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拓扑 >> 代数拓扑 >> 同调
Questions in category: 同调 (Homology).

证明: $H_2(\mathbb{C}P^2,\mathbb{Z})\cong\mathbb{Z}$.

Posted by haifeng on 2022-03-26 07:38:44 last update 2022-03-26 07:38:44 | Answers (0) | 收藏

证明: $H_2(\mathbb{C}P^2,\mathbb{Z})\cong\mathbb{Z}$.