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I am having code error while compiling this

#include <stdio.h>      // standard input / output functions
#include <stdlib.h>
#include <string.h>     // string function definitions
#include <unistd.h>     // UNIX standard function definitions
#include <fcntl.h>      // File control definitions
#include <errno.h>      // Error number definitions
#include <termios.h>   

void main()
{
int USB = open( "/dev/ttyUSB0", O_RDWR| O_NOCTTY );         
struct termios tty;
struct termios tty_old;
memset (&tty, 0, sizeof tty);
/* Error Handling */
if ( tcgetattr ( USB, &tty ) != 0 ) 
{
printf("Error %d form tcgetattr : %d /n",&errno,strerror(errno));
}
}

Error is

USB2UART.c:18:49: error:lvalue required as unary ‘&’ operand
printf("Error %d form tcgetattr : %d /n",&errno,&strerror(errno));
                                         ^

I am using USB to UART conversion and trying to get error with its handler. Hope someone could help. Thanks :)

  • How is errno declared? – Brick Oct 12 '15 at 5:20
  • So what is the declaration of errno? – Mattias Lindberg Oct 12 '15 at 5:22
  • actually it is working correctly with C++ std::cout << "Error " << errno << " from tcgetattr: " << strerror(errno) << std::endl; – Abhishek Parikh Oct 12 '15 at 5:28
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you just don't need the & operator.

if ( tcgetattr ( USB, &tty ) != 0 ) {
    printf( "Error %d form tcgetattr : %s /n", errno, strerror( errno ) );
}

try this

  • Thank you for quick reply but still it is giving error USB2UART.c: In function ‘main’: USB2UART.c:18:5: warning: format ‘%d’ expects argument of type ‘int’, but argument 3 has type ‘char *’ [-Wformat=] printf( "Error %d form tcgetattr : %d /n", errno, strerror( errno ) ); – Abhishek Parikh Oct 12 '15 at 5:38
  • The second %d has to be %s. – cremno Oct 12 '15 at 5:39
  • fixed it. please try again and let me know if it works – Itay Sela Oct 12 '15 at 6:12
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It looks like that you are trying to apply & at a literal whereas it is applied on a variable and not a literal. Try to remove & and then give it a try.

The C++ standard, §5.3.1,3 says:

The result of the unary & operator is a pointer to its operand. The operand shall be an lvalue [...]

  • Removing it gives me this type of error In function ‘main’: USB2UART.c:18:1: warning: format ‘%d’ expects argument of type ‘int’, but argument 2 has type ‘int *’ [-Wformat=] printf("Error %d form tcgetattr : %d /n",&errno,strerror(errno)); ^ USB2UART.c:18:1: warning: format ‘%d’ expects argument of type ‘int’, but argument 3 has type ‘char *’ [-Wformat=] – Abhishek Parikh Oct 12 '15 at 5:32
  • Maybe you should mention which standard you're quoting, especially since this is one of those two-language questions. – juanchopanza Oct 12 '15 at 6:55
  • @juanchopanza:- Thanks. Updated that! – Rahul Tripathi Oct 12 '15 at 7:02
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The problem is that you're passing an int pointer to printf for the second and third parameters while it expects an actual int. A lot of people get confused with it at first because scanf requires a pointer but printf doesn't.

So, just remove the & before both errno and strerror(errno) and it should be fine. Like this:

printf("Error %i form tcgetattr : %s \n", errno, strerror(errno));

PS: Also notice I fixed your new-line escape character. It was /n white the correct is \n.

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errno, as defined in the C library, is an int used to report errors.

strerror, in the other hand, is used to get a c string (char *) from the value of errno.

The %d flag of printf needs an int, and &errno is an int *. Replace it by errno

Also, in order to print a char * with printf, you have to use %s, and not %d.

So just replace by this :

printf("Error %d from tcgetattr : %s\n", errno, strerror(errno));

By the way, you should use perror in order to log erros, because it logs errors on stderr.

Using perror, it will look like this :

perror("Error from tcgetattr");

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