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I'm learning about rational normal curves of degree n. And the book says that rational normal curves of degree 3 cannot be written by intersection of two quadrics. I can visualize the situation in my head, but cannot formulate a rigorous argument...Could anyone help me?

Keith
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1 Answers1

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If one of the quadrics has maximal rank $4$ (or better one of the quadrics in the pencil, which is in fact true), then it is projectively equivalent to the Segre variety. In this case, the other quadric cuts out a curve of bidegree $(2, 2)$ on $\mathbb{P}^1 \times \mathbb{P}^1$. As the twisted cubic has bidegree $(1, 2)$, it follows that we get not only the twisted cubic, but a line, something of bidegree $(1, 0)$, so that the union has bidegree $(2, 2)$. Now, the line is a fiber of one of the rulings, and a general fiber meets the cubic in two points, since a quadratic polynomial has two roots in general.

user149792
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