问题
I am trying to print a value of type timeval. Actually I am able to print it, but I get the following warning:
Multiple markers at this line
- format ‘%ld’ expects type ‘long int’, but argument 2 has type ‘struct timeval’
The program compiles and it prints the values, but I would like to know if I am doing something wrong. Thanks.
printf("%ld.%6ld\n",usage.ru_stime);
printf("%ld.%6ld\n",usage.ru_utime);
where usage is of type
typedef struct{
struct timeval ru_utime; /* user time used */
struct timeval ru_stime; /* system time used */
long ru_maxrss; /* maximum resident set size */
long ru_ixrss; /* integral shared memory size */
long ru_idrss; /* integral unshared data size */
long ru_isrss; /* integral unshared stack size */
long ru_minflt; /* page reclaims */
long ru_majflt; /* page faults */
long ru_nswap; /* swaps */
long ru_inblock; /* block input operations */
long ru_oublock; /* block output operations */
long ru_msgsnd; /* messages sent */
long ru_msgrcv; /* messages received */
long ru_nsignals; /* signals received */
long ru_nvcsw; /* voluntary context switches */
long ru_nivcsw; /* involuntary context switches */
}rusage;
struct rusage usage;
回答1:
In the GNU C Library, struct timeval:
is declared in sys/time.h and has the following members:
long int tv_secThis represents the number of whole seconds of elapsed time.
long int tv_usecThis is the rest of the elapsed time (a fraction of a second), represented as the number of microseconds. It is always less than one million.
So you will need to do
printf("%ld.%06ld\n", usage.ru_stime.tv_sec, usage.ru_stime.tv_usec);
to get a "nicely formatted" timestamp like 1.000123.
回答2:
Since struct timeval will be declared something like:
struct timeval {
time_t tv_sec;
suseconds_t tv_usec;
}
you need to get at the underlying fields:
printf ("%ld.%06ld\n", usage.ru_stime.tv_sec, usage.ru_stime.tv_usec);
printf ("%ld.%06ld\n", usage.ru_utime.tv_sec, usage.ru_utime.tv_usec);
回答3:
yeah its
int main( void )
{
clock_t start, stop;
long int x;
double duration;
static struct timeval prev;
struct timeval now;
start = clock(); // get number of ticks before loop
for( x = 0; x < 1000000000; x++ );
// sleep(100);
stop = clock(); // get number of ticks after loop
// calculate time taken for loop
duration = ( double ) ( stop - start ) / CLOCKS_PER_SEC;
printf( "\nThe number of seconds for loop to run was %.2lf\n", duration );
gettimeofday(&now, NULL);
prev.tv_sec = duration;
if (prev.tv_sec)
{
int diff = (now.tv_sec-prev.tv_sec)*1000+(now.tv_usec-prev.tv_usec)/1000;
printf("DIFF %d\n",diff);
}
return 0;
}
回答4:
Yes , timeval is defined like this
struct timeval {
time_t tv_sec;
suseconds_t tv_usec;
}
Using
printf ("%ld.%06ld\n", usage.ru_stime.tv_sec, usage.ru_stime.tv_usec);
will surely of help.
回答5:
I just made up this handy little function from the info above. Self-contained except for needing time.h. Call it with the label you want wherever you want to know the time in your stdout stream.
void timestamp(char *lbl) { // just outputs time and label
struct timeval tval;
int rslt;
rslt = gettimeofday(&tval,NULL);
if (rslt) printf("gettimeofday error\n");
printf("%s timestamp: %ld.%06ld\n", lbl, tval.tv_sec, tval.tv_usec);
}
Typical output looks like: dpyfunc got ftqmut timestamp: 1537394319.501560
And, you can surround the calls to it with a #ifdef to turn them on and off all at once by commenting out your #define. This could be useful almost like profiling but you can quickly disable it for production/release code. Like:
#define TIMEDUMPS
#ifdef TIMEDUMPS
timestamp("function 1 start");
#endif
#ifdef TIMEDUMPS
timestamp("function 2 start");
#endif
Comment out the #define TIMEDUMPS and it turns all of them off. No matter how many, in how many source code files.
回答6:
.tv_sec can be -ve and when this happens, .tv_usec biased (forced to the range [0..1000000), hence:
#include <stdint.h>
#include <stdlib.h>
#include <stdio.h>
#include <sys/time.h>
static void frac(intmax_t usec)
{
int precision = 6;
while (usec % 10 == 0 && precision > 1) {
precision--;
usec = usec / 10;
}
printf(".%0*jd", precision, usec);
}
static void print_timeval(struct timeval tv)
{
struct timeval d;
/*
* When .tv_sec is -ve, .tv_usec is biased (it's forced to the
* range 0..1000000 and then .tv_sec gets adjusted). Rather
* than deal with that convert -ve values to +ve.
*/
if (tv.tv_sec < 0) {
printf("-");
struct timeval zero = {0,};
timersub(&zero, &tv, &d);
} else {
d = tv;
}
printf("%jd", (intmax_t)d.tv_sec);
if (d.tv_usec > 0) {
frac(d.tv_usec);
}
}
int main()
{
for (intmax_t i = 1000000; i > 0; i = i / 10) {
for (intmax_t j = 1000000; j > 0; j = j / 10) {
struct timeval a = { .tv_sec = i / 1000000, .tv_usec = i % 1000000, };
struct timeval b = { .tv_sec = j / 1000000, .tv_usec = j % 1000000, };
struct timeval d;
timersub(&a, &b, &d);
printf("%7jd us - %7jd us = %7jd us | %2jd.%06jd - %2jd.%06jd = %2jd.%06jd | ",
i, j, i - j,
(intmax_t)a.tv_sec, (intmax_t)a.tv_usec,
(intmax_t)b.tv_sec, (intmax_t)b.tv_usec,
(intmax_t)d.tv_sec, (intmax_t)d.tv_usec);
print_timeval(d);
printf("\n");
}
}
return 0;
}
来源:https://stackoverflow.com/questions/1469495/unix-programming-struct-timeval-how-to-print-it-c-programming