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Some code like this below:

int x = 1;
printf("%d,%d,%d",x,x++,x);  //A  statement
cout<<x<<x++<<x<<endl; //B statement

I know the execute sequence is from right to left,while why A statement result is "1,1,1" and B statement result is "112"???

I use vs2008 with debug mode : the result is same: 2,1,2. with release mode: the result is different: A: 1,1,1, B:1,1,2

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marked as duplicate by Cody Gray, Adam Rosenfield, H2CO3, Alok Save, Aniket Apr 3 '13 at 5:46

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.

6  
Your question tags do a nice job of answering the overall subject for you. –  WhozCraig Apr 3 '13 at 5:28
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There are many differences. But in both of these cases, you're invoking undefined behavior. –  Adam Rosenfield Apr 3 '13 at 5:29
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"I know the execute sequence is from right to left," - Do you? That's interesting, since the standard disagrees. –  Ed S. Apr 3 '13 at 5:34
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@luksy: Yes, the C++ is also UB. The sequence points are the two semicolons, and x is written to and read from, with a read not being used to determine the value written, so it violates C++03 §5/4: "Between the previous and next sequence point a scalar object shall have its stored value modified at most once by the evaluation of an expression. Furthermore, the prior value shall be accessed only to determine the value to be stored." –  Adam Rosenfield Apr 3 '13 at 5:35
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@luksy - The C++ version effectively expands to cout.operator <<(x).operator <<(x++).operator <<(x).operator <<(endl);. I believe that while the order in which the calls happen is defined, the order in which the arguments to those calls are evaluated is not. But I may be wrong about that. –  Omnifarious Apr 3 '13 at 5:35
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4 Answers

up vote 0 down vote accepted

Result of statement A and B is same.

        int x = 1;
        printf("%d,%d,%d",x,x++,x);  //A  statement
        //cout<<x<<x++<<x<<endl; //B statement
        return 0;

STATEMENT A

     int x = 1;
    //printf("%d,%d,%d",x,x++,x);  //A  statement
    cout<<x<<","<<x++<<","<<x<<endl; //B statement
    return 0;

STATEMENT B

The result/behavior is inconsistent with compiler.

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5  
The result is sometimes the same. The use here actually invokes undefined behavior. That means it might work the way you want it to, but it might do something else entirely. –  Cody Gray Apr 3 '13 at 5:34
    
I use vs2008 with debug mode : the result is same: 2,1,2. with release mode: the result is different: A: 1,1,1, B:1,1,2 –  guyuequan Apr 3 '13 at 6:13
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@guyuequan: That's because there is no correct result specified by the standard. You are, in fact, lucky your program doesn't crash or something. –  Omnifarious Apr 3 '13 at 6:24
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The way you are using printf results in undefined behavior. The order of evaluation of the arguments to a function is unspecified. They do not even have to be evaluated in discreet units at all as parts of one expression can be evaluated and then parts of another. That means if you have certain kinds of dependencies on evaluation order the whole expression can become undefined.

The same goes for calling operator << for cout. << is not a sequence point. The evaluation order for the different clauses of cout there is completely unspecified. And since you have the same kinds of dependencies on evaluation as in the printf example, you are also invoking undefined behavior here as well.

So, you might get the same results for both expressions. You might get different results. Daemons may fly out your nose when you evaluate either of them. You just can't tell.

The topic of sequence points and order of evaluation can be rather complex. I would suggest you take a look at this question if you want to know more:

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It's not undefined behavior, it's unspecified. You're program isn't thrown into an undefined state, but you may not get the result that you expect. –  Ed S. Apr 3 '13 at 5:36
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@EdS: Yes, it is UB—the commas are not sequence points here (they're function parameter separators, not the comma operator). –  Adam Rosenfield Apr 3 '13 at 5:38
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@AdamRosenfield: Yeesh, I didn't even think of that, I was focused on argument evaluation order. I really should have seen it after answering 1k+ "why does x++ + ++x not work?" questions. You're right. This bit, however, is wrong - "The order of evaluation of the arguments to a function is undefined." –  Ed S. Apr 3 '13 at 5:38
    
@EdS., It is undefined. We can only be sure that all the arguments have been evaluated before the function is entered. –  Anish Ramaswamy Apr 3 '13 at 5:46
    
@EdS., Okay I just read that you mentioned it is unspecified not undefined. Yes. My mistake. –  Anish Ramaswamy Apr 3 '13 at 5:52
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Go through this Article. This is good one.

Duplicate of this Article.

But, Technical if we talk about the printf() or cout<<, While executing printf statement, its takes last statement changed value of the variable, and also affect the changed value to the next statement, rather then current statement.

While in the cout statement, most recent value is taken of the variables, so, its directly affect the current statement.

Hope you ll be clear.

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1  
Whilst this may theoretically answer the question, it would be preferable to include the essential parts of the answer here, and provide the link for reference. This will also help your answer remain useful even if the links you included break in the future. –  Cody Gray Apr 3 '13 at 5:30
    
The title of this question should change, Because its refer the conceptual question rather then technical. –  AB Bolim Apr 3 '13 at 5:34
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with the printf, all arguments are evaluated (x=1) before printf is called. with the cout, the arguments are evaluated and applied sequentially. (at least as far as your compiler is concerned)

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Just to add more details cout is stream based, that why arguments are evaluated and applied sequentially. –  Rohit Apr 3 '13 at 5:30
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This answer is plain out wrong. –  Omnifarious Apr 3 '13 at 5:36
    
Edited to reflect that this is how this particular compilation works. –  levis501 Apr 3 '13 at 7:44
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