568 lines
10 KiB
C++
568 lines
10 KiB
C++
// SPDX-License-Identifier: Apache-2.0
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//
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// Copyright 2008-2016 Conrad Sanderson (http://conradsanderson.id.au)
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// Copyright 2008-2016 National ICT Australia (NICTA)
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//
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// Licensed under the Apache License, Version 2.0 (the "License");
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// you may not use this file except in compliance with the License.
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// You may obtain a copy of the License at
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// http://www.apache.org/licenses/LICENSE-2.0
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//
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// Unless required by applicable law or agreed to in writing, software
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// distributed under the License is distributed on an "AS IS" BASIS,
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// WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
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// See the License for the specific language governing permissions and
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// limitations under the License.
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// ------------------------------------------------------------------------
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//! \addtogroup spop_misc
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//! @{
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namespace priv
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{
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template<typename eT>
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struct functor_scalar_times
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{
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const eT k;
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functor_scalar_times(const eT in_k) : k(in_k) {}
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arma_inline eT operator()(const eT val) const { return val * k; }
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};
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}
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template<typename T1>
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inline
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void
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spop_scalar_times::apply(SpMat<typename T1::elem_type>& out, const SpOp<T1,spop_scalar_times>& in)
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{
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arma_debug_sigprint();
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typedef typename T1::elem_type eT;
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out.init_xform(in.m, priv::functor_scalar_times<eT>(in.aux));
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}
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namespace priv
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{
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template<typename T>
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struct functor_cx_scalar_times
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{
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typedef std::complex<T> out_eT;
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const out_eT k;
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functor_cx_scalar_times(const out_eT in_k) : k(in_k) {}
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arma_inline out_eT operator()(const T val) const { return val * k; }
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};
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}
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template<typename T1>
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inline
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void
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spop_cx_scalar_times::apply(SpMat< std::complex<typename T1::pod_type> >& out, const mtSpOp< std::complex<typename T1::pod_type>, T1, spop_cx_scalar_times >& in)
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{
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arma_debug_sigprint();
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typedef typename T1::pod_type T;
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out.init_xform_mt(in.m, priv::functor_cx_scalar_times<T>(in.aux_out_eT));
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}
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namespace priv
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{
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struct functor_square
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{
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template<typename eT>
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arma_inline eT operator()(const eT val) const { return val*val; }
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};
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}
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template<typename T1>
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inline
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void
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spop_square::apply(SpMat<typename T1::elem_type>& out, const SpOp<T1,spop_square>& in)
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{
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arma_debug_sigprint();
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out.init_xform(in.m, priv::functor_square());
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}
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namespace priv
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{
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struct functor_sqrt
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{
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template<typename eT>
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arma_inline eT operator()(const eT val) const { return eop_aux::sqrt(val); }
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};
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}
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template<typename T1>
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inline
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void
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spop_sqrt::apply(SpMat<typename T1::elem_type>& out, const SpOp<T1,spop_sqrt>& in)
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{
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arma_debug_sigprint();
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out.init_xform(in.m, priv::functor_sqrt());
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}
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namespace priv
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{
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struct functor_cbrt
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{
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template<typename eT>
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arma_inline eT operator()(const eT val) const { return eop_aux::cbrt(val); }
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};
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}
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template<typename T1>
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inline
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void
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spop_cbrt::apply(SpMat<typename T1::elem_type>& out, const SpOp<T1,spop_cbrt>& in)
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{
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arma_debug_sigprint();
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out.init_xform(in.m, priv::functor_cbrt());
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}
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namespace priv
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{
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struct functor_abs
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{
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template<typename eT>
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arma_inline eT operator()(const eT val) const { return eop_aux::arma_abs(val); }
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};
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}
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template<typename T1>
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inline
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void
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spop_abs::apply(SpMat<typename T1::elem_type>& out, const SpOp<T1,spop_abs>& in)
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{
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arma_debug_sigprint();
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out.init_xform(in.m, priv::functor_abs());
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}
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namespace priv
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{
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struct functor_cx_abs
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{
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template<typename T>
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arma_inline T operator()(const std::complex<T>& val) const { return std::abs(val); }
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};
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}
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template<typename T1>
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inline
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void
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spop_cx_abs::apply(SpMat<typename T1::pod_type>& out, const mtSpOp<typename T1::pod_type, T1, spop_cx_abs>& in)
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{
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arma_debug_sigprint();
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out.init_xform_mt(in.m, priv::functor_cx_abs());
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}
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namespace priv
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{
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struct functor_arg
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{
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template<typename eT>
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arma_inline eT operator()(const eT val) const { return arma_arg<eT>::eval(val); }
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};
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}
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template<typename T1>
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inline
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void
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spop_arg::apply(SpMat<typename T1::elem_type>& out, const SpOp<T1,spop_arg>& in)
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{
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arma_debug_sigprint();
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out.init_xform(in.m, priv::functor_arg());
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}
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namespace priv
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{
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struct functor_cx_arg
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{
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template<typename T>
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arma_inline T operator()(const std::complex<T>& val) const { return std::arg(val); }
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};
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}
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template<typename T1>
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inline
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void
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spop_cx_arg::apply(SpMat<typename T1::pod_type>& out, const mtSpOp<typename T1::pod_type, T1, spop_cx_arg>& in)
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{
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arma_debug_sigprint();
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out.init_xform_mt(in.m, priv::functor_cx_arg());
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}
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namespace priv
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{
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struct functor_real
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{
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template<typename T>
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arma_inline T operator()(const std::complex<T>& val) const { return val.real(); }
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};
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}
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template<typename T1>
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inline
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void
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spop_real::apply(SpMat<typename T1::pod_type>& out, const mtSpOp<typename T1::pod_type, T1, spop_real>& in)
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{
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arma_debug_sigprint();
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out.init_xform_mt(in.m, priv::functor_real());
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}
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namespace priv
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{
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struct functor_imag
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{
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template<typename eT>
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arma_inline eT operator()(const eT ) const { return eT(0); }
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template<typename T>
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arma_inline T operator()(const std::complex<T>& val) const { return val.imag(); }
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};
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}
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template<typename T1>
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inline
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void
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spop_imag::apply(SpMat<typename T1::pod_type>& out, const mtSpOp<typename T1::pod_type, T1, spop_imag>& in)
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{
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arma_debug_sigprint();
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if(is_cx<typename T1::elem_type>::no)
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{
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const SpProxy<T1> P(in.m);
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out.zeros(P.get_n_rows(), P.get_n_cols());
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}
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else
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{
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out.init_xform_mt(in.m, priv::functor_imag());
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}
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}
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namespace priv
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{
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struct functor_conj
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{
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template<typename eT>
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arma_inline eT operator()(const eT val) const { return eop_aux::conj(val); }
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};
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}
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template<typename T1>
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inline
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void
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spop_conj::apply(SpMat<typename T1::elem_type>& out, const SpOp<T1,spop_conj>& in)
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{
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arma_debug_sigprint();
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out.init_xform(in.m, priv::functor_conj());
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}
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template<typename T1>
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inline
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void
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spop_repelem::apply(SpMat<typename T1::elem_type>& out, const SpOp<T1, spop_repelem>& in)
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{
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arma_debug_sigprint();
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typedef typename T1::elem_type eT;
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const unwrap_spmat<T1> U(in.m);
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const SpMat<eT>& X = U.M;
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const uword copies_per_row = in.aux_uword_a;
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const uword copies_per_col = in.aux_uword_b;
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const uword out_n_rows = X.n_rows * copies_per_row;
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const uword out_n_cols = X.n_cols * copies_per_col;
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const uword out_nnz = X.n_nonzero * copies_per_row * copies_per_col;
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if( (out_n_rows > 0) && (out_n_cols > 0) && (out_nnz > 0) )
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{
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Mat<uword> locs(2, out_nnz, arma_nozeros_indicator());
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Col<eT> vals( out_nnz, arma_nozeros_indicator());
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uword* locs_mem = locs.memptr();
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eT* vals_mem = vals.memptr();
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typename SpMat<eT>::const_iterator X_it = X.begin();
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typename SpMat<eT>::const_iterator X_end = X.end();
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for(; X_it != X_end; ++X_it)
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{
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const uword col_base = copies_per_col * X_it.col();
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const uword row_base = copies_per_row * X_it.row();
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const eT X_val = (*X_it);
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for(uword cols = 0; cols < copies_per_col; cols++)
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for(uword rows = 0; rows < copies_per_row; rows++)
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{
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(*locs_mem) = row_base + rows; ++locs_mem;
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(*locs_mem) = col_base + cols; ++locs_mem;
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(*vals_mem) = X_val; ++vals_mem;
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}
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}
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out = SpMat<eT>(locs, vals, out_n_rows, out_n_cols);
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}
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else
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{
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out.zeros(out_n_rows, out_n_cols);
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}
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}
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template<typename T1>
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inline
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void
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spop_reshape::apply(SpMat<typename T1::elem_type>& out, const SpOp<T1, spop_reshape>& in)
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{
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arma_debug_sigprint();
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out = in.m;
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out.reshape(in.aux_uword_a, in.aux_uword_b);
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}
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template<typename T1>
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inline
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void
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spop_resize::apply(SpMat<typename T1::elem_type>& out, const SpOp<T1, spop_resize>& in)
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{
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arma_debug_sigprint();
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out = in.m;
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out.resize(in.aux_uword_a, in.aux_uword_b);
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}
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namespace priv
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{
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struct functor_floor
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{
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template<typename eT>
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arma_inline eT operator()(const eT val) const { return eop_aux::floor(val); }
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};
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}
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template<typename T1>
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inline
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void
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spop_floor::apply(SpMat<typename T1::elem_type>& out, const SpOp<T1,spop_floor>& in)
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{
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arma_debug_sigprint();
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out.init_xform(in.m, priv::functor_floor());
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}
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namespace priv
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{
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struct functor_ceil
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{
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template<typename eT>
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arma_inline eT operator()(const eT val) const { return eop_aux::ceil(val); }
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};
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}
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template<typename T1>
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inline
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void
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spop_ceil::apply(SpMat<typename T1::elem_type>& out, const SpOp<T1,spop_ceil>& in)
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{
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arma_debug_sigprint();
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out.init_xform(in.m, priv::functor_ceil());
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}
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namespace priv
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{
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struct functor_round
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{
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template<typename eT>
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arma_inline eT operator()(const eT val) const { return eop_aux::round(val); }
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};
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}
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template<typename T1>
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inline
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void
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spop_round::apply(SpMat<typename T1::elem_type>& out, const SpOp<T1,spop_round>& in)
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{
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arma_debug_sigprint();
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out.init_xform(in.m, priv::functor_round());
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}
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namespace priv
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{
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struct functor_trunc
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{
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template<typename eT>
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arma_inline eT operator()(const eT val) const { return eop_aux::trunc(val); }
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};
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}
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template<typename T1>
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inline
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void
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spop_trunc::apply(SpMat<typename T1::elem_type>& out, const SpOp<T1,spop_trunc>& in)
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{
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arma_debug_sigprint();
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out.init_xform(in.m, priv::functor_trunc());
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}
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namespace priv
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{
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struct functor_sign
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{
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template<typename eT>
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arma_inline eT operator()(const eT val) const { return arma_sign(val); }
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};
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}
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template<typename T1>
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inline
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void
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spop_sign::apply(SpMat<typename T1::elem_type>& out, const SpOp<T1,spop_sign>& in)
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{
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arma_debug_sigprint();
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out.init_xform(in.m, priv::functor_sign());
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}
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template<typename T1>
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inline
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void
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spop_flipud::apply(SpMat<typename T1::elem_type>& out, const SpOp<T1,spop_flipud>& in)
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{
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arma_debug_sigprint();
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out = reverse(in.m, 0);
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}
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template<typename T1>
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inline
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void
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spop_fliplr::apply(SpMat<typename T1::elem_type>& out, const SpOp<T1,spop_fliplr>& in)
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{
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arma_debug_sigprint();
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out = reverse(in.m, 1);
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}
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template<typename eT, typename T1>
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inline
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void
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spop_replace::apply(SpMat<eT>& out, const mtSpOp<eT, T1, spop_replace>& in)
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{
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arma_debug_sigprint();
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const eT old_val = in.aux;
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const eT new_val = in.aux_out_eT;
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out = in.m;
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out.replace(old_val, new_val);
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}
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//! @}
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