Edit: Sorry i didn't notice you didn't need full solution. You can use see 'rev' to find the full solution

I can think of a dp solution. Lets start with trivial dp[i][j] where i is position of array you are in and j is the bitmask of all those k sticks. (1 <= i <= n) (0 <= j < (1<<k)). Lets also define function f(x,low,high) which is l[x] * (max(i,j) — min(i,j).

Now some stick has to start from position 1..right? So lets say we try all sticks from pos 1. so recurrence from any position i and set of chosen sticks = mask would be

for(int x = 0; x < k; x++)
     if((mask & (1<<x)) == 0)
         dp[i][mask] = max(dp[i][mask] , f(x,0,l[x]-1) + dp[i + l[x] - 1][mask | 1<<x])

But complexity would be O(n*2^k) which surely would give us tle. Hopefully we can do better. Try thinking of optimizing or you can use always use 'rev' to see my previous comment :)

I'll give you some ideas for this problem.

• Try precalculating lengths of all subsets of sticks using bitmasks, so that you don't need to do any extra operations then.
• After that, do DP with bitmasks and you'll already know which segment you're covering next.
• You can get the min/max of every segment with RMQ if you have a fast enough data structure, but I'd recommend you precalculate everything. Since there are only 20 possible lengths of segments, precalculate the min/max for every one of them before doing the DP. You can do that with sliding window min/max.

Note: If you want the full solution, check revision 3 of this post.

So, basically 20! is a very brute approach for this problem, which obviously wont work at all. Just try to think, how to approach the problem with the help of dynamic programming.

Lets say I have a state F(mask) meaning I have used all those sticks whose bits are set in mask. You also dont need to keep track of the length you have covered so far. Your set bits in mask will help you to calculate that. Now, you can try to set any unset bit in the current mask and see which of them fetches you with maximum answer.

if mask == (1<<k)-1
     F(mask) = 0
else
     F(mask) = max(F(mask), F(mask|(1<<i) + cal(len, len + stick_len[i]-1) * stick_len[i] for all in [0,k-1]

return F(mask)

Note: k is the number of sticks cal(a,b) is the difference between maximum and minimum element in the range[a,b] in the given array you wish to cover with given K sticks. Use RMQ to calculate that. Segment tree will time out probably. Atleast I got 1 TLE due to that.

Here is my code for detailed implementation: Link