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#Hex Check
def Check():
    while False:
        for char in UserInput:
            if char not in Valid:
                print ('That is an invalid hex value.')
        print('That is a valid hex value.')
        return Check

UserInput=input('Enter a hex number: ')
Valid='1''2''3''4''5''6''7''8''9''10''A''B''C''D''E''F'

EDIT: I've tried this. When I enter a hex value e.g. B2 no message comes up.

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There are no invalid combinations of hexadecimal digits, just as there are no invalid combinations of decimal digits. You just have to check if all the characters in the user input are members of the set {0-9, A-F} –  Joel Cornett Mar 12 '12 at 18:44
    
The reason your code doesn't work is because your Check() function is never called. –  Joel Cornett Mar 12 '12 at 19:01
    
Would I call it in a print statement? –  user1248367 Mar 12 '12 at 19:06
    
Please explain exactly what you want your script to do. Do you want the user to input a value and tell the user whether it is a valid hex number? Do you want the program to keep asking until it receives a valid hex number? –  David Robinson Mar 12 '12 at 19:07
    
You already have print statements within check() so that's not necessary. Just insert the line Check() after` UserInput = ..., or if you plan on doing something with the user input after the check, insert someVariable = Check()` instead. –  Joel Cornett Mar 12 '12 at 19:10

5 Answers 5

Change line 6 to

Hex=int(input('Enter a hex number: '), 16)

This line would successfully parse any hexadecimal input (for example, '0x123f') and would throw a ValueError on an invalid input (such as 'hello').

ETA: Based on your comments, the following is all you need:

user_input = input('Enter a hex number: ')
try:
    hexval = int(user_input, 16)
    print 'That is a valid hex value.'
except:
    print 'That is an invalid hex value.'

ETA: If you really have to have a Check function, this structure would be the best way to do it:

import re

def Check(s):
    """Check if a string is a valid hexadecimal number"""
    # code for checking if it is a valid hex number here

user_input = raw_input("Enter a hex number: ")
if Check(user_input):
    print 'That is a valid hex value.'
else:
    print 'That is an invalid hex value.'

Since this is a homework question I'm not going to finish the answer- just know that the Check function has to return True if the string is a valid hex statement or False if the string is not.

There are many ideas among everyone's answers of how to do it, and you could indeed use a try/except statement like I do above. One of the best ways to do it would be to use regular expressions, which are a very powerful way to parse strings.

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If the question specifically asks for a hex number, I would explicitly use base 16 in the call to int(). –  Greg Hewgill Mar 12 '12 at 18:28
    
Good point, fixed –  David Robinson Mar 12 '12 at 18:28
    
I use a newer version of python which doesn't use raw input, just input –  user1248367 Mar 12 '12 at 18:42
    
And upon running it, no input message appears unless I type Check() –  user1248367 Mar 12 '12 at 18:45
1  
Good answer, didn't know this functionality of int(). +1 –  machine yearning Mar 12 '12 at 19:06

Investigate the regex library. Or do explicit cast to int then catch any errors and process them accordingly.

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How about an example? –  octopusgrabbus Jul 19 '12 at 20:48

The only valid values for hex strings are 0-9, A-F . It should be possible to store these values in a list / array and then do a simple contains call. Something along the lines of this:

  for char in userInput:  
      if not char in validTokens:  
          print 'invalid hex value'
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What about the 0x at the start? –  David Robinson Mar 12 '12 at 18:31
1  
User shouldn't have to supply it. –  Woot4Moo Mar 12 '12 at 18:32
    
I've used something similar although I have changed "if not char in" to "if char not in" because it sounds more logical in English, but is it correct? –  user1248367 Mar 12 '12 at 19:01
    
yes that should work, it needs a negation on membership. –  Woot4Moo Mar 12 '12 at 19:13

Here is a nice, Python way to check your input for a valid hex number.

def Check():
    while not Valid:
        try:
            Hex=int(raw_input('Enter a hex number: '), 16)
            print('That is valid.')
            return True
        except ValueError:
            print('That is an invalid entry.')
            return False
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I am answering this question from a Python philosophy point of view, because you have already received good answers, some of them involving try: .. except.

The Pythonic thing about using exception handling try: .. except is the way Python programmers seem to be encouraged to use it is, at least for me, a departure from exception handling in other languages.

In Python, you are encouraged to raise an exception, either explicitly using raise or more implicitly within the construct of try .. except.

When I posed a question a while back about how to deal with null integer values in a .csv file, I was encouraged to go ahead with the assignment to the Python integer variable within try: .. except, instead of testing first to test to see if the value was null.

The answer went on to say don't bother to test and then take action, use exception handling, because it is more Pythonic. Using try: .. except also appeared to consume fewer instructions.

That attitude got me to write more exception handling than I would have thinking using try: .. except was reserved only for when bad things happen.

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