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I've been going through a beginning Python book, and I've been trying to write a small block of code that will take users input, check to make sure it can be converted to an int and check if it's higher than 49152.

I know there's an easier way to do this, but I can't get my mind to figure it out.

port_input = raw_input("port(number must be higher than 49152: ")

check = True
while check == True:
    check = False
    try:
        port_number = int(port_input)
    except:
        port_input = raw_input("port(number must be higher than 49152: ")
        check = True

while int(port_input) < 49152:
    port_input = raw_input("Please enter a higher number(hint: more than 49152): ") 
share|improve this question
    
I'll put it here for you and for all answerers: except: is considered harmful except (no pun intended, really) in a few circumstances not met here. –  delnan Feb 25 '11 at 16:17
    
@delnan: Good point, and related: `except' should be for exceptions, not errors that can occur regularly. –  payne Feb 25 '11 at 16:23
    
@payne: EAFP is common, accepted and encouraged by the standard library (if you want to validate a stringly typed int without converting it to one via int and catching an exception, you have to roll the regex yourself or go with str.isdigit and disallow signs) in Python. –  delnan Feb 25 '11 at 16:27

7 Answers 7

up vote 3 down vote accepted

What you have isn't functionaly correct anyway. Consider if someone puts "123" then "abc". The 123 will get them through the while check block, but when they get to the while < 49152 block there's no checking.

Here's what I come up with (I don't do python, I just hacked it in based on your existing code...)

check = True
while check :
    port_input = raw_input("port(number must be higher than 49152: ")
    try:
        port_number = int(port_input)
        check = (port_number < 49152)
    except ValueError:
        check = True
share|improve this answer
6  
1  
@nmichaels Good point. Like I said, I just copied his code and tweaked it. I'll edit that in, because it's a good point that goes with all languages! ... fixed! –  corsiKa Feb 25 '11 at 16:15
    
:o) Hooray for improving on newbies' code! –  nmichaels Feb 25 '11 at 16:17
1  
For someone who doesn't do Python that's pretty good :-) Two small points though - a plain 'except:' is very bad form, it should be 'except ValueError:' so you only catch the exception you're interested in and don't mask ones you weren't expecting. I would also move "check = (port_number < 49152)" to an "else:" clause on the try/except so it's clear that the ValueError you're catching comes from the int(port_number) –  Andrew Wilkinson Feb 25 '11 at 16:17
    
thank you so much for that. I hadn't put much thought into make it fully functional, as it was just a passing thought I had while studying Python. But I knew there had to be a more efficient way to write it. –  user594044 Feb 25 '11 at 17:08
def get_input(msg = "port(number must be higher than 49152: "):
    port_input = raw_input(msg)
    try :
        if int(port_input) < 49152:
            return get_input("Please enter a higher number(hint: more than 49152): ")
    except ValueError:
        return get_input()
    return int(port_input)
share|improve this answer
    
Lacks a return. And I'm not sure if recursion is particular approrpiate here... –  delnan Feb 25 '11 at 16:16
    
Shouldn't it be return get_input() so you don't lose the return value? I'm not a python guy so it might not be necessary, it's just what pops in my head. If it does work like you describe, would you mind explaining how? Thanks! :D –  corsiKa Feb 25 '11 at 16:17
    
I forgot the return! Recursion is hard for me. –  Fábio Diniz Feb 25 '11 at 16:24
    
It wasn't even in a function, it was just a single block of code I was running. It's not something I will use, just a problem I thought of and wanted to solve. –  user594044 Feb 25 '11 at 17:08
1  
@fabio An interesting thought, but the recursion stack will eventually overflow. What if a user NEVER enters the correct answer? Should the program stack-overflow when it doesn't have to? :O –  corsiKa Feb 25 '11 at 17:40

I tried to avoid code duplication and make things a bit more pythonic with this rendition. Notice that I do not 'except:' but instead specifically catch ValueError. Often people forget that 'except:' also catches the SyntaxError exception which can make hunting down a stupid typo extremely frustrating. I assumed the port number here is a TCP or UDP port number and thus make sure it is also less than 65536.

have_valid_input = False

while not have_valid_input:
    unsafe_port = raw_input('port: ')
    try:
        port_number = int(unsafe_port)
    except ValueError:
        pass
    else:
        if port_number > 49152 and port_number < 65536:
            have_valid_input = True

    if not have_valid_input:
        print 'Invalid port'

print 'port', port_number
share|improve this answer
    
Your example prints Invalid port even when the result is good on the first try. –  André Caron Feb 25 '11 at 16:29
n = 0

while n < 49152:
    try:
        n=int(raw_input("enter number heghier than 49152->"))
    except: 
        print "not integer!"

print "ok!"
share|improve this answer

variant without using exception handling

def portInput(text):
    portInput.port_value = 0
    while True:
        port_input = raw_input(text)
        if not port_input.isdigit(): yield "port must be numeric"
        else:
            portInput.port_value = int(port_input)
            if portInput.port_value <= 49152: yield "number must be higher than 49152"
            else: return

for error in portInput("port(number must be higher than 49152): "):
    print error

print "entered port: %d" % portInput.port_value
share|improve this answer
    
Despite having the most upvotes on my answer, I really like this one. Avoiding exceptions when you can is a good thing! –  corsiKa Feb 25 '11 at 17:40

You can avoid the check flag if you wrap your code in a function:

def get_port():
    while True:
        port =  raw_input("port (number must be higher than 49152): ")
        try:
            port = int(port)
        except ValueError:
            continue
        if port > 49152:
            return port
share|improve this answer
port = raw_input("port(number must be higher than 49152): ")
while not port.isdigit() or int(port) <= 49152:
    print("port must be a number > 49152")
    port = input("port(number must be higher than 49152): ")

The int(port) call is only done when not port.isdigit() is False -> port contains of digits. This is because the second operand for the or operator is only evaluated if the first is False.

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