Proof It is readily seen that $\|H\|_{\mathfrak {H}_p} = \|g_H\|_{L^1(\mathbb R)} = \int _0^\infty |H(1,s)|s^{-1/p} \, ds$ . Let us prove the product identity. It follows that for $H,G \in \mathfrak {H}_p$ ,

$$ \begin{align*} (H \bullet G) (r,s) &= \Phi_p^{-1} \left(\Phi_p(H) \ast \Phi_p(G)\right) (r,s) = r^{-1/p} s^{-1/p'} \left(g_H \ast g_G\right) \left(\log \frac{r}{s}\right) \\ &= r^{-1/p} s^{-1/p'}\int_{-\infty}^\infty G(1,e^{-t}) e^{-t/p'} H\left(1, e^{t-\log (r/s)}\right)e^{(t-\log (r/s))/p'}\, dt \\ &= \frac{1}{r} \int_0^\infty G(1,u^{-1}) H\left( 1,u\frac{s}{r}\right) \frac{du}{u} = \frac{1}{r} \int_0^\infty H\left(1, \frac{v}{r}\right) G\left(1, \frac{s}{v}\right) \frac{dv}{v} \\ &= \int_0^\infty H\left(r,v\right) G\left(v,s\right) \, dv, \qquad r,s>0. \end{align*} $$

Next, it follows by Hardy’s inequality [Reference Hardy, Littlewood and Pólya9, Theorem 319] that $\|A_H\|_{\mathcal {B}(L^p)} \leq \|H\|_{\mathfrak {H}_p}$ . Moreover, one has that

$$ \begin{align*} (A_{H\bullet G} f) (r) &= \int_0^\infty (H\bullet G)(r,s) f(s)\, ds = \int_0^\infty H(r,t) \int_0^\infty G(t,s) f(s) \,ds \, dt \\ &= (A_H A_G f)(r), \qquad f\in L^p(\mathbb R^+), \, \text{a.e. } r>0. \end{align*} $$

Note that $(D_H F)^\theta = A_H F^\theta $ . Thus, by (1.3) and what we have just proved,

$$ \begin{align*} \|D_H F\|_{H^p} \leq \|A_H\|_{\mathcal{B}(L^p)} \sup_{-\pi/2 < \theta < \pi/2} \frac{1}{2\pi}\|F^\theta\|_{L^p} \leq \|H\|_{\mathfrak{H}_p} \|F\|_{H^p}, \quad F \in H^p(\mathbb C^+). \end{align*} $$

Similarly, $(D_{H\bullet G} F)^\theta = A_{H\bullet G} F^\theta = A_H A_G F^\theta = (D_H D_G F)^\theta $ for any $F \in H^p(\mathbb C^+)$ and $\theta \in \left (\frac {\pi }{2}, \frac {\pi }{2}\right )$ , and thus $D_{H \bullet G} = D_H D_G$ .

Proof All the statements of the equivalence are straightforward to obtain using the homogeneity of degree $-1$ of H and the definition of the function $g_H$ . Let us show the equivalence $(i)\iff (iii)$ . For $1<p<\infty $ ,

$$ \begin{align*} \|H_1^\top\|_{p'} &= \left(\int_0^\infty |H(1,s)|^{p'} \, ds \right)^{1/p'} = \left(\int_{-\infty}^\infty |H(1,e^{-t})|^{p'} e^{-t} \, dt \right)^{1/p'} = \|g_H\|_{p'}. \end{align*} $$

For $p=1$ , it is straightforward that $\|H_1^\top \|_\infty = \|g_H\|_\infty $ since $g_H (t) = H(1,e^{-t})$ for a.e. $t>0$ .

Proof Let $f \in L^p(\mathbb R^+)$ . We have that

$$ \begin{align*} (A_H f) (r) = \int_0^\infty H(r,s) f(s) \, ds = \int_0^\infty H(1,t) f(rt) \, dt = \langle \tau_r f, H_1^\top\rangle, \quad \text{for all } r>0, \end{align*} $$

where $(\tau _r f)(t):=f(rt)$ for $t>0$ , $\langle \cdot , \cdot \rangle $ denotes the dual product between $L^p(\mathbb {R}^+)$ and $L^{p'}(\mathbb {R}^+)$ , and $H_1^\top $ is defined before Lemma 2.3.

Since the mapping $r\mapsto \tau _r f$ from $\mathbb {R}^+$ into $L^p(\mathbb {R}^+)$ is continuous for each $f \in L^p(\mathbb {R}^+)$ , it follows that $\langle \tau _r f, H_1^\top \rangle = (A_H f)(r)$ is also continuous in r; that is, $A_H f \in C(\mathbb R^+)$ , as we wanted to show.

Proof Let us assume first that point evaluations are well defined and continuous on $\mathcal A(H)$ , so for all $r>0$ , the mapping $\Omega _r:L^p(\mathbb R^+) \rightarrow \mathbb C$ given by $\Omega _r f:= (A_H f)(r)$ is a well-defined continuous functional. Therefore, there exists $g_r \in L^{p'}(\mathbb R^+)$ such that $(A_H f)(r) = \int _0^\infty g_r(s)f(s) ds$ for all $f \in L^p(\mathbb R^+)$ , which implies that $H(r,s)=g_r(s)$ for a.e. $s>0$ . By Lemma 2.3, one gets that $H\in \mathcal I_p$ .

Now, let us assume that $H\in \mathcal I_p$ . By Lemma 3.1, it follows that point evaluations are well defined on $\mathcal A(H)$ . By Lemma 2.3, one has that $(H_r^\top )_{r\in \mathbb {R}^+} \subset L^{p'}(\mathbb {R}^+)$ . Let $ f \in \mathcal A(H)$ , $g\in L^p(\mathbb {R}^+)$ be such that $f = A_H g$ . Let $[g+\ker A_H]$ be the quotient class of $L^p(\mathbb {R}^+)/\ker A_H$ containing g. It follows that, for all $\widetilde {g} \in [g+\ker A_H]$ ,

$$ \begin{align*} |f(r)| &= |(A_H \widetilde{g})(r)| = \left|\int_0^\infty H(r,s) \widetilde{g}(s) \, ds \right| = \langle H_r^\top, \widetilde{g}\rangle \\ &\leq \inf_{\widetilde{g}\in [g+\ker A_H]} \|H_r^\top\|_{p'} \|\widetilde{g}\|_p = \|H_r^\top\|_{p'} \|[g+\ker A_H]\|_{L^p(\mathbb{R}^+) / \ker A_H} \\ &= r^{-1/p} \|H_1^\top\|_{p'} \|f\|_{\mathcal A(H)}, \qquad \forall r>0, \end{align*} $$

where $\langle \cdot , \cdot \rangle $ denotes the dual product between $L^{p'}(\mathbb R^+)$ and $L^p(\mathbb R^+)$ . Therefore, point evaluations are continuous on $\mathcal A(H)$ .

Proof By Proposition 3.2, $\mathcal A(H)$ is an RKHS if and only if $H \in \mathcal I_2$ , and in this case, $\mathcal A(H)$ is isometrically isomorphic to $L^2(\mathbb {R}^+) / \ker A_H \cong (\ker A_H)^\perp $ . Let us compute its reproducing kernel. Assume that $f \in \ker A_H$ , so it follows that

$$ \begin{align*} ( f \: | \: H_u^\ast )_{L^2} = \int_0^\infty H(u,v) f(v)\,dv = (A_H f)(u)= 0, \end{align*} $$

for all $u>0$ , where $H_u^\ast (v) = \overline {H(u,v)} = \overline {H_u^\top (v)}$ for a.e. $v>0$ . Therefore, one has that $H_u^\ast \in (\ker A_H)^\perp \subset L^2(\mathbb {R}^+)$ for all $u>0$ .

Now, let $h_u = A_H H_u^\ast \in \mathcal A(H)$ , and let $f \in \mathcal A(H)$ , so that $f = A_H g$ for a unique $g \in (\ker A_H)^\perp $ . Since $\mathcal A(H)\cong (\ker A_H)^\perp $ , it follows that, for all $u>0$ ,

$$ \begin{align*} ( f\: | \: h_u )_{\mathcal A(H)} = ( g \: | \: H_u^\ast )_{(\ker A_H)^\perp} = \int_0^\infty H(u,v) g(v)\, dv = (A_H g) (u) = f(u). \end{align*} $$

Hence, $K_H(v,u) = h_u(v) = (A_H H_u^\ast ) (v) = \int _0^\infty H(v,t) \overline {H(u,t)} \, dt$ for all $u,v>0$ , as we wanted to show.

Moreover, $K_H = H \bullet H^\ast = H^\ast \bullet H = K_{H^\ast }$ by Proposition 2.1 and Definition 2.2, and in particular $K_H$ turns out to be a Hardy kernel. The continuity of $K_H$ in each variable follows from the inclusion $\mathcal A(H) \subset C(\mathbb {R}^+)$ (Lemma 3.1) and the fact that $K_H(r,s) = \overline {K_H(s,r)}, \: \text {for } r,s>0$ (see, for example, [Reference Neeb17, Lemma I.1.2]). But then, $K_H : \mathbb R^+ \times \mathbb R^+ \to \mathbb C$ is continuous jointly on both variables since $K_H(r,s) = s^{-1} K_H(r/s,1)$ .

Proof Let $f \in L^p(\mathbb {R}^+)$ . Then, for all $x>0$ ,

(3.1) $$ \begin{align} \begin{aligned} (\mathcal{H}_+ (A_H f))(x) &=\lim_{\varepsilon \rightarrow 0^+}\frac{1}{\pi}\int_{(0,x-\varepsilon)\cup (x + \varepsilon, \infty)} \frac{1}{x-r} \int_0^\infty H(1,s) f(rs)\, ds \, dr \\ &= \lim_{\varepsilon \rightarrow 0^+} \int_0^\infty H(1,s) \frac{1}{\pi} \int_{(0,s(x-\varepsilon)) \cup (s(x + \varepsilon), \infty)} \frac{f(v)}{xs-v}\, dv \, ds. \end{aligned} \end{align} $$

Here, we have applied Fubini to commute the integrals since $\int _0^\infty |H(1,s)f(\cdot s)|\, ds \in L^p(\mathbb R^+)$ and $\frac {1}{x-(\cdot )} \chi _{(0,x-\varepsilon ) \cap (x+\varepsilon , \infty )} (\cdot ) \in L^{p'}(\mathbb R^+)$ for all $1<p< \infty $ .

Recall that the maximal operator $\mathcal {MH}_+$ defined as $(\mathcal {MH}_+ f)(x) :=$ $\sup _{\varepsilon>0} |(\mathcal {H}_{+,\varepsilon }f) (x)|, \text { for all } x>0$ , belongs to $\mathcal {B}(L^p(\mathbb {R}^+))$ , where

$$ \begin{align*} (\mathcal{H}_{+,\varepsilon}f)(x):= \frac{1}{\pi} \int_{(0,x-\varepsilon)\cup (x + \varepsilon, \infty)} \frac{1}{x-s}f(s)\,ds, \qquad \varepsilon>0, \text{ for } x>0 \end{align*} $$

(see, for example, [Reference Duoandikoetxea Zuazo5, Corollary 3.13]). As a consequence, the bound $ |H (1,s) (\mathcal {H}_{+,s\varepsilon } f) (xs) | \leq |H(1,s)| (\mathcal {MH}_+ f)(xs)$ holds for every $\varepsilon>0$ , a.e. $s>0$ . By Hardy’s inequality [Reference Hardy, Littlewood and Pólya9, Theorem 319], $|H(1,s)| (\mathcal {MH}_+ f)(xs)$ , as a function on $s>0$ , belongs to $L^1(\mathbb {R}^+)$ for a.e. $x>0$ . Thus, we apply the dominated convergence theorem to (3.1) to commute the limit and the integral $\int _0^\infty $ . Hence, $\mathcal A(H)$ is $\mathcal {H}_+$ invariant, and then the continuity of $\mathcal {H}_+$ follows by the closed graph theorem.

Proof Note that the vector-valued function $t \mapsto H(1,t) \mathcal {K}_{tz}$ is strong measurable, since $t\mapsto H(1,t)$ is measurable, and $w \mapsto \mathcal {K}_w$ is continuous from $\mathbb C^+$ to $H^2(\mathbb C^2)$ . Then, for all $z \in \mathbb C^+$ ,

$$ \begin{align*} \int_0^\infty\! | H(1,t)| \|\mathcal{K}_{tz} \|_{H^2}\, dt &= \!\int_0^\infty\! | H(1,t)| \sqrt{( \mathcal{K}_{tz}| \mathcal{K}_{tz})_{H^2}}\,dt = \!\int_0^\infty\! | H(1,t)| \sqrt{\mathcal{K}(tz, tz)} \, dt \\ &=\sqrt{\mathcal{K}(z,z)} \int_0^\infty | H(1,t)| t^{-1/2} \, dt= \sqrt{\mathcal{K}(z,z)} \|H\|_{\mathfrak{H}_2}< \infty.\\[-26pt] \end{align*} $$

Proof Let G be in $(\ker D_H)^\perp $ such that $F = D_H(G) \in \mathcal D(H)$ .

$$ \begin{align*}\|F\|_{H^2} = \|D_H G\|_{H^2} \leq \|D_H\|_{\mathcal{B}(H^2)} \|G\|_{H^2} = \|D_H\|_{\mathcal{B}(H^2)} \|F\|_{\mathcal D(H)}. \end{align*} $$

Since $H^2(\mathbb C^+)$ is an RKHS, it follows from above that $\mathcal {D}(H)$ is an RKHS too. Let us compute its reproducing kernel $\mathcal {K}_H$ . As before, set $\mathcal {K}_w (z) = \mathcal {K}(z,w)$ . For $F =D_H G\in \mathcal D(H)$ , $z = |z|e^{i\theta } \in \mathbb C^+$ , and $G \in (\ker D_H)^\perp $ , we have

(4.1) $$ \begin{align} \begin{aligned} F(z) &=\! \int_0^\infty\! \kern-1pt H(|z|,s) G^\theta(s) \,ds = \!\int_0^\infty\!\kern-1pt H(|z|,s) (G|\mathcal{K}_{se^{i\theta}})_{H^2} \, ds = \!\int_0^\infty\!\kern-1pt H(1,t) (G| \mathcal{K}_{tz})_{H^2} \, dt \\ &= \int_0^\infty (G|\overline { H(1,t)} \mathcal{K}_{tz})_{H^2} \, dt = \left(G\, \Big| \, \int_0^\infty \overline { H(1,t)} \mathcal{K}_{tz} \, dt\right)_{H^2}, \end{aligned} \end{align} $$

where one can intertwine the integral sign with the inner product by Lemma 4.2.

Let $J \in \ker D_H$ . By substituting F by $D_H J = 0$ and G by J in (4.1), one concludes that $\int _0^\infty \overline { H(1,t)} \mathcal {K}_{tz} dt \in (\ker D_H)^\perp $ . Then, we have that

$$ \begin{align*} F(z) &= \left(G \, \Big| \, \int_0^\infty \overline { H(1,t)} \mathcal{K}_{tz}\, dt\right)_{H^2} = \left( F \, \Big| \, D_H\left( \int_0^\infty \overline { H(1,t)} \mathcal{K}_{tz} \,dt \right) \right)_{\mathcal D(H)}. \end{align*} $$

Therefore, after rearranging some variables, one gets that the reproducing kernel $\mathcal {K}_H$ of $\mathcal D(H)$ is given by

$$ \begin{align*}\mathcal{K}_H (z,w) = \left[D_H\left( \int_0^\infty \overline { H(1,t)} \mathcal{K}_{tw} \, dt \right)\right] (z), \qquad z,w\in \mathbb C^+. \end{align*} $$

Now, let us see that the expression above coincides with the one given in the statement for all $z,w \in \mathbb R^+$ :

$$ \begin{align*} &\left[D_H\left( \int_0^\infty \overline { H(1,t)}\mathcal{K}_{tw} dt \right)\right] (z) = \int_0^\infty H(z,s) \left( \int_0^\infty \overline { H(1,t)}\mathcal{K}_{tw} dt\right)(s) \, ds \\ =\: & \int_0^\infty H(z,s) \int_0^\infty \overline{H(1,t)} \mathcal{K}(s,tw) \, dt \, ds = \int_0^\infty H(z,s) \int_0^\infty \mathcal{S} (s,u) \overline{H(w,u)} \, du\, ds \\ =\: & \int_0^\infty H(z,s) \int_0^\infty \mathcal{S} (s,u) H^\ast(u,w) \, du \, ds =\int_0^\infty H(z,s) (\mathcal{S} \bullet H^\ast) (s,w) \,ds \\ =\: & \left(H \bullet \mathcal{S} \bullet H^\ast \right)(z,w). \end{align*} $$

Therefore, $\mathcal {K}_H(z,w) = \left (H \bullet \mathcal {S} \bullet H^\ast \right )(z,w)$ for all $z,w \in \mathbb R^+$ .

Since all the elements in $\mathcal D(H) \subset H^2(\mathbb C^+)$ are holomorphic, we have that $\mathcal {K}_H(z,w)$ is holomorphic in z, so it is determined for all $(z,w) \in \mathbb C^+ \times \mathbb R^+$ by its restriction at $\mathbb R^+ \times \mathbb R^+$ . Moreover, since $\mathcal {K}_H$ is a reproducing kernel, we have that $\mathcal {K}_H(z,w) = \overline {\mathcal {K}_H(w,z)}$ (see [Reference Neeb17, Lemma I.1.2]), and as a consequence, $\mathcal {K}_H(z,w)$ is anti-holomorphic in w, and by the same reasoning as before, $\mathcal {K}_H(z,w)$ is determined for all $z,w \in \mathbb C^+$ by its restriction to $\mathbb C^+ \times \mathbb R^+$ . All these statements imply that $H \bullet \mathcal {S} \bullet H^\ast \in \mathfrak {H}_2^{hol}$ and that its holomorphic extension is precisely $\mathcal {K}_H$ .

Proof Let $z\in \mathbb C^+$ and $f \in L^2(\mathbb R^+)$ . One has

$$ \begin{align*} (\mathcal{L} A_H f)(z) &= \int_0^\infty e^{-rz} \int_0^\infty H(r,t)f(t)dt dr = \int_0^\infty e^{-rz} \int_0^\infty H(1,s)f(rs)ds dr \\ &= \int_0^\infty H(1,s) \int_0^\infty e^{-rz}f(rs) dr ds = \int_0^\infty H(1,s) (\mathcal{L}f)\left(\frac{z}{s}\right) \frac{ds}{s} \\ &= \int_0^\infty H(u,1) (\mathcal{L}f)\left(uz\right) du = (D_{H^\top} \mathcal{L}f)(z), \end{align*} $$

where we have applied Fubini’s theorem since both $r\mapsto \int _0^\infty |H(r,t) f(t)|\, dt$ and $r\mapsto e^{-rz}$ are in $L^2(\mathbb R^+)$ .

Proof By the definition of $\mathcal A(H)$ and $\mathcal D(H^\top )$ , the restrictions $\widetilde {A_H}: (\ker A_H)^\perp \rightarrow \mathcal A(H)$ and $\widetilde {D_{H^\top }}: (\ker D_{H^\top })^\perp \rightarrow \mathcal D(H^\top )$ are isometric isomorphisms. By the $L^2-H^2$ Paley–Wiener theorem and Proposition 5.1, it follows that $(\ker D_{H^\top })^\perp = \mathcal {L} ((\ker A_H)^\perp )$ . Indeed, by Proposition 5.1, it easily follows that $\mathcal {L}(\ker A_H) = \ker D_{H^\top }$ , and thus $( f\, | \, g )_{L^2} = 0$ for all $g \in \ker A_H$ if and only if $(\mathcal {L}f\, | \, G )_{H^2} = 0$ for all $G \in \mathcal {L}(\ker A_H) = \ker D_{H^\top }$ .

Therefore, by Proposition 5.1 again, we obtain $\mathcal {L} f = \widetilde {D_{H^\top }} \mathcal {L} (\widetilde {A_H})^{-1} f$ for all $f \in \mathcal A(H)$ , where all the mappings $\widetilde {D_{H^\top }}, \, \mathcal {L}$ (seen as an operator from the subspace $(\ker A_H)^\perp \subset L^2(\mathbb R^+)$ to the subspace $(\ker D_{H^\top })^\perp \subset H^2(\mathbb C^+)$ ), and $(\widetilde {A_H})^{-1}$ are in fact unitary operators. As a consequence, $\mathcal {L}: \mathcal A(H) \rightarrow \mathcal D(H^\top )$ defines an isometric isomorphism.

Proof By the theorem above, we have that $\mathcal {L}: \mathcal A(H) \rightarrow \mathcal {D}(H)$ is an isometric isomorphism if and only if $\mathcal {D}(H) = \mathcal {D}(H^\top )$ as Hilbert spaces, and this happens if and only if their reproducing kernels are the same, $\mathcal {K}_H = \mathcal {K}_{H^\top }$ . By Theorem 4.3, this is equivalent to $\mathcal {S} \bullet H \bullet H^\ast = \mathcal {S} \bullet H^\top \bullet (H^\top )^\ast $ . The injectivity of the Stieltjes transform $A_{\mathcal {S}}$ (which can be proved via the Mellin transform; see, for example, [Reference Fabes, Jodeit and Lewis6]) implies that this holds if and only if $H \bullet H^\ast = H^\top \bullet (H^\top )^\ast = (H \bullet H^\ast )^\top $ . Then, the claim follows from the fact that $(H\bullet H^\ast )^\top = \overline {H\bullet H^\ast }$ for all $H \in \mathfrak {H}_2$ .

Proof Since $P = Q^\ast $ , Theorem 3.3 implies that $\mathcal A(\sqrt {2\pi }P) = \mathcal A(\sqrt {2\pi }Q)$ is an RKHS on $\mathbb R^+$ with kernel $K_{\sqrt {2\pi }P} = K_{\sqrt {2\pi }Q}$ given by

(6.2) $$ \begin{align} K_{\sqrt{2\pi}P}(r,s) = \frac{2}{\pi} \int_0^\infty \frac{r}{r^2+t^2} \frac{s}{t^2+s^2}\,dt = \frac{1}{r+s} = \mathcal{S}(r,s), \quad r,s>0. \end{align} $$

Therefore, $\mathcal A(\sqrt {2\pi }P) = \mathcal A(\sqrt {2\pi }Q) = L^2_{hol}(\mathbb R^+)$ as Hilbert spaces. Thus, all is left to prove is that $\mathscr {P}f, \mathscr {Q}f$ are holomorphic on $\mathbb C^+$ and that both $\mathscr {P}, \mathscr {Q}$ are injective operators. First, claim which follows by an application of Morera’s theorem. For the second one, note that the Stieltjes transform $A_{\mathcal {S}}$ is an injective operator and that $A_{\mathcal {S}} = A_{P \bullet Q} = A_P A_Q = A_Q A_P$ . Thus, both $A_P, A_Q$ are injective, and so are $\mathscr {P}, \mathscr {Q}$ .

Proof By Proposition 5.1, one has $\mathcal {L} \mathscr {Q} = \sqrt {2\pi } D_P \mathcal {L}$ . Thus, $\mathcal {L}(H^2(\mathbb C^+)) = \mathcal {L} \mathscr {Q}(L^2(\mathbb R^+)) = \mathcal D(\sqrt {2\pi } P)$ regarded as Hilbert spaces, since all the operators considered in the equalities are isometric isomorphisms. Hence, by Theorems 3.3 4.3 and (6.2),

$$ \begin{align*}K = \mathcal{K}_{\sqrt{2\pi}P} = ( K_{\sqrt{2\pi}P} \bullet \mathcal{S})^{hol} = (\mathcal{S} \bullet \mathcal{S})^{hol} = (K_{\mathcal{S}})^{hol}, \end{align*} $$

and the claim follows by (6.1).

Proof Let us show the claim for $\mathscr {P}$ , since the proof for $\mathscr {Q}$ is completely analogous. Let $r>0$ and $f \in L^2(\mathbb R^+)$ . Then,

$$ \begin{align*}(\mathscr{P} A_H f)(r) = \sqrt{\frac{2}{\pi}}(A_P A_H f)(r) = \sqrt{\frac{2}{\pi}} (A_H A_P f)(r) = (D_H \mathscr{P} f)(r), \end{align*} $$

where we have used that $A_P A_H = A_H A_P$ . It follows by analytic continuation that $\mathscr {P} A_H = D_H \mathscr {P}$ (Proposition 2.1). Then, reasoning as in the proof of Theorem 5.2, we obtain $\mathscr {P}: \mathcal A(H) \rightarrow \mathcal {D}(H)$ is a well-defined isometric isomorphism.

Proof By Proposition 6.1, Corollary 6.4, and Theorem 3.4, the claim will follow once we prove that $\mathcal {H}_+^{\mathbb C^+} = \mathscr {P} \mathcal {H}_+ \mathscr {P}^{-1}$ . For $\theta \in \left (\frac {-\pi }{2}, \frac {\pi }{2}\right )$ , set $P_\theta (r,s) := \frac {r e^{i\theta }}{r^2 e^{2i\theta } + s^2}$ for $r,s>0$ . Then, $P_\theta \in \mathfrak {H}_2$ , so $A_{P_\theta } \mathcal {H}_+ = \mathcal {H}_+ A_{P_\theta }$ on $L^2(\mathbb R^+)$ by Theorem 3.4, and it is readily seen that $(\mathscr {P}f)^\theta = \sqrt {\frac {2}{\pi }} A_{P_\theta } f$ for any $f \in L^2(\mathbb R^+)$ . Furthermore, notice that $F^\theta \in L^2(\mathbb R^+)$ for any $F \in H^2(\mathbb C^+)$ by (1.3). Then,

$$ \begin{align*} (\mathscr{P} \mathcal{H}_+ \mathscr{P}^{-1} F)^\theta &= \sqrt{\frac{2}{\pi}} A_{P_\theta} \mathcal{H}_+ \mathscr{P}^{-1} F = \sqrt{\frac{2}{\pi}} \mathcal{H}_+ A_{P_\theta} \mathscr{P}^{-1} F = \mathcal{H}_+ (\mathscr{P} \mathscr{P}^{-1} F)^\theta \\ &= \mathcal{H}_+ F^\theta = (\mathcal{H}_+^{\mathbb C^+}F)^\theta, \qquad \theta \in \left(\frac{-\pi}{2}, \frac{\pi}{2}\right), \, F \in H^2(\mathbb C^+), \end{align*} $$

and the claim follows. Analogously, one can prove that $\mathcal {H}_+^{\mathbb C^+} = \mathscr {Q} \mathcal {H}_+ \mathscr {Q}^{-1}$ .

Proof It is readily seen that $\mathcal {C}_\alpha \in \mathcal I_p$ if and only if $\alpha> 1/p$ . Hence, the claim is an immediate consequence of Theorems 3.3 4.3 and Corollary 5.4.