Submission details
Task:Hypyt
Sender:Jaksu
Submission time:2025-11-02 17:20:09 +0200
Language:Rust (2021)
Status:READY
Result:0
Feedback
groupverdictscore
#10
#20
#30
#40
#50
Test results
testverdicttimegroup
#10.00 s1, 2, 3, 4, 5details
#2ACCEPTED0.00 s1, 2, 3, 4, 5details
#3ACCEPTED0.00 s1, 2, 3, 4, 5details
#40.00 s1, 2, 3, 4, 5details
#5ACCEPTED0.00 s1, 2, 3, 4, 5details
#6--2, 5details
#7--2, 5details
#8--2, 5details
#9--3, 4, 5details
#100.93 s3, 4, 5details
#110.53 s3, 4, 5details
#12--4, 5details
#13--4, 5details
#14--4, 5details
#15--5details
#16--5details
#17--5details
#18--5details
#190.63 s5details
#200.92 s5details
#21ACCEPTED0.33 s5details
#22ACCEPTED0.00 s1, 2, 3, 4, 5details
#23ACCEPTED0.00 s1, 2, 3, 4, 5details
#24ACCEPTED0.34 s5details
#25ACCEPTED0.34 s5details
#26--5details
#27ACCEPTED0.33 s5details

Compiler report

warning: unused imports: `SystemTime`, `UNIX_EPOCH`
 --> input/code.rs:3:17
  |
3 | use std::time::{SystemTime, UNIX_EPOCH};
  |                 ^^^^^^^^^^  ^^^^^^^^^^
  |
  = note: `#[warn(unused_imports)]` on by default

warning: unused variable: `value`
  --> input/code.rs:14:13
   |
14 |     let mut value: usize = 0;
   |             ^^^^^ help: if this is intentional, prefix it with an underscore: `_value`
   |
   = note: `#[warn(unused_variables)]` on by default

warning: unused variable: `row`
  --> input/code.rs:16:9
   |
16 |     for row in 0..startdata[0] {
   |         ^^^ help: if this is intentional, prefix it with an underscore: `_row`

warning: unused variable: `question`
  --> input/code.rs:23:9
   |
23 |     for question in 0..startdata[2] {
   |         ^^^^^^^^ help: if this is intentional, prefix it with an underscore: `_question`

warning: unused variable: `dist`
  --> input/code.rs:60:42
   |
60 | ...                   Some(dist) => {}
   |...

Code

use std::io;
use std::collections::{VecDeque, HashMap};
use std::time::{SystemTime, UNIX_EPOCH};

type NodeID = (usize, usize);

fn main() {
    let mut input = String::new();
    io::stdin().read_line(&mut input).expect("Failed to read input");
 
    let startdata: Vec<usize> = input.split_whitespace().map(|e| e.parse::<usize>().unwrap()).collect();

    let mut grid: Vec<Vec<u8>> = vec!();
    let mut value: usize = 0;

    for row in 0..startdata[0] {
        let mut rowinput = String::new();
        io::stdin().read_line(&mut rowinput).expect("Failed to read input");
        grid.push(rowinput.into_bytes());
    }

    let mut distancehash: HashMap<(NodeID, NodeID), isize> = HashMap::new();
    for question in 0..startdata[2] {
        let mut questioninput = String::new();
        io::stdin().read_line(&mut questioninput).expect("Failed to read input");
        let questiondata: Vec<usize> = questioninput.split_whitespace().map(|e| e.parse::<usize>().unwrap()-1).collect();

        let source: NodeID = (questiondata[0], questiondata[1]);
        let destination: NodeID = (questiondata[2], questiondata[3]);

        match distancehash.get(&(source, destination)) {
            Some(s) => {
                println!("{}", s); 
                continue;}
            None => {}
        }

        let mut queue: VecDeque<NodeID> = VecDeque::new();
        distancehash.insert((source, source), 0);
        queue.push_front(source);

        'outer: loop {
            let node = match queue.pop_back() {
                Some(n) => n,
                None => break
            };

            match distancehash.get(&(node, destination)) {
                Some(dist) => {let _ = distancehash.insert((source, destination), distancehash[&(source, node)]+dist); break;}
                None => {}
            };

            for row in 0..grid.len() {
                if row == node.0 {
                    for cell in 0..grid[row].len() {
                        if grid[row][cell] == 46 {
                            if cell != node.1 {
                                let neighbor: NodeID = (row, cell);
                                match distancehash.get_mut(&(source, neighbor)) {
                                    Some(dist) => {}
                                    None => {
                                        let dist = distancehash[&(source, node)]+1;
                                        distancehash.insert((source, neighbor), dist);
                                        distancehash.insert((neighbor, source), dist);
                                        queue.push_front(neighbor);
                                    }
                                }
                                if neighbor == destination {
                                    queue.clear();
                                    break 'outer;
                                }
                            }
                        }
                    }
                } else {
                    if grid[row][node.1] == 46 {
                        let neighbor: NodeID = (row, node.1);
                        match distancehash.get_mut(&(source, neighbor)) {
                            Some(dist) => {}
                            None => {
                                let dist = distancehash[&(source, node)]+1;
                                distancehash.insert((source, neighbor), dist);
                                distancehash.insert((neighbor, source), dist);
                                queue.push_front(neighbor);
                            }
                        }
                        if neighbor == destination {
                            queue.clear();
                            break 'outer;
                        }
                    }
                }
            }

            /*for neighbor in &graph.data[&node] {
                match distancehash.get_mut(&(source, *neighbor)) {
                    Some(dist) => {}
                    None => {
                        distancehash.insert((source, *neighbor), distancehash[&(source, node)]+1);
                        distancehash.insert((*neighbor, source), distancehash[&(node, source)]+1);
                        queue.push_front(*neighbor);
                    }
                }
                if *neighbor == destination {
                    queue.clear();
                    break 'outer;
                }
            }*/
        }
        match distancehash.get(&(source, destination)) {
            Some(dist) => {println!("{}", dist)}
            None => {println!("-1")}
        }
    }
}

Test details

Test 1 (public)

Group: 1, 2, 3, 4, 5

Verdict:

input
4 6 5
.*.***
*...**
*****.
*..*.*
...

correct output
1
0
3
3
-1

user output
1
0
-1
3
-1

Feedback: Incorrect character on line 3 col 1: expected "3", got "-1"

Test 2

Group: 1, 2, 3, 4, 5

Verdict: ACCEPTED

input
10 10 10
..........
.....*....
........*.
*.*....*..
...

correct output
1
2
1
2
2
...

user output
1
2
1
2
2
...

Test 3

Group: 1, 2, 3, 4, 5

Verdict: ACCEPTED

input
10 10 10
*...***.**
*****.*...
**..**.**.
..**.**.*.
...

correct output
1
2
2
1
2
...

user output
1
2
2
1
2
...

Test 4

Group: 1, 2, 3, 4, 5

Verdict:

input
10 10 10
***.*.****
**********
*.********
.*.***.**.
...

correct output
3
4
2
3
4
...

user output
3
4
2
4
4
...

Feedback: Incorrect character on line 4 col 1: expected "3", got "4"

Test 5

Group: 1, 2, 3, 4, 5

Verdict: ACCEPTED

input
10 10 1
.****.****
**.**..***
**********
*******..*
...

correct output
7

user output
7

Test 6

Group: 2, 5

Verdict:

input
250 250 250
.*...*.....*******..**...*.......

correct output
2
3
3
2
2
...

user output
(empty)

Test 7

Group: 2, 5

Verdict:

input
250 250 250
...*......**.**.*.*..**..*..**...

correct output
2
2
2
2
3
...

user output
(empty)

Test 8

Group: 2, 5

Verdict:

input
250 250 250
**..**..****.****.*.***.***..*...

correct output
2
3
3
3
3
...

user output
(empty)

Test 9

Group: 3, 4, 5

Verdict:

input
40 40 200000
...*.**.*..*.............*.*.....

correct output
2
2
2
2
2
...

user output
(empty)

Test 10

Group: 3, 4, 5

Verdict:

input
40 40 200000
**.**..*.*.*.******....****.*....

correct output
2
1
3
2
2
...

user output
2
1
3
2
2
...

Feedback: Incorrect character on line 45 col 1: expected "2", got "4"

Test 11

Group: 3, 4, 5

Verdict:

input
40 40 200000
.*.*.**.*****.***.*.****.**.**...

correct output
3
3
3
3
3
...

user output
3
3
3
3
3
...

Feedback: Incorrect character on line 19 col 1: expected "3", got "-1"

Test 12

Group: 4, 5

Verdict:

input
80 80 200000
*....**.***..****...*.....*......

correct output
2
2
2
2
2
...

user output
(empty)

Test 13

Group: 4, 5

Verdict:

input
80 80 200000
.***.*..*.***..*****....**...*...

correct output
3
2
2
3
2
...

user output
(empty)

Test 14

Group: 4, 5

Verdict:

input
80 80 200000
*******.*****.*..*..****...***...

correct output
2
3
1
2
2
...

user output
(empty)

Test 15

Group: 5

Verdict:

input
250 250 200000
*....*..*..*..**..*.........**...

correct output
3
2
2
2
2
...

user output
(empty)

Test 16

Group: 5

Verdict:

input
250 250 200000
..*....*..*......*.**.*.*..***...

correct output
2
2
2
2
2
...

user output
(empty)

Test 17

Group: 5

Verdict:

input
250 250 200000
*..*.*****.*********.****.****...

correct output
3
3
2
2
2
...

user output
(empty)

Test 18

Group: 5

Verdict:

input
250 250 200000
*********.**********.******.**...

correct output
3
3
3
3
3
...

user output
(empty)

Test 19

Group: 5

Verdict:

input
250 250 200000
.*****************************...

correct output
104
422
145
93
65
...

user output
104
422
145
93
65
...

Feedback: Incorrect character on line 10 col 1: expected "255", got "-1"

Test 20

Group: 5

Verdict:

input
250 250 200000
..****************************...

correct output
57
155
38
65
98
...

user output
57
155
38
65
98
...

Feedback: Incorrect character on line 42 col 1: expected "196", got "-1"

Test 21

Group: 5

Verdict: ACCEPTED

input
250 250 200000
.*****************************...

correct output
498
498
498
498
498
...

user output
498
498
498
498
498
...

Test 22

Group: 1, 2, 3, 4, 5

Verdict: ACCEPTED

input
10 1 10
*
*
.
*
...

correct output
0
1
1
0
0
...

user output
0
1
1
0
0
...

Test 23

Group: 1, 2, 3, 4, 5

Verdict: ACCEPTED

input
1 10 10
........*.
1 7 1 10
1 4 1 7
1 5 1 1
...

correct output
1
1
1
1
1
...

user output
1
1
1
1
1
...

Test 24

Group: 5

Verdict: ACCEPTED

input
250 1 200000
*
.
*
.
...

correct output
1
1
1
1
1
...

user output
1
1
1
1
1
...

Test 25

Group: 5

Verdict: ACCEPTED

input
1 250 200000
*.*.*...*.*.**.***..**.*.*..**...

correct output
1
1
1
1
1
...

user output
1
1
1
1
1
...

Test 26

Group: 5

Verdict:

input
250 250 200000
.................................

correct output
2
2
2
2
2
...

user output
(empty)

Test 27

Group: 5

Verdict: ACCEPTED

input
250 250 200000
******************************...

correct output
0
0
0
0
0
...

user output
0
0
0
0
0
...