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#include<bits/stdc++.h> |
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#include "testlib.h" |
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using namespace std; |
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const double EPS_SPHERE = 1e-9; |
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const double EPS_DISTANCE = 1e-6; |
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int n; |
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double distance(double x1, double y1, double z1, double x2, double y2, double z2) { |
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double dx = x1 - x2; |
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double dy = y1 - y2; |
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double dz = z1 - z2; |
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return sqrt(dx * dx + dy * dy + dz * dz); |
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} |
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bool doubleEqual(double a, double b, double eps) { |
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if (abs(a) < eps && abs(b) < eps) return true; |
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return abs(a - b) <= eps * max(1.0, max(abs(a), abs(b))); |
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} |
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int main(int argc, char* argv[]) { |
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registerTestlibCmd(argc, argv); |
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n = inf.readInt(); |
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double ref_answer = ans.readDouble(); |
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if (ouf.seekEof()) { |
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quitf(_wa, "No output provided"); |
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} |
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double claimed_min_dist = ouf.readDouble(); |
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if (claimed_min_dist < 0) { |
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quitf(_wa, "Minimum distance cannot be negative: %.10f", claimed_min_dist); |
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} |
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vector<tuple<double, double, double>> points; |
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for (int i = 0; i < n; i++) { |
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if (ouf.seekEof()) { |
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quitf(_wa, "Expected %d points, but only found %d", n, i); |
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} |
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double x = ouf.readDouble(); |
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double y = ouf.readDouble(); |
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double z = ouf.readDouble(); |
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double dist_from_origin = sqrt(x * x + y * y + z * z); |
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if (dist_from_origin > 1.0 + EPS_SPHERE) { |
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quitf(_wa, "Point %d at (%.10f, %.10f, %.10f) is outside the unit sphere (distance from origin: %.15f)", |
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i + 1, x, y, z, dist_from_origin); |
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} |
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points.push_back({x, y, z}); |
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} |
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if (!ouf.seekEof()) { |
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quitf(_wa, "Extra output found after %d points", n); |
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} |
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double actual_min_dist = 1e18; |
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for (int i = 0; i < n; i++) { |
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for (int j = i + 1; j < n; j++) { |
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double d = distance(get<0>(points[i]), get<1>(points[i]), get<2>(points[i]), |
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get<0>(points[j]), get<1>(points[j]), get<2>(points[j])); |
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actual_min_dist = min(actual_min_dist, d); |
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} |
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} |
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if (!doubleEqual(actual_min_dist, claimed_min_dist, EPS_DISTANCE)) { |
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quitf(_wa, "Claimed minimum distance %.10f does not match actual minimum distance %.10f (difference: %.10f)", |
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claimed_min_dist, actual_min_dist, abs(claimed_min_dist - actual_min_dist)); |
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} |
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double score_ratio = claimed_min_dist / ref_answer; |
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if (score_ratio < 0) score_ratio = 0.0; |
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double unbounded_ratio = max(0.0, score_ratio); |
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score_ratio = min(1.0, score_ratio); |
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quitp(score_ratio, "Min distance: %.10f. Ratio: %.6f, RatioUnbounded: %.6f", claimed_min_dist, score_ratio, unbounded_ratio); |
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return 0; |
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} |