我有以下C代码,我使用bcc:
以16位模式运行int div(int num, int den);
int mod(int num, int den);
void readSector(char* buffer, int sector)
{
int rel_sec = mod(sector,18) + 1;
int head = div(sector,18);
head = mod(head,2);
int track = div(sector,36);
interrupt(0x13,0x201,buffer,track*0x100+rel_sec,head*0x100);
}
int div(int num, int den)
{
int i = 0;
while(num - den*i >= 0)
i++;
i--;
return i;
}
int mod(int num, int den)
{
int i = 0;
while(num -den*i >= 0)
i++;
i--;
int x = num - den*i;
return x;
}
当我使用以下命令编译它时:
bcc -ansi -c -o readSector.o readSector.c
我收到以下错误:
readSector.c:9.4: error: bad expression
readSector.c:9.10: error: need ';'
readSector.c:9.12: error: track undeclared
readSector.c:28.4: error: bad expression
readSector.c:28.6: error: need ';'
readSector.c:28.8: error: x undeclared
如何删除这些?
答案 0 :(得分:4)
您可能正在使用pre C99编译器。或者你至少告诉编译器这样做会提供选项-ansi,这可能会使编译器坚持C89标准。
C89标准不允许在其他地方使用变量定义,但是在块的开头。
要解决第一个错误,请修改此:
void readSector(char* buffer, int sector)
{
int rel_sec = mod(sector,18) + 1;
int head = div(sector,18);
head = mod(head,2);
int track = div(sector,36);
...
看起来像这样:
void readSector(char* buffer, int sector)
{
int rel_sec = mod(sector,18) + 1;
int head = div(sector,18);
int track = div(sector,36);
head = mod(head,2);
...
对于第二次错误更改:
int mod(int num, int den)
{
int i = 0;
while(num -den*i >= 0)
i++;
i--;
int x = num - den*i;
return x;
}
例如:
int mod(int num, int den)
{
int i = 0;
while(num -den*i >= 0)
i++;
i--;
{
int x = num - den*i;
return x;
}
}