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Le N. Long

Publications and source records attributed to Le N. Long.

2 recordsLinked to original sources

Differential theory of zero-dimensional schemes

For a 0-dimensional scheme $\mathbb{X}$ in $\mathbb{P}^n$ over a perfect field $K$, we first embed the homogeneous coordinate ring $R$ into its truncated integral closure $\widetilde{R}$. Then we use the corresponding map from the module of Kähler differentials $Ω^1_{R/K}$ to $Ω^1_{\widetilde{R}/K}$ to find a formula for the Hilbert polynomial ${\rm HP}(Ω^1_{R/K})$ and a sharp bound for the regularity index ${\rm ri}(Ω^1_{R/K})$. Additionally, we extend this to formulas for the Hilbert polynomials ${\rm HP}(Ω^m_{R/K})$ and bounds for the regularity indices of the higher modules of Kähler differentials. Next we derive a new characterization of a weakly curvilinear scheme $\mathbb{X}$ which can be checked without computing a primary decomposition of its homogeneous vanishing ideal. Moreover, we prove precise formulas for the Hilbert polynomial of $Ω^m_{R/K}$ of a fat point scheme $\mathbb{X}$, extending and settling previous partial results and conjectures. Finally, we characterize uniformity conditions on $\mathbb{X}$ using the Hilbert functions of the Kähler differential modules of $\mathbb{X}$ and its subschemes.

math.AC

The Kähler Different of a Set of Points in $\mathbb{P}^m\times\mathbb{P}^n$

Given an ACM set $\mathbb{X}$ of points in a multiprojective space $\mathbb{P}^m\times\mathbb{P}^n$ over a field of characteristic zero, we are interested in studying the Kähler different and the Cayley-Bacharach property for $\mathbb{X}$. In $\mathbb{P}^1\times\mathbb{P}^1$, the Cayley-Bacharach property agrees with the complete intersection property and it is characterized by using the Kähler different. However, this result fails to hold in $\mathbb{P}^m\times\mathbb{P}^n$ for $n>1$ or $m>1$. In this paper we start an investigation of the Kähler different and its Hilbert function and then prove that $\mathbb{X}$ is a complete intersection of type $(d_1,...,d_m,d'_1,...,d'_n)$ if and only if it has the Cayley-Bachrach property and the Kähler different is non-zero at a certain degree. When $\mathbb{X}$ has the $(\star)$-property, we characterize the Cayley-Bacharach property of $\mathbb{X}$ in terms of its components under the canonical projections.

math.AG