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Either this is a bug, or I'm about to learn something new about how Python behaves. :)

I have a dictionary filled with key/value pairs. Each key has a unique prefix, ias_XX_XX_. I'm attempting to get a list of every unique prefix in the dictionary.

  1. First I get a list of all keys which end in '_x1'.
  2. Next, I strip '_x1' from all of them using rstrip('_x1').

This works fine for all of them, except for the last one, ias_1_1_x1. Instead of being stripped to ias_1_1, it becomes ias_. Run the code to see for yourself:

d = {
'ias_16_10_x2':     575, 
'ias_16_10_x1':     0, 
'ias_16_10_y1':     0, 
'ias_16_10_y2':     359,
'ias_16_9_x2':      575, 
'ias_16_9_x1':      0, 
'ias_16_9_y1':      18, 
'ias_16_9_y2':      341, 
'ias_1_1_y1':       0, 
'ias_1_1_y2':       359,  
'ias_1_1_x2':       467, 
'ias_1_1_x1':       108,
}

x1_key_matches = [key for key in d if '_x1' in key]
print x1_key_matches

unique_ids = []
for x1_field in x1_key_matches:
    unique_ids.append(x1_field.rstrip('_x1'))

print unique_ids

Actual Output: (Python 2.6, 2.7, and 3.2 (must change print to print() for 3.x to work))

['ias_16_10_x1', 'ias_16_9_x1', 'ias_1_1_x1']
['ias_16_10', 'ias_16_9', 'ias']   # <<<--- Why isn't this last one ias_1_1???

Expected Output:

['ias_16_10_x1', 'ias_16_9_x1', 'ias_1_1_x1']
['ias_16_10', 'ias_16_9', 'ias_1_1']

If I change the key's name from ias_1_1 to something like ias_1_2, or ias_1_3, the glitch doesn't occur. Why is this happening?

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In retrospect, it might have been more correct and less confusing if the argument of rstrip were a set instead of a list. But sets were added later to Python. –  Peter Eisentraut Jun 25 '11 at 19:01
2  
You could always just slice off the final three characters: uids = [key[:-3] for key in d if key.endswith("_x1")]. Note that endswith is not the same as the test you have run. –  katrielalex Jun 25 '11 at 19:08
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5 Answers

up vote 19 down vote accepted

The parameter to rstrip() is a set of characters to be stripped, not an exact string:

>>> "abcbcbaba".rstrip("ab")
"abcbc"

General hint: If you suspect a bug in some function, read its documentation.

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6  
Ah ha! RTFM for me! :) –  Dave Gallagher Jun 25 '11 at 18:20
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From the docs, emphasis added:

The chars argument is a string specifying the set of characters to be removed. If omitted or None, the chars argument defaults to removing whitespace. The chars argument is not a suffix; rather, all combinations of its values are stripped.

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.rstrip's parameter isn't the string which we want to strip, it's the characters we want to strip. Check that examples:

>>> "12345678".rstrip("158")
'1234567'
>>> "12345678".rstrip("asd8qwe")
'1234567'
>>> "12345678".rstrip("78")
'123456'
>>> "1234568788".rstrip("78")
'123456'
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.rstrip() removes all combinations of matching characters, not the actual string you provide. See http://docs.python.org/library/stdtypes.html.

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Try this out instead:

unique_ids.append(re.sub('_x1$', '', x1_field)
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3  
Thanks. I ended up using unique_ids.append(x1_field.rsplit('_x1', 1)[0]). Any benefits to using your regex solution instead? –  Dave Gallagher Jun 25 '11 at 18:39
    
Not really. Premature optimization maybe? :) But I don't know which one is the fastest. –  André Laszlo Jun 25 '11 at 18:42
3  
But I must admit that I like your solution more... and based on some very quick testing, it seems to be at least twice as fast as the re one. Note to self: stop relying on regular expressions for everything. –  André Laszlo Jun 25 '11 at 18:53
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