Given an input string, reverse the string word by word.
For example,
Given s = "the sky is blue",
return "blue is sky the".
Update (2015-02-12):
For C programmers: Try to solve it in-place in O(1) space.
click to show clarification.
Clarification:
What constitutes a word?
A sequence of non-space characters constitutes a word.
Could the input string contain leading or trailing spaces?
Yes. However, your reversed string should not contain leading or trailing spaces.
How about multiple spaces between two words?
Reduce them to a single space in the reversed string.
这道题让我们翻转字符串中的单词,题目中给了我们写特别说明,如果单词之间遇到多个空格,只能返回一个,而且首尾不能有单词,并且对C语言程序员要求空间复杂度为O(1),所以我们只能对原字符串s之间做修改,而不能声明新的字符串。那么我们如何翻转字符串中的单词呢,我们的做法是,先整个字符串整体翻转一次,然后再分别翻转每一个单词(或者先分别翻转每一个单词,然后再整个字符串整体翻转一次),此时就能得到我们需要的结果了。那么这里我们需要定义一些变量来辅助我们解题,storeIndex表示当前存储到的位置,n为字符串的长度。我们先给整个字符串反转一下,然后我们开始循环,遇到空格直接跳过,如果是非空格字符,我们此时看storeIndex是否为0,为0的话表示第一个单词,不用增加空格;如果不为0,说明不是第一个单词,需要在单词中间加一个空格,然后我们要找到下一个单词的结束位置我们用一个while循环来找下一个为空格的位置,在此过程中继续覆盖原字符串,找到结束位置了,下面就来翻转这个单词,然后更新i为结尾位置,最后遍历结束,我们剪裁原字符串到storeIndex位置,就可以得到我们需要的结果,
class Solution {
public:
void reverseWords(string &s) {
int storeIndex = 0, n = s.size();
reverse(s.begin(), s.end());
for (int i = 0; i < n; ++i) {
if (s[i] != ' ') {
if (storeIndex != 0) s[storeIndex++] = ' ';
int j = i;
while (j < n && s[j] != ' ') s[storeIndex++] = s[j++];
reverse(s.begin() + storeIndex - (j - i), s.begin() + storeIndex);
i = j;
}
}
s.resize(storeIndex);
}
};
class Solution {
public:
void reverseWords(string &s) {
istringstream is(s);
string tmp;
is >> s;
while(is >> tmp) s = tmp + " " + s;
if(!s.empty() && s[0] == ' ') s = "";
}
};
class Solution {
public:
void reverseWords(string &s) {
istringstream is(s);
s = "";
string t = "";
while (getline(is, t, ' ')) {
if (t.empty()) continue;
s = (s.empty() ? t : (t + " " + s));
}
}
};
REF: