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I am using Python 3. shelve is advertised in the documentation as a persistent version of dict. However, in my usage, it turns out that shelve does not allow tuples as keys, while dict does:

import shelve
def tryShelve():
    db = shelve.open("shelvefile")
    db["word1"] = 1
    db[("word1", "word2")] = 15

tryShelve()

produces this error:

Traceback (most recent call last):
  File "<pyshell#41>", line 1, in <module>
    tryShelve()
  File "<pyshell#40>", line 4, in tryShelve
    db[("word1", "word2")] = 15
  File "C:\Python32\lib\shelve.py", line 125, in __setitem__
    self.dict[key.encode(self.keyencoding)] = f.getvalue()
AttributeError: 'tuple' object has no attribute 'encode'
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1  
If your tuples are composed of simple data types like strings -- as shown in your example -- you might be able to just use their string representation as the key, like 'db[repr(("word1", "word2"))] = 15`. –  martineau Mar 20 '11 at 9:32

4 Answers 4

up vote 1 down vote accepted

It appears to me that shelve can't serialize tuples for writing to file.
Consider pickle as an alternative.

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Tuples don't work as keys in the Python 2.7.1 version of shelve either. The 2.7.1 documention suggests looking at the ActiveState Persistent dictionary recipe. Which I tested and it seemed to work using tuples as keys as shown in your example code with the 'csv' format, although not with the 'jason' format (and I didn't try 'pickle'). You'll understand what I mean by 'format' if you look at the recipe.

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The first paragraph in the shelve module documentation:

A “shelf” is a persistent, dictionary-like object. The difference with “dbm” databases is that the values (not the keys!) in a shelf can be essentially arbitrary Python objects — anything that the pickle module can handle. This includes most class instances, recursive data types, and objects containing lots of shared sub-objects. The keys are ordinary strings.

[emphasis mine]

yaml module allows tuples as keys:

>>> d = {}
>>> d["word1"] = 1
>>> d[("word1", "word2")] = 15
>>> import yaml
>>> yaml.dump(d)
'word1: 1\n? !!python/tuple [word1, word2]\n: 15\n'
>>> yaml.load(_)
{('word1', 'word2'): 15, 'word1': 1}
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thanks for the answer, I didn't read that paragraph very closely. When sehelve didn't work as anticipated, I just jumped to the restrictions section of the shelve module to see if there were anything about it, there wasn't. Anyway: what is the advantage of yaml over the pickle module? It seems the only difference concerning this task is that pickle uses binary representation while yaml uses a string representation, right? –  Anas Elghafari Mar 20 '11 at 10:34
    
@Anas Elghafari: advantages: yaml is human-readable; pickle is in the stdlib. You should not call .load() on data from untrusted source for both of them. –  J.F. Sebastian Mar 20 '11 at 10:53

You could use dumps and loads to convert your tuples to strings before using them as keys in a shelve. Alternatively, if your tuple only contains literals, you can use repr(your_tuple) to obtain a string-representation that you can convert back to a tuple using literal_eval.

To make the conversion more convenient, you could subclass Shelf and override __getitem__ and __setitem__ to do the conversions automatically on access.

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