一个句子是由一些单词与它们之间的单个空格组成,且句子的开头和结尾没有多余空格。比方说,"Hello World" ,"HELLO" ,"hello world hello world" 都是句子。每个单词都 只 包含大写和小写英文字母。
如果两个句子 sentence1 和 sentence2 ,可以通过往其中一个句子插入一个任意的句子(可以是空句子)而得到另一个句子,那么我们称这两个句子是 相似的 。比方说,sentence1 = "Hello my name is Jane" 且 sentence2 = "Hello Jane" ,我们可以往 sentence2 中 "Hello" 和 "Jane" 之间插入 "my name is" 得到 sentence1 。
给你两个句子 sentence1 和 sentence2 ,如果 sentence1 和 sentence2 是相似的,请你返回 true ,否则返回 false 。
示例 1:
输入:sentence1 = "My name is Haley", sentence2 = "My Haley" 输出:true 解释:可以往 sentence2 中 "My" 和 "Haley" 之间插入 "name is" ,得到 sentence1 。
示例 2:
输入:sentence1 = "of", sentence2 = "A lot of words" 输出:false 解释:没法往这两个句子中的一个句子只插入一个句子就得到另一个句子。
示例 3:
输入:sentence1 = "Eating right now", sentence2 = "Eating" 输出:true 解释:可以往 sentence2 的结尾插入 "right now" 得到 sentence1 。
示例 4:
输入:sentence1 = "Luky", sentence2 = "Lucccky" 输出:false
提示:
1 <= sentence1.length, sentence2.length <= 100sentence1和sentence2都只包含大小写英文字母和空格。sentence1和sentence2中的单词都只由单个空格隔开。
把句子分割成单词数组,然后通过公共前后缀进行判断
class Solution:
def areSentencesSimilar(self, sentence1: str, sentence2: str) -> bool:
if sentence1 == sentence2:
return True
n1, n2 = len(sentence1), len(sentence2)
if n1 == n2:
return False
if n1 < n2:
sentence1, sentence2 = sentence2, sentence1
words1, words2 = sentence1.split(), sentence2.split()
i = j = 0
n1, n2 = len(words1), len(words2)
while i < n2 and words1[i] == words2[i]:
i += 1
if i == n2:
return True
while j < n2 and words1[n1 - 1 - j] == words2[n2 - 1 - j]:
j += 1
return j == n2 or i + j == n2class Solution {
public boolean areSentencesSimilar(String sentence1, String sentence2) {
if (sentence1.equals(sentence2)) {
return true;
}
int n1 = sentence1.length(), n2 = sentence2.length();
if (n1 == n2) {
return false;
}
if (n1 < n2) {
String t = sentence1;
sentence1 = sentence2;
sentence2 = t;
}
String[] words1 = sentence1.split(" ");
String[] words2 = sentence2.split(" ");
int i = 0, j = 0;
n1 = words1.length;
n2 = words2.length;
while (i < n2 && words1[i].equals(words2[i])) {
++i;
}
if (i == n2) {
return true;
}
while (j < n2 && words1[n1 - 1 - j].equals(words2[n2 - 1 - j])) {
++j;
}
return j == n2 || i + j == n2;
}
}func areSentencesSimilar(sentence1 string, sentence2 string) bool {
if sentence1 == sentence2 {
return true
}
l1, l2 := len(sentence1), len(sentence2)
if l1 == l2 {
return false
}
if l1 < l2 {
sentence1, sentence2 = sentence2, sentence1
}
i, j := 0, 0
w1, w2 := strings.Fields(sentence1), strings.Fields(sentence2)
l1, l2 = len(w1), len(w2)
for i < l2 && w1[i] == w2[i] {
i++
}
if i == l2 {
return true
}
for j < l2 && w1[l1-1-j] == w2[l2-1-j] {
j++
}
return j == l2 || i+j == l2
}class Solution {
public:
bool areSentencesSimilar(string sentence1, string sentence2) {
if (sentence1 == sentence2) return true;
int n1 = sentence1.size(), n2 = sentence2.size();
if (n1 == n2) return false;
if (n1 < n2) swap(sentence1, sentence2);
auto words1 = split(sentence1);
auto words2 = split(sentence2);
int i = 0, j = 0;
n1 = words1.size(), n2 = words2.size();
while (i < n2 && words1[i] == words2[i]) ++i;
if (i == n2) return true;
while (j < n2 && words1[n1 - 1 - j] == words2[n2 - 1 - j]) ++j;
return j == n2 || i + j == n2;
}
vector<string> split(const string& str) {
vector<string> words;
int i = str.find_first_not_of(' ');
int j = str.find_first_of(' ', i);
while (j != string::npos) {
words.emplace_back(str.substr(i, j - i));
i = str.find_first_not_of(' ', j);
j = str.find_first_of(' ', i);
}
words.emplace_back(str.substr(i));
return words;
}
};