Proof. It is immediate from Lemma 2.2 that $\{T(\varphi _i,\varphi _j):i,j\in \mathbb N\}$ is an orthonormal set. Now, it only remains to verify the completeness. For this, let $f\in L^2(\mathfrak b)$ be such that $\langle f,T(\varphi _i,\varphi _j)\rangle =0,$ whenever $i,j\in \mathbb N.$ A simple calculation shows that

$$ \begin{align*} \langle W_{\omega}(\bar f)\phi_i,\phi_j\rangle = \langle f,T(\phi_i,\phi_j)\rangle=0 \end{align*} $$

and hence $W_{\omega }(\bar f)=0.$ Thus, by the Plancherel formula, f is zero almost everywhere.

Proof. The proof of Proposition 2.4 is similar to the proof of Theorem 2.1 and hence we omit it here.

Proof. Since $h_j\in L^2(\eta _\omega ),$ the functions $|h_j|$ are finite almost everywhere on $\eta _\omega .$ Define a function $\chi $ on $\eta _\omega $ by $\chi =(h_1,\ldots ,h_N).$ Then, we get that

$$ \begin{align*} K_y(\xi)=\langle\chi(\xi+y),\chi(\xi)\rangle_{\mathbb C^N} \end{align*} $$

for almost every $\xi \in \eta _\omega .$ By assumption, $K_y=0$ for all $y\in \eta _\omega \smallsetminus \mathcal F.$ Thus, it follows that

$$ \begin{align*} \langle\chi(\xi+y),\chi(\xi)\rangle_{\mathbb C^N}=0 \end{align*} $$

for almost every $\xi \in \eta _\omega $ and $y\in \eta _\omega \smallsetminus \mathcal F.$ In contrast, assume that the nonvanishing set $S:=\{\zeta \in \mathbb R^n:\, \chi (\zeta )\neq 0\}$ has infinite Lebesgue measure. Since $\mathcal F$ has finite measure, there exists $v_1\in S\cap (\eta _\omega \smallsetminus \mathcal F).$ Observe that $\chi (v_1)\neq 0$ and

$$ \begin{align*} \langle\chi(\xi+v_1),\chi(\xi)\rangle_{\mathbb C^N}=0. \end{align*} $$

Next, take $v_2\in S\cap (\eta _\omega \smallsetminus (\mathcal F+v_1)),$ then $\chi (v_2)\neq 0,$ and since $v_2-v_1\notin \mathcal F,$ it is immediate that $\langle \chi (\xi +v_2-v_1),\chi (\xi )\rangle _{\mathbb C^N}=0.$ In particular, $\langle \chi (v_2),\chi (v_1)\rangle _{\mathbb C^N}=0.$ In this way, after m steps, we get that $\{v_j:~1\leq j\leq m\}$ such that $\chi (v_j)\neq 0$ and

(2-1) $$ \begin{align} \langle\chi(\xi+v_j-v_{j'}),\chi(\xi)\rangle_{\mathbb C^N}=0\quad\text{for}~1\leq j\neq j'\leq m. \end{align} $$

If we consider $v_{m+1}\in S\cap (\eta _\omega \smallsetminus \bigcup \limits _{j=1}^{m}(\mathcal F+v_j)),$ then $\chi (v_{m+1})\neq 0$ and for $j\leq m,$

(2-2) $$ \begin{align} \langle\chi(\xi+v_{m+1}-v_j),\chi(\xi)\rangle_{\mathbb C^N}=0. \end{align} $$

In particular, taking $\xi =v_{j'}$ in Equation (2-1) and $\xi =v_{j}$ in Equation (2-2),

$$ \begin{align*}\langle\chi(v_j),\chi(v_{j'})\rangle_{\mathbb C^N}=0\quad\text{for}~1\leq j\neq j'\leq m+1.\end{align*} $$

For $m=N,$ we obtain $N+1$ nonzero mutually orthogonal vectors in $\mathbb C^N,$ which is a contradiction. It follows that S must have finite measure and hence all $h_j$ terms are nonvanishing on $S.$

Proof. Let $\bar \tau =h^\ast \ast _\omega h,$ where $h^\ast (v)=\overline {h(v^{-1})}.$ Then $W_\omega (\bar \tau )=W_\omega (h)^\ast W_\omega (h)$ is a positive and finite rank operator on $L^2(\eta _\omega ).$ By the spectral theorem, there exists an orthonormal set $\{\phi _j\in L^2(\eta _\omega ): j=1,\ldots ,N\}$ and scalars $a_j\geq 0$ such that

$$ \begin{align*}W_{\omega}(\bar\tau)\phi=\sum_{j=1}^Na_j\langle \phi,\phi_j\rangle \phi_j,\end{align*} $$

whenever $\phi \in L^2(\eta _\omega ).$ Now, for $\psi \in L^2(\eta _\omega ),$ the orthogonality relation gives

(2-3) $$ \begin{align} \langle W_{\omega}(\bar\tau)\phi,\psi\rangle &=\sum_{j=1}^Na_j\langle\phi,\phi_j\rangle\langle\phi_j,\psi\rangle\nonumber\\ &= c(\omega)^{-1}\sum_{j=1}^Na_j\int_{\mathfrak b}T(\phi,\psi)(v)\overline{T(\phi_j,\phi_j)(v)}\,dv. \end{align} $$

Further, by definition of $W_{\omega }(\bar \tau ),$

(2-4) $$ \begin{align} \langle W_{\omega}(\bar\tau)\phi,\psi\rangle=\int_{\mathfrak b}\bar\tau(v)T(\phi,\psi)(v)\,dv. \end{align} $$

Hence, by comparing Equation (2-3) with Equation (2-4) in view of Proposition 2.3, it follows that

(2-5) $$ \begin{align} \tau=\sum\limits_{j=1}^N T(h_j,h_j), \end{align} $$

where $h_j=c(\omega )^{-1/2}\sqrt {a_j}~\phi _j\in L^2(\eta _\omega ).$ Now, for $v=(x,y),$ write $\tau _y(x)=\tau (x,y).$ Then Equation (2-5) becomes

$$ \begin{align*} \tau_y(x)=\int_{\eta_\omega}e^{i\sum\nolimits_{j=1}^nd_j(\omega) (x_j\xi_j+({1}/{2})x_jy_j)}K_y(\xi)\,d\xi. \end{align*} $$

Since $\bar \tau $ is nonvanishing on $\mathcal E\times \mathcal F$ , it follows that $K_y(\xi )=0$ for almost every $\xi $ and for all $y\in \eta _\omega \smallsetminus \mathcal F.$ Then in view of Lemma 2.5, it follows that each $h_j$ is nonvanishing on a set of finite measure and hence each $K_y$ is nonvanishing on a set of finite measure. Since $\tau _y$ is nonvanishing on $\mathcal E,$ whenever $y\in \eta _\omega ,$ we infer that $\tau _y$ is zero for all $y\in \eta _\omega .$ Now, by the Plancherel formula, we conclude that $h=0.$ This completes the proof.

Proof. Since $f_l, g_l\in \mathcal {H}_\sigma ^2,$ we can express the functions $f_l, g_l$ as

$$ \begin{align*} f_l=\sum _{\gamma \in \mathbb {N}^n}\sum _{1\leq i\leq d_\sigma } f_{\gamma ,i}^l\phi _\gamma \otimes e_i^\sigma \end{align*} $$

and

$$ \begin{align*} g_l=\sum _{\beta \in \mathbb {N}^n}\sum _{1\leq j\leq d_\sigma }g_{\beta ,j}^l\phi _\beta \otimes e_j^\sigma ,\quad ~l=1,2, \end{align*} $$

where $f_{\gamma ,i}^l$ and $g_{\beta ,j}^l$ are constants. Thus, $V_{f_l}^{g_l}$ takes the form

$$ \begin{align*} V_{f_l}^{g_l}(z,k)=(2\pi)^{{n}/{2}}\sum_{\alpha,\beta\in\mathbb N^n}\sum_{1\leq i,j\leq d_\sigma}\sum_{|\gamma|=|\alpha|} f_{\gamma,i}^l\overline{g_{\beta,j}^l}\eta_{\gamma\alpha}(k)\phi_{\alpha\beta}(z)\varphi_{ji}^\sigma(k). \end{align*} $$

By orthogonality of the functions $\phi _{\alpha \beta }$ and Equation (4-2), it follows that

$$ \begin{align*}\int_{\mathbb{C}^n}V_{f_1}^{g_1}(z,k)\overline{V_{f_2}^{g_2}(z,k)}\,dz= (2\pi)^n\sum_{\gamma,\beta\in\mathbb N^n}\bigg[\sum_{i,j=1}^{d_\sigma}(f_{\gamma,i}^1\overline{g_{\beta,j}^1})\phi_{ji}^\sigma(k) \sum_{i,j=1}^{d_\sigma}(\overline{f_{\gamma,i}^2}g_{\beta,j}^2)\overline{\phi_{ji}^\sigma(k)}\bigg].\end{align*} $$

On integrating the above equation with respect to k and using Equation (4-3),

$$ \begin{align*} d_\sigma\int_{K}\int_{\mathbb{C}^n}V_{f_1}^{g_1}(z,k)\overline{V_{f_2}^{g_2}(z,k)}\,dz\,dk &= (2\pi)^n\bigg(\sum_{\gamma\in\mathbb N^n}\sum_{1\leq i\leq d_\sigma}f_{\gamma,i}^1\overline{f_{\gamma,i}^2}\bigg)\bigg(\sum_{\beta\in\mathbb N^n} \sum_{1\leq j\leq d_\sigma}g_{\beta,j}^2\overline{g_{\beta,j}^1}\bigg)\\ &= (2\pi)^n\langle f_1,f_2 \rangle\overline{\langle g_1,g_2 \rangle}. \\[-32pt]\end{align*} $$

Proof. By Lemma 4.2 and Theorem 4.3, it follows that $V_{\mathcal B}$ is an orthogonal set. For completeness, suppose $F\in V_{\mathcal B}^\perp .$ Then

$$ \begin{align*} \langle W_\sigma(\overline{F})\psi_{\alpha,i}^\sigma,\psi_{\beta,j}^\sigma\rangle &= \int_{K}\int_{\mathbb{C}^n}\overline{F}(z,k)V_{\psi_{\alpha,i}^\sigma}^{{\psi_{\beta,j}^\sigma}}(z,k)\,dz\,dk\\ &= \langle F,V_{\psi_{\alpha,i}^\sigma}^{\psi_{\beta,j}^\sigma} \rangle=0, \end{align*} $$

whenever $\psi _{\alpha ,i}^\sigma ,\psi _{\beta ,j}^\sigma \in \mathcal B_\sigma .$ Hence, $W_\sigma (\overline {F})=0$ for arbitrary $\sigma \in \widehat K.$ Thus, by Proposition 4.1, we conclude that $F=0.$ Since $V_{\mathcal B_\sigma }$ is a complete orthogonal set for $V_{\sigma }$ , $L^2(G^\times )$ is the direct sum of $V_{\sigma }$ terms.

Proof. It follows from Equation (3-1) that

$$ \begin{align*} F(z,k) &= \langle\pi(z)\mu(k)\otimes\sigma(k)(\phi_1\otimes h_1),\phi_2\otimes h_2\rangle \\ &= \langle\pi(z)\mu(k)\phi_1,\phi_2\rangle\langle\sigma(k)h_1,h_2\rangle\\ &= T(\mu(k)\phi_1,\phi_2)(z)\langle\sigma(k)h_1,h_2\rangle,\\ &= X(z,k)\langle\sigma(k)h_1,h_2\rangle, \end{align*} $$

where $X(z,k)=T(\mu (k)\phi _1,\phi _2)(z).$ If $\langle \sigma (k)h_1,h_2\rangle =0,$ then $F(.,k)=0.$ However, if $\langle \sigma (k)h_1,h_2\rangle \neq 0$ for some $k\in K,$ then $T(\mu (k)\phi _1,\phi _2)$ is nonvanishing on a set of finite Lebesgue measure. Hence, Theorem 2.1 yields that $F=0.$

Proof. We prove the proposition in the following two steps.

Step I. In this step, we show that all $\phi _j;~1\leq j\leq N$ are nonvanishing on a set of finite Lebesgue measure. Let $k=e\in U(n)$ be the identity matrix. Then $\mu (e)=I,$ the identity operator on $L^2(\mathbb {R}^n).$ For $z=x+iy\in \mathbb C^n,$ we introduce the function ${\psi _y(x)=\psi (z,e).}$ Since $\phi _j\in L^2(\mathbb {R}^n),$ except on a set of measure zero, $|\phi _j|$ is finite on $\mathbb {R}^n.$ Let us introduce a function $\chi $ on $\mathbb R^n$ by $\chi (\xi )=(\|\psi _1\|\phi _1(\xi ),\ldots , \|\psi _N\|\phi _N(\xi )),$ and hence

$$ \begin{align*}K_y(\xi):=\sum\limits_{j=1}^N\|\psi_j\|^2\phi_j(\xi+y) \overline{\phi_j(\xi)}=\langle\chi(\xi+y),\chi(\xi)\rangle_{\mathbb C^N}\end{align*} $$

for almost every $\xi \in \mathbb R^n,$ so that

$$ \begin{align*}\psi_y(x)=\int_{\mathbb{R}^n}e^{i(x\cdot\xi +({1}/{2})x\cdot y)}K_y(\xi)\,d\xi\end{align*} $$

is the Fourier transform of $K_y$ (up to the factor $e^{ix\cdot y/2}$ ). By assumption, it follows that $\psi _y=0$ for all $y\in \mathbb R^n\smallsetminus \mathcal F.$ Hence, we infer that $K_y=0.$ Thus, we have shown that

$$ \begin{align*}\langle\chi(\xi+y),\chi(\xi)\rangle_{\mathbb C^N}=0\end{align*} $$

for almost every $\xi \in \mathbb R^n$ and $y\in \mathbb R^n\smallsetminus \mathcal F.$

Assume toward a contradiction that $S:=\{\zeta \in \mathbb R^n:\chi (\zeta )\neq 0\}$ has infinite Lebesgue measure. Since $\mathcal F$ has finite measure, without loss of generality, there exists $s_1\in S\cap (\mathbb R^n\smallsetminus \mathcal F).$ Note that $\chi (s_1)\neq 0$ and

$$ \begin{align*}\langle\chi(\xi+s_1),\chi(\xi)\rangle_{\mathbb C^N}=0.\end{align*} $$

Next, take $s_2\in S\cap (\mathbb R^n\smallsetminus (\mathcal F+s_1)),$ then $\chi (s_2)\neq 0,$ and since $s_2-s_1\notin \mathcal F,$ we have that $\langle \chi (\xi +s_2-s_1),\chi (\xi )\rangle _{\mathbb C^N}=0.$ In particular, $\langle \chi (s_2),\chi (s_1)\rangle _{\mathbb C^N}=0.$ In this way, after m steps, we get that $\{s_j:~1\leq j\leq m\}$ such that $\chi (s_j)\neq 0$ and

(4-6) $$ \begin{align} \langle\chi(\xi+s_j-s_{j'}),\chi(\xi)\rangle_{\mathbb C^N}=0\quad\text{for}~1\leq j\neq j'\leq m. \end{align} $$

If we consider $s_{m+1}\in S\cap (\mathbb R^n\smallsetminus \bigcup \nolimits _{j=1}^{m}(\mathcal F+s_j)),$ then $\chi (s_{m+1})\neq 0$ and for $j\leq m,$

(4-7) $$ \begin{align} \langle\chi(\xi+s_{m+1}-s_j),\chi(\xi)\rangle_{\mathbb C^N}=0. \end{align} $$

In particular, taking $\xi =s_{j'}$ in Equation (4-6) and $\xi =s_{j}$ in Equation (4-7),

$$ \begin{align*}\langle\chi(s_j),\chi(s_{j'})\rangle_{\mathbb C^N}=0\quad\text{for}~1\leq j\neq j'\leq m+1.\end{align*} $$

For $m=N$ , we obtain $N+1$ nonzero mutually orthogonal vectors in $\mathbb C^N,$ which is a contradiction. It follows that S must have finite measure and hence all $\phi _j$ terms are nonvanishing on $S.$

Step II. From Step I, it follows that $K_y$ is nonvanishing on a set of finite Lebesgue measure for all $y\in \mathbb R^n.$ Since $\psi _y$ is nonvanishing on $\mathcal E,$ by Benedicks’ theorem on $\mathbb R^n,$ we get that $K_y=0$ for all $y\in \mathbb R^n.$ Hence, $\psi (x+iy,e)=0$ for all $x,y\in \mathbb R^n.$

Let $k\in U(n)$ and for $z=x+iy\in \mathbb C^n,$ consider the function $\psi _{y,k}(x)=\psi (z,k).$ If we write

$$ \begin{align*}H_{y, k}(\xi):=\sum\limits_{j=1}^N b_j(k)(\mu(k)\phi_j)(\xi+y)\overline{\phi_j(\xi)}~\text{for~almost~every}~\xi\in\mathbb R^n,\end{align*} $$

then $\psi _{y,k}(x)=\int _{\mathbb {R}^n}e^{i(x\cdot \xi +1/2x\cdot y)}H_{y,k}(\xi )\,d\xi $ is the Fourier transform of $H_{y,k}$ up to the factor $e^{ix\cdot (y/2)}.$ Recall that each $\phi _j$ is nonvanishing on a set of finite Lebesgue measure on $\mathbb R^n,$ and $H_{y,k}$ is nonvanishing on a set of finite measure for all $y\in \mathbb R^n.$ Since $\psi _{y,k}$ is nonvanishing on $\mathcal E,$ by Benedicks’ theorem, we get that $H_{y,k}=0$ for all $y\in \mathbb R^n.$ Hence, $\psi (x+iy,k)=0$ for all $x,y\in \mathbb R^n$ and $k\in U(n).$

Proof. By hypothesis, $W_\sigma (\bar \tau )=W_\sigma (f)^\ast W_\sigma (f)$ is a positive operator which satisfies $W_\sigma (\bar \tau )f_j=a_jf_j$ with $a_j\geq 0$ and $f_j=\phi _j\otimes \psi _j.$ Now, for $f,g\in \mathcal {H}_\sigma ^2,$ it is immediate that

(4-8) $$ \begin{align} \langle W_\sigma(\bar\tau)f,g\rangle &= \sum_{j=1}^Na_j\langle f,f_j\rangle \langle f_j,g\rangle\nonumber\\&= (2\pi)^{-n}\sum_{j=1}^Na_j \int_{K} \int_{\mathbb{C}^n}V_{f}^{g}(z,k) \overline{V_{f_j}^{f_j}(z,k)}\,dz\,dk. \end{align} $$

In view of the decomposition $\tau =\bigoplus \nolimits _{\sigma \in \widehat K}\tau _\sigma $ and by the definition of $W_\sigma (\bar \tau ),$ we can write

(4-9) $$ \begin{align} \langle W_\sigma(\bar\tau)f,g\rangle &= \int_{K}\int_{\mathbb{C}^n}\bar\tau(z,k)\langle\rho_\sigma^1(z,k)f,g\rangle \,dz\,dk\nonumber\\&= \int_{K}\int_{\mathbb{C}^n}\overline{{\tau_\sigma}}(z,k)V_{f}^{g}(z,k)\,dz\,dk. \end{align} $$

Hence, by comparing Equation (4-8) with Equation (4-9), it follows that

(4-10) $$ \begin{align} {\tau_\sigma}=\sum_{j=1}^N V_{h_j}^{h_j}, \end{align} $$

where $h_j=(2\pi )^{-{n}/{2}}\sqrt {a_j}f_j\in \mathcal {H}_\sigma ^2.$ Now, let $h_j=\phi _j\otimes \psi _j$ for some $\phi _j\in L^2(\mathbb {R}^n)$ and $\psi _j~\in ~{\mathcal H}_\sigma .$ Then from Equation (4-10), we have that

$$ \begin{align*} {\tau_\sigma}(z,k) = \sum_{j=1}^N\langle\rho_\sigma(z,k)h_j,h_j\rangle = \sum_{j=1}^N b_j(k)\langle\pi(z)\mu(k)\phi_j,\phi_j\rangle, \end{align*} $$

where $b_j(k)=\langle \sigma (k)\psi _j,\psi _j\rangle .$ Since $\tau _\sigma $ is nonvanishing on a set of finite Lebesgue measure in the $\mathbb C^n$ -variable, by Proposition 4.7, it follows that $\tau _\sigma =0,$ whenever $\sigma \in \widehat K.$ Thus, Proposition 4.1 yields that $f=0$ a.e.

Proof. (i) For $f\in L^1\cap L^2(G),$ since $\overline {\tau _\lambda }={f^\lambda }^\ast \times f^\lambda $ and it is given that $W_\sigma ^\lambda (\overline {\tau _\lambda })$ has rank one, it is enough to show that $f^\lambda =0.$ Consider the case when $\lambda =1,$ and for simplicity, we use the notation $\tau $ and $\tau _\sigma $ instead of $\tau _1$ and $\tau _{1,\sigma }.$ By hypothesis, we have that $W_\sigma (\bar \tau )h=\langle h,f_1\rangle f_2$ for all $h\in \mathcal {H}_\sigma ^2,$ where $f_1=\phi \otimes \psi $ and $f_2=a_0f_1.$ Hence, for $g,h\in \mathcal {H}_\sigma ^2,$ Lemma 4.2 yields

(4-11) $$ \begin{align} \langle W_\sigma(\bar\tau)h,g\rangle &= \langle h,f_1\rangle \langle f_2,g\rangle\nonumber\\&= (2\pi)^{-n}\int_{K}\int_{\mathbb{C}^n}V_{h}^{g}(z,k)\overline{V_{f_1}^{f_2}(z,k)}\,dz\,dk. \end{align} $$

Let $\tau =\bigoplus \limits _{\sigma \in \widehat K}\tau _\sigma ,$ where $\tau _\sigma \in V_{B_\sigma }.$ Then by definition of $W_\sigma (\bar \tau ),$ it follows that

(4-12) $$ \begin{align} \langle W_\sigma(\bar\tau)h,g\rangle = \int_{K}\int_{\mathbb{C}^n}\overline{\tau_\sigma}(z,k)V_{h}^{g}(z,k)\,dz\,dk. \end{align} $$

Now, by comparing Equation (4-11) with Equation (4-12) in view of Proposition 4.4, we infer that $\tau _\sigma =(2\pi )^{-n}V_{f_1}^{f_2}.$ Since each $\tau _\sigma $ is nonvanishing on $\Sigma _\sigma \times K,$ it follows from Proposition 4.6 that $\tau _\sigma =0$ for all $\sigma \in \widehat K.$ That is, $\tau =0$ and hence $f^1=0.$ Similarly, we can show that $f^\lambda =0$ for all $\lambda \in \mathbb R^\ast .$ Thus, we conclude that $f=0$ a.e.

(ii) For $\lambda =1,$ it follows from Theorem 4.9 that $f^1=0.$ Similarly, it can be shown that $f^\lambda =0$ for all $\lambda \in \mathbb R^\ast .$ Thus, we conclude that $f=0$ a.e.