Do u know Russian?

Why is O(nlog2n) ? I think just O(nlogn) .

really inspiring

My solution using Treap.

Any balanced tree with father pointers would work. Treap is easier to write.

I've used to implement tree with a 2-d array [if you guarantee 2 child for every node] the array will look like this

a
bc//b and c are the childs of a
defg//d and e are the childs of b
hijklmno//l and m are the childs of f

if you want to reach the first child of the i-th node in the j'th level : level=j+1,id=2*i

You could see my code here 7393354

Y use a trie using a vector of pairs and Grundy number to solve the game I know that my code couldn't be clear but I hope it could help you

Sorry for my english too

You do it like with the standard trie, but replace pointers with array indices and node allocation with index advance:

// Array of nodes. If trie[i].next[x] is 0, then there is no path with
// character x from the node i. Otherwise it is an index of the next
// node.
struct trie_node
{
    int data;
    int next[26];
};
trie_node trie[100005];

// Number of allocated nodes, 1 by default for trie root
int count = 1; 

void insert(const string& s)
{
    int p = 0; // Index of the current node, 0 by default for root

    for (char c : s)
    {
        int x = c - 'a';
        if (trie[p].next[x] == 0)
        {
            // This is a leaf, attach new node to it.
            // For new node, take trie[count], and increase count.
            trie[p].next[x] = count++;
        }

        // Advance to the next node
        p = trie[p].next[x];
    }

    trie[p].data++;
}

.data is the information we want to store in tree nodes. For example, it can hold the number of strings ending in this node, like it does in the insert() function above.

As an exercise write a contains_prefix(s) function for this structure.

Remainder: convex hull trick lets us maintain k linear functions of the form f_i(x) = a_ix + b_i and answer efficiently (in time proportional to number of functions) to the queries Q(x) = min_{1 ≤ i ≤ k} f_i(x) (given x).

Now we will be able to solve the problem if we can answer a bit more general kind of queries: we consider only lines with indices from given L and R; formally, Q(x, L, R) = min_{L ≤ i ≤ R} f_i(x).

How can we do it? Let's make a segment tree! Let's say we have such m that 2^m ≥ n. Then the root contains the convex hull of lines having indices [0, 2^m - 1], its left child contains [0, 2^m - 1 - 1], right child [2^m - 1, 2^m - 1] and so on. We can costruct all these hulls one by one; without any optimizations it gives us time .

Now let's say we have to answer the query Q(x, L, R). Then we just "break" the interval [L, R] into base intervals (in the same way a segment tree does) and for each of such base intervals we find its minimum at x. Now we see that the answer is the smallest of these minima. It doesn't matter that we consider some groups of lines from interval [L, R] separately — still, we can just take the smallest of the results.

What's the time? We have base intervals, for each of them we can compute the answer in , so total time is . There are some ways which let us compute all answers off-line in , but it's not the subject :P

A more straightforward formula looks like this

Let f[i][0] = max. answer considering numbers <= i && doesn't choose i, f[i][1] = max. answer choose i

Then f[i][0] = max(f[i-1][0],f[i-1][1]), and f[i][1] = f[i-1][0] + cnt[i]*i

Actually this is doing the same thing as the formula in editorial.

Warning: please take this explanation with a pinch of salt, because I'm myself new to DP, and it may thus be incorrect ...

First, we pre-compute the frequency of occurrence of each element in Alex's sequence (using the array "freq", say)

dp[i] stores the maximum sum that Alex can get using the numbers from 1 to i. Thus, dp[0] is 0, and dp[1] is freq[1] (i.e., number of '1's in the sequence)

For i = 2 to 10^5 (10^5 being the maximum possible value of any number in Alex's sequence according to the given constraints), dp[i] is calculated using the inference that each set of "i"s (if at all they occur in the sequence) can either all be picked OR not picked at all:

dp[i] = max(I, II), where:

I = dp[i-1] represents the situation where "i" isn't picked at all (As "i" isn't picked at all, none of the "i-1"s will be deleted, and the sum will be the same as the one calculated for dp[i-1])

II = dp[i-2] + (freq[i] * i) represents the situation where all "i"s are picked (As all the "i"s are picked, all the "i-1"s WILL be deleted, and we cannot consider dp[i-1] at all, given that dp[i-1] was itself computed while considering the situation where all the "i-1"s may be picked. Instead, we use dp[i-2]; the sum computed therein is safe to use, given that none of the "i-2"s will be deleted when the "i"s are picked. Also, as we are picking all the "i"s, our previous sum (i.e., dp[i-2]) will increase by (freq[i] * i))

Final answer will just be dp[100000].

My implementation of the above logic (C++): http://codeforces.net/contest/456/submission/18021003

we know from modulo theory examples : 3%5=-2%5, 4%5=-1%5 so new equation is - (1)^n+(2)^n+(3)^n+(4)^n=(1)^n+(2)^n+(-2)^n+(-1)^n - so for n==odd answer is simply "0" for n==even which are multiple of 4 answer is =4 and for n==even which is not multiple of 4 ans is zero. take a pen and paper do some work on it you can get that idea and the complexity of this solution is O(1) .

Limitations: 1 ≤ a_i, b_i ≤ n. Your data set is incorrect.

From my debug printing of my AC submission: Starting player can FORCE win? false , can FORCE lose? false Second ``

In fact, if we merge the two given strings we get something like this:

aba — s \ caba

There are only two possible games. Both share the initial "aba" prefix. The starting player must pick the second a, so the non-starting player can force a win (by choosing the "s") or a lose (by choosing the "c"). So, the starting player outcome only depends on what the non-starting one decides. In this case, we have k = 1, so the Second player can directly win. In fact, in this case the optimal strategy for the second player is winning every game, since the loser player will be the starting one.

In the test you given win[root]=false and lose[root]=false. Check that again!

i understand it :)

addLine() — it is adding line to Convex Hull. In my structure all lines are in decreasing order of K. And we can easily add line to structure in O(1) operations. You can draw a lines in the order of decreasing K to better understand this.

If our lines are in decreasing order of K in structure, we can easily merge 2 structures. Add all lines in decreasing order to new structure in O(n + m) operations, where n and m — sizes of 2 structures.

Read this article to better understand.

f(i) — maximal sum if we delete all numbers that smaller or equal to i.

Lets say that the numbers are contained in an array of srtucts a[], and it is sorted by the number in it.

That struct contains the current number and time it is writen.

The idea is that there is no sense to chose f(i-2), without chosing "i" too, because all numbers are >= 0. So we will either chose the current (ith) number or we will skip it. That means if(a[i-1].numb == a[i].numb-1) we must call a rec(i-2) + a[i].numb * a[i].cnt, because we already deleted all (a[i]-1) elements. But if(a[i-1].numb != a[i].numb-1) => there are no elements equal to a[i] — 1 and that means we can simply call rec(i-1) + a[i].numb * a[i].cnt. If we want to skip the current element we just call rec(i-1).

From this => rec(i) = max(rec(i-1), ((a[i].numb == a[i-1].numb + 1) ? rec(i-2) : rec(i-1)) + a[i].numb * a[i].cnt)

And after that you need just to do memoization.

EDIT: The answer will be rec(N). Let the the array be 1-indexed ans rec(0) = 0, rec(1) = a[1].numb*a[1].cnt.

choose any 2 -> delete 3

choose another 2

choose 5 -> delete 4

total 9

Divide an array into blocks. For each block, you have cnt[block_id][x] -> how many x's we have in this block. To do a shift operation, you need to delete last element and insert it before first one. To delete and insert element, you can find where this element is located and delete it (this will take O(sqrt(N)) because size of each block is O(sqrt(N))). But after several queries, some blocks will be too small and some will be too large. That's why you need fully re-construct your sqrt-decomposition after some number of queries.

You saved me man, i was also getting frustrated on this, guess i also missed this 1<= a[i],b[i] <= n

Don't use Diagnostics compiler.

did you get it ? why? i have same doubt

Try changing int arr[mx]={0}; to unsigned long long arr[mx]={0}; as $$$i * arr_i$$$ can be as big as $$$1e10$$$.

To get the minimum diameter after merging, one should always merge two components from the middle node of their respective diameter paths which explains $$$\left \lceil{\frac{Diameter_u}{2}}\right \rceil + \left \lceil{\frac{Diameter_v}{2}}\right \rceil + 1$$$. Then we should check if any individual component's diameter is greater than it or not.

yes

https://codeforces.net/contest/455/submission/51869347