Lemma 16.9.2. Let $R \to A \to \Lambda \supset \mathfrak q$ be as in Situation 16.9.1. Let $r \geq 1$ and $\pi _1, \ldots , \pi _ r \in R$ map to elements of $\mathfrak q$. Assume
for $i = 1, \ldots , r$ we have
\[ \text{Ann}_{R/(\pi _1^8, \ldots , \pi _{i - 1}^8)R}(\pi _ i) = \text{Ann}_{R/(\pi _1^8, \ldots , \pi _{i - 1}^8)R}(\pi _ i^2) \]and
\[ \text{Ann}_{\Lambda /(\pi _1^8, \ldots , \pi _{i - 1}^8)\Lambda }(\pi _ i) = \text{Ann}_{\Lambda /(\pi _1^8, \ldots , \pi _{i - 1}^8)\Lambda }(\pi _ i^2) \]for $i = 1, \ldots , r$ the element $\pi _ i$ maps to a strictly standard element in $A$ over $R$.
Then, if
\[ R/(\pi _1^8, \ldots , \pi _ r^8)R \to A/(\pi _1^8, \ldots , \pi _ r^8)A \to \Lambda /(\pi _1^8, \ldots , \pi _ r^8)\Lambda \supset \mathfrak q/(\pi _1^8, \ldots , \pi _ r^8)\Lambda \]
can be resolved, so can $R \to A \to \Lambda \supset \mathfrak q$.
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