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How is the expression x---y parsed? Is it a legal expression?

The following code has me confused

int a=2,b=5,c;
c=a+++b;
printf("%d,%d,%d",a,b,c);

I expected the output to be 3,5,8, mainly because a++ means 2 +1 which equals 3, and 3 + 5 equals 8, so I expected 3,5,8. It turns out that the result is 3,5,7. Can someone explain why this is the case?

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marked as duplicate by BlueRaja - Danny Pflughoeft, James, Foo Bah, Jonas, zzzzBov Sep 20 '11 at 22:15

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

13  
I trust you are trying to work out what it means so that you can replace it with real code –  David Heffernan Sep 20 '11 at 12:27
7  
a++ most certainly does not mean 2+1. :) –  jalf Sep 20 '11 at 12:27
1  
these are just exercises in a book, but they've got me thinking. I keep getting them wrong!, so its not production code or anything –  user595985 Sep 20 '11 at 12:31
17  
Please throw that book away and get a better one –  Paul R Sep 20 '11 at 13:01
7  

8 Answers 8

up vote 77 down vote accepted

It's parsed as c = a++ + b, and a++ means post-increment, i.e. increment after taking the value of a to compute a + b == 2 + 5.

Please, never write code like this.

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2  
And which is the rule that states it is parsed as a++ + b, and not as a + ++b? The tokenizer is greedy? –  Blagovest Buyukliev Sep 20 '11 at 12:27
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I assume it must be strictly left-associative. –  Patrick87 Sep 20 '11 at 12:29
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The reason is that the lexer of C and C++, try to match the biggest string they can when they see something. That's the reason you don't see var as three tokens v, a and r. Or why you see >= as one token and not > and =. Also the same reason why you see a >> token in vector<vector<int>> causing parse errors. Therefore, when the lexer sees the first plus, it tries the next character, it sees that it can match both characters as a ++, then continues on to see the next +. Hence, the parser sees a ++ + b –  Shahbaz Sep 20 '11 at 12:33
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@Blagovest Buyukliev: For C, The rule is 6.4 para 4: "If the input stream has been parsed into preprocessing tokens up to a given character, the next preprocessing token is the longest sequence of characters that could constitute a preprocessing token..." –  John Bode Sep 20 '11 at 14:36
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Your point that the tokenization is "a ++ + b" is correct but your claim that the increment happens after a + b is computed is in error. The C and C++ languages do not specify at what time the increment is computed relative to the addition. It would be perfectly legal for this to be computed as "temp = a++", and then "temp + b", computing the addition of "a + b" after the increment. Remember, the values of expressions and the sequence of moments in time at which they are observed to have those values are very different analyses to make. –  Eric Lippert Sep 20 '11 at 18:34

Maximal Munch Rule applies to such expression, according to which, the expression is parsed as:

c = a++ + b;

That is, a is post-incremented (a++) and so the current value of a (before post-increment) is taken for + operation with b.

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9  
+1 for knowing this is called "maximal munch!" –  John Tobler Sep 20 '11 at 17:49

a++ is post incrementing, i.e. the expression takes the value of a and then adds 1.
c = ++a + b would do what you expect.

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This is an example of bad programming style.

It is quite unreadable, however it post increments a so it sums the current value of a to b and afterwards increments a!

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a++ gets evaluated after the expression.

c = ++a + b; would give you what you thought.

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The post increment operator, a++, changes tge value of a after the value of a is evaluated in the expression. Since the original value of a is 2, that's what's used to compute c; the value of a is changed to reflect the new value after the ++ is evaluated.

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a++ + b ..it gives the result 7 and after the expression value of a is update to 3 because of the post increment operator

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a++ + b evaluates to 7 not to 5. Think before u answer. –  shubhendu mahajan Sep 20 '11 at 12:48
    
@desprado07 thanks for the correction :D –  Aman Agarwal Sep 20 '11 at 12:51

According to Longest Match rule it is parsed as a++ + +b during lexical analysis phase of compiler. Hence the resultant output.

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