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I'm attempting to insert some integers into a Postgres table with the following somewhat simple code.

#include <libpq-fe.h>
#include <stdio.h>
#include <stdint.h>

int main() {
  int64_t i = 0;
  PGconn * connection = PQconnectdb( "dbname='babyfood'" );
  if( !connection || PQstatus( connection ) != CONNECTION_OK )
    return 1;
  printf( "Number: " );
  scanf( "%d", &i );

  char * params[1];
  int param_lengths[1];
  int param_formats[1];
  param_lengths[0] = sizeof( i );
  param_formats[0] = 1;
  params[0] = (char*)&i;
  PGresult * res =  PQexecParams( connection, 
                                  "INSERT INTO intlist VALUES ( $1::int8 )",
                                  1,
                                  NULL,
                                  params,
                                  param_lengths,
                                  param_formats,
                                  0 );
  printf( "%s\n", PQresultErrorMessage( res ) );
  PQclear( res );
  PQfinish( connection );
  return 0;
}

I get the following results:

Number: 55
ERROR:  integer out of range
Number: 1
ERROR:  integer out of range

I'm pretty sure that an int64_t will always fit in an 8 byte integer on any sane platform. What am I doing wrong?

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3 Answers 3

up vote 3 down vote accepted

Instead of:

params[0] = (char*)&i;

you should use:

#include <endian.h>
/* ... */
int64_t const i_big_endian = htobe64(i);
params[0] = (char*)&i_big_endian;

A htobe64 function will switch endianness on little-endian, and do nothing on big-endian.

Ditch your flip_endian function, as it would make your program incompatible with big-endian/bi-endian computers, like PowerPC, Alpha, Motorola, SPARC, IA64 etc. Even if your program does not expect to be run on them it is a bad style, slow and error prone.

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I think it's getting passed over as 32-bit int, and then gets casted to 64-bit, because you're not telling libpq what the format is.

Try specifying an array for paramTypes, with the oid for int8 (which is 20) for the parameter.

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It's supposed to be able to determine that from the ::int8 cast. Also, it's definitely an endian issue, since flipping the endian not only gets rid of the error but actually results in correct insertions. –  Edward Amsden Aug 19 '09 at 21:01
    
Ah, I see. I should've thought of that :) –  Magnus Hagander Aug 20 '09 at 8:38

Alright, it appears that it's an endian issue, which still doesn't quite explain it, since a little-endian (i.e. x86) 64 bit signed integer should fit in a big-endian 64 bit integer and vice versa, they'd just be corrupted. Swapping the endian on the integer yields the correct value, however. Swapping is done with the following function:

int64_t flip_endian( int64_t endi ) {
  char* bytearray;
  char swap;
  int64_t orig = endi;
  int i;

  bytearray = (char*)&orig;

  for( i = 0; i < sizeof( orig )/2; ++i ) {
    swap = bytearray[i];
    bytearray[i] = bytearray[ sizeof( orig ) - i - 1 ];
    bytearray[ sizeof( orig ) - i - 1 ] = swap;
  }

  return orig;

}
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