Take the 2-minute tour ×
MathOverflow is a question and answer site for professional mathematicians. It's 100% free, no registration required.

Let $\mu:X'\rightarrow X$ be a birational morphism of normal complex projective varieties.

Consider the two ideal sheaves $I_1= \mu_*\mathcal{O}_{X'}(-\sum d(E)E)$, $I_2=\mu_*\mathcal{O}_{X'}(-\sum(d(E)+1)E)$, where the $d(E)$'s are non negative integers and the $E$'s are prime divisors.

Suppose $x\in X$ is such that $x\in \mu(E_0)$ for a prime Cartier divisor $E_0$ such that $d(E_0)>0$. Can we say that the stalk ${(I_2)}_x$ is STRICTLY contained in ${(I_1)}_x$?

Thanks for your help.

share|improve this question
2  
I suspect that this isn't true. If I think of an easy example, I'll tell you. You may want to look at some papers of Kevin Tucker and also of Howard Thompson and Karen Smith, for computing multiplier ideals / jumping numbers on surfaces. They look at questions of jumping (ie, when you have strict containment). If your question is false for surfaces, you should be able to counter-examples based on the combinatorics worked out there. –  Karl Schwede Dec 13 '10 at 17:01
    
Thanks a lot for the references. I think they may be very useful for me (at least to understand what can go wrong). You guessed right however, what I would need is exactly a jumping-like result for multiplier ideals. –  Gianni Bello Dec 13 '10 at 18:04
    
By the way, Kevin doesn't really use mathoverflow, but he probably wouldn't mind a direct email on this. He's also much more likely than I to know the answer off the top of his head. –  Karl Schwede Dec 13 '10 at 18:57
    
Why not? Thanks for the idea –  Gianni Bello Dec 15 '10 at 15:21
add comment

1 Answer

up vote 4 down vote accepted

The answer is no.

Consider $\mu=\mu_z \circ \mu_y \circ \mu_x$ the blow up of a smooth surface at three points $x$, $y$, $z$, as follows: $x\in X$ is arbitrary, $y\in E_x:=\mu_x^{-1}(x)$, where $\mu_x$ is the blowup of $X$ centered at $x$, and $z$ is the "satellite" point that appears after blowing up $y$, ie, $z=\tilde E_x\cap E_y$, where $E_y:=\mu_y^{-1}(y)$ is the exceptional of the second blowup $\mu_y$ and $\tilde E_x$ is the strict (birational) transform of $E_x$.

Let $d(\tilde E_x)=d(\tilde E_y)=0$, $d(E_z)=1$, where again $\tilde E_x$ and $\tilde E_y$ denote the strict transforms of the first and second exceptional divisors (but now on $X'$, ie, after blowing up the third). Then in your notation $I_1=I_2=\mathfrak{m}_x$ is the maximal ideal of $x$.

An easy way to see it is that the pullback of $E_x$ to $X'$ is precisely $(\mu_z \circ \mu_y)^*E_x=\tilde E_x + \tilde E_y +2 E_z$.

share|improve this answer
    
Very simple..but it works! Thanks a lot! –  Gianni Bello Dec 15 '10 at 15:20
add comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.