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I'm writing a program which calculates the check digit of an ISBN number. I have to read the user's input (nine digits of an ISBN) into an integer variable, and then multiply the last digit by 2, the second last digit by 3 and so on. How can I "split" the integer into its constituent digits to do this? As this is a basic homework exercise I am not supposed to use a list.

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is this a homework? –  SilentGhost Jun 10 '09 at 11:16

14 Answers 14

up vote 47 down vote accepted

Just create a string out of it.

myinteger = 212345
number_string = str(myinteger)

That's enough. Now you can iterate over it:

for ch in number_string:
    print ch # will print each digit in order

Or you can slice it:

print number_string[:2] # first two digits
print number_string[-3:] # last three digits
print number_string[3] # forth digit

Or better, don't convert the user's input to an integer (the user types a string)

isbn = raw_input()
for pos, ch in enumerate(reversed(isbn)):
    print "%d * %d is %d" % pos + 2, int(ch), int(ch) * (pos + 2)

For more information read a tutorial.

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while number:
    digit = number % 10
    # do whatever with digit
    number /= 10

On each iteration of the loop, it removes the last digit from number, assigning it to $digit. It's in reverse, starts from the last digit, finishes with the first

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what does it do? –  SilentGhost Jun 10 '09 at 11:32
@Stephan202: int is working with any base, not only base 10. –  SilentGhost Jun 10 '09 at 11:43
@nosklo: it's not php, it's basic arithmetic you're supposed to learn in the fifth grade. I don't see how a math or a computer science concept can be "unpythonic". Jesus :) –  Alexandru Nedelcu Jun 10 '09 at 19:10
Why not use a generator? yield the digit –  st0le Sep 14 '10 at 8:40
+1 for this is actually 2-3 times faster then converting to string –  bpgergo Jul 3 '13 at 21:35
list_of_ints = [int(i) for i in str(ISBN)]

Will give you a ordered list of ints. Of course, given duck typing, you might as well work with str(ISBN).

Edit: As mentioned in the comments, this list isn't sorted in the sense of being ascending or descending, but it does have a defined order (sets, dictionaries, etc in python in theory don't, although in practice the order tends to be fairly reliable). If you want to sort it:


is your friend. Note that sort() sorts in place (as in, actually changes the order of the existing list) and doesn't return a new list.

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or: list_of_ints = map(int, str(ISBN)) –  uolot Jun 10 '09 at 11:18
yay, paffnucy! Let's not forget map/reduce/zip et al.! –  Daren Thomas Jun 10 '09 at 11:22
"sorted list of ints"? in what sense is it going to be "sorted"? –  SilentGhost Jun 10 '09 at 11:44
@Daren - not always faster, but usually more readable (excluding reduce() ^^) –  uolot Jun 10 '09 at 12:03
Sorted in the sense that it has a defined order, as opposed to say a tuple or a set. I'll edit that into the answer... –  mavnn Jun 10 '09 at 21:49

On Older versions of Python...


On New Version 3k

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Which one-liner is faster? –  Lord British Sep 14 '10 at 14:31
@Lord British, hard to say, since both are designed for different versions, i'd suppose Py3k should be faster (hopefully,hehe) –  st0le Sep 14 '10 at 14:45

Convert it to string and map over it with the int() function.

map(int, str(1231231231))
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You can use this in a loop, where number is the full number, x is each iteration of the loop (0,1,2,3,...,n) with n being the stop point. x = 0 gives the ones place, x = 1 gives the tens, x = 2 gives the hundreds, and so on. Keep in mind that this will give the value of the digits from right to left, so this might not be the for an ISBN but it will still isolate each digit.

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Recursion version:

def int_digits(n):
    return [n] if n<10 else int_digits(n/10)+[n%10]
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converting to string is definitely slower then dividing by 10

and map is sligthly slower then list comprehension

convert to string with map 2.13599181175
convert to string with list comprehension 1.92812991142
modulo, division, recursive 0.948769807816
modulo, division 0.699964046478

these times were returned by the following code on my laptop

foo = """\
def foo(limit):
    return sorted(set(map(sum, map(lambda x: map(int, list(str(x))), map(lambda x: x * 9, range(limit))))))


bar = """\
def bar(limit):
    return sorted(set([sum([int(i) for i in str(n)]) for n in [k *9 for k in range(limit)]]))


rac = """\
def digits(n):
    return [n] if n<10 else digits(n / 10)+[n %% 10]

def rabbit(limit):
    return sorted(set([sum(digits(n)) for n in [k *9 for k in range(limit)]]))


rab = """\
def sum_digits(number):
  result = 0
  while number:
    digit = number %% 10
    result += digit
    number /= 10
  return result

def rabbit(limit):
    return sorted(set([sum_digits(n) for n in [k *9 for k in range(limit)]]))


import timeit

print "convert to string with map", timeit.timeit(foo % 100, number=10000)
print "convert to string with list comprehension", timeit.timeit(bar % 100, number=10000)
print "modulo, division, recursive", timeit.timeit(rac % 100, number=10000)
print "modulo, division", timeit.timeit(rab % 100, number=10000)
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Use the body of this loop to do whatever you want to with the digits

for digit in map(int, str(my_number)):
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I have made this program and here is the bit of code that actually calculates the check digit in my program

    #Get the 10 digit number
    number=input("Please enter ISBN number: ")

    #Explained below
    no11 = (((int(number[0])*11) + (int(number[1])*10) + (int(number[2])*9) + (int(number[3])*8) 
           + (int(number[4])*7) + (int(number[5])*6) + (int(number[6])*5) + (int(number[7])*4) +
           (int(number[8])*3) + (int(number[9])*2))/11)

    #Round to 1 dp
    no11 = round(no11, 1)

    #explained below
    no11 = str(no11).split(".")

    #get the remainder and check digit
    remainder = no11[1]
    no11 = (11 - int(remainder))

    #Calculate 11 digit ISBN
    print("Correct ISBN number is " + number + str(no11))

Its a long line of code, but it splits the number up, multiplies the digits by the appropriate amount, adds them together and divides them by 11, in one line of code. The .split() function just creates a list (being split at the decimal) so you can take the 2nd item in the list and take that from 11 to find the check digit. This could also be made even more efficient by changing these two lines:

    remainder = no11[1]
    no11 = (11 - int(remainder))

To this:

    no11 = (11 - int(no11[1]))

Hope this helps :)

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Similar to this answer but more a more "pythonic" way to iterate over the digis would be:

while number:
    # "pop" the rightmost digit
    number, digit = divmod(number, 10)
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Answer: 165

Method: brute-force! Here is a tiny bit of Python (version 2.7) code to count'em all.

from math import sqrt, floor
is_ps = lambda x: floor(sqrt(x)) ** 2 == x
count = 0
for n in range(1002, 10000, 3):
    if n % 11 and is_ps(sum(map(int, str(n)))):
        count += 1
        print "#%i: %s" % (count, n)
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Just assuming you want to get the i-th least significant digit from an integer number x, you can try:


I hope it helps.

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How about a one-liner list of digits...

ldigits = lambda n, l=[]: not n and l or l.insert(0,n%10) or ldigits(n/10,l)
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use // for int division...on Py3k / returns a float. –  st0le Sep 14 '10 at 6:09
@st0le: I don,t use p3k, no numpy & no psyco = p3k sucks. –  Lord British Sep 14 '10 at 14:26

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