You are given a binary string s that contains at least one '1'.
You have to rearrange the bits in such a way that the resulting binary number is the maximum odd binary number that can be created from this combination.
Return a string representing the maximum odd binary number that can be created from the given combination.
Note that the resulting string can have leading zeros.
Example 1:
Input: s = "010" Output: "001" Explanation: Because there is just one '1', it must be in the last position. So the answer is "001".
Example 2:
Input: s = "0101" Output: "1001" Explanation: One of the '1's must be in the last position. The maximum number that can be made with the remaining digits is "100". So the answer is "1001".
Constraints:
1 <= s.length <= 100sconsists only of'0'and'1'.scontains at least one'1'.
Solution 1: Greedy
First, we count the number of '1's in the string
The time complexity is
class Solution:
def maximumOddBinaryNumber(self, s: str) -> str:
cnt = s.count("1")
return "1" * (cnt - 1) + (len(s) - cnt) * "0" + "1"class Solution {
public String maximumOddBinaryNumber(String s) {
int cnt = 0;
for (char c : s.toCharArray()) {
if (c == '1') {
++cnt;
}
}
return "1".repeat(cnt - 1) + "0".repeat(s.length() - cnt) + "1";
}
}class Solution {
public:
string maximumOddBinaryNumber(string s) {
int cnt = count_if(s.begin(), s.end(), [](char c) { return c == '1'; });
string ans;
for (int i = 1; i < cnt; ++i) {
ans.push_back('1');
}
for (int i = 0; i < s.size() - cnt; ++i) {
ans.push_back('0');
}
ans.push_back('1');
return ans;
}
};func maximumOddBinaryNumber(s string) string {
cnt := strings.Count(s, "1")
return strings.Repeat("1", cnt-1) + strings.Repeat("0", len(s)-cnt) + "1"
}function maximumOddBinaryNumber(s: string): string {
let cnt = 0;
for (const c of s) {
cnt += c === '1' ? 1 : 0;
}
return '1'.repeat(cnt - 1) + '0'.repeat(s.length - cnt) + '1';
}