当我尝试编译代码时,我收到以下警告:
exercise6.c:32:14:警告:格式'%c'需要'char *'类型的参数,但参数2的类型为'int *'[-Wformat]
导致此警告的原因是什么?如何解决?
/*Write a program that displays the contents of a file at the terminal 20 lines at
a time. At the end of each 20 lines, have the program wait for a character to be
entered from the terminal. If the character is the letter q, the program should
stop the display of the file; any other character should cause the next 20 lines
from the file to be displayed.*/
#include <stdio.h>
#include <stdlib.h>
int main (void)
{
int c, i;
FILE *file;
if ( (file = fopen ("text", "r")) == NULL )
printf ("Error opening the file.\n");
for ( i = 0; i < 20; ) {
c = getc (file);
if ( c == EOF ) {
fclose (file);
exit (EXIT_SUCCESS);
}
putc (c, stdout);
if ( c == '\n' )
++i;
if ( i == 20 ) {
scanf ("%c", &c);
if ( c == 'q' ) {
fclose (file);
exit (EXIT_SUCCESS);
}
i = 0;
}
}
}
答案 0 :(得分:5)
定义char ch并在scanf中使用。
int c, i;
char ch;
/* ... */
scanf ("%c", &ch);
对scanf使用不匹配的参数是技术上未定义的行为。