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Recently I encountered this puzzle :

 int main(){
     int arr[7];
     int b,c,d,a;
     a=4;
     printf("%d",arr[?]);
   return 0;
}

The question is to Replace "?" with a integer so that output is 4. I am not sure but I don't think this is solvable in a standard way ?! (Not invoking Undefined Behavior or depending on implementation) If NO, then I am very interested in knowing how ?

Edit:This task is taken from here, I tried to solve with 10, but sadly it's not the answer the problem setter wants.However, I solved it using some pretested implementation dependent mumbo-jumbo,but I really have no explanation for how it really works!

Here is the answer : SPOILER,You are welcome to explain it

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9  
There is no way to guarantee the output is four, with those restrictions. If you allow the "?" to be anything, then you can replace it with 0] = 4, arr[0. –  GManNickG Nov 9 '10 at 3:33
    
What was your solution? –  SLaks Nov 9 '10 at 3:40
8  
Stupid question. –  Prasoon Saurav Nov 9 '10 at 4:12
6  
There is no solution without invoking UB. Adding any integer outside the range 0-7 to arr invokes UB for the pointer addition, and since the array is uninitialized, even if ? is in the range 0-7, accessing the uninitialized object invokes UB. –  R.. Nov 9 '10 at 4:13
2  
"I strictly despise problem like this which solely depends on implementation." <--- THIS –  Dan Nov 9 '10 at 15:08

7 Answers 7

up vote 14 down vote accepted

Assuming there is no answer that conforms to the standard, could you use an operation (obviously not an integer) like arr[&a-arr]?

Edit: Made cleaner thanks to Ben and others in the comments.

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1  
I think you might need some parentheses there, because subtracting a pointer from 0 is undefined, but that's quite elegant. –  Ben Voigt Nov 9 '10 at 3:41
    
Not quite there, because the values in brackets are multiplied by sizeof(int)... but the idea's sound were it not for the restriction that ? be an integer constant. –  Tony D Nov 9 '10 at 3:44
1  
@Tony, it doesn't say that the answer must be an integer literal, it only says it must be an integer. Difference between two pointers IS an integer. So is negation of an integer. Also, difference between two pointers divides by sizeof (int), which cancels out the multiplication you mentioned. So ? = -(arr-&a) is correct. –  Ben Voigt Nov 9 '10 at 3:47
    
Yes, it doesn't work, and after a bottle of corona and a bottle of Smithwick's I'm not quite sure what I'm missing. Suggestions? –  Sam Hoice Nov 9 '10 at 3:51
2  
As proof: ideone.com/2HEDX or ideone.com/o09db –  Ben Voigt Nov 9 '10 at 3:52

In most implementations, arr[10] (or 7) will be 4, since the locals will be laid out sequentially.

However, this is neither defined nor standard, and must not be relied on.

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Well, could you please explain what do you meant by since the locals will be laid out sequentially ? –  Quixotic Nov 9 '10 at 3:38
2  
arr[7] takes up 7 bytes, then int b will be in the next byte, int c in the next byte... accessing arr[10] would be skipping out of the array and into the neighboring memory, which is these newly declared ints (hopefully) –  sova Nov 9 '10 at 3:40
1  
This is only true if you have optimisation turned off! Even low levels of optimisation will drop b c and d as they are never used. Higher levels of optimisation may move varaible a to the begining of the stack as it is used first (ordering variables in the order they are used can increase cache hits and "free" chache loads). –  James Anderson Nov 9 '10 at 3:47
1  
arr[7] had better take more than 7 bytes, in a conforming implementation, because the range of an octet is only -128 to 127, not enough for int. –  Ben Voigt Nov 9 '10 at 3:49
2  
If the variables are allocated on the stack as the compiler encounters them, then a could well be below arr in memory, since stacks often grow downwards - ie. a may be aliased with arr[-4] instead (or indeed, a range of unlimited other possibilities). –  caf Nov 9 '10 at 4:26

I suspect on some systems 10 would do the trick (depending on alignment and padding, and the size of int), but that IS undefined behavior. I can't see any standard way to do what's asked.

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Only if the stack grows upwards. –  JeremyP Nov 9 '10 at 11:37

on http://ideone.com:

#include "stdio.h" 
int main(){
     int arr[7];
     int b,c,d,a;
     a=4;
     printf("%p %p %d %d",arr, &a, arr - &a, arr[7]);
   return 0;
}

0xbfa95918 0xbfa95934 -7 4

optimizer removes b,c,d hence a right at 7

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Maybe it's a trick question, maybe there's a 4 but it doesn't exist in the array (so maybe some strange index will give you a 4 for an interesting reason).

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Yes the index is really strange ! –  Quixotic Nov 9 '10 at 3:39

I don't think a portable answer is possible if ? needs to be replaced by an integer; but a portable solution may be possible if an expression is allowed; using the fact that a [i] == i [a].

 printf("%d",arr[(unsigned long) ((a & (1 << ((sizeof (int) - 1) * CHAR_BIT))) ?
                                 /* Big Endian */
                                 memset (calloc ((unsigned long) arr + sizeof (int), 1),
                                         4, (unsigned long) arr + 1)
                                 :
                                 /* Small Endian*/
                                 memset (memset (malloc ((unsigned long) arr + sizeof (int)),
                                                 4, (unsigned long) arr + sizeof (int)),
                                         0,
                                         (unsigned long) arr + sizeof (int) - 1)
                                 )]);

You'd need a huge amount of RAM to work; and I can't test the correctness for the same reason.

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$ cat 4130250.c \
> && echo -------- \
> && sed -e 's/\?/arr[0] = 4, 0/' 4130250.c | gcc -xc - \
> && ./a.out
int main(){
int arr[7],b,c,d,a;
a=4;
printf("%d\n", arr[?]);
return 0;
}
--------
<stdin>: In function `main`:
<stdin>:4: warning: incompatible implicit declaration of built-in function `printf`
4

Explanation of the command line :-)

cat 4130250.c: output the contents of the "program"
echo --------: output a separator
sed ...: replace the "?" with "arr[0] = 4, 0" and write to standard output
| gcc -xc -: compile C from standard input (the output of the previous sed)
./a.out: run the produced binary

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