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Looking into Queue.py in Python 2.6, I found this construct that I found a bit strange:

def full(self):
    """Return True if the queue is full, False otherwise
    (not reliable!)."""
    self.mutex.acquire()
    n = 0 < self.maxsize == self._qsize()
    self.mutex.release()
    return n

If maxsize is 0 the queue is never full.

My question is how does it work for this case? How 0 < 0 == 0 is considered False?

>>> 0 < 0 == 0
False
>>> (0) < (0 == 0)
True
>>> (0 < 0) == 0
True
>>> 0 < (0 == 0)
True
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3  
+1 Heh, cute! (.) –  katrielalex May 20 '11 at 15:30
3  
@Marino Šimić: From the second example shown in the OP's question, >>> (0) < (0 == 0), it clearly isn't. –  martineau May 20 '11 at 17:13
2  
One reason you shouldn't be writing code like n = 0 < self.maxsize == self._qsize() in the first place, in any language. If your eyes have to dart back and forth across the line several times to figure out what's going on, it's not a well-written line. Just split it up into several lines. –  BlueRaja - Danny Pflughoeft May 20 '11 at 21:29
2  
@Blue: I agree with not writing such a comparison that way but splitting it into separate lines is going a bit overboard for two comparisons. I hope you mean, split it up into separate comparisons. ;) –  Jeff Mercado May 21 '11 at 6:37
1  
@Blue: I did not write it, it is in Python 2.6. I was just trying to understand what was going on. –  Marcelo Santos May 26 '11 at 12:33
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9 Answers

up vote 70 down vote accepted

I believe Python has special case handling for sequences of relational operators to make range comparisons easy to express. It's much nicer to be able to say 0 < x <= 5 than to say (0 < x) and (x <= 5).

These are called chained comparisons. And that's a link to the documentation for them.

With the other cases you talk about, the parenthesis force one relational operator to be applied before the other, and so they are no longer chained comparisons. And since True and False have values as integers you get the answers you do out of the parenthesized versions.

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5  
Really, -2, and no comments? –  Omnifarious May 20 '11 at 15:27
2  
If this answer is correct, please explain why (2<1)<2 evaluates to True –  David Heffernan May 20 '11 at 15:34
14  
@David: because (2<1) is True which is 1, and 1<2. Python automatically expands out unparenthesised chains of comparison operators. –  katrielalex May 20 '11 at 15:35
3  
The downvotes were for the original version of the answer which was very incomplete since it only talked about chained comparisons and so only covered the first of the 4 comparisons. It wasn't so much that SO sorted out the voting, more that Omnifarious completed his answer. –  David Heffernan May 20 '11 at 15:38
21  
@katrielalex I think you meant (2<1) is False which is 0, and 0<2 –  Agos May 20 '11 at 20:58
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Because

(0 < 0) and (0 == 0)

is False. You can chain together comparison operators and they are automatically expanded out into the pairwise comparisons.


EDIT -- clarification about True and False in Python

In Python True and False are just instances of bool, which is a subclass of int. In other words, True really is just 1.

The point of this is that you can use the result of a boolean comparison exactly like an integer. This leads to confusing things like

>>> (1==1)+(1==1)
2
>>> (2<1)<1
True

But these will only happen if you parenthesise the comparisons so that they are evaluated first. Otherwise Python will expand out the comparison operators.

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1  
Just like coffeescript :) –  user53791 May 20 '11 at 15:30
1  
I saw an interesting use for boolean values being used as integers yesterday. The expression 'success' if result_code == 0 else 'failure' can be rewritten as ('error', 'success')[result_code == 0], before this I had never seen a boolean used to select an item in a list/tuple. –  F.J May 20 '11 at 16:24
    
'bool' was added sometime around Python 2.2. –  MRAB May 20 '11 at 19:59
    
@MRAB: thanks, fixed! –  katrielalex May 21 '11 at 8:34
    
+1 for the correct answer –  Anurag Uniyal Mar 30 '12 at 20:08
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The strange behavior your experiencing comes from pythons ability to chain conditions. Since it finds 0 is not less than 0, it decides the entire expression evaluates to false. As soon as you break this apart into seperate conditions, you're changing the functionality. It initially is essentially testing that a < b && b == c for your original statement of a < b == c.

Another example:

>>> 1 < 5 < 3
False

>>> (1 < 5) < 3
True
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Why do you get voted up for giving the exact same answer as me a couple of minutes later when I get voted down by two points nearly instantly? There are some whacked out voters here. sigh –  Omnifarious May 20 '11 at 15:32
1  
OMG, a < b && b == c is the same as a < b == c O.O –  Kiril Kirov May 20 '11 at 15:32
2  
Sorry, didn't see your post before submitting, not sure why people down voted. –  Tyler May 20 '11 at 15:34
    
Well, it's not your fault, just frustrating. –  Omnifarious May 20 '11 at 15:37
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>>> 0 < 0 == 0
False

This is a chained comparison. It returns true if each pairwise comparison in turn is true. It is the equivalent to (0 < 0) and (0 == 0)

>>> (0) < (0 == 0)
True

This is equivalent to 0 < True which evaluates to True.

>>> (0 < 0) == 0
True

This is equivalent to False == 0 which evaluates to True.

>>> 0 < (0 == 0)
True

Equivalent to 0 < True which, as above, evaluates to True.

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+1 This is the correct answer. –  dawg May 20 '11 at 18:17
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maybe this excerpt from the docs can help:

These are the so-called “rich comparison” methods, and are called for comparison operators in preference to __cmp__() below. The correspondence between operator symbols and method names is as follows: x<y calls x.__lt__(y), x<=y calls x.__le__(y), x==y calls x.__eq__(y), x!=y and x<>y call x.__ne__(y), x>y calls x.__gt__(y), and x>=y calls x.__ge__(y).

A rich comparison method may return the singleton NotImplemented if it does not implement the operation for a given pair of arguments. By convention, False and True are returned for a successful comparison. However, these methods can return any value, so if the comparison operator is used in a Boolean context (e.g., in the condition of an if statement), Python will call bool() on the value to determine if the result is true or false.

There are no implied relationships among the comparison operators. The truth of x==y does not imply that x!=y is false. Accordingly, when defining __eq__(), one should also define __ne__() so that the operators will behave as expected. See the paragraph on __hash__() for some important notes on creating hashable objects which support custom comparison operations and are usable as dictionary keys.

There are no swapped-argument versions of these methods (to be used when the left argument does not support the operation but the right argument does); rather, __lt__() and __gt__() are each other’s reflection, __le__() and __ge__() are each other’s reflection, and __eq__() and __ne__() are their own reflection.

Arguments to rich comparison methods are never coerced.

These were comparisons but since you are chaining comparisons you should know that:

Comparisons can be chained arbitrarily, e.g., x < y <= z is equivalent to x < y and y <= z, except that y is evaluated only once (but in both cases z is not evaluated at all when x < y is found to be false).

Formally, if a, b, c, ..., y, z are expressions and op1, op2, ..., opN are comparison operators, then a op1 b op2 c ... y opN z is equivalent to a op1 b and b op2 c and ... y opN z, except that each expression is evaluated at most once.

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As other's mentioned x comparison_operator y comparison_operator z is syntactical sugar for (x comparison_operator y) and (y comparison_operator z) with the bonus that y is only evaluated once.

So your expression 0 < 0 == 0 is really (0 < 0) and (0 == 0), which evaluates to False and True which is just False.

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Here it is, in all its glory.

>>> class showme(object):
...   def __init__(self, name, value):
...     self.name, self.value = name, value
...   def __repr__(self):
...     return "<showme %s:%s>" % (self.name, self.value)
...   def __cmp__(self, other):
...     print "cmp(%r, %r)" % (self, other)
...     if type(other) == showme:
...       return cmp(self.value, other.value)
...     else:
...       return cmp(self.value, other)
... 
>>> showme(1,0) < showme(2,0) == showme(3,0)
cmp(<showme 1:0>, <showme 2:0>)
False
>>> (showme(1,0) < showme(2,0)) == showme(3,0)
cmp(<showme 1:0>, <showme 2:0>)
cmp(<showme 3:0>, False)
True
>>> showme(1,0) < (showme(2,0) == showme(3,0))
cmp(<showme 2:0>, <showme 3:0>)
cmp(<showme 1:0>, True)
True
>>> 
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Looking at the disassembly (the bytes codes) it is obvious why 0 < 0 == 0 is False.

Here is an analysis of this expression:

>>>import dis

>>>def f():
...    0 < 0 == 0

>>>dis.dis(f)
  2      0 LOAD_CONST               1 (0)
         3 LOAD_CONST               1 (0)
         6 DUP_TOP
         7 ROT_THREE
         8 COMPARE_OP               0 (<)
        11 JUMP_IF_FALSE_OR_POP    23
        14 LOAD_CONST               1 (0)
        17 COMPARE_OP               2 (==)
        20 JUMP_FORWARD             2 (to 25)
   >>   23 ROT_TWO
        24 POP_TOP
   >>   25 POP_TOP
        26 LOAD_CONST               0 (None)
        29 RETURN_VALUE

Notice lines 0-8: These lines check if 0 < 0 which obviously returns False onto the python stack.

Now notice line 11: JUMP_IF_FALSE_OR_POP 23 This means that if 0 < 0 returns False perform a jump to line 23.

Now, 0 < 0 is False, so the jump is taken, which leaves the stack with a False which is the return value for the whole expression 0 < 0 == 0, even though the == 0 part isn't even checked.

So, to conclude, the answer is like said in other answers to this question. 0 < 0 == 0 has a special meaning. The compiler evaluates this to two terms: 0 < 0 and 0 == 0. As with any complex boolean expressions with and between them, if the first fails then the second one isn't even checked.

Hopes this enlightens things up a bit, and I really hope that the method I used to analyse this unexpected behavior will encourage others to try the same in the future.

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I'm thinking Python is doing it's weird between magic. Same as 1 < 2 < 3 means 2 is between 1 and 3.

In this case, I think it's doing [middle 0] is greater than [left 0] and equal to [right 0]. Middle 0 is not greater than left 0, so it evaluates to false.

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