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i am getting the following warning when i compile in C.

   ../tcpuip/uip_arp.c: In function 'display_arp_table':
    ../tcpuip/uip_arp.c:547: warning: '0' flag ignored with precision and '%x' gnu_p
    rintf format
    ../tcpuip/uip_arp.c:547: warning: '0' flag ignored with precision and '%x' gnu_p
    rintf format
    ../tcpuip/uip_arp.c:547: warning: '0' flag ignored with precision and '%x' gnu_p
    rintf format
    ../tcpuip/uip_arp.c:547: warning: '0' flag ignored with precision and '%x' gnu_p
    rintf format
    ../tcpuip/uip_arp.c:547: warning: '0' flag ignored with precision and '%x' gnu_p
    rintf format
    ../tcpuip/uip_arp.c:547: warning: '0' flag ignored with precision and '%x' gnu_p
    rintf format
    ../tcpuip/uip_arp.c:547: warning: '0' flag ignored with precision and '%x' gnu_p
    rintf format
    ../tcpuip/uip_arp.c:547: warning: '0' flag ignored with precision and '%x' gnu_p
    rintf format
    ../tcpuip/uip_arp.c:547: warning: '0' flag ignored with precision and '%x' gnu_p
    rintf format
    ../tcpuip/uip_arp.c:547: warning: '0' flag ignored with precision and '%x' gnu_p
    rintf format
    ../tcpuip/uip_arp.c:547: warning: '0' flag ignored with precision and '%x' gnu_p
    rintf format
    ../tcpuip/uip_arp.c:547: warning: '0' flag ignored with precision and '%x' gnu_printf format

the line where the error comes is

        RELEASE_MSG("MAC: %0.2x.%0.2x.%0.2x.%0.2x.%0.2x.%0.2x  ",(unsigned char)tabptr->ethaddr.addr[0],(unsigned char)tabptr->ethaddr.addr[1],(unsigned char)tabptr->ethaddr.addr[2],(unsigned char)tabptr->ethaddr.addr[3],(unsigned char)tabptr->ethaddr.addr[4],(unsigned char)tabptr->ethaddr.addr[5]);

tabptr is a pointer of struct arp_entry

PACKED struct arp_entry {
  u16_t ipaddr[2];
  struct uip_eth_addr ethaddr;
  u8_t time;
#ifdef _ALIGNED_
  u8_t dummy;
#endif
}

and ethadder is a pointer for struct uip_eth_addr

PACKED struct uip_eth_addr {
  u8_t addr[6];
}  ;

Please if anyone can share some light on this warning. I just know that %0.2x means character as two digit HEX. Help!

share|improve this question
up vote 3 down vote accepted

The format string %0.2x means:

  • print an unsigned integer in hex
  • print at least two numbers
  • pad it from left with zeros

Since the precision defines the minimum number of digits to output, the zero padding will be ignored (from the specification). You can use %.2x or %02x that will do what you want.

To get

   1
  11
55555

You'd use %4x.

  01
  11
 111

would be %4.2x

0001
0011
55555

would be %04x or %.4x.

Note that there is difference when the value is signed. The precision defines the number of digits, meaning the value will occupy one more space for the sign. With minimum output width, sign is already counted:

$ printf "%.5i\n%05i\n" '-11' -11
-00011
-0011
share|improve this answer

You certainly wanted to write:

%02x instead of %0.2x

share|improve this answer

Actually, %2.2x would be 2-digit hex. 0 is a format flag indicating zero padding instead of blank padding, but since you didn't specify a field width, only a precision, it is meaningless.

share|improve this answer

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