A string S represents a list of words.
Each letter in the word has 1 or more options. If there is one option, the letter is represented as is. If there is more than one option, then curly braces delimit the options. For example, "{a,b,c}" represents options ["a", "b", "c"].
For example, "{a,b,c}d{e,f}" represents the list ["ade", "adf", "bde", "bdf", "cde", "cdf"].
Return all words that can be formed in this manner, in lexicographical order.
Example 1:
Input: "{a,b}c{d,e}f"
Output: ["acdf","acef","bcdf","bcef"]
Example 2:
Input: "abcd"
Output: ["abcd"]
Note:
1 <= S.length <= 50- There are no nested curly brackets.
- All characters inside a pair of consecutive opening and ending curly brackets are different.
classical dfs
time = O(2^n), n -- # of pair of braces, space = O(n)
class Solution { public String[] expand(String S) { if(S == null || S.length() == 0) { return new String[0]; } List<String> list = new ArrayList<>(); dfs(S, 0, new StringBuilder(), list); String[] res = new String[list.size()]; for(int i = 0; i < list.size(); i++) { res[i] = list.get(i); } return res; } public void dfs(String s, int idx, StringBuilder sb, List<String> list) { if(idx == s.length()) { list.add(sb.toString()); return; } int len = sb.length(); if(s.charAt(idx) == '{') { List<Character> tmp = new ArrayList<>(); int end = idx + 1; while(end < s.length() && s.charAt(end) != '}') { if(Character.isLetter(s.charAt(end))) { tmp.add(s.charAt(end)); } end++; } Collections.sort(tmp); for(char c : tmp) { sb.append(c); dfs(s, end + 1, sb, list); sb.setLength(len); } } else if(Character.isLetter(s.charAt(idx))) { sb.append(s.charAt(idx)); dfs(s, idx + 1, sb, list); } } }