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Someone told me this bit of code prints 29. Why is that?

int *a = 17; 
printf("%d", a+3);
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Please think about a useful title and put the code in the body of the question. –  Georg Fritzsche Dec 15 '09 at 20:52
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This code doesn't even compile, so how can it print anything? Error: a value of type "int" cannot be used to initialize an entity of type "int *" –  UncleBens Dec 15 '09 at 20:56
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@UncleBens - Unfortunately that's acceptable for 'C'. –  Aaron Dec 15 '09 at 21:02
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I don't want to get into an extended discussion here, but having a descriptive title that can be searched for is part of the concept of SO. –  Georg Fritzsche Dec 15 '09 at 21:17
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@Hellfrost: stackoverflow.com/questions/1910317 just drop the string after the id. –  Joel Potter Dec 15 '09 at 21:20

5 Answers 5

up vote 35 down vote accepted

Because when you add to a pointer it adds the object size. In this case the object size is 4 (sizeof(int) == 4) -- so 17 + 3 * 4 == 29.

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@Zinx... Ha - that error was there for all of 5 seconds and you happened to spot it... –  Aaron Dec 15 '09 at 20:54
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Where is this coming from? a is a pointer - you're not dereferencing it, therefore you're not going to get the 17 back out. What this will do, is take the address 12 past wherever 'a' is, and print the "integer" value at that address. –  Chris Dec 15 '09 at 21:01
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Actually, it is correct. You're assigning the literal value "17" to the pointer - so it's pointing at memory address 17. After adding 4 ints, it's pointing at memory address 29. So then, when you ask to print out the value of the pointer (as opposed to the value of what it points at), it will print 29. –  Anon. Dec 15 '09 at 21:05
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@AndreyT - You are incorrect. That statement is perfectly legal C. I just tried it in GCC 3.4.4 and 4.3.2 - which is a fairly mature compiler and isn't exactly being 'laughed off the market right away.' –  Aaron Dec 16 '09 at 14:13
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@AndreyT - You may actually be correct. However your condescending attitude and snide remarks make me think that you're just compensating and that I should ignore you - which is what I will now do. –  Aaron Dec 17 '09 at 17:55
a+3 == a + (3 * sizeof(int)) == a + 12 == 17 + 12 == 29
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Everyone knows the answer is 23, at least on the 6809.

a+3 == a + (3 * sizeof(int)) == a + 6 == 17 + 6 == 23
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+1 for the unexpected... –  Aaron Dec 15 '09 at 21:03
    
+1 for making me remember awful headaches programming motorola 68k ;) –  Aurélien Vallée Dec 15 '09 at 21:04
    
+1 for the nostalgia factor. I knew the 6809 well, many years ago. Please tell me you're not still using it? :) –  Steve Fallows Dec 15 '09 at 21:04
    
Headaches with 68K??? It was a dream next to the 6809! –  Steve Fallows Dec 15 '09 at 21:05
    
@Steve: No, I don't use it today. I wrote my first C compiler for it and still have an HMS emulator in the basement. –  Richard Pennington Dec 15 '09 at 21:08

In C language pointers cannot be initialized with integral values, with the only exception of an Integral Constant Expression that evaluates to integral zero. 17 does not satisfy that requirement.

You code is invalid. It doesn't "print" anything. The question makes no sense whatsoever. Any attempts to analyze this question from the point of view of the pointer arithmetic are ridiculous and just useless waste of time.


ISO/IEC 9899:1999 (Progamming Languages - C)

6.5.16.1 Simple assignment

Constraints

One of the following shall hold:93)

— the left operand has qualified or unqualified arithmetic type and the right has arithmetic type;

— the left operand has a qualified or unqualified version of a structure or union type compatible with the type of the right;

— both operands are pointers to qualified or unqualified versions of compatible types, and the type pointed to by the left has all the qualifiers of the type pointed to by the right;

— one operand is a pointer to an object or incomplete type and the other is a pointer to a qualified or unqualified version of void, and the type pointed to by the left has all the qualifiers of the type pointed to by the right;

— the left operand is a pointer and the right is a null pointer constant; or

— the left operand has type _Bool and the right is a pointer.

93) The asymmetric appearance of these constraints with respect to type qualifiers is due to the conversion (specified in 6.3.2.1) that changes lvalues to ‘‘the value of the expression’’ which removes any type qualifiers from the type category of the expression.

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LOL! I think it would be hard to come out with a more blatant example of the failure of the SO voting system. Several bogus answers got upvoted as high as 30, while the only correct one got downvoted :)) Is everyone with at least basic knowledge of C already on Christmas vacation? –  AndreyT Dec 16 '09 at 0:12
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As for "people assign addresses to pointers all the time" - yes, they do. But they do it, as language requires, with an explicit cast. In this case that would be int *a = (int *) 17. People who do it "all the time" without a cast, as in the OP, very quickly find themselves flipping burgers. That latter principle (int *a = 17 => go flip burgers) is the real reason why planes don't crash and CT scanners scan. –  AndreyT Dec 16 '09 at 0:38
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Since you seem to lack a sense of humor and an ability to read and understand the written word, I'll disengage. –  Richard Pennington Dec 16 '09 at 1:16
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The question is not ridiculous. When the (int *) cast is added to the literal 17, it becomes legal C code, yes? Which prints the number 29, right? (When sizeof(int) is 4, which it often is.) You may be right that the code is incorrect, but many compilers accept it anyway (and emit diagnostic messages). You made your point, but when you go on to say that this discussion is a waste of time, that is disrespectful. –  Kevin Panko Dec 16 '09 at 1:20
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@AndreyT, +1 from me and thanks for your comments. –  Alok Singhal Dec 16 '09 at 2:43

can print anything .. you are setting a pointer to the location '17' in memory ...

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Not quite. If he tried to dereference a he'd almost certainly get a segfault, but he's printing the value of the pointer as an int. –  JSBձոգչ Dec 15 '09 at 20:55
    
@JS: Not quite. There is no guarantee that 17 is a valid address, and it could be a trap representation. Merely reading such a pointer is an error (which he does by doing a+3). –  Alok Singhal Dec 15 '09 at 21:02
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Undefined behavior, for sure. It could print anything and be conformant. Heck, it could reformat all your .doc files as haiku and be conformant. –  David Thornley Dec 15 '09 at 21:15
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Or, as they say in comp.lang.c, it can make "daemons fly out of your nose"!: groups.google.com/group/comp.std.c/msg/dfe1ef367547684b –  Alok Singhal Dec 15 '09 at 21:22
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@Andrey: still, nasal daemons are possible with int *a = 17. With int *a = (int *)17, it's implementation defined, and I hope there doesn't exist an implementation that says 'if you do this, there will be daemons' :-) –  Alok Singhal Dec 16 '09 at 2:44

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