sa, sb,sc = [str(e) for e in [a,b,c]]

or, even better

sa, sb,sc = map(str, (a,b,c) )
3
  • Thanks for this answer, this is what I came here looking for. Didn't have an interpreter in front of me, and wanted to know if problem, solution = "1+1=2".split("=") was valid, given that split() returns an array rather than 2 values
    – JHixson
    Dec 6, 2016 at 19:45
  • Not sure what you mean. If None is part of the "result" statement, eg a,b = None, 1, then it will be assigned to the according variable (in this case a).
    – cmantas
    Jun 28, 2018 at 6:43
  • 1
    This is a great feature of python (aka "tuple unpacking"), and it is often useful in cases like the problem, solution = ... situation described by @JHixson... But it does not match the OP's stated condition of not knowing how long the list is.
    – alexis
    Dec 1, 2020 at 12:34
30

Not a good idea to do this; what will you do with the variables after you define them?

But supposing you have a good reason, here's how to do it in python:

for n, val in enumerate(ll):
    globals()["var%d"%n] = val

print var2  # etc.

Here, globals() is the local namespace presented as a dictionary. Numbering starts at zero, like the array indexes, but you can tell enumerate() to start from 1 instead.

But again: It's unlikely that this is actually useful to you.

2
  • 8
    I'm being downvoted because I actually answered the question? Come on!
    – alexis
    Oct 10, 2013 at 15:45
  • @predmod The stackoverflow python audience is excellent! I think somebody was just putting ideology over knowledge...
    – alexis
    Aug 13, 2020 at 8:35
12

You should go back and rethink why you "need" dynamic variables. Chances are, you can create the same functionality with looping through the list, or slicing it into chunks.

4
  • 5
    +1 - Sometimes, the best answer is to not answer but instead to say "this isn't good".
    – user2555451
    Oct 10, 2013 at 15:38
  • You may be right. I guess lists was a simplification. What I'm really dealing with is a Dataframe of unknown length that I have to parse into a format that is compatible with API calls. Which means I'm basically creating a dictionary for every "line" of the dataframe. In that case, I'll have to create the same number of distinct dictionaries anyway, so I thought I'd just create variables instead. I'll keep thinking about it
    – David Yang
    Oct 10, 2013 at 15:44
  • that is compatible with API calls, its seems a XY problem. You should state the actual problem, rather than how you are assuming you need to solve it
    – Abhijit
    Oct 10, 2013 at 15:48
  • Sounds like you should start a new question, asking for advice on how to solve the problem in a different way instead of ways to make your solution work. Oct 10, 2013 at 15:50
3

If the number of Items doesn't change you can convert the list to a string and split it to variables.

wedges = ["Panther", "Ali", 0, 360]
a,b,c,d = str(wedges).split()
print a,b,c,d
1
  • this actually works for what I need - converting an array to individual args in a function parameter list Nov 14, 2017 at 1:45
0

Instead, do this:

>>> var = ['xx','yy','zz']
>>> var[0]
'xx'
>>> var[1]
'yy'
>>> var[2]
'zz'
1
  • 2
    I dont like it. The purpose of assigning to to have their own name.
    – ji-ruh
    Nov 22, 2017 at 7:48
0

I have found a decent application for it. I have a bunch of csv files which I want to save as a dataframe under their name:

all_files = glob.glob(path + "/*.csv")
name_list = []
for f in all_files:
    name_list.append(f[9:-4])
for i,n in enumerate(name_list):
    globals()[n] = pd.read_csv(all_files[i])
1
  • That doesn't look like a decent application, though?
    – AMC
    Mar 26, 2020 at 19:15
0

I am assuming you are obtaining the list by way of an SQL query. Why can't you commit to a length? With that, it seems obvious to me that you wish to take those values and execute additional SQL commands using each value from that newly acquired list separately. This is not a way off concept if you take it from an SQL perspective, and if I am correct I will provide the syntax. However, you will not need to create separate variable names with this solution and not lose the versatility you are working toward.

0

This should do it (though using exec is not recommended):

for num in range(len(your_list)):
    exec('var'+str(num)+' = your_list[num]')

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