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for some reason when the game reaches gold room it doesn't work right. when i enter any number i get the death message 'man, learn to type a number'

thanks

from sys import exit

def gold_room():
    print 'this room is full of gold, how much do you take?'

    next = raw_input('> ')
    if '0' in next or '1' in next:
        how_much = int(next)
    else:
        dead('man, learn how to type a number')


    if how_much < 50:
        print 'nice! your not too greedy. you win!'
        exit(0)
    else:
        dead('you greedy bastard!')


def bear_room():
    print 'there is a bear here.'
    print 'the bear has a bunch of honey'
    print 'the fat bear is in fromt of another door'
    print 'how are you going to move the bear?'
    bear_moved = False


    while True:
        next = raw_input('> ')

        if next == 'take honey':
            dead('the bear looks at you then pimp slaps you in the face')
        elif next == 'taunt bear' and not bear_moved:
            print 'the bear has moved from the door now. you can go through.'
            bear_moved = True
        elif next == 'taunt bear' and bear_moved:
            dead('the bear gets pissed off and chews your crotch off')
        elif next == 'open door' and bear_moved:
            gold_room()
        else:
            print 'i have no idea what that means.'


def bolofumps_room():
    print 'here you see the great evil bolofump'
    print 'he, it whatever stares at you and you go insane'
    print 'do you flee for your life or eat your head?'

    next = raw_input('> ')
    if 'flee' in next:
        start()
    elif 'head' in next:
        dead('well, that was tasty!')
    else:
        bolofumps_room()

def dead(why):
    print why, 'good job!'
    exit(0)


def start():
    print 'you are in a dark room'
    print 'there is a door to your left and right'
    print 'which one do you take?'

    next = raw_input('> ')

    if next == 'left':
        bear_room()
    elif next == 'right':
        bolofumps_room()
    else:
        dead('you stumble around the room until you starve to death')


start()

EDIT: typing one works, but 2 does not

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1  
What output do you get when you put print next before the if statement in the gold_room function? –  GWW Mar 14 '11 at 15:13
    
@GWW it prints the number i enter, then proceeds to the death message –  neil Mar 14 '11 at 15:18
    
it's confusing, why is the if how_much < 50: part there if it kills you for entering more than 1? –  neil Mar 14 '11 at 15:27
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3 Answers

up vote 6 down vote accepted

You do this in gold_room:

next = raw_input('> ')
if '0' in next or '1' in next:
    how_much = int(next)
else:
    dead('man, learn how to type a number')

it checks only if '0' in next or '1' in next, so it's not really surprising that '2' does not work, right?

What you want goes along these lines

next = raw_input('> ')
try:
    how_much = int(next)
except ValueError:
    dead('man, learn how to type a number')

Doing this without exceptions is possible too, but please keep in mind that avoiding something as important and fundamental as exceptions is a really bad idea. I hope the book at least makes that clear later.

Anyways, so we know that int accepts only digits, so we simply check just that:

if next.isdigit():
    how_much = int(next)
share|improve this answer
    
oh yes extra credit says this:The gold_room has a weird way of getting you to type a number. What are all the bugs in this way of doing it? Can you make it better than just checking if “1” or “0” are in the number? Look at how int() works for clues. –  neil Mar 14 '11 at 15:22
    
but i doubt i am meant to use try since the book hasn't even covered that yet –  neil Mar 14 '11 at 15:23
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If you consider what you should know at this moment in the tutorial, which consist of

  • parse arguments
  • read user inputs
  • using if/loop/while,
  • functions,
  • print
  • list and it's specific functions

you cannot use the magic functions like catching errors and or using "isdigit()".

By trying in an other example, I found that using "sorted" on a string, separates all the characters, and I will use that here.

What I thought about, my definition of a number will be "a string that contains only characters from 0 to 9". It's enough for the need of the exercise.

So my way was to remove all the digits from the input and check if it ended being empty. If it the case, it is an int, else if there are characters remaining, it is not.

def remove_all_occurences(char_list, item):
    value = "%d" % item  # convert to string
    while char_list.count(value) != 0:
        char_list.remove(value)
    return char_list


def is_int(input):
    """Personnal function to test if something is an int"""
    # The sort separates all the characters of the list
    characters_list = sorted(input)

    for num in range(0,10):
        characters_list = remove_all_occurences(characters_list, num)
    return len(characters_list) == 0
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next is a built-in Python function, so you would want to avoid naming variables after it... Might not be the cause of your problem, but try changing the name of that variable.

share|improve this answer
    
The documentation disagrees with you. –  Joachim Sauer Mar 14 '11 at 15:16
    
1  
You previously mentioned "keyword" in your answer. And a built-in function on some type doesn't prevent him from using that name. It should be changed to avoid confusion, however. –  Joachim Sauer Mar 14 '11 at 15:21
    
Not just to avoid confusion... It will also cause errors if it happens not to be defined (as a variable), or if you actually need to use next() and have used it as a variable instead... For instance, you would never use int as a variable name, although you could... –  Benjamin Mar 14 '11 at 15:25
    
thanks benjamin, i will remember that next time. –  neil Mar 14 '11 at 20:42
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