11#ifndef EIGEN_FFT_MODULE_H
12#define EIGEN_FFT_MODULE_H
17#include "../../Eigen/Core"
104#include "../../Eigen/src/Core/util/DisableStupidWarnings.h"
108#ifdef EIGEN_FFTW_DEFAULT
111#include "src/FFT/fftw_impl.h"
114struct default_fft_impl :
public internal::fftw_impl<T> {};
116#elif defined EIGEN_MKL_DEFAULT
118#include "src/FFT/imklfft_impl.h"
121struct default_fft_impl :
public internal::imklfft::imklfft_impl<T> {};
123#elif defined EIGEN_POCKETFFT_DEFAULT
125#include <pocketfft_hdronly.h>
126#include "src/FFT/pocketfft_impl.h"
129struct default_fft_impl :
public internal::pocketfft_impl<T> {};
131#elif defined EIGEN_DUCCFFT_DEFAULT
132#include <ducc0/fft/fft.h>
133#include <ducc0/infra/string_utils.h>
134#include <ducc0/fft/fftnd_impl.h>
135#include "src/FFT/duccfft_impl.h"
138struct default_fft_impl :
public internal::duccfft_impl<T> {};
142#include "src/FFT/kissfft_impl.h"
145struct default_fft_impl :
public internal::kissfft_impl<T> {};
154template <
typename T_SrcMat,
typename T_FftIfc>
156template <
typename T_SrcMat,
typename T_FftIfc>
160template <
typename T_SrcMat,
typename T_FftIfc>
161struct traits<fft_fwd_proxy<T_SrcMat, T_FftIfc> > {
162 typedef typename T_SrcMat::PlainObject ReturnType;
164template <
typename T_SrcMat,
typename T_FftIfc>
165struct traits<fft_inv_proxy<T_SrcMat, T_FftIfc> > {
166 typedef typename T_SrcMat::PlainObject ReturnType;
170template <
typename T_SrcMat,
typename T_FftIfc>
171struct fft_fwd_proxy :
public ReturnByValue<fft_fwd_proxy<T_SrcMat, T_FftIfc> > {
172 typedef Eigen::Index Index;
174 fft_fwd_proxy(
const T_SrcMat& src, T_FftIfc& fft, Index nfft) : m_src(src), m_ifc(fft), m_nfft(nfft) {}
176 template <
typename T_DestMat>
177 void evalTo(T_DestMat& dst)
const;
179 Index rows()
const {
return m_src.rows(); }
180 Index cols()
const {
return m_src.cols(); }
183 const T_SrcMat& m_src;
188template <
typename T_SrcMat,
typename T_FftIfc>
189struct fft_inv_proxy :
public ReturnByValue<fft_inv_proxy<T_SrcMat, T_FftIfc> > {
190 typedef Eigen::Index Index;
192 fft_inv_proxy(
const T_SrcMat& src, T_FftIfc& fft, Index nfft) : m_src(src), m_ifc(fft), m_nfft(nfft) {}
194 template <
typename T_DestMat>
195 void evalTo(T_DestMat& dst)
const;
197 Index rows()
const {
return m_src.rows(); }
198 Index cols()
const {
return m_src.cols(); }
201 const T_SrcMat& m_src;
211template <
typename Derived>
212struct fft_accepts_as_vector {
213 static constexpr bool value = bool(Derived::IsVectorAtCompileTime) || int(Derived::RowsAtCompileTime) == Dynamic ||
214 int(Derived::ColsAtCompileTime) == Dynamic;
220template <
typename Derived>
221EIGEN_STRONG_INLINE Index fft_linear_stride(
const DenseBase<Derived>& x) {
222 return x.rows() == 1 ? x.derived().colStride() : x.derived().rowStride();
228template <
typename Derived>
229EIGEN_STRONG_INLINE
void fft_resize_as_vector(DenseBase<Derived>& dst, Index size,
bool source_is_row) {
232 if ((dst.rows() == 1 && dst.cols() == size) || (dst.cols() == 1 && dst.rows() == size))
return;
234 constexpr int Rows = int(Derived::RowsAtCompileTime);
235 constexpr int Cols = int(Derived::ColsAtCompileTime);
236 const bool row = Rows == 1 ? true
238 : Cols != Dynamic ? true
239 : Rows != Dynamic ? false
241 dst.derived().resize(row ? 1 : size, row ? size : 1);
246#define EIGEN_STATIC_ASSERT_FFT_VECTOR(TYPE) \
247 EIGEN_STATIC_ASSERT(internal::fft_accepts_as_vector<TYPE>::value, YOU_TRIED_CALLING_A_VECTOR_METHOD_ON_A_MATRIX)
249template <
typename T_Scalar,
typename T_Impl = default_fft_impl<T_Scalar> >
252 typedef T_Impl impl_type;
253 typedef Eigen::Index Index;
254 typedef typename impl_type::Scalar Scalar;
255 typedef typename impl_type::Complex Complex;
258 static constexpr Flag Default = 0;
259 static constexpr Flag Unscaled = 1;
260 static constexpr Flag HalfSpectrum = 2;
261 static constexpr Flag Speedy = 32767;
263 FFT(
const impl_type& impl = impl_type(), Flag flags = Default) : m_impl(impl), m_flag(flags) {
264 eigen_assert((flags == Default || flags == Unscaled || flags == HalfSpectrum || flags == Speedy) &&
265 "invalid flags argument");
268 inline bool HasFlag(Flag f)
const {
return (m_flag & (
int)f) == f; }
270 inline void SetFlag(Flag f) { m_flag |= (int)f; }
272 inline void ClearFlag(Flag f) { m_flag &= (~(int)f); }
274 inline void fwd(Complex* dst,
const Scalar* src, Index nfft) {
275 m_impl.fwd(dst, src,
static_cast<int>(nfft));
276 if (HasFlag(HalfSpectrum) ==
false) ReflectSpectrum(dst, nfft);
279 inline void fwd(Complex* dst,
const Complex* src, Index nfft) { m_impl.fwd(dst, src,
static_cast<int>(nfft)); }
281#if defined EIGEN_FFTW_DEFAULT || defined EIGEN_POCKETFFT_DEFAULT || defined EIGEN_DUCCFFT_DEFAULT || \
282 defined EIGEN_MKL_DEFAULT
283 inline void fwd2(Complex* dst,
const Complex* src,
int n0,
int n1) { m_impl.fwd2(dst, src, n0, n1); }
286 template <
typename Input_>
287 inline void fwd(std::vector<Complex>& dst,
const std::vector<Input_>& src) {
288 EIGEN_IF_CONSTEXPR (NumTraits<Input_>::IsComplex == 0) {
289 if (HasFlag(HalfSpectrum))
290 dst.resize((src.size() >> 1) + 1);
292 dst.resize(src.size());
294 dst.resize(src.size());
296 fwd(&dst[0], &src[0], src.size());
299 template <
typename InputDerived,
typename ComplexDerived>
300 inline void fwd(DenseBase<ComplexDerived>& dst,
const DenseBase<InputDerived>& src, Index nfft = -1) {
301 typedef typename ComplexDerived::Scalar dst_type;
302 typedef typename InputDerived::Scalar src_type;
303 EIGEN_STATIC_ASSERT_FFT_VECTOR(InputDerived)
304 EIGEN_STATIC_ASSERT_FFT_VECTOR(ComplexDerived)
305 EIGEN_STATIC_ASSERT_SAME_VECTOR_SIZE(ComplexDerived, InputDerived)
307 (std::is_same<dst_type, Complex>::value),
308 YOU_MIXED_DIFFERENT_NUMERIC_TYPES__YOU_NEED_TO_USE_THE_CAST_METHOD_OF_MATRIXBASE_TO_CAST_NUMERIC_TYPES_EXPLICITLY)
309 EIGEN_STATIC_ASSERT(
int(InputDerived::Flags) &
int(ComplexDerived::Flags) &
DirectAccessBit,
310 THIS_METHOD_IS_ONLY_FOR_EXPRESSIONS_WITH_DIRECT_MEMORY_ACCESS_SUCH_AS_MAP_OR_PLAIN_MATRICES)
311 eigen_assert((src.rows() == 1 || src.cols() == 1) &&
"the input of an FFT must be one-dimensional");
313 if (nfft < 1) nfft = src.size();
315 Index dst_size = nfft;
316 EIGEN_IF_CONSTEXPR (NumTraits<src_type>::IsComplex == 0) {
317 if (HasFlag(HalfSpectrum)) {
318 dst_size = (nfft >> 1) + 1;
321 internal::fft_resize_as_vector(dst, dst_size, src.rows() == 1);
323 if (internal::fft_linear_stride(src) != 1 || src.size() < nfft) {
324 Matrix<src_type, 1, Dynamic> tmp(1, nfft);
325 const Index copy_size = (std::min)(src.size(), nfft);
327 tmp.head(copy_size) = src.reshaped().head(copy_size);
329 if (copy_size < nfft) tmp.tail(nfft - copy_size).setZero();
330 if (internal::fft_linear_stride(dst) != 1) {
331 Matrix<dst_type, 1, Dynamic> out(1, dst_size);
332 fwd(out.data(), tmp.data(), nfft);
333 dst.derived() = out.reshaped(dst.rows(), dst.cols());
335 fwd(dst.derived().data(), tmp.data(), nfft);
338 if (internal::fft_linear_stride(dst) != 1) {
339 Matrix<dst_type, 1, Dynamic> out(1, dst_size);
340 fwd(out.data(), src.derived().data(), nfft);
341 dst.derived() = out.reshaped(dst.rows(), dst.cols());
343 fwd(dst.derived().data(), src.derived().data(), nfft);
348 template <
typename InputDerived>
349 inline fft_fwd_proxy<DenseBase<InputDerived>, FFT<T_Scalar, T_Impl> > fwd(
const DenseBase<InputDerived>& src,
351 return fft_fwd_proxy<DenseBase<InputDerived>, FFT<T_Scalar, T_Impl> >(src, *
this, nfft);
354 template <
typename InputDerived>
355 inline fft_inv_proxy<DenseBase<InputDerived>, FFT<T_Scalar, T_Impl> > inv(
const DenseBase<InputDerived>& src,
357 return fft_inv_proxy<DenseBase<InputDerived>, FFT<T_Scalar, T_Impl> >(src, *
this, nfft);
360 inline void inv(Complex* dst,
const Complex* src, Index nfft) {
361 m_impl.inv(dst, src,
static_cast<int>(nfft));
362 if (HasFlag(Unscaled) ==
false) scale(dst, Scalar(1. / nfft), nfft);
365 inline void inv(Scalar* dst,
const Complex* src, Index nfft) {
366 m_impl.inv(dst, src,
static_cast<int>(nfft));
367 if (HasFlag(Unscaled) ==
false) scale(dst, Scalar(1. / nfft), nfft);
370 template <
typename OutputDerived,
typename ComplexDerived>
371 inline void inv(DenseBase<OutputDerived>& dst,
const DenseBase<ComplexDerived>& src, Index nfft = -1) {
372 typedef typename ComplexDerived::Scalar src_type;
373 typedef typename ComplexDerived::RealScalar real_type;
374 typedef typename OutputDerived::Scalar dst_type;
375 const bool realfft = (NumTraits<dst_type>::IsComplex == 0);
376 EIGEN_STATIC_ASSERT_FFT_VECTOR(OutputDerived)
377 EIGEN_STATIC_ASSERT_FFT_VECTOR(ComplexDerived)
378 EIGEN_STATIC_ASSERT_SAME_VECTOR_SIZE(ComplexDerived, OutputDerived)
380 (std::is_same<src_type, Complex>::value),
381 YOU_MIXED_DIFFERENT_NUMERIC_TYPES__YOU_NEED_TO_USE_THE_CAST_METHOD_OF_MATRIXBASE_TO_CAST_NUMERIC_TYPES_EXPLICITLY)
382 EIGEN_STATIC_ASSERT(
int(OutputDerived::Flags) &
int(ComplexDerived::Flags) &
DirectAccessBit,
383 THIS_METHOD_IS_ONLY_FOR_EXPRESSIONS_WITH_DIRECT_MEMORY_ACCESS_SUCH_AS_MAP_OR_PLAIN_MATRICES)
384 eigen_assert((src.rows() == 1 || src.cols() == 1) &&
"the input of an FFT must be one-dimensional");
387 if (realfft && HasFlag(HalfSpectrum))
388 nfft = 2 * (src.size() - 1);
392 internal::fft_resize_as_vector(dst, nfft, src.rows() == 1);
395 Index resize_input = (realfft && HasFlag(HalfSpectrum)) ? ((nfft / 2 + 1) - src.size()) : (nfft - src.size());
397 if (internal::fft_linear_stride(src) != 1 || resize_input) {
399 const auto src_lin = src.reshaped();
400 Matrix<src_type, 1, Dynamic> tmp;
402 size_t ncopy = (std::min)(src.size(), src.size() + resize_input);
403 tmp.setZero(src.size() + resize_input);
404 if (realfft && HasFlag(HalfSpectrum)) {
406 tmp.head(ncopy) = src_lin.head(ncopy);
407 tmp(ncopy - 1) = real(tmp(ncopy - 1));
410 nhead = 1 + ncopy / 2 - 1;
411 ntail = ncopy / 2 - 1;
412 tmp.head(nhead) = src_lin.head(nhead);
413 tmp.tail(ntail) = src_lin.tail(ntail);
416 tmp(nhead) = (src_lin(nfft / 2) + src_lin(src.size() - nfft / 2)) * real_type(.5);
418 tmp(nhead) = src_lin(nhead) * real_type(.5);
419 tmp(tmp.size() - nhead) = tmp(nhead);
426 if (internal::fft_linear_stride(dst) != 1) {
427 Matrix<dst_type, 1, Dynamic> out(1, nfft);
428 inv(out.data(), tmp.data(), nfft);
429 dst.derived() = out.reshaped(dst.rows(), dst.cols());
431 inv(dst.derived().data(), tmp.data(), nfft);
434 if (internal::fft_linear_stride(dst) != 1) {
435 Matrix<dst_type, 1, Dynamic> out(1, nfft);
436 inv(out.data(), src.derived().data(), nfft);
437 dst.derived() = out.reshaped(dst.rows(), dst.cols());
439 inv(dst.derived().data(), src.derived().data(), nfft);
444 template <
typename Output_>
445 inline void inv(std::vector<Output_>& dst,
const std::vector<Complex>& src, Index nfft = -1) {
447 nfft = (NumTraits<Output_>::IsComplex == 0 && HasFlag(HalfSpectrum)) ? 2 * (src.size() - 1) : src.size();
449 inv(&dst[0], &src[0], nfft);
452#if defined EIGEN_FFTW_DEFAULT || defined EIGEN_POCKETFFT_DEFAULT || defined EIGEN_DUCCFFT_DEFAULT || \
453 defined EIGEN_MKL_DEFAULT
454 inline void inv2(Complex* dst,
const Complex* src,
int n0,
int n1) {
455 m_impl.inv2(dst, src, n0, n1);
456 if (HasFlag(Unscaled) ==
false) scale(dst, Scalar(1) / (n0 * n1), n0 * n1);
460 inline impl_type& impl() {
return m_impl; }
463 template <
typename T_Data>
464 inline void scale(T_Data* x, Scalar s, Index nx) {
465 for (
int k = 0; k < nx; ++k) *x++ *= s;
468 inline void ReflectSpectrum(Complex* freq, Index nfft) {
470 Index nhbins = (nfft >> 1) + 1;
471 for (Index k = nhbins; k < nfft; ++k) freq[k] = conj(freq[nfft - k]);
478template <
typename T_SrcMat,
typename T_FftIfc>
479template <
typename T_DestMat>
480inline void fft_fwd_proxy<T_SrcMat, T_FftIfc>::evalTo(T_DestMat& dst)
const {
481 m_ifc.fwd(dst, m_src, m_nfft);
484template <
typename T_SrcMat,
typename T_FftIfc>
485template <
typename T_DestMat>
486inline void fft_inv_proxy<T_SrcMat, T_FftIfc>::evalTo(T_DestMat& dst)
const {
487 m_ifc.inv(dst, m_src, m_nfft);
492#include "../../Eigen/src/Core/util/ReenableStupidWarnings.h"
constexpr unsigned int DirectAccessBit
Namespace containing all symbols from the Eigen library.