Codeforces Round #655 (Div. 2) A. Omkar and Completion
A. Omkar and Completion 題目連接-A. Omkar and Completion 題目大意 全部元素都是正的而且不超過1000,而且對於全部索引 x , y , z ( 1 ≤ x , y , z ≤ n ) , a x + a y ≠ a z x,y,z(1≤x,y,z≤n),ax+ay≠az x,y,z(1≤x,y,z≤n),ax+ay=az(不必定是不一樣的),則
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相關文章
- 1. Codeforces Round #655 (Div. 2)
- 2. Codeforces Round #655 (Div. 2)題解
- 3. codeforces A. Omkar and Completion
- 4. Codeforces Round #655 (Div. 2) B. Omkar and Last Class of Math
- 5. A. Omkar and Completion
- 6. Codeforces Round #569 (Div. 2)A. Alex and a Rhombus
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- 8. Codeforces Round #281 (Div. 2) A - Vasya and Football
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