标签:sequence ++ enc 动态 动态规划 https int start == tracking
377. Combination Sum IV (Medium)
nums = [1, 2, 3]
target = 4
The possible combination ways are:
(1, 1, 1, 1)
(1, 1, 2)
(1, 2, 1)
(1, 3)
(2, 1, 1)
(2, 2)
(3, 1)
Note that different sequences are counted as different combinations.
Therefore the output is 7.??给定一个值,和一个数组,求数组中元素组合的个数,组合的限制条件是组合中的所有元素和为给定的值。
??动态规划和回溯思想都可以解决。
DFS
public int res=0;
public int combinationSum4(int []nums,int target){
if(nums==null||nums.length==0)
return 0;
backtracking(nums,0,target);
return res;
}
public void backtracking(int []nums,int start,int target){
if(target==0){
res++;
return;
}
if(target<0)
return ;
for(int i=0;i<nums.length;i++){
backtracking(nums,i,target-nums[i]);
}
return;
}DP
public int combinationSum4(int []nums,int target){
if(nums==null||nums.length==0)
return 0;
int []dp=new int [target+1];
dp[0]=1;
for(int i=1;i<=target;i++){
for(int j=0;j<nums.length;j++){
if(i>=nums[j])
dp[i]+=dp[i-nums[j]];
}
}
return dp[target];
}标签:sequence ++ enc 动态 动态规划 https int start == tracking
原文地址:https://www.cnblogs.com/yjxyy/p/11121163.html
