5

I am trying to write a function that return the biggest number formed by the digits from an input integer number. So if the input = 123584 output should be = 854321

My code is -

def maxNumber(inputNumber):
    x = len(str(inputNumber))
    max_number = []
    result= []
    while(x>0):
        max_number.append(inputNumber%10)
        inputNumber = inputNumber/10
        x -= 1
    while(x<(len(str(max_number)))):
        result.append(max(max_number))
        x += 1
    return result

print maxNumber(1238675)

and off-course the output is not as I want. Please help. I am eager to learn all possible way to do it.

4
  • It is not homework, but that's Ok, I learned few new things
    – Varun
    Jul 3, 2012 at 16:59
  • Erm ... only one answer handles negative numbers ;-) Jul 3, 2012 at 17:03
  • 2
    It could be an interesting challenge to implement this using pure arithmetic, without string functions. Anyone?
    – georg
    Jul 3, 2012 at 17:13
  • @thg435 Good point!! How could I have missed that challenge. Please see below :) Jul 3, 2012 at 21:09

5 Answers 5

8
def maxNumber(inputNumber):
    return int(''.join(sorted(str(inputNumber), reverse=True)))
7

The biggest number is formed by sorting the digits in descending order. This can be achived using the rverse=True parameter to sorted():

def max_digit_permutation(n):
    return int("".join(sorted(str(n), reverse=True)))
1
  • This is why I am learning Python as my first language..it teaches you a lot and very concise way
    – Varun
    Jul 3, 2012 at 16:58
5

This is more reliable than most answers given so far ;-)

def max_number(n):
    s = str(n)
    digits = sorted(s, reverse=n>0)
    return int(''.join(digits))

print max_number(231)    
print max_number(-231)    
print max_number(+231)    

And good point - I missed the option of doing it with number alone - here it is for completeness. :)

from math import *

def max_number(n):
    digit_count = int(log(abs(n+1),10)) + 1 
    digits = sorted([(n / 10 ** (x - 1) % 10)  for x in range(digit_count,0,-1) ], reverse=True)
    return reduce(lambda x, y:10*x + y, digits)

print max_number(1000)
print max_number(999)
print max_number(2345128)
print max_number(231) 
2
  • There are two big problems with that: first, floating-point numbers fundamentally are not decimal numbers; and second, you'll always want to put the decimal point at the end after all the digits, so it's not even an interesting problem. Jul 3, 2012 at 17:12
  • The big number should only be formed by the digits, as written in the question. The sign should not be included. Jul 3, 2012 at 17:12
2

sort the string of number, reverse it, join it and convert to int

>>> x=123584
>>> int(''.join(sorted(str(x))[::-1]))
854321
3
  • [::-1] can be nasty on memory if the number is huge Jul 3, 2012 at 16:57
  • Oh, wow, it's is easy, and I am not getting it..time to put more efforts :)
    – Varun
    Jul 3, 2012 at 16:57
  • 3
    @Varun to be honest this kinda one line stuff comes from knowing the language very well, its often better to learn the long way first. Jul 3, 2012 at 16:57
1

You could just treat the number as a list of single digits and then sort the list in decreasing order.

What about something like this:

num = str(123584)
int(''.join(sorted(num, reverse=True)))

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