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Discretization and antidiscretization of Lorentz norms with no restrictions on weights
- Publication Year :
- 2020
-
Abstract
- We improve the discretization technique for weighted Lorentz norms by eliminating all "non-degeneracy" restrictions on the involved weights. We use the new method to provide equivalent estimates on the optimal constant $C$ such that the inequality $$\left( \int_0^L (f^*(t))^{p_2} w(t)\,\mathrm{d}t \right)^\frac 1{p_2} \le C \left( \int_0^L \left( \int_0^t u(s)\,\mathrm{d}s \right)^{-\frac {p_1}\alpha} \left( \int_0^t (f^*(s))^\alpha u(s) \,\mathrm{d}s \right)^\frac {p_1}\alpha v(t) \,\mathrm{d}t \right)^\frac 1{p_1}$$ holds for all relevant measurable functions, where $L\in(0,\infty]$, $\alpha, p_1, p_2 \in (0,\infty)$ and $u$, $v$, $w$ are locally integrable weights, $u$ being strictly positive. It the case of weights that would be otherwise excluded by the restrictions, it is shown that additional limit terms naturally appear in the characterizations of the optimal $C$. A weak analogue for $p_1=\infty$ is also presented.<br />Comment: 23 pages
- Subjects :
- Discretization
Measurable function
General Mathematics
Lorentz transformation
010102 general mathematics
01 natural sciences
Functional Analysis (math.FA)
010101 applied mathematics
Combinatorics
Mathematics - Functional Analysis
symbols.namesake
Optimal constant
symbols
FOS: Mathematics
Physics::Atomic Physics
0101 mathematics
Algebra over a field
Mathematics
Subjects
Details
- Language :
- English
- Database :
- OpenAIRE
- Accession number :
- edsair.doi.dedup.....9abd4e3cc073d31259b4a3d12f1a1c74