Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

If I have a uint64_t original and two regular four byte ints, (which are signed), I would like to store the value in the two ints and recover the unsigned 64 byte later. This should be possible because we have 64 bits available in both cases. I was thinking something along the lines of:

uint64_t test = 1350640807215539000;
int a = test >> 32; //get top 32 bits
int b = test & 0x00000000FFFFFFFF; //keep bottom 32 bits

uint64_t recover_test = ((a << 32) & b);

but this isn't giving me back the original value of test...what part am I doing wrong?

share|improve this question
2  
at least & b -> | b –  J.F. Sebastian Oct 23 '12 at 20:56
    
You need to use OR instead of AND. Furthermore i guess you need to convert a to 64bit before shifting (but i'm not sure on that) –  AD-530 Oct 23 '12 at 20:58
    
Yup I needed to promote, some people seem to not be finding this to work though. –  Palace Chan Oct 23 '12 at 21:02

7 Answers 7

up vote 8 down vote accepted

Instead of doing a lot of error-prone bit-twiddling you could just use a union:

union
{
    uint64_t u64;
    int32_t s32[2];
} u;

u.u64 = 1350640807215539000ULL;

printf("a = %d\n", u.s32[0]);
printf("b = %d\n", u.s32[1]);
share|improve this answer
    
Isn't such use of a union against the C standard? –  Alexey Frunze Oct 23 '12 at 23:35
    
@Alexey: I think it's only theoretically UB if you write to one type in a union and then read back from an incompatible type, but even this kind of usage is so widespread that it has to be supported by any self-respecting compiler. I am not a C language lawyer though so I could be proved wrong on this. –  Paul R Oct 24 '12 at 3:56
1  
@AlexeyFrunze As far as I know, this is the idiomatic way to do the wanted conversion. But, I'd be glad to learn otherwise if I'm wrong. –  HonkyTonk Oct 24 '12 at 13:07
    
@HonkyTonk C99 J.1 Unspecified behavior: The value of a union member other than the last one stored into. One needs to dig up their compiler documentation (or source code) to see whether this trick is OK with their compiler or not. –  Alexey Frunze Oct 24 '12 at 17:23
    
@AlexeyFrunze I see. Thank you for the information. –  HonkyTonk Oct 25 '12 at 8:24

This works for me:

uint64_t test = 1350640807215539000;
int32_t a = test >> 32; //get top 32 bits
int32_t b = test & 0xffffffff; //keep bottom 32 bits
uint64_t recover_test = (((uint64_t)(uint32_t)a << 32) | (uint32_t)b);

Notice you have made the mistake of not casting a when "recovering" - you need to do that otherwise shifting 32 will make the value all "drop off" the left as it's not big enough. Also you were AND-ing rather than OR-ing the two parts together.

share|improve this answer
2  
This code does not answer the request of storing the value in two signed 32-bit integers. –  Eric Postpischil Oct 23 '12 at 21:04
    
Yes this seems to be working for me when a and b are regular ints as well. –  Palace Chan Oct 23 '12 at 21:05
    
Using this code with a and b changed to signed 32-bit integers works for the specific example value in the question, but it does not work in general. It does not work when b is negative. –  Eric Postpischil Oct 23 '12 at 21:09
    
eric: yes it does. –  Rafael Baptista Oct 23 '12 at 21:09
    
@RafaelBaptista: I executed this code with test set to 0x92be70a89d3aa338. It produced 0xffffffff9d3aa338 in recover_test, which is incorrect. –  Eric Postpischil Oct 23 '12 at 21:14

Like this:

uint64_t recover_test = ((((uint64_t)a) << 32) | (uint32_t)b);

You need to tell the compiler to promote the a to a 64bit number first - and then do the shift. Otherwise it shifts inside a 32 bit value - dumping the high bits.

@edit: Wow. So if b is signed, | with a signed 32 bit value will promote the signed bit from the top of b, to the top bit of a after it is cast to 64 bits. So you need to first cast b to unsigned before the |.

share|improve this answer
1  
This code produces 0 in recover_test. –  Eric Postpischil Oct 23 '12 at 21:01
    
second error in the example was that & should be | –  Rafael Baptista Oct 23 '12 at 21:04
    
Some people are quick on the downmod. The code had two errors. Original answer fixed one. i update the answer to fix both errors. –  Rafael Baptista Oct 23 '12 at 21:05
    
There are three errors, not two. This code does not fix the problem that occurs when b is negative. –  Eric Postpischil Oct 23 '12 at 21:06
    
Yes it was | instead of & too –  Palace Chan Oct 23 '12 at 21:06
unsigned long long u64 = 0xAAAAAAAABBBBBBBB;
int l = ((int*)(&u64))[0];
int h = ((int*)(&u64))[1];
unsigned long long restored;
((int*)(&restored))[0] = l;
((int*)(&restored))[1] = h;
share|improve this answer

what part am I doing wrong?

uint64_t recover_test = ((a << 32) & b);

a << 32 is undefined behavior.

Bitwise left shifting more or the the same as the width in bits of the left operand is undefined.

share|improve this answer
    
Casting a to uint64_t before shifting is insufficient to fix this code. –  Eric Postpischil Oct 23 '12 at 21:01
    
32 is equal to the width in bits, not more than it. One of those statements must be incorrect. –  Aaron Dufour Oct 23 '12 at 21:01
    
@EricPostpischil I never said it is sufficient, I pinpointed an issue in his program. If you downvoted you should admit there is nothing wrong in this answer. –  ouah Oct 23 '12 at 21:02
    
There is something wrong with this answer: It does not answer the question, which is “How can I store an unsigned 64-bit value in two unsigned integers and recover [it]?” –  Eric Postpischil Oct 23 '12 at 21:07
    
@EricPostpischil there are several questions in the OP post. I'm free to answer one of his questions or to point one of the issues of his program. Downvoting is unfair. –  ouah Oct 23 '12 at 21:10

This works

#include <stdint.h>
#include <stdio.h>

int main(void)
{
    uint64_t test = 1350640807215539000;
    int a = test >> 32; //get top 32 bits
    int b = test & 0x00000000FFFFFFFF; //keep bottom 32 bits

    uint64_t recover_test = (((uint64_t)((uint32_t)a) << 32) | (uint32_t)b);


    printf("a: %llu\n", (uint64_t)a);
    printf("b: %llu\n", (uint64_t)b);
    printf("Recovered: %llu\n", recover_test);

    printf("Test %s\n", test == recover_test ? "PASSED" : "FAILED");
}

Mostly the same as all the other ones, I just explicitly convert the ints back to unsigned ints prior to using them anywhere. This could important if either a or b end up being negative.

Output:

a: 314470568
b: 2100994872
Recovered: 1350640807215539000
Test PASSED

Output when b is negative (Thanks Daniel):

a: 314470568
b: 18446744073663062840    # -46488776
Recovered: 1350640809363022648
Test PASSED
share|improve this answer
    
This will very probably fail on 1350640809363022648. –  Daniel Fischer Oct 23 '12 at 21:11
    
@DanielFischer: It does fail; I tested it. –  Eric Postpischil Oct 23 '12 at 21:12
    
It does indeed, editing in corrections. –  jedwards Oct 23 '12 at 21:13
    
@EricPostpischil Yes, it must fail indeed (before the correction), only the way it fails is implementation-defined. –  Daniel Fischer Oct 23 '12 at 21:17
    
@EricPostpischil Implementation-defined (may raise an implementation-defined signal), 6.3.1.3 (3). –  Daniel Fischer Oct 23 '12 at 21:23

You may be unable to do this in a fully portable way.

The reason is that N-bit signed ints may only be good enough for representing 2N-1 distinct values.

This is especially the case if signed integers are in the sign-and-magnitude or the 1's-complement representation. These representations are are symmetric around 0.

Even the 2's-complement representation may be symmetric around 0 and allow only 2N-1 distinct values from -(2N-1-1) to 2N-1-1 (just like in the above case) instead of allowing 2N distinct values from -2N-1 to 2N-1-1.

Further, union tricks and forceful shoving of N-bit unsigned integers into N-bit signed integers do or can result in undefined behavior per the C standard. You want to avoid that.

You can do something like this, but it may fail on some platforms:

#include <limits.h>

#if UINT_MAX >= 0xFFFFFFFF
typedef unsigned uint32;
#define UINT32_MIN UINT_MIN
#define UINT32_MAX UINT_MAX
typedef int int32;
#define INT32_MIN INT_MIN
#define INT32_MAX INT_MAX
#else
typedef unsigned long uint32;
#define UINT32_MIN ULONG_MIN
#define UINT32_MAX ULONG_MAX
typedef long int32;
#define INT32_MIN LONG_MIN
#define INT32_MAX LONG_MAX
#endif

typedef unsigned long long uint64;
#define UINT64_MAX ULLONG_MAX

#ifndef C_ASSERT
#define C_ASSERT(expr) extern char CAssertExtern[(expr)?1:-1]
#endif

// Make sure uint32 is 32 bits exactly without padding bits:
C_ASSERT(sizeof(uint32) * CHAR_BIT == 32 && UINT32_MAX == 0xFFFFFFFF);

// Make sure int32 is 32 bits exactly without padding bits and is 2's complement:
C_ASSERT(sizeof(int32) * CHAR_BIT == 32 &&
         INT32_MAX == 0x7FFFFFFF && (uint32)INT32_MIN == 0x80000000);

// Make sure uint64 is 64 bits exactly without padding bits:
C_ASSERT(sizeof(uint64) * CHAR_BIT == 64 && UINT64_MAX == 0xFFFFFFFFFFFFFFFFULL);

void splitUint64IntoInt32s(uint64 x, int32* ph, int32* pl)
{
  uint32 h = (uint32)(x >> 32);
  uint32 l = (uint32)x;
  if (h <= INT32_MAX)
    *ph = h;
  else
    *ph = (int)(h - INT32_MAX - 1) - INT32_MAX - 1;
  if (l <= INT32_MAX)
    *pl = l;
  else
    *pl = (int)(l - INT32_MAX - 1) - INT32_MAX - 1;
}

uint64 combineInt32sIntoUint64(int32 h, int32 l)
{
  return ((uint64)(uint32)h << 32) | (uint32)l;
}

gcc is able to produce quite optimal machine code from the above without any arithmetic operations:

_splitUint64IntoInt32s:
        movl    8(%esp), %edx
        movl    12(%esp), %eax
        movl    %edx, (%eax)
        movl    4(%esp), %edx
        movl    16(%esp), %eax
        movl    %edx, (%eax)
        ret

_combineInt32sIntoUint64:
        movl    8(%esp), %eax
        movl    4(%esp), %edx
        ret
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.