LeetCode in Kotlin
1370. Increasing Decreasing String
Easy
You are given a string s. Reorder the string using the following algorithm:
- Pick the smallest character from
sand append it to the result. - Pick the smallest character from
swhich is greater than the last appended character to the result and append it. - Repeat step 2 until you cannot pick more characters.
- Pick the largest character from
sand append it to the result. - Pick the largest character from
swhich is smaller than the last appended character to the result and append it. - Repeat step 5 until you cannot pick more characters.
- Repeat the steps from 1 to 6 until you pick all characters from
s.
In each step, If the smallest or the largest character appears more than once you can choose any occurrence and append it to the result.
Return the result string after sorting s with this algorithm.
Example 1:
Input: s = “aaaabbbbcccc”
Output: “abccbaabccba”
Explanation: After steps 1, 2 and 3 of the first iteration, result = “abc”
After steps 4, 5 and 6 of the first iteration, result = “abccba”
First iteration is done. Now s = “aabbcc” and we go back to step 1
After steps 1, 2 and 3 of the second iteration, result = “abccbaabc”
After steps 4, 5 and 6 of the second iteration, result = “abccbaabccba”
Example 2:
Input: s = “rat”
Output: “art”
Explanation: The word “rat” becomes “art” after re-ordering it with the mentioned algorithm.
Constraints:
1 <= s.length <= 500sconsists of only lowercase English letters.
Solution
class Solution {
fun sortString(s: String): String {
val count = IntArray(26)
for (c in s.toCharArray()) {
count[c.code - 'a'.code]++
}
val sb = StringBuilder()
while (sb.length < s.length) {
for (i in count.indices) {
if (count[i] != 0) {
val character = (i + 'a'.code).toChar()
sb.append(character)
count[i]--
}
}
for (i in 25 downTo 0) {
if (count[i] > 0) {
val character = (i + 'a'.code).toChar()
sb.append(character)
count[i]--
}
}
}
return sb.toString()
}
}