给出第一个词 first 和第二个词 second,考虑在某些文本 text 中可能以 "first second third" 形式出现的情况,其中 second 紧随 first 出现,third 紧随 second 出现。
对于每种这样的情况,将第三个词 "third" 添加到答案中,并返回答案。
示例 1:
输入:text = "alice is a good girl she is a good student", first = "a", second = "good" 输出:["girl","student"]
示例 2:
输入:text = "we will we will rock you", first = "we", second = "will" 输出:["we","rock"]
提示:
1 <= text.length <= 1000text由小写英文字母和空格组成text中的所有单词之间都由 单个空格字符 分隔1 <= first.length, second.length <= 10first和second由小写英文字母组成
将 text 按空格切分为 words 列表,然后遍历 words,判断是否满足 words[i] == first && words[i + 1] == second,若是,则将 words[i + 2] 添加至结果列表 ans 中。
最后返回 ans 即可。
class Solution:
def findOcurrences(self, text: str, first: str, second: str) -> List[str]:
words = text.split(' ')
return [
words[i + 2]
for i in range(len(words) - 2)
if words[i] == first and words[i + 1] == second
]class Solution {
public String[] findOcurrences(String text, String first, String second) {
String[] words = text.split(" ");
List<String> ans = new ArrayList<>();
for (int i = 0; i < words.length - 2; ++i) {
if (first.equals(words[i]) && second.equals(words[i + 1])) {
ans.add(words[i + 2]);
}
}
return ans.toArray(new String[0]);
}
}class Solution {
public:
vector<string> findOcurrences(string text, string first, string second) {
istringstream is(text);
vector<string> words;
string word;
while (is >> word) words.push_back(word);
vector<string> ans;
for (int i = 0; i < words.size() - 2; ++i)
if (words[i] == first && words[i + 1] == second)
ans.push_back(words[i + 2]);
return ans;
}
};func findOcurrences(text string, first string, second string) []string {
words := strings.Split(text, " ")
var ans []string
for i := 0; i < len(words)-2; i++ {
if words[i] == first && words[i+1] == second {
ans = append(ans, words[i+2])
}
}
return ans
}