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I need to do a try block on open but I want my variable to be available externally:

inputFile = null #This is the line that I don't know how to write
try:
    inputFile = open( sys.argv[0] )
except IOError as e:
    print "ERROR: Could not open " + sys.argv[0]

#use inputFile here
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1  
In python, the equivalent to null is None –  Ruben Bermudez Mar 14 '14 at 17:47
4  
try and except are not scopes. Variables you declare within them are available to the rest of your scope. –  roippi Mar 14 '14 at 17:48

2 Answers 2

up vote 2 down vote accepted

You don't need to declare the variable, Python uses function scope. A variable declared in the try block will automatically be available afterwards if the assignment was executed without any exception:

Case 1: No Exception

try:
    inputFile = open( sys.argv[0] )
except IOError as e:
    print "ERROR: Could not open " + sys.argv[0]
# inputFile is opened file

Case 2: Exception

try:
    inputFile = open( sys.argv[0] )
except IOError as e:
    print "ERROR: Could not open " + sys.argv[0]
# inputFile is not defined
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this is ONLY true if, in the try block, an exception wasn't raised before the variable in question. –  acushner Mar 14 '14 at 17:57
    
That's right, I've added that clarification. –  Ric Mar 14 '14 at 18:14

Use with.

try:
    with open(sys.argv[0]) as f:
        # operate on the file
except IOError as e:
    # handle the exception
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1  
So it sounds like try isn't actually a scope so I really have a non-question, but is there a reason why with open( sys.argv[0] ) as inputFile is better than inputFile = open( sys.argv[0] )? –  Jonathan Mee Mar 14 '14 at 17:53
1  
While usually good advice, this isn't necessarily applicable. The with statement restricts the use of the file handle, so you couldn't, for instance, return the open file handle to a calling function. –  chepner Mar 14 '14 at 17:53

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