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I'm trying to learn how to program and I'm running into a problem....

I'm trying to figure out how to make sure someone inputs a number instead of a string. Some related answers I found were confusing and some of the code didn't work for me. I think someone posted the try: function, but it didn't work, so maybe I need to import a library?

Here's what I'm trying right now:

Code:

print "Hi there! Please enter a number :)"
numb = raw_input("> ")

if numb != str()
    not_a_string = int(next)
else:
    print "i said a number, not a string!!!"

if not_a_string > 1000:
    print "You typed in a large number!"

else:
    print "You typed in a smaller number!"

Also I have another question while I'm asking. How can I make it so it will accept both uppercase and lower case spellings? In my code below, if I were to type in "Go to the mall" but with a lowercase G it would not run the if statement because it only accepts the capital G.

print "What would you like to do: \n Go to the mall \n Get lunch \n Go to sleep"
answer = raw_input("> ")

if answer == "Go to the mall":
    print "Awesome! Let's go!"
elif answer == "Get lunch":
    print "Great, let's eat!"
elif answer == "Go to sleep":
    print "Time to nap!"
else:
    print "Not what I had in mind...."

Thanks. ^^

Edit: I'm also using python 2.7 not 3.0

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You may want to avoid using comparisons such as if numb != str() because you are comparing an empty string to the input. Also,always remember that raw_input() will convert your input to string. –  Antony Thomas Jul 31 '12 at 3:39

3 Answers 3

up vote 4 down vote accepted

You can do something like this:

while True: #infinite loop
   ipt = raw_input(' Enter a number: ')
   try:
      ipt = int(ipt)
      break  #got an integer -- break from this infinite loop.
   except ValueError:  #uh-oh, didn't get an integer, better try again.
      print ("integers are numbers ... didn't you know? Try again ...")

To answer your second question, use the .lower() string method:

if answer.lower() == "this is a lower case string":
   #do something

You can make your string comparisons really robust if you want to:

if answer.lower().split() == "this is a lower case string".split():

In this case, you'll even match strings like "ThIs IS A lower Case\tString". To get even more liberal in what you accept, you'd need to use a regular expression.

(and all this code will work just fine on python2.x or 3.x -- I usually enclose my print statements in parenthesis to make it work for either version).

EDIT

This code won't quite work on python3.x -- in python3, you need to change raw_input into input to make it work. (Sorry, forgot about that one).

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Awesome it worked great! I have a question. When you wrote except ValueError: why did you write print string in brackets ("String here") instead of just in quotes? Is it just preference? I just tried it and it worked both ways. Edit: Oh yea, thanks! –  Danielle Jul 31 '12 at 3:12
    
@Danielle: In Python 2, both ways mean the same thing. In Python 3, the parentheses are required when using print. Many people write print() with parentheses now just so it will work in both cases. –  Greg Hewgill Jul 31 '12 at 3:14
    
@Danielle -- Greg Hewgill is right. Note that while print("foo") and print "foo" are the same in python2, print("foo","bar") is different than print "foo","bar" (one creates a tuple whereas the other doesn't) –  mgilson Jul 31 '12 at 3:25

First,you should ask only one question per post.

Q1: use built-in .isdigit()

if(numb.isdigit()):
    #do the digit staff

Q2:you can use string.lower(s) to solve the capital issue.

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s.isdigit() doesn't work for strings like "-100" (I had this pointed out to me the other day). This is really one great example why EAFP works nicely in python compared to LBYL. –  mgilson Jul 31 '12 at 3:32

you may try


    numb = numb.strip()
    if numb.isdigit() or (numb[0] in ('+', '-') and numb[1:].isdigit():
        # process numb

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