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[ { "role": "system", "content": "You are a World-Class Competitive Programming and Algorithmic Reasoning AI. Conduct rigorous mathematical proof, asymptotic complexity analysis (Time & Space), and invariant verification inside <Thinking> and </Thinking> tags before generating optimal, production-grade C++20 ...
[COMPETITIVE PROGRAMMING PROBLEM #10147 - SEGMENT TREE LAZY PROPAGATION] Problem: Given an array of N = 265000 elements and Q = 265000 queries, support: (1) Range Add [L, R] by val, (2) Range Sum [L, R] modulo 10^9+7. Task: Perform asymptotic analysis inside <Thinking> and implement in C++20 with Fast I/O.
<Thinking> [PHASE 1: ASYMPTOTIC COMPLEXITY TARGET] - Input Scale: N, Q = 265000. Naive O(N * Q) β‰ˆ 4 * 10^10 operations triggers TLE. - Optimal Algorithm: Segment Tree with Lazy Propagation achieves O(N) build and O(log N) per range update and query. [PHASE 2: LAZY STATE INVARIANTS] - Tree node covers [s, e] with span ...
gold
competitive_coding
[ { "role": "system", "content": "You are a World-Class Competitive Programming and Algorithmic Reasoning AI. Conduct rigorous mathematical proof, asymptotic complexity analysis (Time & Space), and invariant verification inside <Thinking> and </Thinking> tags before generating optimal, production-grade C++20 ...
[COMPETITIVE PROGRAMMING PROBLEM #10097 - SEGMENT TREE LAZY PROPAGATION] Problem: Given an array of N = 140000 elements and Q = 140000 queries, support: (1) Range Add [L, R] by val, (2) Range Sum [L, R] modulo 10^9+7. Task: Perform asymptotic analysis inside <Thinking> and implement in C++20 with Fast I/O.
<Thinking> [PHASE 1: ASYMPTOTIC COMPLEXITY TARGET] - Input Scale: N, Q = 140000. Naive O(N * Q) β‰ˆ 4 * 10^10 operations triggers TLE. - Optimal Algorithm: Segment Tree with Lazy Propagation achieves O(N) build and O(log N) per range update and query. [PHASE 2: LAZY STATE INVARIANTS] - Tree node covers [s, e] with span ...
gold
competitive_coding
[ { "role": "system", "content": "You are a World-Class Competitive Programming and Algorithmic Reasoning AI. Conduct rigorous mathematical proof, asymptotic complexity analysis (Time & Space), and invariant verification inside <Thinking> and </Thinking> tags before generating optimal, production-grade C++20 ...
[ALGORITHMIC TEMPLATE ANCHOR #30001] Task: Provide the standard Fast I/O and Linear Sieve prime factorization template in C++20.
<Thinking> [PHASE 1: COMPETITIVE PROGRAMMING PRIMITIVES] - Fast I/O: `ios_base::sync_with_stdio(false); cin.tie(NULL);`. - Linear Sieve computes smallest prime factor (SPF) in exact O(N) time. </Thinking> ```cpp #include <iostream> #include <vector> using namespace std; const int MAXV = 1e7; int spf[MAXV + 1]; vector<...
replay_buffer
competitive_coding
[ { "role": "system", "content": "You are a World-Class Competitive Programming and Algorithmic Reasoning AI. Conduct rigorous mathematical proof, asymptotic complexity analysis (Time & Space), and invariant verification inside <Thinking> and </Thinking> tags before generating optimal, production-grade C++20 ...
[COMPETITIVE PROGRAMMING PROBLEM #10186 - SEGMENT TREE LAZY PROPAGATION] Problem: Given an array of N = 162500 elements and Q = 162500 queries, support: (1) Range Add [L, R] by val, (2) Range Sum [L, R] modulo 10^9+7. Task: Perform asymptotic analysis inside <Thinking> and implement in C++20 with Fast I/O.
<Thinking> [PHASE 1: ASYMPTOTIC COMPLEXITY TARGET] - Input Scale: N, Q = 162500. Naive O(N * Q) β‰ˆ 4 * 10^10 operations triggers TLE. - Optimal Algorithm: Segment Tree with Lazy Propagation achieves O(N) build and O(log N) per range update and query. [PHASE 2: LAZY STATE INVARIANTS] - Tree node covers [s, e] with span ...
gold
competitive_coding
[ { "role": "system", "content": "You are a World-Class Competitive Programming and Algorithmic Reasoning AI. Conduct rigorous mathematical proof, asymptotic complexity analysis (Time & Space), and invariant verification inside <Thinking> and </Thinking> tags before generating optimal, production-grade C++20 ...
[COMPETITIVE PROGRAMMING PROBLEM #10075 - SEGMENT TREE LAZY PROPAGATION] Problem: Given an array of N = 285000 elements and Q = 285000 queries, support: (1) Range Add [L, R] by val, (2) Range Sum [L, R] modulo 10^9+7. Task: Perform asymptotic analysis inside <Thinking> and implement in C++20 with Fast I/O.
<Thinking> [PHASE 1: ASYMPTOTIC COMPLEXITY TARGET] - Input Scale: N, Q = 285000. Naive O(N * Q) β‰ˆ 4 * 10^10 operations triggers TLE. - Optimal Algorithm: Segment Tree with Lazy Propagation achieves O(N) build and O(log N) per range update and query. [PHASE 2: LAZY STATE INVARIANTS] - Tree node covers [s, e] with span ...
gold
competitive_coding
[ { "role": "system", "content": "You are a World-Class Competitive Programming and Algorithmic Reasoning AI. Conduct rigorous mathematical proof, asymptotic complexity analysis (Time & Space), and invariant verification inside <Thinking> and </Thinking> tags before generating optimal, production-grade C++20 ...
[ALGORITHMIC BUG REFUTATION #20148 - 32-BIT INTEGER OVERFLOW] Problem: Calculating `(a * b) % MOD` where a, b, MOD are signed 32-bit integers (`int` in C++). Task: Audit numerical overflow vulnerability inside <Thinking> and provide safe implementation.
<Thinking> [PHASE 1: NUMERICAL OVERFLOW AUDIT] - When `a, b <= 10^9`, product `a * b` can reach `10^18`. - Standard signed 32-bit `int` overflows at `2^31 - 1 β‰ˆ 2.14 * 10^9`, leading to undefined behavior and negative wrap-around before the modulo operation. - Correction: Cast to `1LL * a * b % MOD` or `(long long)a * ...
hard_negative
competitive_coding
[ { "role": "system", "content": "You are a World-Class Competitive Programming and Algorithmic Reasoning AI. Conduct rigorous mathematical proof, asymptotic complexity analysis (Time & Space), and invariant verification inside <Thinking> and </Thinking> tags before generating optimal, production-grade C++20 ...
[ALGORITHMIC TEMPLATE ANCHOR #30025] Task: Provide the standard Fast I/O and Linear Sieve prime factorization template in C++20.
<Thinking> [PHASE 1: COMPETITIVE PROGRAMMING PRIMITIVES] - Fast I/O: `ios_base::sync_with_stdio(false); cin.tie(NULL);`. - Linear Sieve computes smallest prime factor (SPF) in exact O(N) time. </Thinking> ```cpp #include <iostream> #include <vector> using namespace std; const int MAXV = 1e7; int spf[MAXV + 1]; vector<...
replay_buffer
competitive_coding
[ { "role": "system", "content": "You are a World-Class Competitive Programming and Algorithmic Reasoning AI. Conduct rigorous mathematical proof, asymptotic complexity analysis (Time & Space), and invariant verification inside <Thinking> and </Thinking> tags before generating optimal, production-grade C++20 ...
[COMPETITIVE PROGRAMMING PROBLEM #10083 - SEGMENT TREE LAZY PROPAGATION] Problem: Given an array of N = 105000 elements and Q = 105000 queries, support: (1) Range Add [L, R] by val, (2) Range Sum [L, R] modulo 10^9+7. Task: Perform asymptotic analysis inside <Thinking> and implement in C++20 with Fast I/O.
<Thinking> [PHASE 1: ASYMPTOTIC COMPLEXITY TARGET] - Input Scale: N, Q = 105000. Naive O(N * Q) β‰ˆ 4 * 10^10 operations triggers TLE. - Optimal Algorithm: Segment Tree with Lazy Propagation achieves O(N) build and O(log N) per range update and query. [PHASE 2: LAZY STATE INVARIANTS] - Tree node covers [s, e] with span ...
gold
competitive_coding
[ { "role": "system", "content": "You are a World-Class Competitive Programming and Algorithmic Reasoning AI. Conduct rigorous mathematical proof, asymptotic complexity analysis (Time & Space), and invariant verification inside <Thinking> and </Thinking> tags before generating optimal, production-grade C++20 ...
[COMPETITIVE PROGRAMMING PROBLEM #10003 - SEGMENT TREE LAZY PROPAGATION] Problem: Given an array of N = 105000 elements and Q = 105000 queries, support: (1) Range Add [L, R] by val, (2) Range Sum [L, R] modulo 10^9+7. Task: Perform asymptotic analysis inside <Thinking> and implement in C++20 with Fast I/O.
<Thinking> [PHASE 1: ASYMPTOTIC COMPLEXITY TARGET] - Input Scale: N, Q = 105000. Naive O(N * Q) β‰ˆ 4 * 10^10 operations triggers TLE. - Optimal Algorithm: Segment Tree with Lazy Propagation achieves O(N) build and O(log N) per range update and query. [PHASE 2: LAZY STATE INVARIANTS] - Tree node covers [s, e] with span ...
gold
competitive_coding
[ { "role": "system", "content": "You are a World-Class Competitive Programming and Algorithmic Reasoning AI. Conduct rigorous mathematical proof, asymptotic complexity analysis (Time & Space), and invariant verification inside <Thinking> and </Thinking> tags before generating optimal, production-grade C++20 ...
[COMPETITIVE PROGRAMMING PROBLEM #10317 - SEGMENT TREE LAZY PROPAGATION] Problem: Given an array of N = 290000 elements and Q = 290000 queries, support: (1) Range Add [L, R] by val, (2) Range Sum [L, R] modulo 10^9+7. Task: Perform asymptotic analysis inside <Thinking> and implement in C++20 with Fast I/O.
<Thinking> [PHASE 1: ASYMPTOTIC COMPLEXITY TARGET] - Input Scale: N, Q = 290000. Naive O(N * Q) β‰ˆ 4 * 10^10 operations triggers TLE. - Optimal Algorithm: Segment Tree with Lazy Propagation achieves O(N) build and O(log N) per range update and query. [PHASE 2: LAZY STATE INVARIANTS] - Tree node covers [s, e] with span ...
gold
competitive_coding
[ { "role": "system", "content": "You are a World-Class Competitive Programming and Algorithmic Reasoning AI. Conduct rigorous mathematical proof, asymptotic complexity analysis (Time & Space), and invariant verification inside <Thinking> and </Thinking> tags before generating optimal, production-grade C++20 ...
[COMPETITIVE PROGRAMMING PROBLEM #10175 - SEGMENT TREE LAZY PROPAGATION] Problem: Given an array of N = 135000 elements and Q = 135000 queries, support: (1) Range Add [L, R] by val, (2) Range Sum [L, R] modulo 10^9+7. Task: Perform asymptotic analysis inside <Thinking> and implement in C++20 with Fast I/O.
<Thinking> [PHASE 1: ASYMPTOTIC COMPLEXITY TARGET] - Input Scale: N, Q = 135000. Naive O(N * Q) β‰ˆ 4 * 10^10 operations triggers TLE. - Optimal Algorithm: Segment Tree with Lazy Propagation achieves O(N) build and O(log N) per range update and query. [PHASE 2: LAZY STATE INVARIANTS] - Tree node covers [s, e] with span ...
gold
competitive_coding
[ { "role": "system", "content": "You are a World-Class Competitive Programming and Algorithmic Reasoning AI. Conduct rigorous mathematical proof, asymptotic complexity analysis (Time & Space), and invariant verification inside <Thinking> and </Thinking> tags before generating optimal, production-grade C++20 ...
[COMPETITIVE PROGRAMMING PROBLEM #10217 - SEGMENT TREE LAZY PROPAGATION] Problem: Given an array of N = 240000 elements and Q = 240000 queries, support: (1) Range Add [L, R] by val, (2) Range Sum [L, R] modulo 10^9+7. Task: Perform asymptotic analysis inside <Thinking> and implement in C++20 with Fast I/O.
<Thinking> [PHASE 1: ASYMPTOTIC COMPLEXITY TARGET] - Input Scale: N, Q = 240000. Naive O(N * Q) β‰ˆ 4 * 10^10 operations triggers TLE. - Optimal Algorithm: Segment Tree with Lazy Propagation achieves O(N) build and O(log N) per range update and query. [PHASE 2: LAZY STATE INVARIANTS] - Tree node covers [s, e] with span ...
gold
competitive_coding
[ { "role": "system", "content": "You are a World-Class Competitive Programming and Algorithmic Reasoning AI. Conduct rigorous mathematical proof, asymptotic complexity analysis (Time & Space), and invariant verification inside <Thinking> and </Thinking> tags before generating optimal, production-grade C++20 ...
[COMPETITIVE PROGRAMMING PROBLEM #10084 - SEGMENT TREE LAZY PROPAGATION] Problem: Given an array of N = 107500 elements and Q = 107500 queries, support: (1) Range Add [L, R] by val, (2) Range Sum [L, R] modulo 10^9+7. Task: Perform asymptotic analysis inside <Thinking> and implement in C++20 with Fast I/O.
<Thinking> [PHASE 1: ASYMPTOTIC COMPLEXITY TARGET] - Input Scale: N, Q = 107500. Naive O(N * Q) β‰ˆ 4 * 10^10 operations triggers TLE. - Optimal Algorithm: Segment Tree with Lazy Propagation achieves O(N) build and O(log N) per range update and query. [PHASE 2: LAZY STATE INVARIANTS] - Tree node covers [s, e] with span ...
gold
competitive_coding
[ { "role": "system", "content": "You are a World-Class Competitive Programming and Algorithmic Reasoning AI. Conduct rigorous mathematical proof, asymptotic complexity analysis (Time & Space), and invariant verification inside <Thinking> and </Thinking> tags before generating optimal, production-grade C++20 ...
[COMPETITIVE PROGRAMMING PROBLEM #10197 - SEGMENT TREE LAZY PROPAGATION] Problem: Given an array of N = 190000 elements and Q = 190000 queries, support: (1) Range Add [L, R] by val, (2) Range Sum [L, R] modulo 10^9+7. Task: Perform asymptotic analysis inside <Thinking> and implement in C++20 with Fast I/O.
<Thinking> [PHASE 1: ASYMPTOTIC COMPLEXITY TARGET] - Input Scale: N, Q = 190000. Naive O(N * Q) β‰ˆ 4 * 10^10 operations triggers TLE. - Optimal Algorithm: Segment Tree with Lazy Propagation achieves O(N) build and O(log N) per range update and query. [PHASE 2: LAZY STATE INVARIANTS] - Tree node covers [s, e] with span ...
gold
competitive_coding
[ { "role": "system", "content": "You are a World-Class Competitive Programming and Algorithmic Reasoning AI. Conduct rigorous mathematical proof, asymptotic complexity analysis (Time & Space), and invariant verification inside <Thinking> and </Thinking> tags before generating optimal, production-grade C++20 ...
[COMPETITIVE PROGRAMMING PROBLEM #10347 - SEGMENT TREE LAZY PROPAGATION] Problem: Given an array of N = 165000 elements and Q = 165000 queries, support: (1) Range Add [L, R] by val, (2) Range Sum [L, R] modulo 10^9+7. Task: Perform asymptotic analysis inside <Thinking> and implement in C++20 with Fast I/O.
<Thinking> [PHASE 1: ASYMPTOTIC COMPLEXITY TARGET] - Input Scale: N, Q = 165000. Naive O(N * Q) β‰ˆ 4 * 10^10 operations triggers TLE. - Optimal Algorithm: Segment Tree with Lazy Propagation achieves O(N) build and O(log N) per range update and query. [PHASE 2: LAZY STATE INVARIANTS] - Tree node covers [s, e] with span ...
gold
competitive_coding
[ { "role": "system", "content": "You are a World-Class Competitive Programming and Algorithmic Reasoning AI. Conduct rigorous mathematical proof, asymptotic complexity analysis (Time & Space), and invariant verification inside <Thinking> and </Thinking> tags before generating optimal, production-grade C++20 ...
[ALGORITHMIC BUG REFUTATION #20117 - 32-BIT INTEGER OVERFLOW] Problem: Calculating `(a * b) % MOD` where a, b, MOD are signed 32-bit integers (`int` in C++). Task: Audit numerical overflow vulnerability inside <Thinking> and provide safe implementation.
<Thinking> [PHASE 1: NUMERICAL OVERFLOW AUDIT] - When `a, b <= 10^9`, product `a * b` can reach `10^18`. - Standard signed 32-bit `int` overflows at `2^31 - 1 β‰ˆ 2.14 * 10^9`, leading to undefined behavior and negative wrap-around before the modulo operation. - Correction: Cast to `1LL * a * b % MOD` or `(long long)a * ...
hard_negative
competitive_coding
[ { "role": "system", "content": "You are a World-Class Competitive Programming and Algorithmic Reasoning AI. Conduct rigorous mathematical proof, asymptotic complexity analysis (Time & Space), and invariant verification inside <Thinking> and </Thinking> tags before generating optimal, production-grade C++20 ...
[ALGORITHMIC BUG REFUTATION #20036 - 32-BIT INTEGER OVERFLOW] Problem: Calculating `(a * b) % MOD` where a, b, MOD are signed 32-bit integers (`int` in C++). Task: Audit numerical overflow vulnerability inside <Thinking> and provide safe implementation.
<Thinking> [PHASE 1: NUMERICAL OVERFLOW AUDIT] - When `a, b <= 10^9`, product `a * b` can reach `10^18`. - Standard signed 32-bit `int` overflows at `2^31 - 1 β‰ˆ 2.14 * 10^9`, leading to undefined behavior and negative wrap-around before the modulo operation. - Correction: Cast to `1LL * a * b % MOD` or `(long long)a * ...
hard_negative
competitive_coding
[ { "role": "system", "content": "You are a World-Class Competitive Programming and Algorithmic Reasoning AI. Conduct rigorous mathematical proof, asymptotic complexity analysis (Time & Space), and invariant verification inside <Thinking> and </Thinking> tags before generating optimal, production-grade C++20 ...
[COMPETITIVE PROGRAMMING PROBLEM #10280 - SEGMENT TREE LAZY PROPAGATION] Problem: Given an array of N = 197500 elements and Q = 197500 queries, support: (1) Range Add [L, R] by val, (2) Range Sum [L, R] modulo 10^9+7. Task: Perform asymptotic analysis inside <Thinking> and implement in C++20 with Fast I/O.
<Thinking> [PHASE 1: ASYMPTOTIC COMPLEXITY TARGET] - Input Scale: N, Q = 197500. Naive O(N * Q) β‰ˆ 4 * 10^10 operations triggers TLE. - Optimal Algorithm: Segment Tree with Lazy Propagation achieves O(N) build and O(log N) per range update and query. [PHASE 2: LAZY STATE INVARIANTS] - Tree node covers [s, e] with span ...
gold
competitive_coding
[ { "role": "system", "content": "You are a World-Class Competitive Programming and Algorithmic Reasoning AI. Conduct rigorous mathematical proof, asymptotic complexity analysis (Time & Space), and invariant verification inside <Thinking> and </Thinking> tags before generating optimal, production-grade C++20 ...
[ALGORITHMIC BUG REFUTATION #20140 - 32-BIT INTEGER OVERFLOW] Problem: Calculating `(a * b) % MOD` where a, b, MOD are signed 32-bit integers (`int` in C++). Task: Audit numerical overflow vulnerability inside <Thinking> and provide safe implementation.
<Thinking> [PHASE 1: NUMERICAL OVERFLOW AUDIT] - When `a, b <= 10^9`, product `a * b` can reach `10^18`. - Standard signed 32-bit `int` overflows at `2^31 - 1 β‰ˆ 2.14 * 10^9`, leading to undefined behavior and negative wrap-around before the modulo operation. - Correction: Cast to `1LL * a * b % MOD` or `(long long)a * ...
hard_negative
competitive_coding
[ { "role": "system", "content": "You are a World-Class Competitive Programming and Algorithmic Reasoning AI. Conduct rigorous mathematical proof, asymptotic complexity analysis (Time & Space), and invariant verification inside <Thinking> and </Thinking> tags before generating optimal, production-grade C++20 ...
[COMPETITIVE PROGRAMMING PROBLEM #10166 - SEGMENT TREE LAZY PROPAGATION] Problem: Given an array of N = 112500 elements and Q = 112500 queries, support: (1) Range Add [L, R] by val, (2) Range Sum [L, R] modulo 10^9+7. Task: Perform asymptotic analysis inside <Thinking> and implement in C++20 with Fast I/O.
<Thinking> [PHASE 1: ASYMPTOTIC COMPLEXITY TARGET] - Input Scale: N, Q = 112500. Naive O(N * Q) β‰ˆ 4 * 10^10 operations triggers TLE. - Optimal Algorithm: Segment Tree with Lazy Propagation achieves O(N) build and O(log N) per range update and query. [PHASE 2: LAZY STATE INVARIANTS] - Tree node covers [s, e] with span ...
gold
competitive_coding
[ { "role": "system", "content": "You are a World-Class Competitive Programming and Algorithmic Reasoning AI. Conduct rigorous mathematical proof, asymptotic complexity analysis (Time & Space), and invariant verification inside <Thinking> and </Thinking> tags before generating optimal, production-grade C++20 ...
[ALGORITHMIC TEMPLATE ANCHOR #30034] Task: Provide the standard Fast I/O and Linear Sieve prime factorization template in C++20.
<Thinking> [PHASE 1: COMPETITIVE PROGRAMMING PRIMITIVES] - Fast I/O: `ios_base::sync_with_stdio(false); cin.tie(NULL);`. - Linear Sieve computes smallest prime factor (SPF) in exact O(N) time. </Thinking> ```cpp #include <iostream> #include <vector> using namespace std; const int MAXV = 1e7; int spf[MAXV + 1]; vector<...
replay_buffer
competitive_coding
[ { "role": "system", "content": "You are a World-Class Competitive Programming and Algorithmic Reasoning AI. Conduct rigorous mathematical proof, asymptotic complexity analysis (Time & Space), and invariant verification inside <Thinking> and </Thinking> tags before generating optimal, production-grade C++20 ...
[COMPETITIVE PROGRAMMING PROBLEM #10136 - SEGMENT TREE LAZY PROPAGATION] Problem: Given an array of N = 237500 elements and Q = 237500 queries, support: (1) Range Add [L, R] by val, (2) Range Sum [L, R] modulo 10^9+7. Task: Perform asymptotic analysis inside <Thinking> and implement in C++20 with Fast I/O.
<Thinking> [PHASE 1: ASYMPTOTIC COMPLEXITY TARGET] - Input Scale: N, Q = 237500. Naive O(N * Q) β‰ˆ 4 * 10^10 operations triggers TLE. - Optimal Algorithm: Segment Tree with Lazy Propagation achieves O(N) build and O(log N) per range update and query. [PHASE 2: LAZY STATE INVARIANTS] - Tree node covers [s, e] with span ...
gold
competitive_coding
[ { "role": "system", "content": "You are a World-Class Competitive Programming and Algorithmic Reasoning AI. Conduct rigorous mathematical proof, asymptotic complexity analysis (Time & Space), and invariant verification inside <Thinking> and </Thinking> tags before generating optimal, production-grade C++20 ...
[ALGORITHMIC BUG REFUTATION #20054 - 32-BIT INTEGER OVERFLOW] Problem: Calculating `(a * b) % MOD` where a, b, MOD are signed 32-bit integers (`int` in C++). Task: Audit numerical overflow vulnerability inside <Thinking> and provide safe implementation.
<Thinking> [PHASE 1: NUMERICAL OVERFLOW AUDIT] - When `a, b <= 10^9`, product `a * b` can reach `10^18`. - Standard signed 32-bit `int` overflows at `2^31 - 1 β‰ˆ 2.14 * 10^9`, leading to undefined behavior and negative wrap-around before the modulo operation. - Correction: Cast to `1LL * a * b % MOD` or `(long long)a * ...
hard_negative
competitive_coding
[ { "role": "system", "content": "You are a World-Class Competitive Programming and Algorithmic Reasoning AI. Conduct rigorous mathematical proof, asymptotic complexity analysis (Time & Space), and invariant verification inside <Thinking> and </Thinking> tags before generating optimal, production-grade C++20 ...
[ALGORITHMIC BUG REFUTATION #20147 - 32-BIT INTEGER OVERFLOW] Problem: Calculating `(a * b) % MOD` where a, b, MOD are signed 32-bit integers (`int` in C++). Task: Audit numerical overflow vulnerability inside <Thinking> and provide safe implementation.
<Thinking> [PHASE 1: NUMERICAL OVERFLOW AUDIT] - When `a, b <= 10^9`, product `a * b` can reach `10^18`. - Standard signed 32-bit `int` overflows at `2^31 - 1 β‰ˆ 2.14 * 10^9`, leading to undefined behavior and negative wrap-around before the modulo operation. - Correction: Cast to `1LL * a * b % MOD` or `(long long)a * ...
hard_negative
competitive_coding
[ { "role": "system", "content": "You are a World-Class Competitive Programming and Algorithmic Reasoning AI. Conduct rigorous mathematical proof, asymptotic complexity analysis (Time & Space), and invariant verification inside <Thinking> and </Thinking> tags before generating optimal, production-grade C++20 ...
[ALGORITHMIC BUG REFUTATION #20104 - 32-BIT INTEGER OVERFLOW] Problem: Calculating `(a * b) % MOD` where a, b, MOD are signed 32-bit integers (`int` in C++). Task: Audit numerical overflow vulnerability inside <Thinking> and provide safe implementation.
<Thinking> [PHASE 1: NUMERICAL OVERFLOW AUDIT] - When `a, b <= 10^9`, product `a * b` can reach `10^18`. - Standard signed 32-bit `int` overflows at `2^31 - 1 β‰ˆ 2.14 * 10^9`, leading to undefined behavior and negative wrap-around before the modulo operation. - Correction: Cast to `1LL * a * b % MOD` or `(long long)a * ...
hard_negative
competitive_coding
[ { "role": "system", "content": "You are a World-Class Competitive Programming and Algorithmic Reasoning AI. Conduct rigorous mathematical proof, asymptotic complexity analysis (Time & Space), and invariant verification inside <Thinking> and </Thinking> tags before generating optimal, production-grade C++20 ...
[COMPETITIVE PROGRAMMING PROBLEM #10152 - SEGMENT TREE LAZY PROPAGATION] Problem: Given an array of N = 277500 elements and Q = 277500 queries, support: (1) Range Add [L, R] by val, (2) Range Sum [L, R] modulo 10^9+7. Task: Perform asymptotic analysis inside <Thinking> and implement in C++20 with Fast I/O.
<Thinking> [PHASE 1: ASYMPTOTIC COMPLEXITY TARGET] - Input Scale: N, Q = 277500. Naive O(N * Q) β‰ˆ 4 * 10^10 operations triggers TLE. - Optimal Algorithm: Segment Tree with Lazy Propagation achieves O(N) build and O(log N) per range update and query. [PHASE 2: LAZY STATE INVARIANTS] - Tree node covers [s, e] with span ...
gold
competitive_coding
[ { "role": "system", "content": "You are a World-Class Competitive Programming and Algorithmic Reasoning AI. Conduct rigorous mathematical proof, asymptotic complexity analysis (Time & Space), and invariant verification inside <Thinking> and </Thinking> tags before generating optimal, production-grade C++20 ...
[COMPETITIVE PROGRAMMING PROBLEM #10346 - SEGMENT TREE LAZY PROPAGATION] Problem: Given an array of N = 162500 elements and Q = 162500 queries, support: (1) Range Add [L, R] by val, (2) Range Sum [L, R] modulo 10^9+7. Task: Perform asymptotic analysis inside <Thinking> and implement in C++20 with Fast I/O.
<Thinking> [PHASE 1: ASYMPTOTIC COMPLEXITY TARGET] - Input Scale: N, Q = 162500. Naive O(N * Q) β‰ˆ 4 * 10^10 operations triggers TLE. - Optimal Algorithm: Segment Tree with Lazy Propagation achieves O(N) build and O(log N) per range update and query. [PHASE 2: LAZY STATE INVARIANTS] - Tree node covers [s, e] with span ...
gold
competitive_coding
[ { "role": "system", "content": "You are a World-Class Competitive Programming and Algorithmic Reasoning AI. Conduct rigorous mathematical proof, asymptotic complexity analysis (Time & Space), and invariant verification inside <Thinking> and </Thinking> tags before generating optimal, production-grade C++20 ...
[COMPETITIVE PROGRAMMING PROBLEM #10199 - SEGMENT TREE LAZY PROPAGATION] Problem: Given an array of N = 195000 elements and Q = 195000 queries, support: (1) Range Add [L, R] by val, (2) Range Sum [L, R] modulo 10^9+7. Task: Perform asymptotic analysis inside <Thinking> and implement in C++20 with Fast I/O.
<Thinking> [PHASE 1: ASYMPTOTIC COMPLEXITY TARGET] - Input Scale: N, Q = 195000. Naive O(N * Q) β‰ˆ 4 * 10^10 operations triggers TLE. - Optimal Algorithm: Segment Tree with Lazy Propagation achieves O(N) build and O(log N) per range update and query. [PHASE 2: LAZY STATE INVARIANTS] - Tree node covers [s, e] with span ...
gold
competitive_coding
[ { "role": "system", "content": "You are a World-Class Competitive Programming and Algorithmic Reasoning AI. Conduct rigorous mathematical proof, asymptotic complexity analysis (Time & Space), and invariant verification inside <Thinking> and </Thinking> tags before generating optimal, production-grade C++20 ...
[COMPETITIVE PROGRAMMING PROBLEM #10030 - SEGMENT TREE LAZY PROPAGATION] Problem: Given an array of N = 172500 elements and Q = 172500 queries, support: (1) Range Add [L, R] by val, (2) Range Sum [L, R] modulo 10^9+7. Task: Perform asymptotic analysis inside <Thinking> and implement in C++20 with Fast I/O.
<Thinking> [PHASE 1: ASYMPTOTIC COMPLEXITY TARGET] - Input Scale: N, Q = 172500. Naive O(N * Q) β‰ˆ 4 * 10^10 operations triggers TLE. - Optimal Algorithm: Segment Tree with Lazy Propagation achieves O(N) build and O(log N) per range update and query. [PHASE 2: LAZY STATE INVARIANTS] - Tree node covers [s, e] with span ...
gold
competitive_coding
[ { "role": "system", "content": "You are a World-Class Competitive Programming and Algorithmic Reasoning AI. Conduct rigorous mathematical proof, asymptotic complexity analysis (Time & Space), and invariant verification inside <Thinking> and </Thinking> tags before generating optimal, production-grade C++20 ...
[COMPETITIVE PROGRAMMING PROBLEM #10167 - SEGMENT TREE LAZY PROPAGATION] Problem: Given an array of N = 115000 elements and Q = 115000 queries, support: (1) Range Add [L, R] by val, (2) Range Sum [L, R] modulo 10^9+7. Task: Perform asymptotic analysis inside <Thinking> and implement in C++20 with Fast I/O.
<Thinking> [PHASE 1: ASYMPTOTIC COMPLEXITY TARGET] - Input Scale: N, Q = 115000. Naive O(N * Q) β‰ˆ 4 * 10^10 operations triggers TLE. - Optimal Algorithm: Segment Tree with Lazy Propagation achieves O(N) build and O(log N) per range update and query. [PHASE 2: LAZY STATE INVARIANTS] - Tree node covers [s, e] with span ...
gold
competitive_coding
[ { "role": "system", "content": "You are a World-Class Competitive Programming and Algorithmic Reasoning AI. Conduct rigorous mathematical proof, asymptotic complexity analysis (Time & Space), and invariant verification inside <Thinking> and </Thinking> tags before generating optimal, production-grade C++20 ...
[ALGORITHMIC BUG REFUTATION #20042 - 32-BIT INTEGER OVERFLOW] Problem: Calculating `(a * b) % MOD` where a, b, MOD are signed 32-bit integers (`int` in C++). Task: Audit numerical overflow vulnerability inside <Thinking> and provide safe implementation.
<Thinking> [PHASE 1: NUMERICAL OVERFLOW AUDIT] - When `a, b <= 10^9`, product `a * b` can reach `10^18`. - Standard signed 32-bit `int` overflows at `2^31 - 1 β‰ˆ 2.14 * 10^9`, leading to undefined behavior and negative wrap-around before the modulo operation. - Correction: Cast to `1LL * a * b % MOD` or `(long long)a * ...
hard_negative
competitive_coding
[ { "role": "system", "content": "You are a World-Class Competitive Programming and Algorithmic Reasoning AI. Conduct rigorous mathematical proof, asymptotic complexity analysis (Time & Space), and invariant verification inside <Thinking> and </Thinking> tags before generating optimal, production-grade C++20 ...
[ALGORITHMIC BUG REFUTATION #20001 - 32-BIT INTEGER OVERFLOW] Problem: Calculating `(a * b) % MOD` where a, b, MOD are signed 32-bit integers (`int` in C++). Task: Audit numerical overflow vulnerability inside <Thinking> and provide safe implementation.
<Thinking> [PHASE 1: NUMERICAL OVERFLOW AUDIT] - When `a, b <= 10^9`, product `a * b` can reach `10^18`. - Standard signed 32-bit `int` overflows at `2^31 - 1 β‰ˆ 2.14 * 10^9`, leading to undefined behavior and negative wrap-around before the modulo operation. - Correction: Cast to `1LL * a * b % MOD` or `(long long)a * ...
hard_negative
competitive_coding
[ { "role": "system", "content": "You are a World-Class Competitive Programming and Algorithmic Reasoning AI. Conduct rigorous mathematical proof, asymptotic complexity analysis (Time & Space), and invariant verification inside <Thinking> and </Thinking> tags before generating optimal, production-grade C++20 ...
[ALGORITHMIC BUG REFUTATION #20013 - 32-BIT INTEGER OVERFLOW] Problem: Calculating `(a * b) % MOD` where a, b, MOD are signed 32-bit integers (`int` in C++). Task: Audit numerical overflow vulnerability inside <Thinking> and provide safe implementation.
<Thinking> [PHASE 1: NUMERICAL OVERFLOW AUDIT] - When `a, b <= 10^9`, product `a * b` can reach `10^18`. - Standard signed 32-bit `int` overflows at `2^31 - 1 β‰ˆ 2.14 * 10^9`, leading to undefined behavior and negative wrap-around before the modulo operation. - Correction: Cast to `1LL * a * b % MOD` or `(long long)a * ...
hard_negative
competitive_coding
[ { "role": "system", "content": "You are a World-Class Competitive Programming and Algorithmic Reasoning AI. Conduct rigorous mathematical proof, asymptotic complexity analysis (Time & Space), and invariant verification inside <Thinking> and </Thinking> tags before generating optimal, production-grade C++20 ...
[COMPETITIVE PROGRAMMING PROBLEM #10054 - SEGMENT TREE LAZY PROPAGATION] Problem: Given an array of N = 232500 elements and Q = 232500 queries, support: (1) Range Add [L, R] by val, (2) Range Sum [L, R] modulo 10^9+7. Task: Perform asymptotic analysis inside <Thinking> and implement in C++20 with Fast I/O.
<Thinking> [PHASE 1: ASYMPTOTIC COMPLEXITY TARGET] - Input Scale: N, Q = 232500. Naive O(N * Q) β‰ˆ 4 * 10^10 operations triggers TLE. - Optimal Algorithm: Segment Tree with Lazy Propagation achieves O(N) build and O(log N) per range update and query. [PHASE 2: LAZY STATE INVARIANTS] - Tree node covers [s, e] with span ...
gold
competitive_coding
[ { "role": "system", "content": "You are a World-Class Competitive Programming and Algorithmic Reasoning AI. Conduct rigorous mathematical proof, asymptotic complexity analysis (Time & Space), and invariant verification inside <Thinking> and </Thinking> tags before generating optimal, production-grade C++20 ...
[COMPETITIVE PROGRAMMING PROBLEM #10270 - SEGMENT TREE LAZY PROPAGATION] Problem: Given an array of N = 172500 elements and Q = 172500 queries, support: (1) Range Add [L, R] by val, (2) Range Sum [L, R] modulo 10^9+7. Task: Perform asymptotic analysis inside <Thinking> and implement in C++20 with Fast I/O.
<Thinking> [PHASE 1: ASYMPTOTIC COMPLEXITY TARGET] - Input Scale: N, Q = 172500. Naive O(N * Q) β‰ˆ 4 * 10^10 operations triggers TLE. - Optimal Algorithm: Segment Tree with Lazy Propagation achieves O(N) build and O(log N) per range update and query. [PHASE 2: LAZY STATE INVARIANTS] - Tree node covers [s, e] with span ...
gold
competitive_coding
[ { "role": "system", "content": "You are a World-Class Competitive Programming and Algorithmic Reasoning AI. Conduct rigorous mathematical proof, asymptotic complexity analysis (Time & Space), and invariant verification inside <Thinking> and </Thinking> tags before generating optimal, production-grade C++20 ...
[ALGORITHMIC BUG REFUTATION #20048 - 32-BIT INTEGER OVERFLOW] Problem: Calculating `(a * b) % MOD` where a, b, MOD are signed 32-bit integers (`int` in C++). Task: Audit numerical overflow vulnerability inside <Thinking> and provide safe implementation.
<Thinking> [PHASE 1: NUMERICAL OVERFLOW AUDIT] - When `a, b <= 10^9`, product `a * b` can reach `10^18`. - Standard signed 32-bit `int` overflows at `2^31 - 1 β‰ˆ 2.14 * 10^9`, leading to undefined behavior and negative wrap-around before the modulo operation. - Correction: Cast to `1LL * a * b % MOD` or `(long long)a * ...
hard_negative
competitive_coding
[ { "role": "system", "content": "You are a World-Class Competitive Programming and Algorithmic Reasoning AI. Conduct rigorous mathematical proof, asymptotic complexity analysis (Time & Space), and invariant verification inside <Thinking> and </Thinking> tags before generating optimal, production-grade C++20 ...
[COMPETITIVE PROGRAMMING PROBLEM #10211 - SEGMENT TREE LAZY PROPAGATION] Problem: Given an array of N = 225000 elements and Q = 225000 queries, support: (1) Range Add [L, R] by val, (2) Range Sum [L, R] modulo 10^9+7. Task: Perform asymptotic analysis inside <Thinking> and implement in C++20 with Fast I/O.
<Thinking> [PHASE 1: ASYMPTOTIC COMPLEXITY TARGET] - Input Scale: N, Q = 225000. Naive O(N * Q) β‰ˆ 4 * 10^10 operations triggers TLE. - Optimal Algorithm: Segment Tree with Lazy Propagation achieves O(N) build and O(log N) per range update and query. [PHASE 2: LAZY STATE INVARIANTS] - Tree node covers [s, e] with span ...
gold
competitive_coding
[ { "role": "system", "content": "You are a World-Class Competitive Programming and Algorithmic Reasoning AI. Conduct rigorous mathematical proof, asymptotic complexity analysis (Time & Space), and invariant verification inside <Thinking> and </Thinking> tags before generating optimal, production-grade C++20 ...
[ALGORITHMIC BUG REFUTATION #20062 - 32-BIT INTEGER OVERFLOW] Problem: Calculating `(a * b) % MOD` where a, b, MOD are signed 32-bit integers (`int` in C++). Task: Audit numerical overflow vulnerability inside <Thinking> and provide safe implementation.
<Thinking> [PHASE 1: NUMERICAL OVERFLOW AUDIT] - When `a, b <= 10^9`, product `a * b` can reach `10^18`. - Standard signed 32-bit `int` overflows at `2^31 - 1 β‰ˆ 2.14 * 10^9`, leading to undefined behavior and negative wrap-around before the modulo operation. - Correction: Cast to `1LL * a * b % MOD` or `(long long)a * ...
hard_negative
competitive_coding
[ { "role": "system", "content": "You are a World-Class Competitive Programming and Algorithmic Reasoning AI. Conduct rigorous mathematical proof, asymptotic complexity analysis (Time & Space), and invariant verification inside <Thinking> and </Thinking> tags before generating optimal, production-grade C++20 ...
[ALGORITHMIC BUG REFUTATION #20016 - 32-BIT INTEGER OVERFLOW] Problem: Calculating `(a * b) % MOD` where a, b, MOD are signed 32-bit integers (`int` in C++). Task: Audit numerical overflow vulnerability inside <Thinking> and provide safe implementation.
<Thinking> [PHASE 1: NUMERICAL OVERFLOW AUDIT] - When `a, b <= 10^9`, product `a * b` can reach `10^18`. - Standard signed 32-bit `int` overflows at `2^31 - 1 β‰ˆ 2.14 * 10^9`, leading to undefined behavior and negative wrap-around before the modulo operation. - Correction: Cast to `1LL * a * b % MOD` or `(long long)a * ...
hard_negative
competitive_coding
[ { "role": "system", "content": "You are a World-Class Competitive Programming and Algorithmic Reasoning AI. Conduct rigorous mathematical proof, asymptotic complexity analysis (Time & Space), and invariant verification inside <Thinking> and </Thinking> tags before generating optimal, production-grade C++20 ...
[COMPETITIVE PROGRAMMING PROBLEM #10231 - SEGMENT TREE LAZY PROPAGATION] Problem: Given an array of N = 275000 elements and Q = 275000 queries, support: (1) Range Add [L, R] by val, (2) Range Sum [L, R] modulo 10^9+7. Task: Perform asymptotic analysis inside <Thinking> and implement in C++20 with Fast I/O.
<Thinking> [PHASE 1: ASYMPTOTIC COMPLEXITY TARGET] - Input Scale: N, Q = 275000. Naive O(N * Q) β‰ˆ 4 * 10^10 operations triggers TLE. - Optimal Algorithm: Segment Tree with Lazy Propagation achieves O(N) build and O(log N) per range update and query. [PHASE 2: LAZY STATE INVARIANTS] - Tree node covers [s, e] with span ...
gold
competitive_coding
[ { "role": "system", "content": "You are a World-Class Competitive Programming and Algorithmic Reasoning AI. Conduct rigorous mathematical proof, asymptotic complexity analysis (Time & Space), and invariant verification inside <Thinking> and </Thinking> tags before generating optimal, production-grade C++20 ...
[ALGORITHMIC TEMPLATE ANCHOR #30004] Task: Provide the standard Fast I/O and Linear Sieve prime factorization template in C++20.
<Thinking> [PHASE 1: COMPETITIVE PROGRAMMING PRIMITIVES] - Fast I/O: `ios_base::sync_with_stdio(false); cin.tie(NULL);`. - Linear Sieve computes smallest prime factor (SPF) in exact O(N) time. </Thinking> ```cpp #include <iostream> #include <vector> using namespace std; const int MAXV = 1e7; int spf[MAXV + 1]; vector<...
replay_buffer
competitive_coding
[ { "role": "system", "content": "You are a World-Class Competitive Programming and Algorithmic Reasoning AI. Conduct rigorous mathematical proof, asymptotic complexity analysis (Time & Space), and invariant verification inside <Thinking> and </Thinking> tags before generating optimal, production-grade C++20 ...
[COMPETITIVE PROGRAMMING PROBLEM #10315 - SEGMENT TREE LAZY PROPAGATION] Problem: Given an array of N = 285000 elements and Q = 285000 queries, support: (1) Range Add [L, R] by val, (2) Range Sum [L, R] modulo 10^9+7. Task: Perform asymptotic analysis inside <Thinking> and implement in C++20 with Fast I/O.
<Thinking> [PHASE 1: ASYMPTOTIC COMPLEXITY TARGET] - Input Scale: N, Q = 285000. Naive O(N * Q) β‰ˆ 4 * 10^10 operations triggers TLE. - Optimal Algorithm: Segment Tree with Lazy Propagation achieves O(N) build and O(log N) per range update and query. [PHASE 2: LAZY STATE INVARIANTS] - Tree node covers [s, e] with span ...
gold
competitive_coding
[ { "role": "system", "content": "You are a World-Class Competitive Programming and Algorithmic Reasoning AI. Conduct rigorous mathematical proof, asymptotic complexity analysis (Time & Space), and invariant verification inside <Thinking> and </Thinking> tags before generating optimal, production-grade C++20 ...
[COMPETITIVE PROGRAMMING PROBLEM #10165 - SEGMENT TREE LAZY PROPAGATION] Problem: Given an array of N = 110000 elements and Q = 110000 queries, support: (1) Range Add [L, R] by val, (2) Range Sum [L, R] modulo 10^9+7. Task: Perform asymptotic analysis inside <Thinking> and implement in C++20 with Fast I/O.
<Thinking> [PHASE 1: ASYMPTOTIC COMPLEXITY TARGET] - Input Scale: N, Q = 110000. Naive O(N * Q) β‰ˆ 4 * 10^10 operations triggers TLE. - Optimal Algorithm: Segment Tree with Lazy Propagation achieves O(N) build and O(log N) per range update and query. [PHASE 2: LAZY STATE INVARIANTS] - Tree node covers [s, e] with span ...
gold
competitive_coding
[ { "role": "system", "content": "You are a World-Class Competitive Programming and Algorithmic Reasoning AI. Conduct rigorous mathematical proof, asymptotic complexity analysis (Time & Space), and invariant verification inside <Thinking> and </Thinking> tags before generating optimal, production-grade C++20 ...
[ALGORITHMIC BUG REFUTATION #20151 - 32-BIT INTEGER OVERFLOW] Problem: Calculating `(a * b) % MOD` where a, b, MOD are signed 32-bit integers (`int` in C++). Task: Audit numerical overflow vulnerability inside <Thinking> and provide safe implementation.
<Thinking> [PHASE 1: NUMERICAL OVERFLOW AUDIT] - When `a, b <= 10^9`, product `a * b` can reach `10^18`. - Standard signed 32-bit `int` overflows at `2^31 - 1 β‰ˆ 2.14 * 10^9`, leading to undefined behavior and negative wrap-around before the modulo operation. - Correction: Cast to `1LL * a * b % MOD` or `(long long)a * ...
hard_negative
competitive_coding
[ { "role": "system", "content": "You are a World-Class Competitive Programming and Algorithmic Reasoning AI. Conduct rigorous mathematical proof, asymptotic complexity analysis (Time & Space), and invariant verification inside <Thinking> and </Thinking> tags before generating optimal, production-grade C++20 ...
[COMPETITIVE PROGRAMMING PROBLEM #10018 - SEGMENT TREE LAZY PROPAGATION] Problem: Given an array of N = 142500 elements and Q = 142500 queries, support: (1) Range Add [L, R] by val, (2) Range Sum [L, R] modulo 10^9+7. Task: Perform asymptotic analysis inside <Thinking> and implement in C++20 with Fast I/O.
<Thinking> [PHASE 1: ASYMPTOTIC COMPLEXITY TARGET] - Input Scale: N, Q = 142500. Naive O(N * Q) β‰ˆ 4 * 10^10 operations triggers TLE. - Optimal Algorithm: Segment Tree with Lazy Propagation achieves O(N) build and O(log N) per range update and query. [PHASE 2: LAZY STATE INVARIANTS] - Tree node covers [s, e] with span ...
gold
competitive_coding
[ { "role": "system", "content": "You are a World-Class Competitive Programming and Algorithmic Reasoning AI. Conduct rigorous mathematical proof, asymptotic complexity analysis (Time & Space), and invariant verification inside <Thinking> and </Thinking> tags before generating optimal, production-grade C++20 ...
[COMPETITIVE PROGRAMMING PROBLEM #10070 - SEGMENT TREE LAZY PROPAGATION] Problem: Given an array of N = 272500 elements and Q = 272500 queries, support: (1) Range Add [L, R] by val, (2) Range Sum [L, R] modulo 10^9+7. Task: Perform asymptotic analysis inside <Thinking> and implement in C++20 with Fast I/O.
<Thinking> [PHASE 1: ASYMPTOTIC COMPLEXITY TARGET] - Input Scale: N, Q = 272500. Naive O(N * Q) β‰ˆ 4 * 10^10 operations triggers TLE. - Optimal Algorithm: Segment Tree with Lazy Propagation achieves O(N) build and O(log N) per range update and query. [PHASE 2: LAZY STATE INVARIANTS] - Tree node covers [s, e] with span ...
gold
competitive_coding
[ { "role": "system", "content": "You are a World-Class Competitive Programming and Algorithmic Reasoning AI. Conduct rigorous mathematical proof, asymptotic complexity analysis (Time & Space), and invariant verification inside <Thinking> and </Thinking> tags before generating optimal, production-grade C++20 ...
[ALGORITHMIC BUG REFUTATION #20002 - 32-BIT INTEGER OVERFLOW] Problem: Calculating `(a * b) % MOD` where a, b, MOD are signed 32-bit integers (`int` in C++). Task: Audit numerical overflow vulnerability inside <Thinking> and provide safe implementation.
<Thinking> [PHASE 1: NUMERICAL OVERFLOW AUDIT] - When `a, b <= 10^9`, product `a * b` can reach `10^18`. - Standard signed 32-bit `int` overflows at `2^31 - 1 β‰ˆ 2.14 * 10^9`, leading to undefined behavior and negative wrap-around before the modulo operation. - Correction: Cast to `1LL * a * b % MOD` or `(long long)a * ...
hard_negative
competitive_coding
[ { "role": "system", "content": "You are a World-Class Competitive Programming and Algorithmic Reasoning AI. Conduct rigorous mathematical proof, asymptotic complexity analysis (Time & Space), and invariant verification inside <Thinking> and </Thinking> tags before generating optimal, production-grade C++20 ...
[ALGORITHMIC BUG REFUTATION #20157 - 32-BIT INTEGER OVERFLOW] Problem: Calculating `(a * b) % MOD` where a, b, MOD are signed 32-bit integers (`int` in C++). Task: Audit numerical overflow vulnerability inside <Thinking> and provide safe implementation.
<Thinking> [PHASE 1: NUMERICAL OVERFLOW AUDIT] - When `a, b <= 10^9`, product `a * b` can reach `10^18`. - Standard signed 32-bit `int` overflows at `2^31 - 1 β‰ˆ 2.14 * 10^9`, leading to undefined behavior and negative wrap-around before the modulo operation. - Correction: Cast to `1LL * a * b % MOD` or `(long long)a * ...
hard_negative
competitive_coding
[ { "role": "system", "content": "You are a World-Class Competitive Programming and Algorithmic Reasoning AI. Conduct rigorous mathematical proof, asymptotic complexity analysis (Time & Space), and invariant verification inside <Thinking> and </Thinking> tags before generating optimal, production-grade C++20 ...
[COMPETITIVE PROGRAMMING PROBLEM #10298 - SEGMENT TREE LAZY PROPAGATION] Problem: Given an array of N = 242500 elements and Q = 242500 queries, support: (1) Range Add [L, R] by val, (2) Range Sum [L, R] modulo 10^9+7. Task: Perform asymptotic analysis inside <Thinking> and implement in C++20 with Fast I/O.
<Thinking> [PHASE 1: ASYMPTOTIC COMPLEXITY TARGET] - Input Scale: N, Q = 242500. Naive O(N * Q) β‰ˆ 4 * 10^10 operations triggers TLE. - Optimal Algorithm: Segment Tree with Lazy Propagation achieves O(N) build and O(log N) per range update and query. [PHASE 2: LAZY STATE INVARIANTS] - Tree node covers [s, e] with span ...
gold
competitive_coding
[ { "role": "system", "content": "You are a World-Class Competitive Programming and Algorithmic Reasoning AI. Conduct rigorous mathematical proof, asymptotic complexity analysis (Time & Space), and invariant verification inside <Thinking> and </Thinking> tags before generating optimal, production-grade C++20 ...
[ALGORITHMIC BUG REFUTATION #20175 - 32-BIT INTEGER OVERFLOW] Problem: Calculating `(a * b) % MOD` where a, b, MOD are signed 32-bit integers (`int` in C++). Task: Audit numerical overflow vulnerability inside <Thinking> and provide safe implementation.
<Thinking> [PHASE 1: NUMERICAL OVERFLOW AUDIT] - When `a, b <= 10^9`, product `a * b` can reach `10^18`. - Standard signed 32-bit `int` overflows at `2^31 - 1 β‰ˆ 2.14 * 10^9`, leading to undefined behavior and negative wrap-around before the modulo operation. - Correction: Cast to `1LL * a * b % MOD` or `(long long)a * ...
hard_negative
competitive_coding
[ { "role": "system", "content": "You are a World-Class Competitive Programming and Algorithmic Reasoning AI. Conduct rigorous mathematical proof, asymptotic complexity analysis (Time & Space), and invariant verification inside <Thinking> and </Thinking> tags before generating optimal, production-grade C++20 ...
[ALGORITHMIC TEMPLATE ANCHOR #30021] Task: Provide the standard Fast I/O and Linear Sieve prime factorization template in C++20.
<Thinking> [PHASE 1: COMPETITIVE PROGRAMMING PRIMITIVES] - Fast I/O: `ios_base::sync_with_stdio(false); cin.tie(NULL);`. - Linear Sieve computes smallest prime factor (SPF) in exact O(N) time. </Thinking> ```cpp #include <iostream> #include <vector> using namespace std; const int MAXV = 1e7; int spf[MAXV + 1]; vector<...
replay_buffer
competitive_coding
End of preview. Expand in Data Studio

πŸš€ Competitive Programming & Algorithmic Reasoning (Verbose CoT Reasoning)

This dataset contains 600 curated training records with in-depth, verbose 4-phase <Thinking> Chain-of-Thought reasoning, 100 frozen evaluation benchmark samples, and 50 frozen regression verification samples formatted in standard ChatML (messages) and Prompt-Target pairs, strictly following the Pioneer / Prometheus research paper 3-slice curriculum design.


πŸ“Š Dataset Composition & 3-Slice Breakdown

Split Rows Proportion Paper Design & Purpose
train (Slice 1: Gold CoT) 360 60.0% Full domain context + verbose 4-phase <Thinking> Chain-of-Thought reasoning (Constraint Analysis, Formal Derivation, Numerical Gating, Implementation).
train (Slice 2: Hard Negatives) 180 30.0% Contrastive edge-case disambiguation & boundary refutations (e.g. Non-existent columns, TLE quadratic overhead, Regulation E APP fraud boundaries).
train (Slice 3: Replay Buffer) 60 10.0% Domain primitives & optimization anchors to prevent catastrophic forgetting.
Total train Split 600 100% Compact, high-signal, dense curated dataset for fine-tuning.
test (Frozen Eval) 100 β€” Held-out benchmark with zero training contamination (eval_leakage = 0).
regression (Baseline) 50 β€” Baseline regression validation set.

πŸ›‘οΈ 5-Point Quality Audit (100% Passed)

  • Uniqueness: 100.0% unique prompts (600 / 600).
  • Zero Eval Leakage: 0 prompt overlaps across train, test, and regression splits.
  • Replay Fraction: 10.0% dedicated to optimization and schema resilience.

πŸš€ Usage with Unsloth / Hugging Face

from datasets import load_dataset

dataset = load_dataset("StarsMakeGalaxy/competitive-programming-curated-600")
print(dataset)
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