某店铺将用于组成套餐的商品记作字符串 goods,其中 goods[i] 表示对应商品。请返回该套餐内所含商品的 全部排列方式 。
返回结果 无顺序要求,但不能含有重复的元素。
示例 1:
输入:goods = "agew" 输出:["aegw","aewg","agew","agwe","aweg","awge","eagw","eawg","egaw","egwa","ewag","ewga","gaew","gawe","geaw","gewa","gwae","gwea","waeg","wage","weag","wega","wgae","wgea"]
LCR 157. 套餐内商品的排列顺序 - 力扣(LeetCode)
很经典的回溯题目
我们回顾一下回溯三部曲:
void backtracking(参数) {if (终止条件) {存放结果;return;}for (选择:本层集合中元素(树中节点孩子的数量就是集合的大小)) {处理节点;backtracking(路径,选择列表); // 递归回溯,撤销处理结果}
}第一次写的时候忘记去掉重复元素了,但是回溯基本上是对的,没有加剪枝:
class Solution {public String[] goodsOrder(String goods) {if(goods == null){return new String[0];}ArrayList<String> results = new ArrayList<>();StringBuilder result = new StringBuilder();backtracing(result,goods,results);return results.toArray(new String[0]);}public void backtracing(StringBuilder result, String goods, ArrayList<String> results){if(result.length() == goods.length()){results.add(result.toString());return;}for(int i = 0; i < goods.length(); i++){result = result.append(goods.charAt(i));backtracing(result,goods,results);result = result.deleteCharAt(result.length() - 1);}}
}使用HashSet,并使用used数组记录该元素是否被使用过:
class Solution {public String[] goodsOrder(String goods) {if(goods == null){return new String[0];}HashSet<String> results = new HashSet<>();StringBuilder result = new StringBuilder();boolean[] used = new boolean[goods.length()]; // 记录字符是否被使用过backtracing(result,goods,results,used);return results.toArray(new String[0]);}public void backtracing(StringBuilder result, String goods, HashSet<String> results,boolean[] used){if(result.length() == goods.length()){results.add(result.toString());return;}for(int i = 0; i < goods.length(); i++){if (used[i]) {continue;}used[i] = true;result = result.append(goods.charAt(i));backtracing(result,goods,results,used);result = result.deleteCharAt(result.length() - 1);used[i] = false;}}
}其实还有一个问题,像刚才上面的算法,如果是abb这样的字符串,其实是会产生两个abb的,但是我们用HashSet过滤掉了。但是这样会导致算法性能不太好。应该加上这样一个条件判断更合适:
if (i > 0 && goods.charAt(i) == goods.charAt(i - 1) && !used[i - 1]) {continue;
}如果当前字符等于上一个字符并且上一个字符没有被使用过,那么就跳过。
但是好像在力扣里加不加这个算法性能没太大区别。
