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I am having trouble with if statements in python. I am making a "game" entirely in dolan speak, excuse the spelling, it meant to be humorous manner. Sorry.

Here is the code:

import time

def menu():
    print ("dogz r a supar hahrd tin 2 matsr it tak yrs 2 mastr ut u nw git 2 exprince it. pik a tin 2 du:\n")
    menu = raw_input("1.)Ply Da Dogi gam\n2.)Halp\n")

    if menu == 1:
        game()

    if menu == 2:
        helpGame()

    if menu < 2:
        print ("dat not 1 ur 2 sry")
        time.sleep(1)
        menu()

def game():
    print ("nuw u ply mi gme u lke it")

def helpGame():
    print ("dis da halp u liek it")
menu()

That doesn't work for me, and I have never had direct function calling work inside of if statements and I have had to implement "seg-ways" which call the function.

Does this work for any of you? Is it possible it is my Python installation? Thanks!

marked as duplicate by Aran-Fey python Sep 8 '18 at 16:54

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

  • 4
    That doesn't work for me - you need to be more detailed than that. It's worth pointing out that raw_input returns a string - and that you probably want int(..) and that... if menu < 2 will also execute if menu == 1... Think about using elif statements if criteria should be mutually exclusive... Other than that - not sure what else you're after... – Jon Clements Jul 16 '13 at 23:17
  • 1
    As a side note, calling menu recursively from menu like this is generally a bad idea. It's better to write this as a loop, which you break or return on a valid answer, instead of as a function that calls itself on an invalid answer. – abarnert Jul 16 '13 at 23:49
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raw_input() returns a string, you are using a number in your if statements, change this line:

menu = raw_input("1.)Ply Da Dogi gam\n2.)Halp\n")

to this:

menu = int(raw_input("1.)Ply Da Dogi gam\n2.)Halp\n"))

You will want to look in dealing with error conditions next though.

  • Thanks! I taught myself python and did not know this. Such a life savor! (Side note, I just made the if statement if menu == "1"...It works just fine.) Cheers mate! – Mr Blade Jul 16 '13 at 23:25
  • You are doing the opposite by changing the comparison from int to string, but this won't work for the if menu < 2, which is why I went with the int() approach :) – Jason Sperske Jul 16 '13 at 23:27
  • @JasonSperske: Actually, "1" < "2" is just as true as 1 < 2, so that's not a problem. But that doesn't mean there isn't a problem: as soon as you get to 9 entries, "10" < "9" is also true, and you probably don't want that… Obviously your approach is better, it's just a matter of explaining why it's obvious. :) – abarnert Jul 16 '13 at 23:47
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As you add more options, the if statements get unwieldly. Try out this dictionary based structure instead.

def menu():
    print ("dogz r a supar hahrd tin 2 matsr it tak yrs 2 mastr ut u nw git 2 "
           "exprince it. pik a tin 2 du:\n")
    prompt = "1.)Ply Da Dogi gam\n2.)Halp\n"
    {'1': game, '2': helpGame}.get(raw_input(prompt), menu)()
  • I think it would be clearer (at least to a novice) to put the function-table dict into a variable instead of calling methods on a literal, and probably also to leave the result of raw_input in a variable. – abarnert Jul 16 '13 at 23:48

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