-3

Here is my little program: from a set of letters it creates all possible strings.

Problem: I want it to stop after I get the list, PyCharm waits me to press stop button.

import random

liste = []
char_list = ['a', 'b', "c", "d"]

while True:

    random.shuffle(char_list)
    n = ''.join(char_list)

    if n in liste:
        continue
    elif n not in liste:
        print(''.join(char_list))
        liste.append(n)
    else:
        break

Why is this program did not stops after gives the list ?

8
  • What's in liste after the first iteration? (Hint: put print(liste) right after while True) – GPhilo Jan 24 '20 at 14:36
  • 3
    What is the case where it hits else? – C.Nivs Jan 24 '20 at 14:37
  • 1
    Go through the code line by line and ask yourself what you want it to do vs. what you're telling it to do. – Michael Bianconi Jan 24 '20 at 14:37
  • 3
    It doesn't end because you made it impossible to end. Either the item is in the list or not – roganjosh Jan 24 '20 at 14:40
  • loop is running infinitely in your program because the break in your else block will never run – Sheri Jan 24 '20 at 14:42
6

It never stops because of your conditions.

    # If n is in liste...
    if n in liste:
        continue
    # Otherwise, if n not in liste...
    elif n not in liste:
        print(''.join(char_list))
        liste.append(n)
    # Will never happens, because either n is or is not in liste...
    else:
        break
5
  • 1
    char_list will never be empty. Instead, calculate how many possible combinations you can make (hint: 5! = 120) and elif len(liste) == 120: break – Karl Anka Jan 24 '20 at 14:49
  • The original question was edited, that goal wasn't mentioned at first. – Jordan Brière Jan 24 '20 at 14:52
  • with this code it is not give me all all possible strings. Just dcba adbc bcda dabc – onurhanozer Jan 24 '20 at 14:56
  • It doesn't. Your original question wasn't mentioning that goal. Look at Sheri's answer, it should cover your new goal. – Jordan Brière Jan 24 '20 at 14:58
  • Well, I want to get all possible strings. I get it with my code. But program did not stop after work. it gives cbda abcd dbca adcb dbac acdb acbd bcad bcda bdac dacb dabc abdc bdca cabd cdba adbc cdab dcab cadb dcba bacd cbad badc But after this it is goes infinitely loop – onurhanozer Jan 24 '20 at 15:00
3

You never reach the else. Either n is in the list, or it's not. S once you have all the permutations of the characters in your list, the first if-condition is always true und you continue running through it until infinity.

If you want all combinations, do this:

from itertools import permutations;
liste = [''.join(x) for x in permutations('abcde')]
2

As been pointed out earlier your program never stops because the else statement will never happen. Rather you want to stop when you have created all combinations. Using 4 different characters you can create 24 distinct permutations (combinations where order matters). So stop when len(liste) == 24.

import random
import math

liste = []
char_list = ['a', 'b', "c", "d"]
possible_combinations = math.factorial(len(char_list))    

while True:

    random.shuffle(char_list)
    n = ''.join(char_list)

    if n in liste:
        continue
    elif n not in liste:
        print(''.join(char_list))
        liste.append(n)
    elif len(liste) == possible_combinations:
        break

And as someone else pointed out, use itertools.permutations if this is for something else than homework.

3
  • Can't it find 120 number it self and stops software ? – onurhanozer Jan 24 '20 at 15:04
  • @onurhanozer see my updated answer. Use math.factorial(n) to calculate number of possible permutations for a list of lenght n. – Karl Anka Jan 24 '20 at 15:07
  • You don't need a loop. The standard library has functions for stuff like this. itertools.permutations is exactly what you want. – LukasNeugebauer Jan 24 '20 at 15:14
0

This looks like a job for itertools.product. If you want to generate combinations of character from your char_list so you can try this approach:

from itertools import product

char_list = ['a', 'b', "c", "d"]
combs = [''.join(comb) for comb in product(char_list, repeat=len(char_list))]
print(combs)
2
  • hmm, this is gives an array, can i get it like list ? – onurhanozer Jan 24 '20 at 15:08
  • This gives you a list, but it includes combinations like "dddd" which is not what you want I guess. – LukasNeugebauer Jan 24 '20 at 15:11

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