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问题描述:
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字符串替换空格:请实现一个函数,把字符串中的每个空格替换成“%20”。例如输入“we are happy.”,则输出“we%20are%20happy.”。
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代码实现:
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#include
int replace(char *p)
{
#if 0
while(*p!='\0')
{
if(*p==' ')
{
printf("%%20");
}
else
{
printf("%c",*p);
}
p++;
}
#endif//结束#if 0
if (*p == ' ')
{
return 1;
}
else return 2;
printf("\n");
}
int main()
{
char arr[] ="we are happy.";
char *p = arr;
int ret = 0;
while (*p != '\0')
{
ret = replace(p);
if (ret == 1)
{
printf("%%20");
}
if (ret == 2)
{
printf("%c",*p);
}
p++;
}
printf("\n");
return 0;
}
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运行结果:
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