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How would I go about allowing a random.choice to pick an item from a list(once, twice, or three times) and then be removed from the list.

for example it could be 1-10 and the after the number 1 gets picked, no longer allow 1 to be picked until the program is reset

This is a made up example with colors and numbers replacing my words

colors = ["red","blue","orange","green"]
numbers = ["1","2","3","4","5"]
designs = ["stripes","dots","plaid"]

random.choice (colors)
if colors == "red":
    print ("red")
    random.choice (numbers)
    if numbers == "2":##Right here is where I want an item temporarily removed(stripes for example)
        random.choice (design)

I hope that helps, I'm trying to keep my actual project a secret =\ sorry for the inconvenience

Forgot to mention in the code, after red gets picked that needs to be removed as well

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  • 3
    Well, how would you go about it? Personally, I'd probably skip random.choice, and instead shuffle the list and then pop the last item off it, but show us what you have tried. – Henry Keiter Sep 19 '13 at 17:14
  • Maybe just keep track of the items you've chosen so far, and don't pick from there. The problem is that given large sets from which you've already chosen a large proportion of the items, it could a while to find an item that hasn't been chosen yet, using random numbers. – bbill Sep 19 '13 at 17:17
  • Popping the item off the list would only allow each item to be picked once correct? I'm looking for something like the number one could be drawn 3 times and then removed as not to be picked again – user2795843 Sep 19 '13 at 17:59
  • @user2795843 check out my modified answer – JadedTuna Sep 19 '13 at 18:31
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You can use random.choice and list.remove

from random import choice as rchoice

mylist = range(10)
while mylist:
    choice = rchoice(mylist)
    mylist.remove(choice)
    print choice

Or, as @Henry Keiter said, you can use random.shuffle

from random import shuffle

mylist = range(10)
shuffle(mylist)
while mylist:
    print mylist.pop()

If you still need your shuffled list after that, you can do as follows:

...
shuffle(mylist)
mylist2 = mylist
while mylist2:
    print mylist2.pop()

And now you will get an empty list mylist2, and your shuffled list mylist.

EDIT About code you posted. You are writing random.choice(colors), but what random.choice does? It choices random answer and returns(!) it. So you have to write

chosen_color = random.choice(colors)
if chosen_color == "red":
    print "The color is red!"
    colors.remove("red") ##Remove string from the list
    chosen_number = random.choice(numbers)
    if chosen_number == "2":
        chosen_design = random.choice(design)
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    It's sufficient to shuffle the list once, then keep popping... no need to keep shuffling it... You also don't need to check the length, just that it's truthy... shuffle(mylist); while(mylist): print mylist.pop() will be enough – Jon Clements Sep 19 '13 at 17:30
  • Thx, edited the answer – JadedTuna Sep 19 '13 at 17:32
  • oops - don't need the () around the while (mylist) either... sorry - was copying your example too closely :) – Jon Clements Sep 19 '13 at 17:33
  • Ooh, yeah. Sometimes I forget about the () too :) – JadedTuna Sep 19 '13 at 17:35
  • Bit of a newbie to python here, what exactly does while do? – user2795843 Sep 19 '13 at 18:04

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