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Cyril Agrafeuil

Publications and source records attributed to Cyril Agrafeuil.

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Idéaux fermés de certaines algèbres de Beurling et application aux opérateurs à spectre dénombrable

We denote by $\bbt$ the unit circle and by $\bbd$ the unit disc of $\bbc$. Let $s$ be a non-negative real and $ω$ a weight such that $ω(n) = (1+n)^{s} \quad (n \geq 0)$ and such that the sequence $\dsp \Big(\frac{ω(-n)}{(1+n)^{s}} \Big)_{n \geq 0}$ is non-decreasing. We define the Banach algebra $$ A_ω(\bbt) = \Big\{f \in \calc(\bbt) : \big\| f \big\|_ω = \sum_{n = -\infty}^{+\infty} | \hat{f}(n) | ω(n) < +\infty \Big\}, $$ If $I$ is a closed ideal of $A_ω(\bbt)$, we set $h^{0}(I) = \Big\{z \in \bbt : f(z) = 0 \quad (f \in I) \Big\}$. We describe here all closed ideals $I$ of $A_ω(\bbt)$ such that $h^{0}(I)$ is at most countable. A similar result is obtained for closed ideals of the algebra $A_{s}^{+}(\bbt) = \Big\{f \in A_ω(\bbt) : \hat{f}(n) = 0 \quad (n<0) \Big\}$ without inner factor. Then, we use this description to establish a link between operators with countable spectrum and interpolating sets for $\textrm{\LARGE $a$}^{\infty}$, the space of infinitely differentiable functions in the closed unit disc $\bar{\bbd}$ and holomorphic in $\bbd$.

math.FA

On the growth of powers of operators with spectrum contained in Cantor sets

For $ξ\in \big(0, {1/2} \big)$, we denote by $E_ξ$ the perfect symmetric set associated to $ξ$, that is $$ E_ξ = \Big\{\exp \big(2i π(1-ξ) \dsp \sum_{n = 1}^{+\infty} ε_{n} ξ^{n-1} \big) : ε_{n} = 0 \textrm{or} 1 \quad (n \geq 1) \Big\}. $$ Let $s$ be a nonnegative real number, and $T$ be an invertible bounded operator on a Banach space with spectrum included in $E_ξ$. We show that if \begin{eqnarray*} & & \big\| T^{n} \big\| = O \big(n^{s} \big), n \to +\infty & \textrm{and} & \big\| T^{-n} \big\| = O \big(e^{n^β} \big), n \to +\infty \textrm{for some} β< \frac{\log{\frac{1}ξ} - \log{2}}{2\log{\frac{1}ξ} - \log{2}}, \end{eqnarray*} then for every $\e > 0$, $T$ satisfies the stronger property $$ \big\| T^{-n} \big\| = O \big(n^{s+{1/2}+\e} \big), n \to +\infty. $$ This result is a particular case of a more general result concerning operators with spectrum satisfying some geometrical conditions.

math.FA