WA 4, WA 5, WA 35 Послано Vavan 18 окт 2011 01:23 test 4
5
0 0 0 0 0
0 0 0 0 0
0 0 0 0 0
0 0 0 0 0
0 0 0 0 0
test 5
5
0 2 2 2 2
2 0 4 8 4
2 4 0 4 8
2 8 4 0 4
2 4 8 4 0
What is in test #35????? ;)
Edited by author 18.10.2011 01:30 Re: WA 4, WA 5, WA 35 Послано svr 18 окт 2011 09:48 It was enough 5 tests for me. In first algo I used double and couldn't
fly over test 5. Based on my fail on 5 test I remade algo radically, excluded doubles
and got Ac 0.078. So, 5 tests are enough for debugging. Re: WA 4, WA 5, WA 35 Послано Vavan 19 окт 2011 00:01 Did you use __int64 or long arithmetic???
4
0 550934784 999950884 449016100
550934784 0 449016100 999950884
999950884 449016100 0 550934784
449016100 999950884 550934784 0
Edited by author 19.10.2011 01:00 Re: WA 4, WA 5, WA 35 Послано svr 19 окт 2011 02:07 If d=a^2+b^2 and d<=10^9=> a,b<=32000 that short int is enough.
Also brute force(main clue for integers) for solving triangle in int coordinates. Re: WA 4, WA 5, WA 35 4
0 550934784 999950884 449016100
550934784 0 449016100 999950884
999950884 449016100 0 550934784
449016100 999950884 550934784 0
0 0
0 23472
-21190 23472
-21190 0
Edited by author 21.10.2011 00:44 Re: WA 4, WA 5, WA 35 test 4
5
0 0 0 0 0
0 0 0 0 0
0 0 0 0 0
0 0 0 0 0
0 0 0 0 0
test 5
5
0 2 2 2 2
2 0 4 8 4
2 4 0 4 8
2 8 4 0 4
2 4 8 4 0
answers:
test 4
0 0
0 0
0 0
0 0
0 0
test 5
0 0
1 1
-1 1
-1 -1
1 -1
Edited by author 21.10.2011 00:44 Re: WA 4, WA 5, WA 35 @Vavan: What did you do between WA8 and WA35?
Thanks.
Edited by author 21.10.2011 19:56 Re: WA 4, WA 5, WA 35 if you have WA8, it will very likely caused by an invalid enumeration on brute force of triangle in whole numbers. for x**2+y**2 x = 0, y = floor(sqrt(D)) downto floor(sqrt(D / 2)) you should firstly to increase x, rather than y. Re: WA 4, WA 5, WA 35 I'm not sure I understand what you mean.
Currently I enumerate the pairs (i, j) with
for (i = 0; i * i <= n; i++)
{
j = (int) sqrtl(n - i * i);
if (i <= j && j * j + i * i == n)
{
... valid (i, j) pair...
}
} Re: WA 4, WA 5, WA 35 it shuld be faster
signed x = 0;
signed M = SQRT(D / 2);
for (signed y = SQRT(D); y >= M; y--) {
unsigned Y = y * y;
while (x * x + Y < D) {
x++;
}
if (x * x + Y == D) {
// valid (x, y)
}
}
Edited by author 21.10.2011 23:43 Re: WA 4, WA 5, WA 35 Well I also do a loop from 1 to sqrt() but without the while so I don't think that's faster. Anyway not the speed is the problem.
I put a while(1); if some point exceeds 10^6 and if a D[i][j] value is incorrect so that a TLE should occur in these cases. I made a generator of tests and all looks OK. But WA #8...
Any suggestions, tricky tests?
Thanks
Edited by author 24.10.2011 19:57 Re: WA 4, WA 5, WA 35 I found my mistake. I was computing the first 3 points then thought the rest of them are uniquely determined. But this is false, for example if the first N-2 points are collinear, than the N-1 one could be, by symmetry, on two locations. By ignoring one of those solutions for N-1, the N-th point may not be determined and assume the current input is impossible to solve.
Now I did a sort of backtracking with all solutions for each point but obviously got TLE 39. So work in progress :)
PS: I've read in some other topic about writing the sqrt in assembly but I don't think that's the way of solving this problem :)
Edited by author 24.10.2011 23:30 Re: WA 4, WA 5, WA 35 AC, woo-hoo!
Indeed, if the points 0..i-1 are fixed and collinear, the solution for the rest of the points is not unique because we have an axis of symmetry. Otherwise, if at least 3 points are non-collinear, the solution is unique.
Edited by author 27.10.2011 21:09 Re: WA 4, WA 5, WA 35 Послано aropan 31 окт 2011 10:23 I got wa32 and fixed to the test:
5
0 4 36 5 2
4 0 16 5 2
36 16 0 29 26
5 5 29 0 9
2 2 26 9 0
0 0
0 2
0 6
2 1
-1 1
and more:
5
0 4 25 16 100
4 0 9 36 64
25 9 0 81 25
16 36 81 0 196
100 64 25 196 0
0 0
0 2
0 5
0 -4
0 10 Re: WA 4, WA 5, WA 35 Послано Orient 4 июл 2014 22:09
Edited by author 01.05.2016 01:52 |
