現在我有一個看起來像這樣的字串:
A sentence
with a newline.
我正在通過控制臺輸入讀取字串,如下所示:
ch = getchar();
while (ch != '.') {
msg[i] = ch;
i ;
ch = getchar();
}
并且,在讀入之后,我通過在函式中執行此操作并將其應用于msgchar 陣列來洗掉存在的空格:
char *remove_white_spaces(char *str) {
int i = 0, j = 0;
while (str[i]) {
if (str[i] != ' ')
str[j ] = str[i];
i ;
}
str[j] = '\0';
return str;
}
我試過回圈遍歷它并在 at 處停止,\n但這會留下“Asentence”的輸出,因為字串在\n設定為 0 時終止。
整個主要:
int main(void) {
char msg[MAX_MSG_LEN 1];
char ch;
int i = 0;
ch = getchar();
while (ch != '.') {
msg[i] = ch;
i ;
ch = getchar();
}
msg[i] = '.';
msg[i 1] = '\0';
remove_white_spaces(msg);
printf("%s\n", msg);
return 0;
}
uj5u.com熱心網友回復:
您可以使用該isspace函式來測驗和跳過任何/所有空白字符,包括普通空格和換行符:
#include <ctype.h> // For definition of "isspace"
char *remove_white_spaces(char *str) {
int i = 0, j = 0;
while (str[i]) {
if (!isspace((unsigned char)(str[i])))
str[j ] = str[i];
i ;
}
str[j] = '\0';
return str;
}
關于將引數轉換isspace為 an的原因unsigned char,請參閱此討論。
uj5u.com熱心網友回復:
函式洗掉和替換字串中的任何字符。
toRemove- 要洗掉的字符addSpace- 替換為空格allowMultiple- 替換更多相鄰
字符時允許多個空格allowEdges- 允許在開頭和結尾添加空格
char *removeChars(char *str, const char *toRemove, const int addSpace, const int allowMultiple, int const allowEdges)
{
char *rd = str, *wr = str;
int replaced = 0;
if(rd)
{
while(*rd)
{
if(strchr(toRemove, *rd))
{
if(addSpace)
{
if(!replaced || allowMultiple)
{
if(wr != str || (wr == str && allowEdges))
{
*wr = ' ';
replaced = 1;
}
}
}
}
else
{
*wr = *rd;
replaced = 0;
}
rd ;
}
if(allowEdges) *wr = 0;
else
while((wr - 1) > str)
{
if(*(wr - 1) == ' ') {*(wr - 1) = 0; wr--;}
else break;
}
}
return str;
}
int main(void)
{
char str[] = "%%%%%A sentence\n\n\nwith!@#$%^a newline.%%%%%%%";
printf("`%s`\n", removeChars(str,"\n!@#$%^", 1, 0, 0));
}
uj5u.com熱心網友回復:
按照@MarkBenningfield 的建議,我執行了以下操作并檢查了 '\n' 并用空格替換了它。
while (ch != '.') {
msg[i] = ch;
i ;
ch = getchar();
if (ch == '\n') {
ch = ' ';
}
}
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