348

I want to create string using integer appended to it, in a for loop. Like this:

for i in range(1,11):
  string="string"+i

But it returns an error:

TypeError: unsupported operand type(s) for +: 'int' and 'str'

What's the best way to concatenate the String and Integer?

  • 7
    Shouldnt it be range(1,10)`? – stephan May 17 '10 at 7:59
  • Your question is unclear. What is it the output you want to get? string = "string10"? string = "string1string2string3string4string5string6string7string8string9string10"? Ten different variables? – badp May 17 '10 at 8:11
  • 1
    @stephan: +1, but it should be range(1,11) :) – Tim Pietzcker May 17 '10 at 8:25
  • 2
    @Tim: maybe even range(11) looking at the comment... – stephan May 17 '10 at 8:32
  • @michele Any chance you can change the accepted answer on this question? Backticks are deprecated and should not be used. – Roger Fan Oct 3 '14 at 16:39
265

NOTE:

The method used in this answer (backticks) is deprecated in later versions of Python 2, and removed in Python 3. Use the str() function instead.


You can use :

string = 'string'
for i in range(11):
    string +=`i`
print string

It will print string012345678910.

To get string0, string1 ..... string10 you can use this as @YOU suggested

>>> string = "string"
>>> [string+`i` for i in range(11)]

Update as per Python3

You can use :

string = 'string'
for i in range(11):
    string +=str(i)
print string

It will print string012345678910.

To get string0, string1 ..... string10 you can use this as @YOU suggested

>>> string = "string"
>>> [string+str(i) for i in range(11)]
| improve this answer | |
  • if i input this: 47, then why do i get this in my string:u'47' – TheDoctor Oct 3 '13 at 2:25
  • 30
    This answer is outdated. Backticks are outdated and have been removed in Python 3. See this question for more details. The other answers to this question are better solutions. – Roger Fan Oct 3 '14 at 16:37
  • @RogerFan, yeah right! Don't know, how my answer got this many upvotes o_o Didn't expect this! – Anirban Nag 'tintinmj' Aug 5 '16 at 20:25
  • Backticks are the equivalent of the repr() function, not str(). For non-integer values, the repr() and str() results can differ significantly. – Martijn Pieters Sep 14 '16 at 17:56
  • 1
    in Python3, you can use f-strings like this: string = f'{str}{number}' – Ahmed Rezk Sep 7 '19 at 9:16
267
for i in range (1,10):
    string="string"+str(i)

To get string0, string1 ..... string10, you could do like

>>> ["string"+str(i) for i in range(11)]
['string0', 'string1', 'string2', 'string3', 'string4', 'string5', 'string6', 'string7', 'string8', 'string9', 'string10']
| improve this answer | |
  • 3
    Backticks are all sorts of silly. – habnabit May 17 '10 at 8:58
  • 3
    It's still worth mentioning that backticks are equivalent to repr(), not str(). – Bastien Léonard May 17 '10 at 9:06
  • 1
    Bastien, Thanks for the note, but I think I don't put it back again. – YOU May 17 '10 at 9:28
  • 1
    Mmh, I tried to remove my vote (just a test), and then vote again; the vote is suppressed but I can't upvote it anymore... ("Your vote is now locked in unless this answer is edited") – Bastien Léonard May 17 '10 at 9:56
  • 1
    @Bastien, yeah, there is 5 minutes window to undo up/downvotes, but once its over, its stuck and can't do different vote until next edit. I think thats by-design – YOU May 17 '10 at 10:04
35
string = 'string%d' % (i,)
| improve this answer | |
35
for i in range[1,10]: 
  string = "string" + str(i)

The str(i) function converts the integer into a string.

| improve this answer | |
21
for i in range(11):
    string = "string{0}".format(i)

What you did (range[1,10]) is

  • a TypeError since brackets denote an index (a[3]) or a slice (a[3:5]) of a list,
  • a SyntaxError since [1,10] is invalid, and
  • a double off-by-one error since range(1,10) is [1, 2, 3, 4, 5, 6, 7, 8, 9], and you seem to want [0, 1, 2, 3, 4, 5, 6, 7, 8, 9, 10]

And string = "string" + i is a TypeError since you can't add an integer to a string (unlike JavaScript).

Look at the documentation for Python's new string formatting method, it is very powerful.

| improve this answer | |
  • 1
    (Correction: If you do range={(1,10): "foo"}, then range[1,10] is in fact a syntactically valid expression.) – Tim Pietzcker Nov 17 '12 at 11:10
4

You can use a generator to do this !

def sequence_generator(limit):  
    """ A generator to create strings of pattern -> string1,string2..stringN """
    inc  = 0
    while inc < limit:
        yield 'string'+str(inc)
        inc += 1

# to generate a generator. notice i have used () instead of []
a_generator  =  (s for s in sequence_generator(10))

# to generate a list
a_list  =  [s for s in sequence_generator(10)]

# to generate a string
a_string =  '['+", ".join(s for s in sequence_generator(10))+']'
| improve this answer | |
1

If we want output like 'string0123456789' then we can use map function and join method of string.

>>> 'string'+"".join(map(str,xrange(10)))
'string0123456789'

If we want List of string values then use list comprehension method.

>>> ['string'+i for i in map(str,xrange(10))]
['string0', 'string1', 'string2', 'string3', 'string4', 'string5', 'string6', 'string7', 'string8', 'string9']

Note:

Use xrange() for Python 2.x

USe range() for Python 3.x

| improve this answer | |
1

I did something else. I wanted to replace a word, in lists off lists, that contained phrases. I wanted to replace that sttring / word with a new word that will be a join between string and number, and that number / digit will indicate the position of the phrase / sublist / lists of lists.

That is, I replaced a string with a string and an incremental number that follow it.

    myoldlist_1=[[' myoldword'],[''],['tttt myoldword'],['jjjj ddmyoldwordd']]
        No_ofposition=[]
        mynewlist_2=[]
        for i in xrange(0,4,1):
            mynewlist_2.append([x.replace('myoldword', "%s" % i+"_mynewword") for x in myoldlist_1[i]])
            if len(mynewlist_2[i])>0:
                No_ofposition.append(i)
mynewlist_2
No_ofposition
| improve this answer | |
-6

Concatenation of a string and integer is simple: just use

abhishek+str(2)
| improve this answer | |

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