isspace(int x)
{
if(x==' '||x=='\t'||x=='\n'||x=='\f'||x=='\b'||x=='\r')
return 1;
else
return 0;
}
isdigit(int x)
{
if(x<='9'&&x>='0')
return 1;
else
return 0;
}
int atoi(const char *nptr)
{
int c; /* current char */
int total; /* current total */
int sign; /* if '-', then negative, otherwise positive */
/* skip whitespace */
while ( isspace((int)(unsigned char)*nptr) )
++nptr;
c = (int)(unsigned char)*nptr++;
sign = c; /* save sign indication */
if (c == '-' || c == '+')
c = (int)(unsigned char)*nptr++; /* skip sign */
total = 0;
while (isdigit(c)) {
total = 10 * total + (c - '0'); /* accumulate digit */
c = (int)(unsigned char)*nptr++; /* get next char */
}
if (sign == '-')
return -total;
else
return total; /* return result, negated if necessary */
}
看了atol的实现,发现char到int的转换比较奇怪:c = (int)(unsigned char)*nptr++; 先将char转为unsigned再转为int,于是测试了下,发现有如下结果:#include<stdio.h>
void main()
{
char c = 0x80;
unsigned char uc = 0x80;
printf("c2i=%x,c2ui=%x,uc2i=%x,uc2ui=%x\n", (int)c,(unsigned int)c,(int)uc,(unsigned int)uc
);
}可以发现,如果char默认为signed(可能是平台相关的),则将char转为int或uint时,会有符号位扩展,而unsigned char则不会。atol/atoi函数应该希望避免符号位扩展而带来问题。不过,好在数字0到9的ACSII码并没有超过0x7F,因此是否事先转成unsigned char应该不会对结果有影响。
原文:http://blog.csdn.net/u014082714/article/details/44775269