The ifx_int8add() function

The ifx_int8add() function adds two int8 type values.

Syntax

mint ifx_int8add(n1, n2, sum)
   ifx_int8_t *n1;
   ifx_int8_t *n2;
   ifx_int8_t *sum;

n1: A pointer to the int8 structure that contains the first operand.
n2: A pointer to the int8 structure that contains the second operand.
sum: A pointer to the int8 structure that contains the sum of n1 + n2.

Usage

The sum can be the same as either n1 or n2.

Return codes

0: The operation was successful.
-1284: The operation resulted in overflow or underflow.

Example

The file int8add.ec in the demo directory contains the following sample program.

*int8add.ec *

   The following program obtains the sum of two INT8 type values.
*/

#include <stdio.h>
 
EXEC SQL include "int8.h";

char string1[] = "6";
char string2[] = "9,223,372,036,854,775";
char string3[] = "999,999,999,999,999,9995";
char result[41];

main()
{
    mint x;
    ifx_int8_t num1, num2, num3, sum;

    printf("INT8 Sample ESQL Program running.\n\n");

    if (x = ifx_int8cvasc(string1, strlen(string1), &num1))
        {
        printf("Error %d in converting string1 to INT8\n", x);
        exit(1);
        }
    if (x = ifx_int8cvasc(string2, strlen(string2), &num2))
        {
        printf("Error %d in converting string2 to INT8\n", x);
        exit(1);
        }
   if (x = ifx_int8add(&num1, &num2, &sum))    /* adding the first two INT8s */
        {
        printf("Error %d in adding INT8s\n", x);
        exit(1);
        }
    if (x = ifx_int8toasc(&sum, result, sizeof(result)))
        {
        printf("Error %d in converting INT8 result to string\n", x);
        exit(1);
        }
     result[40] = '\0';
     printf("\t%s + %s = %s\n", string1, string2, result); /* display result */

/* attempt to convert to INT8 value that is too large*/

    if (x = ifx_int8cvasc(string3, strlen(string3), &num3))
        {
        printf("Error %d in converting string3 to INT8\n", x);
        exit(1);
        }
    if (x = ifx_int8add(&num2, &num3, &sum))
        {
        printf("Error %d in adding INT8s\n", x);
        exit (1);
        }
    if (x = ifx_int8toasc(&sum, result, sizeof(result)))
        {
        printf("Error %d in converting INT8 result to string\n", x);
        exit(1);
      }
    result[40] = '\0';
    printf("\t%s + %s = %s\n", string2, string3, result); /* display result */
 
    printf("\nINT8 Sample Program over.\n\n");
    exit(0);
}

Output

INT8 Sample ESQL Program running.

   6 + 9,223,372,036,854,775 = 9223372036854781
Error -1284 in converting string3 to INT8