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Medium |
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Given an array of characters chars
, compress it using the following algorithm:
Begin with an empty string s
. For each group of consecutive repeating characters in chars
:
- If the group's length is
1
, append the character tos
. - Otherwise, append the character followed by the group's length.
The compressed string s
should not be returned separately, but instead, be stored in the input character array chars
. Note that group lengths that are 10
or longer will be split into multiple characters in chars
.
After you are done modifying the input array, return the new length of the array.
You must write an algorithm that uses only constant extra space.
Example 1:
Input: chars = ["a","a","b","b","c","c","c"] Output: Return 6, and the first 6 characters of the input array should be: ["a","2","b","2","c","3"] Explanation: The groups are "aa", "bb", and "ccc". This compresses to "a2b2c3".
Example 2:
Input: chars = ["a"] Output: Return 1, and the first character of the input array should be: ["a"] Explanation: The only group is "a", which remains uncompressed since it's a single character.
Example 3:
Input: chars = ["a","b","b","b","b","b","b","b","b","b","b","b","b"] Output: Return 4, and the first 4 characters of the input array should be: ["a","b","1","2"]. Explanation: The groups are "a" and "bbbbbbbbbbbb". This compresses to "ab12".
Constraints:
1 <= chars.length <= 2000
chars[i]
is a lowercase English letter, uppercase English letter, digit, or symbol.
class Solution:
def compress(self, chars: List[str]) -> int:
i, k, n = 0, 0, len(chars)
while i < n:
j = i + 1
while j < n and chars[j] == chars[i]:
j += 1
chars[k] = chars[i]
k += 1
if j - i > 1:
cnt = str(j - i)
for c in cnt:
chars[k] = c
k += 1
i = j
return k
class Solution {
public int compress(char[] chars) {
int k = 0, n = chars.length;
for (int i = 0, j = i + 1; i < n;) {
while (j < n && chars[j] == chars[i]) {
++j;
}
chars[k++] = chars[i];
if (j - i > 1) {
String cnt = String.valueOf(j - i);
for (char c : cnt.toCharArray()) {
chars[k++] = c;
}
}
i = j;
}
return k;
}
}
class Solution {
public:
int compress(vector<char>& chars) {
int k = 0, n = chars.size();
for (int i = 0, j = i + 1; i < n;) {
while (j < n && chars[j] == chars[i])
++j;
chars[k++] = chars[i];
if (j - i > 1) {
for (char c : to_string(j - i)) {
chars[k++] = c;
}
}
i = j;
}
return k;
}
};
func compress(chars []byte) int {
i, k, n := 0, 0, len(chars)
for i < n {
j := i + 1
for j < n && chars[j] == chars[i] {
j++
}
chars[k] = chars[i]
k++
if j-i > 1 {
cnt := strconv.Itoa(j - i)
for _, c := range cnt {
chars[k] = byte(c)
k++
}
}
i = j
}
return k
}
impl Solution {
pub fn compress(chars: &mut Vec<char>) -> i32 {
let (mut i, mut k, n) = (0, 0, chars.len());
while i < n {
let mut j = i + 1;
while j < n && chars[j] == chars[i] {
j += 1;
}
chars[k] = chars[i];
k += 1;
if j - i > 1 {
let cnt = (j - i).to_string();
for c in cnt.chars() {
chars[k] = c;
k += 1;
}
}
i = j;
}
k as i32
}
}