pub struct TransposedLinearOperator { /* private fields */ }Expand description
Matrix-free algebraic transpose view of an owned linear operator.
Implementations§
Source§impl TransposedLinearOperator
impl TransposedLinearOperator
pub fn new(operator: Arc<dyn LinearOperator>) -> Self
Trait Implementations§
Source§impl Clone for TransposedLinearOperator
impl Clone for TransposedLinearOperator
Source§fn clone(&self) -> TransposedLinearOperator
fn clone(&self) -> TransposedLinearOperator
Returns a duplicate of the value. Read more
1.0.0 (const: unstable) · Source§fn clone_from(&mut self, source: &Self)
fn clone_from(&mut self, source: &Self)
Performs copy-assignment from
source. Read moreSource§impl Debug for TransposedLinearOperator
impl Debug for TransposedLinearOperator
Source§impl LinearOperator for TransposedLinearOperator
impl LinearOperator for TransposedLinearOperator
Source§fn format(&self) -> MatrixFormat
fn format(&self) -> MatrixFormat
Report the public materialization format.
Source§fn apply(&self, input: &[Complex64], output: &mut [Complex64]) -> Result<()>
fn apply(&self, input: &[Complex64], output: &mut [Complex64]) -> Result<()>
Compute
output = A * input. Read moreSource§fn apply_transpose(
&self,
input: &[Complex64],
output: &mut [Complex64],
) -> Result<()>
fn apply_transpose( &self, input: &[Complex64], output: &mut [Complex64], ) -> Result<()>
Apply the algebraic transpose without conjugating either operand. Read more
Source§fn stored_triplets(&self) -> Result<Option<Vec<(usize, usize, Complex64)>>>
fn stored_triplets(&self) -> Result<Option<Vec<(usize, usize, Complex64)>>>
Return canonical stored nonzeros when the representation already owns them.
Source§fn apply_real(&self, input: &[f64], output: &mut [f64]) -> Result<()>
fn apply_real(&self, input: &[f64], output: &mut [f64]) -> Result<()>
Apply this operator to a real vector. Read more
Source§fn apply_adjoint(
&self,
input: &[Complex64],
output: &mut [Complex64],
) -> Result<()>
fn apply_adjoint( &self, input: &[Complex64], output: &mut [Complex64], ) -> Result<()>
Apply the conjugate transpose.
Source§fn shifted_solver(
&self,
_shift: f64,
) -> Result<Option<Box<dyn ShiftedLinearSolver>>>
fn shifted_solver( &self, _shift: f64, ) -> Result<Option<Box<dyn ShiftedLinearSolver>>>
Prepare a reusable solver for
(A - shift I) x = b, when supported.Auto Trait Implementations§
impl Freeze for TransposedLinearOperator
impl !RefUnwindSafe for TransposedLinearOperator
impl Send for TransposedLinearOperator
impl Sync for TransposedLinearOperator
impl Unpin for TransposedLinearOperator
impl UnsafeUnpin for TransposedLinearOperator
impl !UnwindSafe for TransposedLinearOperator
Blanket Implementations§
Source§impl<T> BorrowMut<T> for Twhere
T: ?Sized,
impl<T> BorrowMut<T> for Twhere
T: ?Sized,
Source§fn borrow_mut(&mut self) -> &mut T
fn borrow_mut(&mut self) -> &mut T
Mutably borrows from an owned value. Read more
Source§impl<T> CloneToUninit for Twhere
T: Clone,
impl<T> CloneToUninit for Twhere
T: Clone,
Source§impl<O> RuntimeAdjointLinearOperator<CpuRuntime> for Owhere
O: LinearOperator + ?Sized,
impl<O> RuntimeAdjointLinearOperator<CpuRuntime> for Owhere
O: LinearOperator + ?Sized,
Source§fn apply_adjoint_on(
&self,
_runtime: &CpuRuntime,
input: &CpuBuffer,
output: &mut CpuBuffer,
) -> Result<(), QmbedError>
fn apply_adjoint_on( &self, _runtime: &CpuRuntime, input: &CpuBuffer, output: &mut CpuBuffer, ) -> Result<(), QmbedError>
Compute
output = A† * input in runtime-owned storage.Source§impl<O> RuntimeLinearOperator<CpuRuntime> for Owhere
O: LinearOperator + ?Sized,
impl<O> RuntimeLinearOperator<CpuRuntime> for Owhere
O: LinearOperator + ?Sized,
Source§fn runtime_shape(&self) -> (usize, usize)
fn runtime_shape(&self) -> (usize, usize)
Return
(rows, columns) in runtime coordinates.Source§fn apply_on(
&self,
_runtime: &CpuRuntime,
input: &CpuBuffer,
output: &mut CpuBuffer,
) -> Result<(), QmbedError>
fn apply_on( &self, _runtime: &CpuRuntime, input: &CpuBuffer, output: &mut CpuBuffer, ) -> Result<(), QmbedError>
Apply this map to backend-owned buffers.
§impl<SS, SP> SupersetOf<SS> for SPwhere
SS: SubsetOf<SP>,
impl<SS, SP> SupersetOf<SS> for SPwhere
SS: SubsetOf<SP>,
§fn to_subset(&self) -> Option<SS>
fn to_subset(&self) -> Option<SS>
The inverse inclusion map: attempts to construct
self from the equivalent element of its
superset. Read more§fn is_in_subset(&self) -> bool
fn is_in_subset(&self) -> bool
Checks if
self is actually part of its subset T (and can be converted to it).§fn to_subset_unchecked(&self) -> SS
fn to_subset_unchecked(&self) -> SS
Use with care! Same as
self.to_subset but without any property checks. Always succeeds.§fn from_subset(element: &SS) -> SP
fn from_subset(element: &SS) -> SP
The inclusion map: converts
self to the equivalent element of its superset.