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π₯Guys plz Stop fearing for daily exams π π¨βπ» @srksvk is here to help you all at lowest cost possible.πͺ π β Our Only Aim Is To Let Get Placed To You In A Reputed Company π₯Effort from our side = π― π±Main Channel: @coding_are π±Tel I'd : @srksvk
Show moreπ Analytical overview of Telegram channel MTHREE exam help ! Infosys exam help ! Cognizant exam help ! Amazon exam answer
Channel MTHREE exam help ! Infosys exam help ! Cognizant exam help ! Amazon exam answer (@coding_are) in the English language segment is an active participant. Currently, the community unites 13 242 subscribers, ranking 15 362 in the Education category and 32 092 in the India region.
π Audience metrics and dynamics
Since its creation on Π½Π΅Π²ΡΠ΄ΠΎΠΌΠΎ, the project has demonstrated rapid growth, gathering an audience of 13 242 subscribers.
According to the latest data from 18 June, 2026, the channel demonstrates stable activity. Although there has been a change in the number of participants by -138 over the last 30 days and by -2 over the last 24 hours, overall reach remains high.
- Verification status: Not verified
- Engagement rate (ER): The average audience engagement rate is 2.93%. Within the first 24 hours after publication, content typically collects 1.11% reactions from the total number of subscribers.
- Post reach: On average, each post receives 388 views. Within the first day, a publication typically gains 147 views.
- Reactions and interaction: The audience actively supports content: the average number of reactions per post is 2.
- Thematic interests: Content is focused on key topics such as placement, gaurntee, suree, capgemini, infosy.
π Description and content policy
The author describes the resource as a platform for expressing subjective opinions:
βπ₯Guys plz Stop fearing for daily exams π
π¨βπ» @srksvk is here to help you all at lowest cost possible.πͺ
π β Our Only Aim Is To Let Get Placed To You In A Reputed Company
π₯Effort from our side = π―
π±Main Channel: @coding_are
π±Tel I'd : @srks...β
Thanks to the high frequency of updates (latest data received on 19 June, 2026), the channel maintains relevance and a high level of publication reach. Analytics show that the audience actively interacts with content, making it an important point of influence in the Education category.
13 242
Subscribers
-224 hours
-457 days
-13830 days
Posts Archive
Share fast group
After 16k I will upload so shared fas everyone
Next code ( string obsession)
ππππ
Now share group Everyone's please π₯Ίπ₯Ίπ₯Ίπ₯Ί
from collections import deque
import itertools
def get_shortest_path(grid, N):
start = None
end = None
for i in range(N):
for j in range(N):
if grid[i][j] == 'S':
start = (i, j)
elif grid[i][j] == 'D':
end = (i, j)
queue = deque([(start, 0)])
visited = {start}
while queue:
(x, y), dist = queue.popleft()
if grid[x][y] == 'D':
return dist
for nx, ny in [(x+1,y), (x-1,y), (x,y+1), (x,y-1)]:
if (0 <= nx < N and 0 <= ny < N and
(nx,ny) not in visited and
grid[nx][ny] in 'TD'):
visited.add((nx,ny))
queue.append(((nx,ny), dist + 1))
return float('inf')
def get_sheets(grid, N, M):
sheets = []
for i in range(0, N, M):
for j in range(0, N, M):
sheet = []
for x in range(M):
row = []
for y in range(M):
row.append(grid[i+x][j+y])
sheet.append(row)
sheets.append(sheet)
return sheets
def make_grid(arrangement, sheets, N, M):
grid = [['' for _ in range(N)] for _ in range(N)]
num_sheets = N // M
for idx, sheet_idx in enumerate(arrangement):
sheet = sheets[sheet_idx]
base_i = (idx // num_sheets) * M
base_j = (idx % num_sheets) * M
for i in range(M):
for j in range(M):
grid[base_i + i][base_j + j] = sheet[i][j]
return grid
def solve():
N, M = map(int, input().split())
original_grid = []
for _ in range(N):
original_grid.append(list(input().strip()))
sheets = get_sheets(original_grid, N, M)
num_sheets = (N // M) ** 2
s_sheet = d_sheet = None
for i, sheet in enumerate(sheets):
for row in sheet:
if 'S' in row:
s_sheet = i
if 'D' in row:
d_sheet = i
min_dist = float('inf')
nums = list(range(num_sheets))
nums.remove(s_sheet)
nums.remove(d_sheet)
for middle_perm in itertools.permutations(nums):
arrangement = [s_sheet] + list(middle_perm) + [d_sheet]
grid = make_grid(arrangement, sheets, N, M)
min_dist = min(min_dist, get_shortest_path(grid, N))
return min_dist
if name == "main":
print(solve())
Arranged map full accepted βΊοΈ
After 16k i will upload one more code answer with all tets caes passed π₯π₯³π₯³π₯³
https://t.me/codeing_are
Show share fast guys
After 16k i will upload one more code answer with all tets caes passed π₯π₯³π₯³π₯³
https://t.me/codeing_are
Show share fast guys
String of session
After 16k i will share code
Arrange map done πβ
β
After 16k i will upload one more code answer with all tets caes passed π₯π₯³π₯³π₯³
https://t.me/codeing_are
Show share fast guys
Next answer ready βΊοΈπβΊοΈβΊοΈβΊοΈ
Remove all given code then types with change some variable
#include <bits/stdc++.h>
using namespace std;
#define loop(i, a, n) for (lli i = (a); i < (n); ++i)
#define loopD(i, a, n) for (lli i = (a); i >= (n); --i)
#define all(c) (c).begin(), (c).end()
#define rall(c) (c).rbegin(), (c).rend()
#define sz(a) ((lli)a.size())
#define YES cout << "YES" << endl;
#define NO cout << "NO" << endl;
#define endl '\n'
#define fastio std::ios::sync_with_stdio(false), cin.tie(NULL), cout.tie(NULL);
#define pb push_back
#define pp pop_back()
#define fi first
#define si second
#define v(a) vector<int>(a)
#define vv(a) vector<vector<int>>(a)
#define present(c, x) ((c).find(x) != (c).end())
#define set_bits __builtin_popcountll
#define MOD 1000000007
#define int long long
typedef long long lli;
typedef vector<int> vi;
typedef vector<vi> vvi;
typedef pair<lli, lli> pll;
typedef pair<int, int> pii;
typedef unordered_map<int, int> umpi;
typedef map<int, int> mpi;
typedef vector<pii> vp;
typedef vector<lli> vll;
typedef vector<vll> vvll;
struct Line {
int x1, y1, x2, y2;
bool vertical() const { return x1 == x2; }
bool horizontal() const { return y1 == y2; }
bool diagonal() const { return abs(x2 - x1) == abs(y2 - y1); }
};
int N, K;
vector<Line> lines;
map<pair<int, int>, vector<int>> ptsMap;
void add(const Line& line, int idx) {
int x1 = line.x1, y1 = line.y1;
int x2 = line.x2, y2 = line.y2;
if (line.vertical()) {
int yStart = min(y1, y2);
int yEnd = max(y1, y2);
for(int y = yStart; y <= yEnd; y++) {
ptsMap[{x1, y}].push_back(idx);
}
}
else if (line.horizontal()) {
int xStart = min(x1, x2);
int xEnd = max(x1, x2);
for(int x = xStart; x <= xEnd; x++) {
ptsMap[{x, y1}].push_back(idx);
}
}
else if (line.diagonal()) {
int steps = abs(x2 - x1);
int dx = (x2 - x1) / steps;
int dy = (y2 - y1) / steps;
for(int i = 0; i <= steps; i++) {
int x = x1 + i * dx;
int y = y1 + i * dy;
ptsMap[{x, y}].push_back(idx);
}
}
}
int ff(int x1, int y1, int x2, int y2) {
if(x1 == x2) return abs(y1 - y2);
if(y1 == y2) return abs(x1 - x2);
if(abs(x1 - x2) == abs(y1 - y2)) return abs(x1 - x2);
return 0;
}
int solve(const pair<int, int>& pt, const vector<int>& lst) {
vector<int> d;
for(auto lIdx : lst) {
const Line& ln = lines[lIdx];
bool oneSided = (pt.first == ln.x1 && pt.second == ln.y1) ||
(pt.first == ln.x2 && pt.second == ln.y2);
if(oneSided) {
int ex = (pt.first == ln.x1 && pt.second == ln.y1) ? ln.x2 : ln.x1;
int ey = (pt.first == ln.x1 && pt.second == ln.y1) ? ln.y2 : ln.y1;
d.push_back(ff(pt.first, pt.second, ex, ey));
}
else {
d.push_back(ff(pt.first, pt.second, ln.x1, ln.y1));
d.push_back(ff(pt.first, pt.second, ln.x2, ln.y2));
}
}
return d.empty() ? 0 : *min_element(d.begin(), d.end());
}
void solve() {
cin >> N;
lines.resize(N);
for(int i = 0; i < N; i++) {
cin >> lines[i].x1 >> lines[i].y1 >> lines[i].x2 >> lines[i].y2;
add(lines[i], i);
}
cin >> K;
int total = 0;
for(auto &[pt, lst] : ptsMap) {
if(sz(lst) == K) {
total += solve(pt, lst);
}
}
cout << total;
}
int32_t main() {
solve();
return 0;
}
// magic stars intensity ac
Full accepted βΊοΈ
After 16k i will upload one more code answer with all tets caes passed π₯π₯³π₯³π₯³
Show share fast guys
