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I tried to show the following estimation and am not sure, if it holds:

Given $U\subseteq\mathbb R$ and $f:\mathbb R\times \mathbb R\to\mathbb R$. Its derivative with respect to the second argument exists and is denoted by $f_b(a,b)$:

$\displaystyle\frac{d}{db}\left(\sup_{a\in U}f(a,b)\right)\ge \inf_{a\in U}f_b(a,b)$

My proof:

There exists a sequence $a_n$ in $U$ such that

$\displaystyle\lim_{n\to\infty}f(a_n,b)=\sup_{a\in U}f(a,b)$

$\forall n\in\mathbb N$ the following holds:

$\sup_{a\in U}f(a,b+h)-\sup_{a\in U}f(a,b)\ge f(a_n,b+h)-\sup_{a\in U}f(a,b)$

Using the differentiability of $f$:

$=f(a_n,b)+h f_b(a_n,b)-\sup_{a\in U}f(a,b)+\mathcal O(h^2)$

This is always greater than

$\displaystyle\ge f(a_n,b)+h\;\inf_{a\in U} f_b(a,b)-\sup_{a\in U}f(a,b)+\mathcal O(h^2)$

As this holds for an arbitrary $n$ and thus $f(a_n,n)$ comes arbitrarily close to $\sup_{a\in U}f(a,b)$ it holds:

$\sup_{a\in U}f(a,b+h)-\sup_{a\in U}f(a,b)\ge h\;\inf_{a\in U} f_b(a,b)+\mathcal O(h^2)$

Deviding by $h$ and performing the limit yields the assertion.

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    This looks OK to me. You can find generalizations of this result, e.g. theorems that evaluate d/db (sup_{a in U} f(a,b)) (or its one-sided derivatives, when it is not differentiable), and theorems giving many hypotheses under which sup_{a in U} f(a,b) is differentiable, under the general name of "envelope theorems." Mathematicians do not seem all that interested in them, but economists like them a lot (see e.g. Milgrom and Segal "Envelope theorems for arbitrary choice sets" in Econometrica, and its references)2010-12-08
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    Thanks. That will help me!2010-12-08

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Before estimating $\displaystyle\frac{d}{db}\left(\sup_{a\in U}f(a,b)\right)$ one should probably ask if it exists. For example, if $f(a,b)=ab$ and $U=(-1,1)$, then $\sup_{a\in U}f(a,b)=|b|$, which is not differentiable at $0$.

But even assuming the differentiability of the envelope, the result is false as stated. For example, the zero function on $(-1,1)$ is the supremum of functions $\min(0, a^{-1}((b-a)^2-a^2))$ over $0

The problem with the proof is hidden by the $\mathcal{O}$ symbol, the uniformity of which with respect to $n$ was not discussed. One needs the assumption of uniform differentiability to make it work.