All problems were proposed by Mikhail MikeMirzayanov Mirzayanov.
1283A - Minutes Before the New Year
Tutorial
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Solution
#include <bits/stdc++.h>
using namespace std;
int main() {
#ifdef _DEBUG
freopen("input.txt", "r", stdin);
// freopen("output.txt", "w", stdout);
#endif
int q;
scanf("%d", &q);
for (int i = 0; i < q; ++i) {
int h, m;
scanf("%d %d", &h, &m);
printf("%d\n", 1440 - h * 60 - m);
}
return 0;
}
Tutorial
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Solution
#include <bits/stdc++.h>
using namespace std;
int main() {
#ifdef _DEBUG
freopen("input.txt", "r", stdin);
// freopen("output.txt", "w", stdout);
#endif
int q;
cin >> q;
for (int i = 0; i < q; ++i) {
int n, k;
cin >> n >> k;
int full = n - n % k;
full += min(n % k, k / 2);
cout << full << endl;
}
return 0;
}
Tutorial
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Solution
#include <bits/stdc++.h>
using namespace std;
int main() {
#ifdef _DEBUG
freopen("input.txt", "r", stdin);
// freopen("output.txt", "w", stdout);
#endif
int n;
cin >> n;
vector<int> f(n);
vector<int> in(n), out(n);
for (int i = 0; i < n; ++i) {
cin >> f[i];
--f[i];
if (f[i] != -1) {
++out[i];
++in[f[i]];
}
}
vector<int> loops;
for (int i = 0; i < n; ++i) {
if (in[i] == 0 && out[i] == 0) {
loops.push_back(i);
}
}
if (loops.size() == 1) {
int idx = loops[0];
for (int i = 0; i < n; ++i) {
if (in[i] == 0 && i != idx) {
f[idx] = i;
++out[idx];
++in[i];
break;
}
}
} else if (loops.size() > 1) {
for (int i = 0; i < int(loops.size()); ++i) {
int cur = loops[i];
int nxt = loops[(i + 1) % int(loops.size())];
f[cur] = nxt;
++out[cur];
++in[nxt];
}
}
loops.clear();
vector<int> ins, outs;
for (int i = 0; i < n; ++i) {
if (in[i] == 0) ins.push_back(i);
if (out[i] == 0) outs.push_back(i);
}
assert(ins.size() == outs.size());
for (int i = 0; i < int(outs.size()); ++i) {
f[outs[i]] = ins[i];
}
for (int i = 0; i < n; ++i) {
cout << f[i] + 1 << " ";
}
cout << endl;
return 0;
}
Tutorial
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Solution
#include <bits/stdc++.h>
using namespace std;
mt19937 rnd(time(NULL));
int main() {
#ifdef _DEBUG
freopen("input.txt", "r", stdin);
// freopen("output.txt", "w", stdout);
#endif
int n, m;
cin >> n >> m;
vector<int> x(n);
for (int i = 0; i < n; ++i) {
cin >> x[i];
}
queue<int> q;
map<int, int> d;
for (int i = 0; i < n; ++i) {
d[x[i]] = 0;
q.push(x[i]);
}
long long ans = 0;
vector<int> res;
while (!q.empty()) {
if (int(res.size()) == m) break;
int cur = q.front();
q.pop();
if (d[cur] != 0) {
ans += d[cur];
res.push_back(cur);
}
if (!d.count(cur - 1)) {
d[cur - 1] = d[cur] + 1;
q.push(cur - 1);
}
if (!d.count(cur + 1)) {
d[cur + 1] = d[cur] + 1;
q.push(cur + 1);
}
}
cout << ans << endl;
shuffle(res.begin(), res.end(), rnd);
for (auto it : res) cout << it << " ";
cout << endl;
return 0;
}
Tutorial
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Solution
#include <bits/stdc++.h>
#define forn(i, n) for (int i = 0; i < int(n); i++)
using namespace std;
int n;
vector<int> a, cnt;
int solvemin(){
int res = 0;
forn(i, n){
if (!cnt[i]) continue;
++res;
i += 2;
}
return res;
}
int solvemax(){
int res = 0;
int dist = 2;
bool right = false;
forn(i, n){
if (!cnt[i]){
++dist;
continue;
}
int j = i - 1;
int sum = 0;
while (j + 1 < n && cnt[j + 1]){
++j;
sum += cnt[j];
}
res += (j - i + 1);
if (sum > j - i + 1 && (!right || dist > 1)){
--sum;
++res;
}
right = false;
if (sum > j - i + 1){
right = true;
++res;
}
i = j;
dist = 0;
}
return res;
}
int main() {
scanf("%d", &n);
a.resize(n);
cnt.resize(n + 1);
forn(i, n){
scanf("%d", &a[i]);
++cnt[a[i] - 1];
}
printf("%d %d\n", solvemin(), solvemax());
return 0;
}
Tutorial
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Solution
#define _CRT_SECURE_NO_WARNINGS
#include<cstdio>
#include<vector>
#include<algorithm>
using namespace std;
int main()
{
int n;
scanf("%d", &n);
vector<int> a(n - 1);
for (int i = 0; i < n - 1; i++)
{
scanf("%d", &a[i]);
a[i]--;
}
int root = a[0];
int last = -1;
vector<int> used(n, 0);
printf("%d\n", root + 1);
int cur = n - 1;
for (int i = 0; i < n - 1; i++)
{
used[a[i]] = 1;
while (used[cur])
cur--;
if (i == n - 2 || used[a[i + 1]])
{
printf("%d %d\n", a[i] + 1, cur + 1);
used[cur] = 1;
}
else
printf("%d %d\n", a[i + 1] + 1, a[i] + 1);
}
return 0;
}
Very cool problem set, except weak C pretests :(.
Amen
I found a $$$O(n)$$$ solution for C that's I think quite easy to both code and understand. We keep everyone who hasn't received a gift in a sorted vector and do the same for the ones that haven't gifted ($$$rec$$$ and $$$give$$$). We can construct them in linear time as the input already gives us the second ordered vector and the first one can be constructed using a boolean array that says whether the $$$ith$$$ person has already been gifted. Now we just iterate these two vectors at the same time, and if in the $$$ith$$$ position we find that $$$rec[i]==give[i]$$$ we do $$$swap(give[i], give[i-1])$$$ (if $$$i=0$$$ swap with $$$i+1$$$). It's easy to prove it by induction, as the case where $$$n=2$$$ is trivial and if you already have a correct array with size $$$n-1$$$, $$$n > 2$$$, if the $$$nth$$$ term is already matched to a different index we don't need to do anything, else we will swap it with it's predecessor and our matching is still valid, as we know we aren't matching it's predecessor with itself as the vector is ordered and $$$rec[n]==give[n]$$$. My code: 67844246
Nice solution. Thanks
thnx bro
brilliant,thank you very much for this solution
D and E are good problems for Div3 contestants.
Thank you Vovuh for this amazing year!
why does using unordered_map give tle whereas using map my answer got accepted..(I am using BFS in D )
In the worst case, unordered_map runs in linear time. It's risky.
so, when do we use umap and map.
You should use unordered map with custom hash function, otherwise don't use it. Use map or coordinate compression.
Hi Where can I learn coordinate compression from. Can someone provide me with a link.
Consider this link. It explains how an unordered_map works, and how it is probable to be hacked with a TLE verdict, and how it can be prevented by a custom hash. It also includes one custom_hash, but you can always feel free to write one of your own :P
Thank you vovuh for cool amazing contest. My first problem solved in codeforce contest.
Got it
1283C I am new to CP. Can anyone explain whats wrong in this approach ?
It is given that the data provided is such that always some solution will exist. So what we do is we just order the edges with next greater element and largest one with smallest. like if we have 2 1 0 0 0
lets iterate till 3 (numbered 1 to 5) then check next greater element who doesn't have any gift , and give it to him. So we give it to 4 then we get to 4 and give his give to 5 and when we get to 5 we give it to smallest that is 3. Whats wrong here? We will get following answer :-
2 1 4 5 3
and for knowing who have any gift i created an array r[i] such that for r[f[i]] = 0 if he have not recieved and r[f[i]] = 1 if he has
For problem C, i found a solution which is easier to both think and code, the time complexity is O(nlogn), here's my solution :67860783
Let's assume the input array and the output array is a[i].Since the answer is a permutation with n distinct integers, and we can only put numbers in postions where in the input a[i] is equal to 0, so firstly i want to know what numbers i can use to put in these positions, you can use std::set to do that.
And then we can iterate from the
last
element to thefirst
element, if the current element is equal to 0, we just put the smallest element we can use(your_set_name.begin()) in this positon, and erase it.After that, you may obtain the correct answer, or there is
only one
postion i where a[i] is equal i, that's because when we iterate it, we put the element from the last to the first in increasing order, which is decreasing order from the first to the last, so if postioni
satisfiesa[i] == i
, it must bea[i] > i
on his left side element he put in, anda[i] < i
on his right side element he put in, so there's at most one postion is not correct. At last, we just need to swap the number in this positoni
with any postion which was 0 in the input except positioni
, after the swap, you get the correct answer.I took the same approach but I tried to simplify and just took next greater element. But it was wrong approach as 2 0 1 5 3 0 would give 2 4 1 5 3 0 from my solution. I wish i did as u did , and didn't try to oversimplify things
yep, that's why you have to make sure the number you put in should be in decreasing order, that's more simple to implement it.
My solution of C: find all chains. How? Beginnings of chains are people who doesn't receive gifts. To find ending: just traverse it until chain ends. When you have $$$s_i,e_i$$$ — start and end of chains, you just need to connect $$$e_i$$$ with $$$s_{i+1}$$$, and you're done.
For C, I tried a randomized approach. I tried to randomly assign values, not already present in the array, at the vacant positions until a valid solution is found. This approach has a success probability of about 36% (link).
Link: 67832203
However, I don't know why, but the same code received TLE when I submitted it in Pypy2, because of which I ended up spending more than 1 hour for this problem :(
Link to the TLEd Pypy submission: 67817623
My solution of E: lets construct both answers.
Construction of maximum. Sort all people using counting sort of $$$O(n\,\log(n))$$$ sort. Make array $$$b_i$$$ — how many people will have coordinate $$$i$$$ — result of construction. Iterate over sorted list of people. Assign each friend to lowest unused position he may achieve. Count all used positions. This is maximum. Why? If there is some friend that may move to unused coordinate to the left, it will not decrease number of used cells. It may increase but not decrease. (google charging argument)
Construction of minimum. $$$cnt_i$$$ — how many friends living in coordinate $$$i$$$. Make array $$$b_i$$$ — how many people will have coordinate $$$i$$$ — result of construction. Iterate over $$$i$$$ from $$$1$$$ to $$$n$$$. If $$$b_{i-1} > 0$$$ or $$$b_i > 0$$$ then assign $$$cnt_i$$$ to corresponding coordinate. Otherwise, assign to $$$i+1$$$ coordinate. This is minimum. Why? (not rigorous) Well, we move 'leftmost' friends to the 'rightmost' and merge all that may come in same place. Then we do same untill all friends processed.
Could you please elaborate the minimum construction?
You move all friends from coordinate i to single coordinate. It's never better to move one friend from i to j, and another friend from i to k. So we consider friends in groups by their initial cooridnate. Next, we decide where we move whole group from i. $$$b_i$$$ is resulting distribution of friends after move. So, algorithm is greedy. Two cases for each i: if there is already neighbor where we can move -> move into it. Otherwise move to the right, in otherwords "make new home".
C has a much easier approach using deque data structure. Insert the positions in deque which are not pointed by anyone. And now put values on place of zero by checking first and last element in deque. Here's my code: https://codeforces.me/contest/1283/submission/67862320
i tried almost the same solution as you but i didn’t check the cnt<2 condition and got hacked after contest :/ But nice solution
As i think map is better than unordered_map. Give me example where Unordered_map is better than map..!
Any help for problem m F
For Problem F, we can think of the tree as rooted at the lamp connected to the power grid. We first notice that the first number in the input array must be the root. We can then maintain a list of all the "leaf" nodes (those that never appear in the input array, i.e. those nodes that are never the "main lamp" for any wire). Then, because the parent of largest leaf node would have appeared earlier in the input, we can match the smallest unprocessed leaf to the last number in the input array, remove the leaf, then update the list of unprocessed leaves (if necessary), and do this repeatedly.
Consider the sample input:
The first number in this input array is $$$3$$$, so $$$3$$$ is the root of our tree.
We know that every node (except the root) has exactly one parent, and some number of children nodes, so we can start by maintaining a
degree
array, which is equal to1
(for the connection to the parent) plusx
, if the node appears in the input array $$$x$$$ times (it is the parent of $$$x$$$ nodes). For the given input, the degree array will then be:We note that the degree of $$$3$$$ is one more than the true degree, because $$$3$$$ has no parent. So, we decrement $$$1$$$ from the degree of $$$3$$$.
From our
degree
array, we can look for all nodes with adegree
of $$$1$$$, which will be our unprocessed leaf nodes, in this case[2, 4]
. This can be effectively maintained using apriority_queue
or other such data structures.Now, we iterate backward through the input array to match each leaf to its parent. We process all the leaves in sorted order, because the parent of a lighter leaf would appear later in the input.
The last number in our input array is $$$5$$$, so the parent of $$$2$$$ (the smallest unprocessed leaf) is $$$5$$$. Now we remove $$$1$$$ from the
degree
of $$$2$$$, and one from thedegree
of $$$5$$$, and add an edge in our final output between $$$2$$$ and $$$5$$$. We do not need to consider the node $$$2$$$ anymore. For node $$$5$$$, it has now become a new leaf (itsdegree
is now $$$1$$$) so we push it into ourpriority_queue
for processing.Now, the smallest leaf is $$$4$$$, so we can look at the next item in the input array (going backwards), which is $$$1$$$. We add an edge in our output between $$$4$$$ and $$$1$$$. We decrement the
degree
of $$$1$$$ and $$$4$$$, and as the degree of $$$1$$$ now also becomes $$$1$$$, we push it to our leafpriority_queue
. We do not need to consider the node $$$4$$$ anymore.We repeat this process until we have processed all leaf nodes (we need to be careful not to process $$$3$$$, as it is the root), and then output our answer.
thanks for your solution nice method~
In what case will F have no answer? when to print -1?
There is always an answer (:
Easy solution for C. https://codeforces.me/contest/1283/submission/67815280 just map thing
My solution for F. You can observe that you can make the more important link's main as the parent of the less important link's main. Thus we iterate through the array and make the next number as the child of the first number. Else, if we can't do that, that is the next number in the array is already used, we can make the biggest number available as its child. This comes from the fact that a power of 2 is bigger than all other powers of 2's less than itself. Otherwise, if there is no number left to assign, then we say that such an arrangement is not possible.
Good round, thanks to organizers :)
Ez solution for E https://codeforces.me/contest/1283/submission/67867801
https://codeforces.me/contest/1283/submission/82440699 take a look
very easy solution for E. https://codeforces.me/contest/1283/submission/67869665 just map thing..!
Can you explain the solution?
https://codeforces.me/contest/1283/submission/82440699 just array thing! XD
My approach for problem C:
First, I store all the node with
indegree
equals to0
, which I call list of starting node, iterate all of these nodes, at each node $$$v$$$, just go to next node unless you can't, assuming now you are on node $$$u$$$, connect $$$u$$$ with the node after $$$v$$$ in the list of starting node. My submissionProblem E is exactly greedy approach, but the provided implementation is quite hard, my implementation is just greedy and lay each person at greedy position, afterward count the number of positions which were occupied. My submission
To weak C pretests.
My DP solution for E,both subtasks are similar,sort the array,now however we move the people,the final positions should be sorted too,there are only 3 states possible.Try them all! https://codeforces.me/contest/1283/submission/67875164
The code is almost same for both subtasks(change min to max)
# SAY-NO-TO-GREEDY
Can you/anyone explain the state transition in the code?
Edit: You are trying to apply all operations on all elements -1,0,1 and picking the best out of all..such that after an option on ai and an (i+1) they are placed one after the other then increase the ans by 1.
else
dp (l+1,t1) = dp(l+1,t2) if(a1+t1)>=(a2+t2) for all t={-1,0,1}..
Please explain problem E :/
Can anyone please tell me what is wrong in this code for PROBLEM-1283B
~~~~~
- 1. — 1. — ~~~~~ Your code here... ~~~~~int main() { ll t,i; cin>>t; while(t--) { ll n,k; cin>>n>>k; if(n<k) { ll val1=k/2; n=min(n,val1); cout<<n<<endl; } else {ll rem=n%k; ll val=k/2; if(rem!=0) rem-=val;
}
}
`~~~~~`
``I've got a very good solution to Problem D using Binary Search :O
Can you explain your solution to me please?
turkoarias What was your approach? Can you please elucidate?
Can somebody explain his solution of C, how to consider permutation as a graph?
vovuh Thanks for great contest :)
when you will write a tutorial for problem F 1283F - DIY Garland
(F) why does this O(n^2) solution work?
It looks like it is $$$O(n^2)$$$ but actually it is $$$O(n)$$$ since each element is visited at most once by both $$$i$$$ and $$$cur$$$ leading to $$$2n$$$ operations.
editorial of F reminds me Half-life 3)
The problem F is simply just decode the given Prüfer code.
Soon...? It's been a month already.
Got hacked for a test case C
Someone please explain dp solution for E.
idk tho i think i have a better solution https://codeforces.me/contest/1283/submission/82440699 sorry in advance if you don't find that good enough
Is F something which is already known? It is almost like the Prufer correspondence proof for n^(n-1) rooted labelled trees on n vertices.
excuse me.I think admin's code is not right with this test: 8 8 10 5 10 9 2 9 3 Problem E:New Year Parties
x_i <= n
oh thank you very much