| comments | difficulty | edit_url | tags | ||
|---|---|---|---|---|---|
true |
Easy |
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Your friend is typing his name into a keyboard. Sometimes, when typing a character c, the key might get long pressed, and the character will be typed 1 or more times.
You examine the typed characters of the keyboard. Return True if it is possible that it was your friends name, with some characters (possibly none) being long pressed.
Example 1:
Input: name = "alex", typed = "aaleex" Output: true Explanation: 'a' and 'e' in 'alex' were long pressed.
Example 2:
Input: name = "saeed", typed = "ssaaedd" Output: false Explanation: 'e' must have been pressed twice, but it was not in the typed output.
Constraints:
1 <= name.length, typed.length <= 1000nameandtypedconsist of only lowercase English letters.
We use two pointers typed and name respectively, and then start traversing. If typed[j] is not equal to name[i], it means the two strings do not match, and we directly return False. Otherwise, we find the next position of the continuous identical characters, denoted as typed is less than the number of characters in name, and we directly return False. Otherwise, we update name and typed respectively, and return True.
The time complexity is name and typed respectively. The space complexity is $O(1)`.
class Solution:
def isLongPressedName(self, name: str, typed: str) -> bool:
m, n = len(name), len(typed)
i = j = 0
while i < m and j < n:
if name[i] != typed[j]:
return False
x = i + 1
while x < m and name[x] == name[i]:
x += 1
y = j + 1
while y < n and typed[y] == typed[j]:
y += 1
if x - i > y - j:
return False
i, j = x, y
return i == m and j == nclass Solution {
public boolean isLongPressedName(String name, String typed) {
int m = name.length(), n = typed.length();
int i = 0, j = 0;
while (i < m && j < n) {
if (name.charAt(i) != typed.charAt(j)) {
return false;
}
int x = i + 1;
while (x < m && name.charAt(x) == name.charAt(i)) {
++x;
}
int y = j + 1;
while (y < n && typed.charAt(y) == typed.charAt(j)) {
++y;
}
if (x - i > y - j) {
return false;
}
i = x;
j = y;
}
return i == m && j == n;
}
}class Solution {
public:
bool isLongPressedName(string name, string typed) {
int m = name.length(), n = typed.length();
int i = 0, j = 0;
while (i < m && j < n) {
if (name[i] != typed[j]) {
return false;
}
int x = i + 1;
while (x < m && name[x] == name[i]) {
++x;
}
int y = j + 1;
while (y < n && typed[y] == typed[j]) {
++y;
}
if (x - i > y - j) {
return false;
}
i = x;
j = y;
}
return i == m && j == n;
}
};func isLongPressedName(name string, typed string) bool {
m, n := len(name), len(typed)
i, j := 0, 0
for i < m && j < n {
if name[i] != typed[j] {
return false
}
x, y := i+1, j+1
for x < m && name[x] == name[i] {
x++
}
for y < n && typed[y] == typed[j] {
y++
}
if x-i > y-j {
return false
}
i, j = x, y
}
return i == m && j == n
}function isLongPressedName(name: string, typed: string): boolean {
const [m, n] = [name.length, typed.length];
let i = 0;
let j = 0;
while (i < m && j < n) {
if (name[i] !== typed[j]) {
return false;
}
let x = i + 1;
while (x < m && name[x] === name[i]) {
x++;
}
let y = j + 1;
while (y < n && typed[y] === typed[j]) {
y++;
}
if (x - i > y - j) {
return false;
}
i = x;
j = y;
}
return i === m && j === n;
}impl Solution {
pub fn is_long_pressed_name(name: String, typed: String) -> bool {
let (m, n) = (name.len(), typed.len());
let (mut i, mut j) = (0, 0);
let s: Vec<char> = name.chars().collect();
let t: Vec<char> = typed.chars().collect();
while i < m && j < n {
if s[i] != t[j] {
return false;
}
let mut x = i + 1;
while x < m && s[x] == s[i] {
x += 1;
}
let mut y = j + 1;
while y < n && t[y] == t[j] {
y += 1;
}
if x - i > y - j {
return false;
}
i = x;
j = y;
}
i == m && j == n
}
}