I have a tuple of tuples from a MySQL query like this:

T1 = (('13', '17', '18', '21', '32'),
      ('07', '11', '13', '14', '28'),
      ('01', '05', '06', '08', '15', '16'))

I'd like to convert all the string elements into integers and put them back into a list of lists:

T2 = [[13, 17, 18, 21, 32], [7, 11, 13, 14, 28], [1, 5, 6, 8, 15, 16]]

I tried to achieve it with eval but didn't get any decent result yet.

  • 2
    Perhaps consider a different database adapter module? I know the PostgreSQL adapter modules will return results like your T2 set. – kquinn Mar 13 '09 at 11:06
  • 3
    Possible duplicate of Parse String to Float or Int – Nathan Nov 18 '15 at 22:49
  • please notice: when using map, you will get a list of map objects in python 3 and 3.5. This does it for Python 3.5 as mentioned above. new_list = list(list(int(a) for a in b) for b in T1 if a.isdigit()) – Guest May 28 '17 at 20:02
  • Similar question for a non-nested list: Convert all strings in a list to int – Aran-Fey Oct 8 at 15:32

13 Answers 13

up vote 545 down vote accepted

int() is the Python standard built-in function to convert a string into an integer value. You call it with a string containing a number as the argument, and it returns the number converted to an integer:

print (int("1") + 1)

The above prints 2.

If you know the structure of your list, T1 (that it simply contains lists, only one level), you could do this in Python 2:

T2 = [map(int, x) for x in T1]

In Python 3:

T2 = [list(map(int, x)) for x in T1]
  • 3
    Great! Actually, the example given also works for "naked" numbers in the input, but will wrap them in one-element lists. – unwind Mar 13 '09 at 11:10
  • 1
    @unwind Nice answer – aatifh Mar 13 '09 at 11:13
  • 1
    doesn't work in py3k – SilentGhost Mar 13 '09 at 11:27
  • 2
    why not T2 = map(lambda lol: map(int, lol), T1)? Either map or list comprehensions, both is silly ;) – flying sheep Aug 17 '11 at 17:59
  • 4
    @flyingsheep Double map seems silly to me, this seems just fine. – jamylak May 26 '12 at 12:22

You can do this with a list comprehension:

T2 = [[int(column) for column in row] for row in T1]

The inner list comprehension ([int(column) for column in row]) builds a list of ints from a sequence of int-able objects, like decimal strings, in row. The outer list comprehension ([... for row in T1])) builds a list of the results of the inner list comprehension applied to each item in T1.

The code snippet will fail if any of the rows contain objects that can't be converted by int. You'll need a smarter function if you want to process rows containing non-decimal strings.

If you know the structure of the rows, you can replace the inner list comprehension with a call to a function of the row. Eg.

T2 = [parse_a_row_of_T1(row) for row in T1]

I would rather prefer using only comprehension lists:

[[int(y) for y in x] for x in T1]

Instead of putting int( ), put float( ) which will let you use decimals along with integers.

  • 1
    Can you explain more details on you answer? – Rico Jan 24 '14 at 23:38

I would agree with everyones answers so far but the problem is is that if you do not have all integers they will crash.

If you wanted to exclude non-integers then

T1 = (('13', '17', '18', '21', '32'),
      ('07', '11', '13', '14', '28'),
      ('01', '05', '06', '08', '15', '16'))
new_list = list(list(int(a) for a in b) for b in T1 if a.isdigit())

This yields only actual digits. The reason I don't use direct list comprehensions is because list comprehension leaks their internal variables.

  • 1
    isdigit is tricky, try it on -1. int(<str>) is the way to check by try/except. – totoro Aug 21 '16 at 8:42
T3=[]

for i in range(0,len(T1)):
    T3.append([])
    for j in range(0,len(T1[i])):
        b=int(T1[i][j])
        T3[i].append(b)

print T3
  • 6
    Welcome to Stack Overflow! Rather than only post a block of code, please explain why this code solves the problem posed. Without an explanation, this is not an answer. – Artemix Nov 26 '12 at 12:15
  • 1
    Better would be: – Martin Bonner Sep 17 '15 at 14:58

Try this.

x = "1"

x is a string because it has quotes around it, but it has a number in it.

x = int(x)

Since x has the number 1 in it, I can turn it in to a integer.

To see if a string is a number, you can do this.

def is_number(var):
    try:
        if var == int(var):
            return True
    except Exception:
        return False

x = "1"

y = "test"

x_test = is_number(x)

print(x_test)

It should print to IDLE True because x is a number.

y_test = is_number(y)

print(y_test)

It should print to IDLE False because y in not a number.

  • 2
    Your is_number function is wrong. '1' is not equal to 1. This is not Perl. :-P – Veky Sep 2 '15 at 7:16
  • 2
    Don’t reinvent the wheel, use x.isnumeric(). – bfontaine Oct 23 '17 at 14:11

Using list comprehensions:

t2 = [map(int, list(l)) for l in t1]
  • 1
    in python 3 this returns a list of map objects :( – CpILL Apr 15 '16 at 10:15

In Python 3.5.1 things like these work:

c = input('Enter number:')
print (int(float(c)))
print (round(float(c)))

and

Enter number:  4.7
4
5

George.

Yet another functional solution for Python 2:

from functools import partial

map(partial(map, int), T1)

Python 3 will be a little bit messy though:

list(map(list, map(partial(map, int), T1)))

we can fix this with a wrapper

def oldmap(f, iterable):
    return list(map(f, iterable))

oldmap(partial(oldmap, int), T1)

See this function

def parse_int(s):
    try:
        res = int(eval(str(s)))
        if type(res) == int:
            return res
    except:
        return

Then

val = parse_int('10')  # Return 10
val = parse_int('0')  # Return 0
val = parse_int('10.5')  # Return 10
val = parse_int('0.0')  # Return 0
val = parse_int('Ten')  # Return None

You can also check

if val == None:  # True if input value can not be converted
    pass  # Note: Don't use 'if not val:'

If it's only a tuple of tuples, something like rows=[map(int, row) for row in rows] will do the trick. (There's a list comprehension and a call to map(f, lst), which is equal to [f(a) for a in lst], in there.)

Eval is not what you want to do, in case there's something like __import__("os").unlink("importantsystemfile") in your database for some reason. Always validate your input (if with nothing else, the exception int() will raise if you have bad input).

You can do something like this:

T1 = (('13', '17', '18', '21', '32'),  
     ('07', '11', '13', '14', '28'),  
     ('01', '05', '06', '08', '15', '16'))  
new_list = list(list(int(a) for a in b if a.isdigit()) for b in T1)  
print(new_list)  

protected by Community Oct 8 at 15:54

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