CSES - Datatähti 2018 alku - Results
Submission details
Task:Bittijono
Sender:Yytsi
Submission time:2017-10-04 01:19:20 +0300
Language:C++
Status:READY
Result:34
Feedback
groupverdictscore
#1ACCEPTED7
#20
#3ACCEPTED27
#40
Test results
testverdicttimegroup
#1ACCEPTED0.05 s1details
#2ACCEPTED0.04 s1details
#3ACCEPTED0.05 s1details
#4ACCEPTED0.05 s1details
#5ACCEPTED0.05 s1details
#6ACCEPTED0.05 s1details
#7ACCEPTED0.04 s1details
#8ACCEPTED0.05 s1details
#9ACCEPTED0.04 s1details
#10ACCEPTED0.06 s1details
#110.05 s2details
#120.04 s2details
#130.06 s2details
#14ACCEPTED0.04 s2details
#150.05 s2details
#160.08 s2details
#170.07 s2details
#18ACCEPTED0.04 s2details
#19ACCEPTED0.04 s2details
#200.07 s2details
#21ACCEPTED0.05 s3details
#22ACCEPTED0.08 s3details
#23ACCEPTED0.07 s3details
#24ACCEPTED0.07 s3details
#25ACCEPTED0.05 s3details
#26ACCEPTED0.04 s3details
#27ACCEPTED0.08 s3details
#28ACCEPTED0.10 s3details
#29ACCEPTED0.06 s3details
#30ACCEPTED0.06 s3details
#31ACCEPTED0.14 s4details
#320.26 s4details
#330.18 s4details
#34ACCEPTED0.17 s4details
#350.22 s4details
#36ACCEPTED0.15 s4details
#370.25 s4details
#38ACCEPTED0.06 s4details
#390.24 s4details
#40ACCEPTED0.06 s4details

Compiler report

input/code.cpp: In function 'size_t binSizeLowerBound(int)':
input/code.cpp:49:15: warning: comparison between signed and unsigned integer expressions [-Wsign-compare]
   if (bound < n)
               ^
input/code.cpp: In function 'int main()':
input/code.cpp:168:20: warning: comparison between signed and unsigned integer expressions [-Wsign-compare]
   if (bounds[i] == n) found = true;
                    ^

Code

// WARNING: Super ugly code ahead. Beware.
// Even contains debugging traces, hrr :-P
#include <iostream>
#include <string>
#include <algorithm>
using namespace std;
size_t bounds[27] = {1, 3, 6, 11, 19, 32, 53, 87, 142, 231, 375, 608, 985, 1595, 2582, 4179,
6763, 10944, 17709, 28655, 46366, 75023, 121391, 196416, 317809, 514227, 832038};
int numberOfDistinct(string str)
{
int ones = 0;
int zeros = 0;
int distinct = 0;
for (size_t i = 0; i < str.length(); i++)
{
char bit = str[i];
bool isOne = bit == '1';
int newSum = 1 + distinct;
distinct = distinct - (isOne ? ones : zeros) + newSum;
if (isOne) ones = newSum;
else zeros = newSum;
}
return distinct;
}
size_t binSizeLowerBound(int n)
{
for (int i = 26; i != 0; i--)
{
size_t bound = bounds[i];
if (bound < n)
{
return i + 1;
}
}
return 1;
}
string convertToBitString(size_t value)
{
string str(33, '0');
for (size_t i = 0; i < 33; i++)
{
if ((1LL << i) & value)
str[32 - i] = '1';
}
str = str.substr(str.find_first_not_of("0"));
return str;
}
string findBitstring(string b, int n, size_t portions, size_t lowerBound, size_t upperBound)
{
size_t space = upperBound - lowerBound;
size_t slice = space / portions;
for (size_t test = 0; test < (portions + 1); test++)
{
int maxFitness = 123456879, fitIndex = -1;
while (true)
{
bool foundImprovement = false;
for (size_t i = 0; i < b.size(); i++)
{
char bit = b[i];
char rev = "01"[bit == '0'];
b[i] = rev;
int distinctSubs = numberOfDistinct(b);
//cout << b << " : " << distinctSubs << "\n";
int fitness = abs(distinctSubs - n);
if (fitness == 0)
{
// Solution found.
return b;
}
if (fitness < maxFitness)
{
maxFitness = fitness;
fitIndex = (int)i;
foundImprovement = true;
}
b[i] = bit;
}
if (foundImprovement) b[fitIndex] = "01"[b[fitIndex] == '0'];
else
{
//cout << "No improvement found :-( shuffling\n";
// random_shuffle(b.begin(), b.end());
b = convertToBitString(lowerBound);
//cout << "lowerBound: " << b << "\n";
lowerBound += slice;
break;
}
}
}
return "fail";
}
int main()
{
ios_base::sync_with_stdio(0);
cin.tie(0);
/*
long n;
cin >> n;*/
//int base = (int)log2(n);
//cout << base << "\n";
int n;
cin >> n;
bool found = false;
string chains[30]={"1010101010101010101010101010101", "1001001001001001001001001001101",
"1000100010001000100010001000101", "1000010000100001000010000100001",
"1000001000001000001000001000101", "1001100110011001100110011001001",
"1011011011011011011011011011101", "1111111111111111111111111111101",
"1111100000111110000011111000101", "1010010100101001010010100101001",
"1100110011001100110011001100101", "1001110000111110000001111111001",
"1111000011110000111100001111101", "1001010010100101001010010100001",
"1110111011101110111011101110001", "1110100111001001011100011001101",
"1001011001001011001000100110001", "1001001100010110110110100100101",
"0001011001001011001000100110001", "0001001100010110110110100100101",
"1010010101010101001101011011001", "0010010100110101010101011010101",
"1101101011001010101010100101001", "0101101010101010110010100100001",
"1010010010010010110101101011001", "1010010010010010110101101011001",
"0101101101101101001010010100101", "1101101101101101001010010100101",
"0110100110110011010010100101001", "1110100110110011010010100101001"};
size_t len = binSizeLowerBound(n);
size_t low = len + 1;
size_t high = len + 2;
string a = convertToBitString(1 << len);
string b = convertToBitString(1 << high);
//cout << a << " " << b << "\n";
for (int i = 0; i < 27; i++)
if (bounds[i] == n) found = true;
if (n == 1) cout << "1";
else if (found) cout << chains[0].substr(0, low);
else
{
for (int i = 0; i < 1; i++)
{
size_t a1 = 1 << len;
size_t b1 = 1 << (len + 1);
size_t a2 = 1 << (len + 1);
size_t b2 = 1 << (len + 2);
//cout << a1 << " " << b1 << " : " << a2 << " " << b2 << "\n";
string p1 = chains[i].substr(0, low);
string p2 = chains[i].substr(0, high);
string res = findBitstring(p1, n, 3500, a1, b1);
if (res == "fail")
{
res = findBitstring(p2, n, 3500, a2, b2);
}
if (res != "fail")
{
cout << res;
}
}
}
/*
cout << findBitstring("010101010100000001010101010", 832038, 1000) << "\n";
cout << findBitstring("100010001000100010001000100", 832038, 1000) << "\n";
cout << findBitstring("010101010100000001010101010", 832038, 1000) << "\n";
cout << findBitstring("010101010100000001010101010", 832038, 1000) << "\n";*/
//cout << m << "\n";
//cout << numberOfDistinct(str) << "\n";
return 0;
}

Test details

Test 1

Group: 1

Verdict: ACCEPTED

input
1

correct output
1

user output
1

Test 2

Group: 1

Verdict: ACCEPTED

input
2

correct output
11

user output
00

Test 3

Group: 1

Verdict: ACCEPTED

input
3

correct output
10

user output
10

Test 4

Group: 1

Verdict: ACCEPTED

input
4

correct output
1111

user output
1111

Test 5

Group: 1

Verdict: ACCEPTED

input
5

correct output
110

user output
001

Test 6

Group: 1

Verdict: ACCEPTED

input
6

correct output
101

user output
101

Test 7

Group: 1

Verdict: ACCEPTED

input
7

correct output
1110

user output
1110

Test 8

Group: 1

Verdict: ACCEPTED

input
8

correct output
1100

user output
0011

Test 9

Group: 1

Verdict: ACCEPTED

input
9

correct output
1101

user output
0010

Test 10

Group: 1

Verdict: ACCEPTED

input
10

correct output
1001

user output
0110

Test 11

Group: 2

Verdict:

input
38

correct output
1101011

user output
10010000

Test 12

Group: 2

Verdict:

input
13

correct output
11011

user output
(empty)

Test 13

Group: 2

Verdict:

input
90

correct output
111001010

user output
(empty)

Test 14

Group: 2

Verdict: ACCEPTED

input
25

correct output
110010

user output
101100

Test 15

Group: 2

Verdict:

input
82

correct output
111001101

user output
(empty)

Test 16

Group: 2

Verdict:

input
94

correct output
1100011110

user output
(empty)

Test 17

Group: 2

Verdict:

input
100

correct output
1111001001

user output
(empty)

Test 18

Group: 2

Verdict: ACCEPTED

input
99

correct output
110010010

user output
101101100

Test 19

Group: 2

Verdict: ACCEPTED

input
98

correct output
110110010

user output
101100100

Test 20

Group: 2

Verdict:

input
92

correct output
100110001

user output
(empty)

Test 21

Group: 3

Verdict: ACCEPTED

input
1666

correct output
101101100100101

user output
101101100100101

Test 22

Group: 3

Verdict: ACCEPTED

input
897

correct output
11101001101010

user output
10100010110100

Test 23

Group: 3

Verdict: ACCEPTED

input
4466

correct output
111101010110100101

user output
110011001010111011

Test 24

Group: 3

Verdict: ACCEPTED

input
4240

correct output
11011001011010101

user output
00100110100101010

Test 25

Group: 3

Verdict: ACCEPTED

input
3089

correct output
1011001010100101

user output
1011001010100101

Test 26

Group: 3

Verdict: ACCEPTED

input
4697

correct output
11010101101010110

user output
10010101001010100

Test 27

Group: 3

Verdict: ACCEPTED

input
4608

correct output
11010110101001010

user output
11010110101001010

Test 28

Group: 3

Verdict: ACCEPTED

input
4625

correct output
111011001100101001

user output
110010010110100011

Test 29

Group: 3

Verdict: ACCEPTED

input
4611

correct output
11010101010101100

user output
11010100101001010

Test 30

Group: 3

Verdict: ACCEPTED

input
4917

correct output
10110100101010110

user output
10010101011010010

Test 31

Group: 4

Verdict: ACCEPTED

input
178555

correct output
1011010110110101010110110

user output
1001001010101001001010010

Test 32

Group: 4

Verdict:

input
864856

correct output
10111010110110100100101010010

user output
(empty)

Test 33

Group: 4

Verdict:

input
112146

correct output
1101110101011001100100110

user output
(empty)

Test 34

Group: 4

Verdict: ACCEPTED

input
741124

correct output
1011010011010101100101011010

user output
1010010101100101010011010010

Test 35

Group: 4

Verdict:

input
511902

correct output
1011010100011010100101001110

user output
(empty)

Test 36

Group: 4

Verdict: ACCEPTED

input
920019

correct output
11100100101101010101001101010

user output
10010101001010110011010011101

Test 37

Group: 4

Verdict:

input
933943

correct output
10101011010100100110100111001

user output
(empty)

Test 38

Group: 4

Verdict: ACCEPTED

input
973410

correct output
1011010101011010101010101001

user output
1001010101010101101010101101

Test 39

Group: 4

Verdict:

input
954943

correct output
10110110010011010100100110101

user output
(empty)

Test 40

Group: 4

Verdict: ACCEPTED

input
911674

correct output
1010110010110101010101010110

user output
1010110010110101010101010110