Description#
Given a pattern and a string s, find if s follows the same pattern.
Here follow means a full match, such that there is a bijection between a letter in pattern and a non-empty word in s.
Example 1:
Input: pattern = "abba", s = "dog cat cat dog"
Output: true
Example 2:
Input: pattern = "abba", s = "dog cat cat fish"
Output: false
Example 3:
Input: pattern = "aaaa", s = "dog cat cat dog"
Output: false
Constraints:
1 <= pattern.length <= 300pattern contains only lower-case English letters.1 <= s.length <= 3000s contains only lowercase English letters and spaces ' '.s does not contain any leading or trailing spaces.- All the words in
s are separated by a single space.
Solutions#
Solution 1: Hash Table#
First, we split the string $s$ into a word array $ws$ with spaces. If the length of $pattern$ and $ws$ is not equal, return false directly. Otherwise, we use two hash tables $d_1$ and $d_2$ to record the correspondence between each character and word in $pattern$ and $ws$.
Then, we traverse $pattern$ and $ws$. For each character $a$ and word $b$, if there is a mapping for $a$ in $d_1$, and the mapped word is not $b$, or there is a mapping for $b$ in $d_2$, and the mapped character is not $a$, return false. Otherwise, we add the mapping of $a$ and $b$ to $d_1$ and $d_2$ respectively.
After the traversal, return true.
The time complexity is $O(m + n)$ and the space complexity is $O(m + n)$. Here $m$ and $n$ are the length of $pattern$ and string $s$.
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| class Solution:
def wordPattern(self, pattern: str, s: str) -> bool:
ws = s.split()
if len(pattern) != len(ws):
return False
d1 = {}
d2 = {}
for a, b in zip(pattern, ws):
if (a in d1 and d1[a] != b) or (b in d2 and d2[b] != a):
return False
d1[a] = b
d2[b] = a
return True
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| class Solution {
public boolean wordPattern(String pattern, String s) {
String[] ws = s.split(" ");
if (pattern.length() != ws.length) {
return false;
}
Map<Character, String> d1 = new HashMap<>();
Map<String, Character> d2 = new HashMap<>();
for (int i = 0; i < ws.length; ++i) {
char a = pattern.charAt(i);
String b = ws[i];
if (!d1.getOrDefault(a, b).equals(b) || d2.getOrDefault(b, a) != a) {
return false;
}
d1.put(a, b);
d2.put(b, a);
}
return true;
}
}
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| class Solution {
public:
bool wordPattern(string pattern, string s) {
istringstream is(s);
vector<string> ws;
while (is >> s) {
ws.push_back(s);
}
if (pattern.size() != ws.size()) {
return false;
}
unordered_map<char, string> d1;
unordered_map<string, char> d2;
for (int i = 0; i < ws.size(); ++i) {
char a = pattern[i];
string b = ws[i];
if ((d1.count(a) && d1[a] != b) || (d2.count(b) && d2[b] != a)) {
return false;
}
d1[a] = b;
d2[b] = a;
}
return true;
}
};
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| func wordPattern(pattern string, s string) bool {
ws := strings.Split(s, " ")
if len(ws) != len(pattern) {
return false
}
d1 := map[rune]string{}
d2 := map[string]rune{}
for i, a := range pattern {
b := ws[i]
if v, ok := d1[a]; ok && v != b {
return false
}
if v, ok := d2[b]; ok && v != a {
return false
}
d1[a] = b
d2[b] = a
}
return true
}
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| function wordPattern(pattern: string, s: string): boolean {
const ws = s.split(' ');
if (pattern.length !== ws.length) {
return false;
}
const d1 = new Map<string, string>();
const d2 = new Map<string, string>();
for (let i = 0; i < pattern.length; ++i) {
const a = pattern[i];
const b = ws[i];
if (d1.has(a) && d1.get(a) !== b) {
return false;
}
if (d2.has(b) && d2.get(b) !== a) {
return false;
}
d1.set(a, b);
d2.set(b, a);
}
return true;
}
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| use std::collections::HashMap;
impl Solution {
pub fn word_pattern(pattern: String, s: String) -> bool {
let cs1: Vec<char> = pattern.chars().collect();
let cs2: Vec<&str> = s.split_whitespace().collect();
let n = cs1.len();
if n != cs2.len() {
return false;
}
let mut map1 = HashMap::new();
let mut map2 = HashMap::new();
for i in 0..n {
let c = cs1[i];
let s = cs2[i];
if !map1.contains_key(&c) {
map1.insert(c, i);
}
if !map2.contains_key(&s) {
map2.insert(s, i);
}
if map1.get(&c) != map2.get(&s) {
return false;
}
}
true
}
}
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| public class Solution {
public bool WordPattern(string pattern, string s) {
var ws = s.Split(' ');
if (pattern.Length != ws.Length) {
return false;
}
var d1 = new Dictionary<char, string>();
var d2 = new Dictionary<string, char>();
for (int i = 0; i < ws.Length; ++i) {
var a = pattern[i];
var b = ws[i];
if (d1.ContainsKey(a) && d1[a] != b) {
return false;
}
if (d2.ContainsKey(b) && d2[b] != a) {
return false;
}
d1[a] = b;
d2[b] = a;
}
return true;
}
}
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