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This snippet of code was supposed to generate a random number which represents a question. The number generator generates numbers from 1 through 10. But if the number is not in the list of numbers "numlist" it is supposed to generate another number. This is supposed to make it so that the program won't ask the same question twice. using numlist.remove() did not work for this purpose. What will work? Or, what is a better method.

Also, I want to know how to make it so that there is less repetition in the code (loop?).

def roll():
    var = random.randint(1,10)
    if var not in numlist:
        roll()

    elif var == 1:
        numlist.remove(1)
        q1()
    elif var == 2:
        numlist.remove(2)
        q2()
    elif var == 3:
        numlist.remove(3)
        q3()
    elif var == 4:
        numlist.remove(4)
        q4()
    elif var == 5:
        numlist.remove(5)
        q5()
    elif var ==6:
        numlist.remove(6)
        q6()
    elif var == 7:
        numlist.remove(7)
        q7()
    elif var == 8:
        numlist.remove(8)
        q8()
    elif var == 9:
        numlist.remove(9)
        q9()
    elif var == 10:
        numlist.remove(10)
        q10()
share|improve this question
    
How about just numlist.remove(var)? –  David Robinson Jan 21 '13 at 0:56
1  
But there is also the q*() –  drum Jan 21 '13 at 0:56
    
What doesn't work? –  Volatility Jan 21 '13 at 0:57
    
will you always end up using all 10 questions, just in a random order? –  monkut Jan 21 '13 at 0:58
    
Why are there 10 functions with almost the same name? I bet if you showed them there is some way to combine them into one –  David Robinson Jan 21 '13 at 1:11

5 Answers 5

up vote 1 down vote accepted

Keeping one function per question is not a good strategy. What if you want to change slightly how questions, hints and answers are given? You're going to change dozens or even hundreds of functions?

A much better approach is an object-oriented one- for example, where each question is an object of the Question class. For example:

class Question:
    def __init__(self, question, hints, answer):
        self.question = question
        self.hints = hints
        self.answer = answer

    def ask_question(self):
        print "Here is your question:"
        print self.question

    def give_hint(self):
        if len(self.hints) == 0:
            print "That's all the hints I have!"
        else:
            print self.hints.pop(0)

     def guess(self, guess):
        if guess == self.answer:
            print "You guessed correctly!"
        else:
            print "No, try again!"

Any behavior that you originally encapsulated in the question function (limiting the number of guesses, limited amount of time, displaying in a certain format, whatever) would all be handled by methods of the Question class. In the meantime, all the information specific to one question would be held in the data members (in this case question, hints and answers, although there could be other variables) that are specific to that question.

You would create a question like this:

q1 = Question("How many roads must a man walk down?", ["Think Douglas Adams.", "It's more than 40 and less than 50"], "42")

Or better yet, create them from a tab delimited file, where the file is something like:

How many roads must a man walk down?    Think Douglas Adams./It's more than 40 and less than 50    42

And they are created like:

questions = []
with open("questions.txt") as inf:
    for l in inf:
        question, hints, answer = l[:-1].split("\t")
        questions.append(Question(question, hints.split("/"), answer))

Then your main function would call methods of the Question, which encapsulate its question-asking behavior. This would keep you from ever having to repeat code (all the code exists only in one place: the methods of the Question object) and would keep all your questions in a flexible format.

share|improve this answer

You seem to use the numbers only for dispatching. The same result (calling each of 10 functions in random order) can be achieved without going through numbers first, like so:

import random

def roll():
    qs = [q1, q2, q3, q4, q5, q6, q7, q8, q9, q10]
    random.shuffle(qs)
    for q in qs:
        yield q

# ...

for rolled in roll():
    rolled()

By not invoking the q#() functions directly and instead yielding them, they can be invoked whenever it's convenient for the caller.

share|improve this answer
    
Another option is to repeatedly use random.choice to select a question and remove it. –  Karl Knechtel Jan 21 '13 at 3:00

What about:

def roll():
    var = random.randint(1,10)
    if var not in numlist:
        roll()
    else:
        numlist.remove(var)
        call_me = getattr(module, 'q%s'% var)
share|improve this answer
    
Unnecessary (and potentially catastrophic, although that's very unlikely) recursion. I'd use random.choice instead. –  DSM Jan 21 '13 at 1:00
    
@Trufa is right, you should rewrite q to be more generic, so its one function and not 10. –  Nix Jan 21 '13 at 1:01

I'm not sure if you can, but instead of having 10 functions q1()..q10 I would make a function that accepts a parameter this way:

def roll():
    var = random.randint(1,10)
    if var not in numlist:
        roll()
    else:
        numlist.remove(var)
        q(var)

You should also be checking if numlist is empty (just in case).

Also, there is a very unlikely chance that the random int is never the one in the list causing a stack overflow, with 10 ints very unlikely though, but if you want to make sure this can't happen you should:

make a list with the choices:

choices = range(1,11)

you should use choice to chose from that list:

var = random.choice(choices)

and then remove that choice:

choices.remove(var)
share|improve this answer

You can put all the functions in a list, shuffle the list and then pop out the result question function:

>>> import random
>>>
>>> l = [q1, q2, q3, q4, q5, q6, q7, q8, q9, q10]
>>> random.shuffle(l)
>>> qfunc = l.pop()
share|improve this answer

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