16#if __cplusplus > 201402L
17#define R__RVEC_NODISCARD [[nodiscard]]
19#define R__RVEC_NODISCARD
24 #ifndef _USE_MATH_DEFINES
25 #define _USE_MATH_DEFINES
29 #undef _USE_MATH_DEFINES
31 #define _VECOPS_USE_EXTERN_TEMPLATES false
33 #define _VECOPS_USE_EXTERN_TEMPLATES true
56#include <vdt/vdtMath.h>
81constexpr bool All(
const bool *vals, std::size_t
size)
83 for (
auto i = 0u; i <
size; ++i)
89template <
typename... T>
92 constexpr const auto nArgs =
sizeof...(T);
93 const std::size_t sizes[] = {vs.
size()...};
95 for (
auto i = 1UL; i < nArgs; i++) {
96 if (sizes[0] == sizes[i])
99 msg +=
": input RVec instances have different lengths!";
100 throw std::runtime_error(msg);
106template <
typename F,
typename... RVecs>
112 for (
auto i = 0UL; i <
size; i++)
113 ret[i] =
f(vs[i]...);
118template <
typename Tuple_t, std::size_t... Is>
120 ->
decltype(
MapImpl(std::get<std::tuple_size<Tuple_t>::value - 1>(t), std::get<Is>(t)...))
122 constexpr const auto tupleSizeM1 = std::tuple_size<Tuple_t>::value - 1;
123 return MapImpl(std::get<tupleSizeM1>(t), std::get<Is>(t)...);
155 static constexpr size_t SizeTypeMax() {
return std::numeric_limits<Size_T>::max(); }
163 void grow_pod(
void *FirstEl,
size_t MinSize,
size_t TSize);
167 static void report_size_overflow(
size_t MinSize);
170 static void report_at_maximum_capacity();
193 throw std::runtime_error(
"Setting size to a value greater than capacity.");
216 return const_cast<void *
>(
reinterpret_cast<const void *
>(
reinterpret_cast<const char *
>(
this) +
289 throw std::runtime_error(
"`front` called on an empty RVec");
297 throw std::runtime_error(
"`front` called on an empty RVec");
305 throw std::runtime_error(
"`back` called on an empty RVec");
313 throw std::runtime_error(
"`back` called on an empty RVec");
327template <
typename T,
bool = (std::is_trivially_copy_constructible<T>::value) &&
328 (std::is_trivially_move_constructible<T>::value) &&
329 std::is_trivially_destructible<T>::value>
344 template <
typename It1,
typename It2>
347 std::uninitialized_copy(std::make_move_iterator(
I), std::make_move_iterator(E), Dest);
352 template <
typename It1,
typename It2>
355 std::uninitialized_copy(
I, E, Dest);
368 ::new ((
void *)this->
end()) T(Elt);
376 ::new ((
void *)this->
end()) T(::std::move(Elt));
388template <
typename T,
bool TriviallyCopyable>
393 if (MinSize > this->SizeTypeMax())
394 this->report_size_overflow(MinSize);
400 if (this->capacity() == this->SizeTypeMax())
401 this->report_at_maximum_capacity();
404 size_t NewCapacity = size_t(
NextPowerOf2(this->capacity() + 2));
405 NewCapacity = std::min(std::max(NewCapacity, MinSize), this->SizeTypeMax());
406 T *NewElts =
static_cast<T *
>(
malloc(NewCapacity *
sizeof(T)));
410 this->uninitialized_move(this->begin(), this->end(), NewElts);
414 destroy_range(this->begin(), this->end());
417 if (!this->isSmall())
421 this->fBeginX = NewElts;
422 this->fCapacity = NewCapacity;
441 template <
typename It1,
typename It2>
450 template <
typename It1,
typename It2>
454 std::uninitialized_copy(
I, E, Dest);
459 template <
typename T1,
typename T2>
462 typename std::enable_if<std::is_same<
typename std::remove_const<T1>::type,
T2>
::value>
::type * =
nullptr)
469 memcpy(
reinterpret_cast<void *
>(Dest),
I, (E -
I) *
sizeof(T));
489 memcpy(
reinterpret_cast<void *
>(this->
end()), &Elt,
sizeof(T));
498template <
typename T,
unsigned N>
526template <
typename ForwardIt>
529#if __cplusplus < 201703L
530 for (; first != last; ++first)
531 new (
static_cast<void *
>(std::addressof(*first)))
typename std::iterator_traits<ForwardIt>::value_type();
533 std::uninitialized_value_construct(first, last);
599 }
else if (
N > this->
size()) {
602 for (
auto I = this->
end(), E = this->
begin() +
N;
I != E; ++
I)
614 }
else if (
N > this->
size()) {
617 std::uninitialized_fill(this->
end(), this->
begin() +
N, NV);
630 if (this->
size() < NumItems) {
631 throw std::runtime_error(
"Popping back more elements than those available.");
640 T Result = ::std::move(this->
back());
648 template <
typename in_iter,
649 typename =
typename std::enable_if<std::is_convertible<
650 typename std::iterator_traits<in_iter>::iterator_category, std::input_iterator_tag>
::value>
::type>
651 void append(in_iter in_start, in_iter in_end)
653 size_type NumInputs = std::distance(in_start, in_end);
655 this->
grow(this->
size() + NumInputs);
665 this->
grow(this->
size() + NumInputs);
667 std::uninitialized_fill_n(this->
end(), NumInputs, Elt);
671 void append(std::initializer_list<T> IL) {
append(IL.begin(), IL.end()); }
683 std::uninitialized_fill(this->
begin(), this->
end(), Elt);
686 template <
typename in_iter,
687 typename =
typename std::enable_if<std::is_convertible<
688 typename std::iterator_traits<in_iter>::iterator_category, std::input_iterator_tag>
::value>
::type>
689 void assign(in_iter in_start, in_iter in_end)
707 throw std::runtime_error(
"The iterator passed to `erase` is out of bounds.");
712 std::move(
I + 1, this->
end(),
I);
724 if (S < this->
begin() || E > this->
end() || S > E) {
725 throw std::runtime_error(
"Invalid start/end pair passed to `erase` (out of bounds or start > end).");
740 if (
I == this->
end()) {
742 return this->
end() - 1;
746 throw std::runtime_error(
"The iterator passed to `insert` is out of bounds.");
750 size_t EltNo =
I - this->
begin();
752 I = this->begin() + EltNo;
755 ::new ((
void *)this->
end()) T(::std::move(this->
back()));
757 std::move_backward(
I, this->
end() - 1, this->
end());
763 if (
I <= EltPtr && EltPtr < this->
end())
766 *
I = ::std::move(*EltPtr);
772 if (
I == this->
end()) {
774 return this->
end() - 1;
778 throw std::runtime_error(
"The iterator passed to `insert` is out of bounds.");
782 size_t EltNo =
I - this->
begin();
784 I = this->begin() + EltNo;
786 ::new ((
void *)this->
end()) T(std::move(this->
back()));
788 std::move_backward(
I, this->
end() - 1, this->
end());
793 const T *EltPtr = &Elt;
794 if (
I <= EltPtr && EltPtr < this->
end())
804 size_t InsertElt =
I - this->
begin();
806 if (
I == this->
end()) {
808 return this->begin() + InsertElt;
812 throw std::runtime_error(
"The iterator passed to `insert` is out of bounds.");
819 I = this->begin() + InsertElt;
825 if (
size_t(this->
end() -
I) >= NumToInsert) {
826 T *OldEnd = this->
end();
827 append(std::move_iterator<iterator>(this->
end() - NumToInsert), std::move_iterator<iterator>(this->
end()));
830 std::move_backward(
I, OldEnd - NumToInsert, OldEnd);
832 std::fill_n(
I, NumToInsert, Elt);
840 T *OldEnd = this->
end();
842 size_t NumOverwritten = OldEnd -
I;
846 std::fill_n(
I, NumOverwritten, Elt);
849 std::uninitialized_fill_n(OldEnd, NumToInsert - NumOverwritten, Elt);
853 template <
typename ItTy,
854 typename =
typename std::enable_if<std::is_convertible<
855 typename std::iterator_traits<ItTy>::iterator_category, std::input_iterator_tag>
::value>
::type>
859 size_t InsertElt =
I - this->
begin();
861 if (
I == this->
end()) {
863 return this->begin() + InsertElt;
867 throw std::runtime_error(
"The iterator passed to `insert` is out of bounds.");
870 size_t NumToInsert = std::distance(From, To);
876 I = this->begin() + InsertElt;
882 if (
size_t(this->
end() -
I) >= NumToInsert) {
883 T *OldEnd = this->
end();
884 append(std::move_iterator<iterator>(this->
end() - NumToInsert), std::move_iterator<iterator>(this->
end()));
887 std::move_backward(
I, OldEnd - NumToInsert, OldEnd);
889 std::copy(From, To,
I);
897 T *OldEnd = this->
end();
899 size_t NumOverwritten = OldEnd -
I;
903 for (T *J =
I; NumOverwritten > 0; --NumOverwritten) {
916 template <
typename... ArgTypes>
921 ::new ((
void *)this->
end()) T(std::forward<ArgTypes>(Args)...);
949 temp = std::move(RHS);
950 RHS = std::move(*
this);
951 *
this = std::move(temp);
953 }
else if (RHS.
isSmall() && !this->Owns()) {
955 temp = std::move(*
this);
956 *
this = std::move(RHS);
957 RHS = std::move(temp);
961 if (RHS.
size() > this->capacity())
967 size_t NumShared = this->
size();
968 if (NumShared > RHS.
size())
969 NumShared = RHS.
size();
970 for (
size_type i = 0; i != NumShared; ++i)
971 std::iter_swap(this->
begin() + i, RHS.
begin() + i);
975 size_t EltDiff = this->
size() - RHS.
size();
981 }
else if (RHS.
size() > this->size()) {
982 size_t EltDiff = RHS.
size() - this->
size();
1000 size_t RHSSize = RHS.
size();
1001 size_t CurSize = this->
size();
1002 if (CurSize >= RHSSize) {
1006 NewEnd = std::copy(RHS.
begin(), RHS.
begin() + RHSSize, this->begin());
1008 NewEnd = this->
begin();
1030 this->
grow(RHSSize);
1031 }
else if (CurSize) {
1033 std::copy(RHS.
begin(), RHS.
begin() + CurSize, this->begin());
1044template <
typename T>
1052 if (!RHS.isSmall()) {
1059 this->
fSize = RHS.fSize;
1067 size_t RHSSize = RHS.size();
1068 size_t CurSize = this->
size();
1069 if (CurSize >= RHSSize) {
1073 NewEnd = std::move(RHS.begin(), RHS.end(), NewEnd);
1098 this->
grow(RHSSize);
1099 }
else if (CurSize) {
1101 std::move(RHS.begin(), RHS.begin() + CurSize, this->begin());
1114template <
typename T>
1120template <
typename T>
1147template <
typename T,
unsigned int N>
1170 template <
typename ItTy,
1171 typename =
typename std::enable_if<std::is_convertible<
1172 typename std::iterator_traits<ItTy>::iterator_category, std::input_iterator_tag>
::value>
::type>
1240 return begin()[idx];
1245 return begin()[idx];
1248 template <typename V, unsigned M, typename = std::enable_if<std::is_convertible<V, bool>::value>>
1253 if (
n != this->
size()) {
1254 std::string msg =
"Cannot index RVecN of size " + std::to_string(this->
size()) +
1255 " with condition vector of different size (" + std::to_string(
n) +
").";
1256 throw std::runtime_error(msg);
1260 for (
auto c : conds)
1274 template <typename U, unsigned M, typename = std::enable_if<std::is_convertible<T, U>::value>>
1283 std::string msg =
"RVecN::at: size is " + std::to_string(this->
fSize) +
" but out-of-bounds index " +
1284 std::to_string(pos) +
" was requested.";
1285 throw std::out_of_range(msg);
1293 std::string msg =
"RVecN::at: size is " + std::to_string(this->
fSize) +
" but out-of-bounds index " +
1294 std::to_string(pos) +
" was requested.";
1295 throw std::out_of_range(msg);
1523template <
typename T>
1524class R__CLING_PTRCHECK(off)
RVec :
public RVecN<T, Internal::VecOps::RVecInlineStorageSize<T>::value> {
1543 template <
typename ItTy,
1544 typename =
typename std::enable_if<std::is_convertible<
1545 typename std::iterator_traits<ItTy>::iterator_category, std::input_iterator_tag>
::value>
::type>
1570 template <
unsigned N>
1573 template <
unsigned N>
1581 template <typename U, typename = std::enable_if<std::is_convertible<T, U>::value>>
1587 using SuperClass::operator[];
1589 template <typename V, typename = std::enable_if<std::is_convertible<V, bool>::value>>
1592 return RVec(SuperClass::operator[](conds));
1602template <
typename T,
unsigned N>
1605 return X.capacity_in_bytes();
1611#define RVEC_UNARY_OPERATOR(OP) \
1612template <typename T> \
1613RVec<T> operator OP(const RVec<T> &v) \
1616 for (auto &x : ret) \
1625#undef RVEC_UNARY_OPERATOR
1631#define ERROR_MESSAGE(OP) \
1632 "Cannot call operator " #OP " on vectors of different sizes."
1634#define RVEC_BINARY_OPERATOR(OP) \
1635template <typename T0, typename T1> \
1636auto operator OP(const RVec<T0> &v, const T1 &y) \
1637 -> RVec<decltype(v[0] OP y)> \
1639 RVec<decltype(v[0] OP y)> ret(v.size()); \
1640 auto op = [&y](const T0 &x) { return x OP y; }; \
1641 std::transform(v.begin(), v.end(), ret.begin(), op); \
1645template <typename T0, typename T1> \
1646auto operator OP(const T0 &x, const RVec<T1> &v) \
1647 -> RVec<decltype(x OP v[0])> \
1649 RVec<decltype(x OP v[0])> ret(v.size()); \
1650 auto op = [&x](const T1 &y) { return x OP y; }; \
1651 std::transform(v.begin(), v.end(), ret.begin(), op); \
1655template <typename T0, typename T1> \
1656auto operator OP(const RVec<T0> &v0, const RVec<T1> &v1) \
1657 -> RVec<decltype(v0[0] OP v1[0])> \
1659 if (v0.size() != v1.size()) \
1660 throw std::runtime_error(ERROR_MESSAGE(OP)); \
1662 RVec<decltype(v0[0] OP v1[0])> ret(v0.size()); \
1663 auto op = [](const T0 &x, const T1 &y) { return x OP y; }; \
1664 std::transform(v0.begin(), v0.end(), v1.begin(), ret.begin(), op); \
1676#undef RVEC_BINARY_OPERATOR
1682#define RVEC_ASSIGNMENT_OPERATOR(OP) \
1683template <typename T0, typename T1> \
1684RVec<T0>& operator OP(RVec<T0> &v, const T1 &y) \
1686 auto op = [&y](T0 &x) { return x OP y; }; \
1687 std::transform(v.begin(), v.end(), v.begin(), op); \
1691template <typename T0, typename T1> \
1692RVec<T0>& operator OP(RVec<T0> &v0, const RVec<T1> &v1) \
1694 if (v0.size() != v1.size()) \
1695 throw std::runtime_error(ERROR_MESSAGE(OP)); \
1697 auto op = [](T0 &x, const T1 &y) { return x OP y; }; \
1698 std::transform(v0.begin(), v0.end(), v1.begin(), v0.begin(), op); \
1712#undef RVEC_ASSIGNMENT_OPERATOR
1718#define RVEC_LOGICAL_OPERATOR(OP) \
1719template <typename T0, typename T1> \
1720auto operator OP(const RVec<T0> &v, const T1 &y) \
1723 RVec<int> ret(v.size()); \
1724 auto op = [y](const T0 &x) -> int { return x OP y; }; \
1725 std::transform(v.begin(), v.end(), ret.begin(), op); \
1729template <typename T0, typename T1> \
1730auto operator OP(const T0 &x, const RVec<T1> &v) \
1733 RVec<int> ret(v.size()); \
1734 auto op = [x](const T1 &y) -> int { return x OP y; }; \
1735 std::transform(v.begin(), v.end(), ret.begin(), op); \
1739template <typename T0, typename T1> \
1740auto operator OP(const RVec<T0> &v0, const RVec<T1> &v1) \
1743 if (v0.size() != v1.size()) \
1744 throw std::runtime_error(ERROR_MESSAGE(OP)); \
1746 RVec<int> ret(v0.size()); \
1747 auto op = [](const T0 &x, const T1 &y) -> int { return x OP y; }; \
1748 std::transform(v0.begin(), v0.end(), v1.begin(), ret.begin(), op); \
1760#undef RVEC_LOGICAL_OPERATOR
1767template <
typename T>
struct PromoteTypeImpl;
1769template <>
struct PromoteTypeImpl<float> {
using Type = float; };
1770template <>
struct PromoteTypeImpl<
double> {
using Type =
double; };
1771template <>
struct PromoteTypeImpl<long
double> {
using Type =
long double; };
1773template <
typename T>
struct PromoteTypeImpl {
using Type = double; };
1775template <
typename T>
1776using PromoteType =
typename PromoteTypeImpl<T>::Type;
1778template <
typename U,
typename V>
1779using PromoteTypes =
decltype(PromoteType<U>() + PromoteType<V>());
1783#define RVEC_UNARY_FUNCTION(NAME, FUNC) \
1784 template <typename T> \
1785 RVec<PromoteType<T>> NAME(const RVec<T> &v) \
1787 RVec<PromoteType<T>> ret(v.size()); \
1788 auto f = [](const T &x) { return FUNC(x); }; \
1789 std::transform(v.begin(), v.end(), ret.begin(), f); \
1793#define RVEC_BINARY_FUNCTION(NAME, FUNC) \
1794 template <typename T0, typename T1> \
1795 RVec<PromoteTypes<T0, T1>> NAME(const T0 &x, const RVec<T1> &v) \
1797 RVec<PromoteTypes<T0, T1>> ret(v.size()); \
1798 auto f = [&x](const T1 &y) { return FUNC(x, y); }; \
1799 std::transform(v.begin(), v.end(), ret.begin(), f); \
1803 template <typename T0, typename T1> \
1804 RVec<PromoteTypes<T0, T1>> NAME(const RVec<T0> &v, const T1 &y) \
1806 RVec<PromoteTypes<T0, T1>> ret(v.size()); \
1807 auto f = [&y](const T0 &x) { return FUNC(x, y); }; \
1808 std::transform(v.begin(), v.end(), ret.begin(), f); \
1812 template <typename T0, typename T1> \
1813 RVec<PromoteTypes<T0, T1>> NAME(const RVec<T0> &v0, const RVec<T1> &v1) \
1815 if (v0.size() != v1.size()) \
1816 throw std::runtime_error(ERROR_MESSAGE(NAME)); \
1818 RVec<PromoteTypes<T0, T1>> ret(v0.size()); \
1819 auto f = [](const T0 &x, const T1 &y) { return FUNC(x, y); }; \
1820 std::transform(v0.begin(), v0.end(), v1.begin(), ret.begin(), f); \
1824#define RVEC_STD_UNARY_FUNCTION(F) RVEC_UNARY_FUNCTION(F, std::F)
1825#define RVEC_STD_BINARY_FUNCTION(F) RVEC_BINARY_FUNCTION(F, std::F)
1872#undef RVEC_STD_UNARY_FUNCTION
1879#define RVEC_VDT_UNARY_FUNCTION(F) RVEC_UNARY_FUNCTION(F, vdt::F)
1881RVEC_VDT_UNARY_FUNCTION(fast_expf)
1882RVEC_VDT_UNARY_FUNCTION(fast_logf)
1883RVEC_VDT_UNARY_FUNCTION(fast_sinf)
1884RVEC_VDT_UNARY_FUNCTION(fast_cosf)
1885RVEC_VDT_UNARY_FUNCTION(fast_tanf)
1886RVEC_VDT_UNARY_FUNCTION(fast_asinf)
1887RVEC_VDT_UNARY_FUNCTION(fast_acosf)
1888RVEC_VDT_UNARY_FUNCTION(fast_atanf)
1890RVEC_VDT_UNARY_FUNCTION(fast_exp)
1891RVEC_VDT_UNARY_FUNCTION(fast_log)
1892RVEC_VDT_UNARY_FUNCTION(fast_sin)
1893RVEC_VDT_UNARY_FUNCTION(fast_cos)
1894RVEC_VDT_UNARY_FUNCTION(fast_tan)
1895RVEC_VDT_UNARY_FUNCTION(fast_asin)
1896RVEC_VDT_UNARY_FUNCTION(fast_acos)
1897RVEC_VDT_UNARY_FUNCTION(fast_atan)
1898#undef RVEC_VDT_UNARY_FUNCTION
1902#undef RVEC_UNARY_FUNCTION
1917template <
typename T,
typename V>
1920 if (
v0.size() !=
v1.size())
1921 throw std::runtime_error(
"Cannot compute inner product of vectors of different sizes");
1922 return std::inner_product(
v0.begin(),
v0.end(),
v1.begin(),
decltype(
v0[0] *
v1[0])(0));
1948template <
typename T>
1951 return std::accumulate(
v.begin(),
v.end(), zero);
1956 return std::accumulate(
v.begin(),
v.end(), zero);
1960template <
typename T>
1963 return std::accumulate(
v.begin(),
v.end(), init, std::multiplies<T>());
1978template <
typename T>
1981 if (
v.empty())
return 0.;
2010template <
typename T,
typename R = T>
2013 if (
v.empty())
return zero;
2014 return Sum(
v, zero) /
v.size();
2027template <
typename T>
2030 return *std::max_element(
v.begin(),
v.end());
2043template <
typename T>
2046 return *std::min_element(
v.begin(),
v.end());
2061template <
typename T>
2064 return std::distance(
v.begin(), std::max_element(
v.begin(),
v.end()));
2079template <
typename T>
2082 return std::distance(
v.begin(), std::min_element(
v.begin(),
v.end()));
2096template <
typename T>
2099 const std::size_t
size =
v.size();
2100 if (
size < std::size_t(2))
return 0.;
2101 T sum_squares(0), squared_sum(0);
2102 auto pred = [&sum_squares, &squared_sum](
const T&
x) {sum_squares+=
x*
x; squared_sum+=
x;};
2103 std::for_each(
v.begin(),
v.end(), pred);
2104 squared_sum *= squared_sum;
2106 return 1. / (dsize - 1.) * (sum_squares - squared_sum / dsize );
2120template <
typename T>
2123 return std::sqrt(
Var(
v));
2144template <
typename... Args>
2157 constexpr auto nArgs =
sizeof...(Args);
2160 "Map: the first N-1 arguments must be RVecs or references to RVecs");
2163 std::make_index_sequence<
sizeof...(args) - 1>());
2176template <
typename T,
typename F>
2179 const auto thisSize =
v.size();
2181 w.reserve(thisSize);
2182 for (
auto &&val :
v) {
2184 w.emplace_back(val);
2199template <
typename T>
2203 if (
static_cast<bool>(
e) ==
true)
2218template <
typename T>
2222 if (
static_cast<bool>(
e) ==
false)
2227template <
typename T>
2244template <
typename T>
2250 std::sort(i.
begin(), i.
end(), [&
v](size_type i1, size_type i2) { return v[i1] < v[i2]; });
2265template <
typename T,
typename Compare>
2272 [&
v, &
c](size_type i1, size_type i2) { return c(v[i1], v[i2]); });
2289template <
typename T>
2295 std::stable_sort(i.
begin(), i.
end(), [&
v](size_type i1, size_type i2) { return v[i1] < v[i2]; });
2312template <
typename T,
typename Compare>
2318 std::stable_sort(i.
begin(), i.
end(), [&
v, &
c](size_type i1, size_type i2) { return c(v[i1], v[i2]); });
2333template <
typename T>
2337 const size_type isize = i.size();
2339 for (size_type k = 0; k < isize; k++)
2345template <
typename T>
2349 const size_type isize = i.size();
2351 for (size_type k = 0; k < isize; k++)
2353 if (i[k] <
v.size() && i[k]>=0){
2376template <
typename T>
2380 const size_type
size =
v.size();
2381 const size_type absn = std::abs(
n);
2383 const auto msg = std::to_string(absn) +
" elements requested from Take but input contains only " +
2384 std::to_string(
size) +
" elements.";
2385 throw std::runtime_error(msg);
2389 for (size_type k = 0; k < absn; k++)
2390 r[k] =
v[
size - absn + k];
2392 for (size_type k = 0; k < absn; k++)
2417template <
typename T>
2421 const size_type
size =
v.size();
2422 const size_type absn = std::abs(
n);
2434 const auto num_to_fill = absn -
size;
2442template <
typename T>
2446 std::sort(idxs.begin(), idxs.end());
2447 idxs.erase(std::unique(idxs.begin(), idxs.end()), idxs.end());
2450 if (
v.size() > idxs.size())
2451 r.reserve(
v.size() - idxs.size());
2453 auto discardIt = idxs.begin();
2455 for (sz_t i = 0u; i <
v.size(); ++i) {
2456 if (discardIt != idxs.end() && i == *discardIt)
2459 r.emplace_back(
v[i]);
2475template <
typename T>
2479 std::reverse(
r.begin(),
r.end());
2496template <
typename T>
2500 std::sort(
r.begin(),
r.end());
2521template <
typename T,
typename Compare>
2525 std::sort(
r.begin(),
r.end(), std::forward<Compare>(
c));
2545template <
typename T>
2549 std::stable_sort(
r.begin(),
r.end());
2581template <
typename T,
typename Compare>
2585 std::stable_sort(
r.begin(),
r.end(), std::forward<Compare>(
c));
2603 using size_type = std::size_t;
2605 r[0].resize(size1*size2);
2606 r[1].resize(size1*size2);
2608 for(size_type i=0; i<size1; i++) {
2609 for(size_type j=0; j<size2; j++) {
2632template <
typename T1,
typename T2>
2657template <
typename T>
2661 const size_type s =
v.size();
2663 throw std::runtime_error(
"Cannot make unique combinations of size " + std::to_string(
n) +
2664 " from vector of size " + std::to_string(s) +
".");
2668 for(size_type k=0; k<s; k++)
2671 const auto innersize = [=] {
2672 size_type inners = s -
n + 1;
2673 for (size_type
m = s -
n + 2;
m <= s; ++
m)
2676 size_type factn = 1;
2677 for (size_type i = 2; i <=
n; ++i)
2685 size_type inneridx = 0;
2686 for (size_type k = 0; k <
n; k++)
2691 bool run_through =
true;
2695 run_through =
false;
2703 for (
long j=i+1; j<(long)
n; j++)
2705 for (size_type k = 0; k <
n; k++)
2721template <
typename T>
2726 const auto size =
v.size();
2728 for(size_type i=0; i<
size; i++) {
2752template <
typename T>
2756 if (!v2_is_sorted) v2_sorted =
Sort(
v2);
2757 const auto v2_begin = v2_is_sorted ?
v2.begin() : v2_sorted.
begin();
2758 const auto v2_end = v2_is_sorted ?
v2.end() : v2_sorted.
end();
2760 const auto size =
v1.size();
2763 for(size_type i=0; i<
size; i++) {
2764 if (std::binary_search(v2_begin, v2_end,
v1[i])) {
2765 r.emplace_back(
v1[i]);
2786template <
typename T>
2790 const size_type
size =
c.size();
2793 for (size_type i=0; i<
size; i++) {
2794 r.emplace_back(
c[i] != 0 ?
v1[i] :
v2[i]);
2814template <
typename T>
2818 const size_type
size =
c.size();
2821 for (size_type i=0; i<
size; i++) {
2822 r.emplace_back(
c[i] != 0 ?
v1[i] :
v2);
2842template <
typename T>
2846 const size_type
size =
c.size();
2849 for (size_type i=0; i<
size; i++) {
2850 r.emplace_back(
c[i] != 0 ?
v1 :
v2[i]);
2868template <
typename T>
2872 const size_type
size =
c.size();
2875 for (size_type i=0; i<
size; i++) {
2876 r.emplace_back(
c[i] != 0 ?
v1 :
v2);
2891template <typename T0, typename T1, typename Common_t = typename std::common_type<T0, T1>::type>
2896 std::copy(
v0.begin(),
v0.end(), std::back_inserter(res));
2897 std::copy(
v1.begin(),
v1.end(), std::back_inserter(res));
2907template <
typename T0,
typename T1 = T0,
typename Common_t = std::common_type_t<T0, T1>>
2910 static_assert(std::is_floating_point<T0>::value && std::is_floating_point<T1>::value,
2911 "DeltaPhi must be called with floating point values.");
2912 auto r = std::fmod(
v2 -
v1, 2.0 *
c);
2928template <
typename T0,
typename T1 = T0,
typename Common_t =
typename std::common_type_t<T0, T1>>
2932 const size_type
size =
v1.size();
2934 for (size_type i = 0; i <
size; i++) {
2946template <
typename T0,
typename T1 = T0,
typename Common_t =
typename std::common_type_t<T0, T1>>
2950 const size_type
size =
v1.size();
2952 for (size_type i = 0; i <
size; i++) {
2964template <
typename T0,
typename T1 = T0,
typename Common_t =
typename std::common_type_t<T0, T1>>
2968 const size_type
size =
v2.size();
2970 for (size_type i = 0; i <
size; i++) {
2983template <
typename T0,
typename T1 = T0,
typename T2 = T0,
typename T3 = T0,
typename Common_t = std::common_type_t<T0, T1, T2, T3>>
2986 const auto dphi =
DeltaPhi(phi1, phi2,
c);
2987 return (eta1 - eta2) * (eta1 - eta2) + dphi * dphi;
2997template <
typename T0,
typename T1 = T0,
typename T2 = T0,
typename T3 = T0,
typename Common_t = std::common_type_t<T0, T1, T2, T3>>
3010template <
typename T0,
typename T1 = T0,
typename T2 = T0,
typename T3 = T0,
typename Common_t = std::common_type_t<T0, T1, T2, T3>>
3013 const auto dphi =
DeltaPhi(phi1, phi2,
c);
3014 return std::sqrt((eta1 - eta2) * (eta1 - eta2) + dphi * dphi);
3022template <
typename T0,
typename T1 = T0,
typename T2 = T0,
typename T3 = T0,
typename T4 = T0,
3023 typename T5 = T0,
typename Common_t = std::common_type_t<T0, T1>>
3026 const auto cx =
y1 * z2 -
y2 * z1;
3027 const auto cy =
x1 * z2 -
x2 * z1;
3031 const auto c = std::sqrt(cx * cx + cy * cy + cz * cz);
3034 const auto d =
x1 *
x2 +
y1 *
y2 + z1 * z2;
3036 return std::atan2(
c,
d);
3044template <
typename T0,
typename T1 = T0,
typename T2 = T0,
typename T3 = T0,
typename T4 = T0,
3045 typename T5 = T0,
typename T6 = T0,
typename T7 = T0,
typename Common_t = std::common_type_t<T0, T1, T2, T3, T4, T5, T6, T7>>
3047 const T0&
x1,
const T1&
y1,
const T2& z1,
const T3& mass1,
3048 const T4&
x2,
const T5&
y2,
const T6& z2,
const T7& mass2)
3052 const auto p1_sq =
x1 *
x1 +
y1 *
y1 + z1 * z1;
3053 const auto p2_sq =
x2 *
x2 +
y2 *
y2 + z2 * z2;
3055 if (p1_sq <= 0 && p2_sq <= 0)
3056 return (mass1 + mass2);
3058 auto mm = mass1 + std::sqrt(mass2*mass2 + p2_sq);
3059 auto m2 = mm*mm - p2_sq;
3061 return std::sqrt( m2 );
3063 return std::sqrt( -m2 );
3066 auto mm = mass2 + std::sqrt(mass1*mass1 + p1_sq);
3067 auto m2 = mm*mm - p1_sq;
3069 return std::sqrt( m2 );
3071 return std::sqrt( -m2 );
3074 const auto m1_sq = mass1 * mass1;
3075 const auto m2_sq = mass2 * mass2;
3077 const auto r1 = m1_sq / p1_sq;
3078 const auto r2 = m2_sq / p2_sq;
3079 const auto x = r1 + r2 + r1 * r2;
3081 const auto cos_a = std::cos(
a);
3084 y = (
x + std::sin(
a) * std::sin(
a)) / (std::sqrt(
x + 1) + cos_a);
3086 y = std::sqrt(
x + 1) - cos_a;
3089 const auto z = 2 * std::sqrt(p1_sq * p2_sq);
3092 return std::sqrt(m1_sq + m2_sq +
y * z);
3100template <
typename T0,
typename T1 = T0,
typename T2 = T0,
typename T3 = T0,
typename T4 = T0,
3101 typename T5 = T0,
typename T6 = T0,
typename T7 = T0,
typename Common_t = std::common_type_t<T0, T1, T2, T3, T4, T5, T6, T7>>
3113 for (std::size_t i = 0u; i <
size; ++i) {
3126template <
typename T0,
typename T1 = T0,
typename T2 = T0,
typename T3 = T0,
typename T4 = T0,
3127 typename T5 = T0,
typename T6 = T0,
typename T7 = T0,
typename Common_t = std::common_type_t<T0, T1, T2, T3, T4, T5, T6, T7>>
3139 for (std::size_t i = 0u; i <
size; ++i) {
3141 const auto x1 = pt1[i] * std::cos(phi1[i]);
3142 const auto y1 = pt1[i] * std::sin(phi1[i]);
3143 const auto z1 = pt1[i] * std::sinh(eta1[i]);
3145 const auto x2 = pt2[i] * std::cos(phi2[i]);
3146 const auto y2 = pt2[i] * std::sin(phi2[i]);
3147 const auto z2 = pt2[i] * std::sinh(eta2[i]);
3162template <
typename T0,
typename T1 = T0,
typename T2 = T0,
typename T3 = T0,
typename Common_t = std::common_type_t<T0, T1, T2, T3>>
3165 const std::size_t
size =
pt.size();
3169 Common_t x_sum = 0.;
3170 Common_t y_sum = 0.;
3171 Common_t z_sum = 0.;
3172 Common_t e_sum = 0.;
3174 for (std::size_t i = 0u; i <
size; ++ i) {
3176 const auto x =
pt[i] * std::cos(phi[i]);
3178 const auto y =
pt[i] * std::sin(phi[i]);
3180 const auto z =
pt[i] * std::sinh(eta[i]);
3182 const auto e = std::sqrt(
x *
x +
y *
y + z * z + mass[i] * mass[i]);
3187 return std::sqrt(e_sum * e_sum - x_sum * x_sum - y_sum * y_sum - z_sum * z_sum);
3208template <
typename T,
typename... Args_t>
3214 for (
auto i = 0UL; i <
size; ++i) {
3228template <
typename T>
3231 const auto size =
v.size();
3234 for (
auto i = 0UL; i <
size; ++i) {
3295template <
typename T =
double,
typename Ret_t = std::conditional_t<std::is_
floating_po
int_v<T>, T,
double>>
3298 if (!
n || (
n > std::numeric_limits<long long>::max()))
3303 long double step = std::is_floating_point_v<Ret_t> ?
3304 (end - start) /
static_cast<long double>(
n - endpoint) :
3305 (end >= start ?
static_cast<long double>(end - start) / (
n - endpoint) : (
static_cast<long double>(end) - start) / (
n - endpoint));
3308 temp[0] = std::is_floating_point_v<Ret_t> ?
static_cast<Ret_t
>(start) : std::floor(start);
3309 if constexpr (std::is_floating_point_v<Ret_t>)
3311 for (
unsigned long long i = 1; i <
n; i++)
3313 temp[i] =
static_cast<Ret_t
>(start + i * step);
3318 for (
unsigned long long i = 1; i <
n; i++)
3320 temp[i] = std::floor(start + i * step);
3381template <
typename T =
double,
typename Ret_t = std::conditional_t<std::is_
floating_po
int_v<T>, T,
double>>
3384 if (!
n || (
n > std::numeric_limits<long long>::max()))
3390 long double start_c = start;
3391 long double end_c = end;
3392 long double base_c = base;
3394 long double step = (end_c - start_c) / (
n - endpoint);
3396 temp[0] = std::is_floating_point_v<Ret_t> ?
3397 static_cast<Ret_t
>(std::pow(base_c, start_c)) :
3398 std::floor(std::pow(base_c, start_c));
3400 if constexpr (std::is_floating_point_v<Ret_t>)
3402 for (
unsigned long long i = 1; i <
n; i++)
3404 auto exponent = start_c + i * step;
3405 temp[i] =
static_cast<Ret_t
>(std::pow(base_c, exponent));
3410 for (
unsigned long long i = 1; i <
n; i++)
3412 auto exponent = start_c + i * step;
3413 temp[i] = std::floor(std::pow(base_c, exponent));
3475template <
typename T =
double,
typename Ret_t = std::conditional_t<std::is_
floating_po
int_v<T>, T,
double>>
3478 unsigned long long n = std::ceil(( end >= start ? (end - start) :
static_cast<long double>(end)-start)/
static_cast<long double>(step));
3480 if (!
n || (
n > std::numeric_limits<long long>::max()))
3487 long double start_c = start;
3488 long double step_c = step;
3490 temp[0] = std::is_floating_point_v<Ret_t> ?
static_cast<Ret_t
>(start) : std::floor(start);
3491 if constexpr (std::is_floating_point_v<Ret_t>)
3493 for (
unsigned long long i = 1; i <
n; i++)
3495 temp[i] =
static_cast<Ret_t
>(start_c + i * step_c);
3500 for (
unsigned long long i = 1; i <
n; i++)
3502 temp[i] = std::floor(start_c + i * step_c);
3519 for (
auto i = 0UL; i <
length; ++i) {
3530 ret.
reserve(begin < end ? end - begin : 0u);
3531 for (
auto i = begin; i < end; ++i)
3552 throw std::runtime_error(
"Range: the stride must not be zero");
3555 float ret_cap = std::ceil(
static_cast<float>(end-begin) / stride);
3561 ret.
reserve(
static_cast<size_t>(ret_cap));
3564 for (
auto i = begin; i < end; i+=stride)
3569 for (
auto i = begin; i > end; i+=stride)
3583 constexpr bool mustConvert = std::is_same<char, T>::value || std::is_same<signed char, T>::value ||
3584 std::is_same<unsigned char, T>::value || std::is_same<wchar_t, T>::value ||
3585 std::is_same<char16_t, T>::value || std::is_same<char32_t, T>::value;
3586 using Print_t =
typename std::conditional<mustConvert, long long int, T>::type;
3588 auto size =
v.size();
3590 for (std::size_t i = 0; i <
size - 1; ++i) {
3591 os << (Print_t)
v[i] <<
", ";
3593 os << (Print_t)
v[
size - 1];
3599#if (_VECOPS_USE_EXTERN_TEMPLATES)
3601#define RVEC_EXTERN_UNARY_OPERATOR(T, OP) \
3602 extern template RVec<T> operator OP<T>(const RVec<T> &);
3604#define RVEC_EXTERN_BINARY_OPERATOR(T, OP) \
3605 extern template auto operator OP<T, T>(const T &x, const RVec<T> &v) \
3606 -> RVec<decltype(x OP v[0])>; \
3607 extern template auto operator OP<T, T>(const RVec<T> &v, const T &y) \
3608 -> RVec<decltype(v[0] OP y)>; \
3609 extern template auto operator OP<T, T>(const RVec<T> &v0, const RVec<T> &v1)\
3610 -> RVec<decltype(v0[0] OP v1[0])>;
3612#define RVEC_EXTERN_ASSIGN_OPERATOR(T, OP) \
3613 extern template RVec<T> &operator OP<T, T>(RVec<T> &, const T &); \
3614 extern template RVec<T> &operator OP<T, T>(RVec<T> &, const RVec<T> &);
3616#define RVEC_EXTERN_LOGICAL_OPERATOR(T, OP) \
3617 extern template RVec<int> operator OP<T, T>(const RVec<T> &, const T &); \
3618 extern template RVec<int> operator OP<T, T>(const T &, const RVec<T> &); \
3619 extern template RVec<int> operator OP<T, T>(const RVec<T> &, const RVec<T> &);
3621#define RVEC_EXTERN_FLOAT_TEMPLATE(T) \
3622 extern template class RVec<T>; \
3623 RVEC_EXTERN_UNARY_OPERATOR(T, +) \
3624 RVEC_EXTERN_UNARY_OPERATOR(T, -) \
3625 RVEC_EXTERN_UNARY_OPERATOR(T, !) \
3626 RVEC_EXTERN_BINARY_OPERATOR(T, +) \
3627 RVEC_EXTERN_BINARY_OPERATOR(T, -) \
3628 RVEC_EXTERN_BINARY_OPERATOR(T, *) \
3629 RVEC_EXTERN_BINARY_OPERATOR(T, /) \
3630 RVEC_EXTERN_ASSIGN_OPERATOR(T, +=) \
3631 RVEC_EXTERN_ASSIGN_OPERATOR(T, -=) \
3632 RVEC_EXTERN_ASSIGN_OPERATOR(T, *=) \
3633 RVEC_EXTERN_ASSIGN_OPERATOR(T, /=) \
3634 RVEC_EXTERN_LOGICAL_OPERATOR(T, <) \
3635 RVEC_EXTERN_LOGICAL_OPERATOR(T, >) \
3636 RVEC_EXTERN_LOGICAL_OPERATOR(T, ==) \
3637 RVEC_EXTERN_LOGICAL_OPERATOR(T, !=) \
3638 RVEC_EXTERN_LOGICAL_OPERATOR(T, <=) \
3639 RVEC_EXTERN_LOGICAL_OPERATOR(T, >=) \
3640 RVEC_EXTERN_LOGICAL_OPERATOR(T, &&) \
3641 RVEC_EXTERN_LOGICAL_OPERATOR(T, ||)
3643#define RVEC_EXTERN_INTEGER_TEMPLATE(T) \
3644 extern template class RVec<T>; \
3645 RVEC_EXTERN_UNARY_OPERATOR(T, +) \
3646 RVEC_EXTERN_UNARY_OPERATOR(T, -) \
3647 RVEC_EXTERN_UNARY_OPERATOR(T, ~) \
3648 RVEC_EXTERN_UNARY_OPERATOR(T, !) \
3649 RVEC_EXTERN_BINARY_OPERATOR(T, +) \
3650 RVEC_EXTERN_BINARY_OPERATOR(T, -) \
3651 RVEC_EXTERN_BINARY_OPERATOR(T, *) \
3652 RVEC_EXTERN_BINARY_OPERATOR(T, /) \
3653 RVEC_EXTERN_BINARY_OPERATOR(T, %) \
3654 RVEC_EXTERN_BINARY_OPERATOR(T, &) \
3655 RVEC_EXTERN_BINARY_OPERATOR(T, |) \
3656 RVEC_EXTERN_BINARY_OPERATOR(T, ^) \
3657 RVEC_EXTERN_ASSIGN_OPERATOR(T, +=) \
3658 RVEC_EXTERN_ASSIGN_OPERATOR(T, -=) \
3659 RVEC_EXTERN_ASSIGN_OPERATOR(T, *=) \
3660 RVEC_EXTERN_ASSIGN_OPERATOR(T, /=) \
3661 RVEC_EXTERN_ASSIGN_OPERATOR(T, %=) \
3662 RVEC_EXTERN_ASSIGN_OPERATOR(T, &=) \
3663 RVEC_EXTERN_ASSIGN_OPERATOR(T, |=) \
3664 RVEC_EXTERN_ASSIGN_OPERATOR(T, ^=) \
3665 RVEC_EXTERN_ASSIGN_OPERATOR(T, >>=) \
3666 RVEC_EXTERN_ASSIGN_OPERATOR(T, <<=) \
3667 RVEC_EXTERN_LOGICAL_OPERATOR(T, <) \
3668 RVEC_EXTERN_LOGICAL_OPERATOR(T, >) \
3669 RVEC_EXTERN_LOGICAL_OPERATOR(T, ==) \
3670 RVEC_EXTERN_LOGICAL_OPERATOR(T, !=) \
3671 RVEC_EXTERN_LOGICAL_OPERATOR(T, <=) \
3672 RVEC_EXTERN_LOGICAL_OPERATOR(T, >=) \
3673 RVEC_EXTERN_LOGICAL_OPERATOR(T, &&) \
3674 RVEC_EXTERN_LOGICAL_OPERATOR(T, ||)
3676RVEC_EXTERN_INTEGER_TEMPLATE(
char)
3677RVEC_EXTERN_INTEGER_TEMPLATE(
short)
3678RVEC_EXTERN_INTEGER_TEMPLATE(
int)
3679RVEC_EXTERN_INTEGER_TEMPLATE(
long)
3682RVEC_EXTERN_INTEGER_TEMPLATE(
unsigned char)
3683RVEC_EXTERN_INTEGER_TEMPLATE(
unsigned short)
3684RVEC_EXTERN_INTEGER_TEMPLATE(
unsigned int)
3685RVEC_EXTERN_INTEGER_TEMPLATE(
unsigned long)
3688RVEC_EXTERN_FLOAT_TEMPLATE(
float)
3689RVEC_EXTERN_FLOAT_TEMPLATE(
double)
3691#undef RVEC_EXTERN_UNARY_OPERATOR
3692#undef RVEC_EXTERN_BINARY_OPERATOR
3693#undef RVEC_EXTERN_ASSIGN_OPERATOR
3694#undef RVEC_EXTERN_LOGICAL_OPERATOR
3695#undef RVEC_EXTERN_INTEGER_TEMPLATE
3696#undef RVEC_EXTERN_FLOAT_TEMPLATE
3698#define RVEC_EXTERN_UNARY_FUNCTION(T, NAME, FUNC) \
3699 extern template RVec<PromoteType<T>> NAME(const RVec<T> &);
3701#define RVEC_EXTERN_STD_UNARY_FUNCTION(T, F) RVEC_EXTERN_UNARY_FUNCTION(T, F, std::F)
3703#define RVEC_EXTERN_BINARY_FUNCTION(T0, T1, NAME, FUNC) \
3704 extern template RVec<PromoteTypes<T0, T1>> NAME(const RVec<T0> &, const T1 &); \
3705 extern template RVec<PromoteTypes<T0, T1>> NAME(const T0 &, const RVec<T1> &); \
3706 extern template RVec<PromoteTypes<T0, T1>> NAME(const RVec<T0> &, const RVec<T1> &);
3708#define RVEC_EXTERN_STD_BINARY_FUNCTION(T, F) RVEC_EXTERN_BINARY_FUNCTION(T, T, F, std::F)
3710#define RVEC_EXTERN_STD_FUNCTIONS(T) \
3711 RVEC_EXTERN_STD_UNARY_FUNCTION(T, abs) \
3712 RVEC_EXTERN_STD_BINARY_FUNCTION(T, fdim) \
3713 RVEC_EXTERN_STD_BINARY_FUNCTION(T, fmod) \
3714 RVEC_EXTERN_STD_BINARY_FUNCTION(T, remainder) \
3715 RVEC_EXTERN_STD_UNARY_FUNCTION(T, exp) \
3716 RVEC_EXTERN_STD_UNARY_FUNCTION(T, exp2) \
3717 RVEC_EXTERN_STD_UNARY_FUNCTION(T, expm1) \
3718 RVEC_EXTERN_STD_UNARY_FUNCTION(T, log) \
3719 RVEC_EXTERN_STD_UNARY_FUNCTION(T, log10) \
3720 RVEC_EXTERN_STD_UNARY_FUNCTION(T, log2) \
3721 RVEC_EXTERN_STD_UNARY_FUNCTION(T, log1p) \
3722 RVEC_EXTERN_STD_BINARY_FUNCTION(T, pow) \
3723 RVEC_EXTERN_STD_UNARY_FUNCTION(T, sqrt) \
3724 RVEC_EXTERN_STD_UNARY_FUNCTION(T, cbrt) \
3725 RVEC_EXTERN_STD_BINARY_FUNCTION(T, hypot) \
3726 RVEC_EXTERN_STD_UNARY_FUNCTION(T, sin) \
3727 RVEC_EXTERN_STD_UNARY_FUNCTION(T, cos) \
3728 RVEC_EXTERN_STD_UNARY_FUNCTION(T, tan) \
3729 RVEC_EXTERN_STD_UNARY_FUNCTION(T, asin) \
3730 RVEC_EXTERN_STD_UNARY_FUNCTION(T, acos) \
3731 RVEC_EXTERN_STD_UNARY_FUNCTION(T, atan) \
3732 RVEC_EXTERN_STD_BINARY_FUNCTION(T, atan2) \
3733 RVEC_EXTERN_STD_UNARY_FUNCTION(T, sinh) \
3734 RVEC_EXTERN_STD_UNARY_FUNCTION(T, cosh) \
3735 RVEC_EXTERN_STD_UNARY_FUNCTION(T, tanh) \
3736 RVEC_EXTERN_STD_UNARY_FUNCTION(T, asinh) \
3737 RVEC_EXTERN_STD_UNARY_FUNCTION(T, acosh) \
3738 RVEC_EXTERN_STD_UNARY_FUNCTION(T, atanh) \
3739 RVEC_EXTERN_STD_UNARY_FUNCTION(T, floor) \
3740 RVEC_EXTERN_STD_UNARY_FUNCTION(T, ceil) \
3741 RVEC_EXTERN_STD_UNARY_FUNCTION(T, trunc) \
3742 RVEC_EXTERN_STD_UNARY_FUNCTION(T, round) \
3743 RVEC_EXTERN_STD_UNARY_FUNCTION(T, erf) \
3744 RVEC_EXTERN_STD_UNARY_FUNCTION(T, erfc) \
3745 RVEC_EXTERN_STD_UNARY_FUNCTION(T, lgamma) \
3746 RVEC_EXTERN_STD_UNARY_FUNCTION(T, tgamma) \
3748RVEC_EXTERN_STD_FUNCTIONS(
float)
3749RVEC_EXTERN_STD_FUNCTIONS(
double)
3750#undef RVEC_EXTERN_STD_UNARY_FUNCTION
3751#undef RVEC_EXTERN_STD_BINARY_FUNCTION
3752#undef RVEC_EXTERN_STD_UNARY_FUNCTIONS
3756#define RVEC_EXTERN_VDT_UNARY_FUNCTION(T, F) RVEC_EXTERN_UNARY_FUNCTION(T, F, vdt::F)
3758RVEC_EXTERN_VDT_UNARY_FUNCTION(
float, fast_expf)
3759RVEC_EXTERN_VDT_UNARY_FUNCTION(
float, fast_logf)
3760RVEC_EXTERN_VDT_UNARY_FUNCTION(
float, fast_sinf)
3761RVEC_EXTERN_VDT_UNARY_FUNCTION(
float, fast_cosf)
3762RVEC_EXTERN_VDT_UNARY_FUNCTION(
float, fast_tanf)
3763RVEC_EXTERN_VDT_UNARY_FUNCTION(
float, fast_asinf)
3764RVEC_EXTERN_VDT_UNARY_FUNCTION(
float, fast_acosf)
3765RVEC_EXTERN_VDT_UNARY_FUNCTION(
float, fast_atanf)
3767RVEC_EXTERN_VDT_UNARY_FUNCTION(
double, fast_exp)
3768RVEC_EXTERN_VDT_UNARY_FUNCTION(
double, fast_log)
3769RVEC_EXTERN_VDT_UNARY_FUNCTION(
double, fast_sin)
3770RVEC_EXTERN_VDT_UNARY_FUNCTION(
double, fast_cos)
3771RVEC_EXTERN_VDT_UNARY_FUNCTION(
double, fast_tan)
3772RVEC_EXTERN_VDT_UNARY_FUNCTION(
double, fast_asin)
3773RVEC_EXTERN_VDT_UNARY_FUNCTION(
double, fast_acos)
3774RVEC_EXTERN_VDT_UNARY_FUNCTION(
double, fast_atan)
#define R__unlikely(expr)
true
Register systematic variations for multiple existing columns using auto-generated tags.
RInterface< RDFDetail::RFilter< F, Proxied > > Filter(F f, const ColumnNames_t &columns={}, std::string_view name="")
Append a filter to the call graph.
#define R__RVEC_NODISCARD
size_t size(const MatrixT &matrix)
retrieve the size of a square matrix
TBuffer & operator<<(TBuffer &buf, const Tmpl *obj)
#define R__CLING_PTRCHECK(ONOFF)
static Double_t Product(const Double_t *x, const Float_t *y)
Product.
#define R__ASSERT(e)
Checks condition e and reports a fatal error if it's false.
Double_t Dot(const TGLVector3 &v1, const TGLVector3 &v2)
Int_t Compare(const void *item1, const void *item2)
Option_t Option_t TPoint TPoint const char GetTextMagnitude GetFillStyle GetLineColor GetLineWidth GetMarkerStyle GetTextAlign GetTextColor GetTextSize void w
Option_t Option_t TPoint TPoint const char GetTextMagnitude GetFillStyle GetLineColor GetLineWidth GetMarkerStyle GetTextAlign GetTextColor GetTextSize void char Point_t Rectangle_t WindowAttributes_t Float_t r
Option_t Option_t TPoint TPoint const char GetTextMagnitude GetFillStyle GetLineColor GetLineWidth GetMarkerStyle GetTextAlign GetTextColor GetTextSize void char Point_t Rectangle_t WindowAttributes_t Float_t Float_t Float_t Int_t Int_t UInt_t UInt_t Rectangle_t Int_t Int_t Window_t TString Int_t GCValues_t GetPrimarySelectionOwner GetDisplay GetScreen GetColormap GetNativeEvent const char const char dpyName wid window const char font_name cursor keysym reg const char only_if_exist regb h Point_t winding char text const char depth char const char Int_t count const char ColorStruct_t color const char Pixmap_t Pixmap_t PictureAttributes_t attr const char char ret_data h unsigned char height h length
Option_t Option_t TPoint TPoint const char GetTextMagnitude GetFillStyle GetLineColor GetLineWidth GetMarkerStyle GetTextAlign GetTextColor GetTextSize void value
Option_t Option_t TPoint TPoint const char x2
Option_t Option_t TPoint TPoint const char x1
Option_t Option_t TPoint TPoint const char y2
Option_t Option_t TPoint TPoint const char GetTextMagnitude GetFillStyle GetLineColor GetLineWidth GetMarkerStyle GetTextAlign GetTextColor GetTextSize void char Point_t Rectangle_t WindowAttributes_t Float_t Float_t Float_t Int_t Int_t UInt_t UInt_t Rectangle_t Int_t Int_t Window_t TString Int_t GCValues_t GetPrimarySelectionOwner GetDisplay GetScreen GetColormap GetNativeEvent const char const char dpyName wid window const char font_name cursor keysym reg const char only_if_exist regb h Point_t winding char text const char depth char const char Int_t count const char ColorStruct_t color const char Pixmap_t Pixmap_t PictureAttributes_t attr const char char ret_data h unsigned char height h Atom_t Int_t ULong_t ULong_t unsigned char prop_list Atom_t Atom_t Atom_t Time_t type
Option_t Option_t TPoint TPoint const char y1
This class consists of common code factored out of the SmallVector class to reduce code duplication b...
void assign(size_type NumElts, const T &Elt)
typename SuperClass::iterator iterator
typename SuperClass::size_type size_type
void append(in_iter in_start, in_iter in_end)
Add the specified range to the end of the SmallVector.
iterator insert(iterator I, T &&Elt)
void assign(std::initializer_list< T > IL)
typename SuperClass::const_iterator const_iterator
void resize(size_type N, const T &NV)
void reserve(size_type N)
iterator insert(iterator I, ItTy From, ItTy To)
reference emplace_back(ArgTypes &&...Args)
Internal::VecOps::SmallVectorTemplateBase< T > SuperClass
void assign(in_iter in_start, in_iter in_end)
iterator insert(iterator I, const T &Elt)
iterator insert(iterator I, size_type NumToInsert, const T &Elt)
RVecImpl & operator=(const RVecImpl &RHS)
iterator erase(const_iterator CS, const_iterator CE)
typename SuperClass::reference reference
void append(size_type NumInputs, const T &Elt)
Append NumInputs copies of Elt to the end.
iterator erase(const_iterator CI)
RVecImpl & operator=(RVecImpl &&RHS)
void pop_back_n(size_type NumItems)
RVecImpl(const RVecImpl &)=delete
void append(std::initializer_list< T > IL)
void insert(iterator I, std::initializer_list< T > IL)
This is all the stuff common to all SmallVectors.
SmallVectorBase(void *FirstEl, size_t TotalCapacity)
static constexpr size_t SizeTypeMax()
The maximum value of the Size_T used.
Size_T fCapacity
Always >= -1. fCapacity == -1 indicates the RVec is in "memory adoption" mode.
void grow_pod(void *FirstEl, size_t MinSize, size_t TSize)
This is an implementation of the grow() method which only works on POD-like data types and is out of ...
bool Owns() const
If false, the RVec is in "memory adoption" mode, i.e. it is acting as a view on a memory buffer it do...
size_t capacity() const noexcept
void set_size(size_t N)
Set the array size to N, which the current array must have enough capacity for.
typename SuperClass::iterator iterator
void grow(size_t MinSize=0)
Double the size of the allocated memory, guaranteeing space for at least one more element or MinSize ...
typename SuperClass::size_type size_type
typename SuperClass::reference reference
void push_back(const T &Elt)
static void uninitialized_move(It1 I, It1 E, It2 Dest)
Move the range [I, E) onto the uninitialized memory starting with "Dest", constructing elements into ...
SmallVectorTemplateCommon< T > SuperClass
SmallVectorTemplateBase(size_t Size)
typename SuperClass::const_iterator const_iterator
static void uninitialized_copy(T1 *I, T1 *E, T2 *Dest, typename std::enable_if< std::is_same< typename std::remove_const< T1 >::type, T2 >::value >::type *=nullptr)
Copy the range [I, E) onto the uninitialized memory starting with "Dest", constructing elements into ...
static void destroy_range(T *, T *)
static void uninitialized_copy(It1 I, It1 E, It2 Dest)
Copy the range [I, E) onto the uninitialized memory starting with "Dest", constructing elements into ...
SmallVectorTemplateBase<TriviallyCopyable = false> - This is where we put method implementations that...
void push_back(const T &Elt)
void grow(size_t MinSize=0)
Grow the allocated memory (without initializing new elements), doubling the size of the allocated mem...
static void uninitialized_move(It1 I, It1 E, It2 Dest)
Move the range [I, E) into the uninitialized memory starting with "Dest", constructing elements as ne...
SmallVectorTemplateBase(size_t Size)
static void destroy_range(T *S, T *E)
static void uninitialized_copy(It1 I, It1 E, It2 Dest)
Copy the range [I, E) onto the uninitialized memory starting with "Dest", constructing elements as ne...
This is the part of SmallVectorTemplateBase which does not depend on whether the type T is a POD.
size_type max_size() const noexcept
const_iterator cbegin() const noexcept
void grow_pod(size_t MinSize, size_t TSize)
ptrdiff_t difference_type
reverse_iterator rbegin() noexcept
const_iterator cend() const noexcept
const_reference back() const
void resetToSmall()
Put this vector in a state of being small.
iterator begin() noexcept
std::reverse_iterator< iterator > reverse_iterator
const T & const_reference
bool isSmall() const
Return true if this is a smallvector which has not had dynamic memory allocated for it.
const_reverse_iterator crend() const noexcept
const_iterator end() const noexcept
SmallVectorTemplateCommon(size_t Size)
const_reverse_iterator crbegin() const noexcept
pointer data() noexcept
Return a pointer to the vector's buffer, even if empty().
size_t capacity_in_bytes() const
reverse_iterator rend() noexcept
const_reverse_iterator rbegin() const noexcept
const_reference front() const
size_type size_in_bytes() const
std::reverse_iterator< const_iterator > const_reverse_iterator
size_t capacity() const noexcept
const_iterator begin() const noexcept
const_pointer data() const noexcept
Return a pointer to the vector's buffer, even if empty().
void * getFirstEl() const
Find the address of the first element.
const_reverse_iterator rend() const noexcept
A "std::vector"-like collection of values implementing handy operation to analyse them.
RVecN< bool, Internal::VecOps::RVecInlineStorageSize< bool >::value > SuperClass
RVecN(Detail::VecOps::RVecImpl< T > &&RHS)
reference operator[](size_type idx)
typename Internal::VecOps::SmallVectorTemplateCommon< T >::const_reference const_reference
RVecN operator[](const RVecN< V, M > &conds) const
RVecN(std::initializer_list< T > IL)
const_reference at(size_type pos) const
RVecN & operator=(Detail::VecOps::RVecImpl< T > &&RHS)
RVecN & operator=(RVecN &&RHS)
typename Internal::VecOps::SmallVectorTemplateCommon< T >::size_type size_type
value_type at(size_type pos, value_type fallback) const
No exception thrown. The user specifies the desired value in case the RVecN is shorter than pos.
RVecN & operator=(std::initializer_list< T > IL)
RVecN & operator=(const RVecN &RHS)
RVecN(const std::vector< T > &RHS)
RVecN(size_t Size, const T &Value)
reference at(size_type pos)
value_type at(size_type pos, value_type fallback)
No exception thrown. The user specifies the desired value in case the RVecN is shorter than pos.
typename Internal::VecOps::SmallVectorTemplateCommon< T >::reference reference
typename Internal::VecOps::SmallVectorTemplateCommon< T >::value_type value_type
const_reference operator[](size_type idx) const
A "std::vector"-like collection of values implementing handy operation to analyse them.
RVecN< T, Internal::VecOps::RVecInlineStorageSize< T >::value > SuperClass
RVec(RVecN< T, N > &&RHS)
typename SuperClass::reference reference
RVec(const RVecN< T, N > &RHS)
RVec(size_t Size, const T &Value)
RVec & operator=(RVec &&RHS)
RVec operator[](const RVec< V > &conds) const
RVec(std::initializer_list< T > IL)
typename SuperClass::const_reference const_reference
RVec(const std::vector< T > &RHS)
typename SuperClass::size_type size_type
RVec(Detail::VecOps::RVecImpl< T > &&RHS)
typename SuperClass::value_type value_type
RVec & operator=(const RVec &RHS)
Type
enumeration specifying the integration types.
T Max(const RVec< T > &v)
Get the greatest element of an RVec.
RVec< T > Reverse(const RVec< T > &v)
Return copy of reversed vector.
RVec< T > Intersect(const RVec< T > &v1, const RVec< T > &v2, bool v2_is_sorted=false)
Return the intersection of elements of two RVecs.
auto All(const RVec< T > &v) -> decltype(v[0]==false)
Return true if all of the elements equate to true, return false otherwise.
RVec< Common_t > DeltaR(const RVec< T0 > &eta1, const RVec< T1 > &eta2, const RVec< T2 > &phi1, const RVec< T3 > &phi2, const Common_t c=M_PI)
Return the distance on the - plane ( ) from the collections eta1, eta2, phi1 and phi2.
RVec< PromoteType< T > > asinh(const RVec< T > &v)
RVec< PromoteType< T > > expm1(const RVec< T > &v)
RVec< PromoteType< T > > lgamma(const RVec< T > &v)
RVec< typename RVec< T >::size_type > Nonzero(const RVec< T > &v)
Return the indices of the elements which are not zero.
RVec< PromoteTypes< T0, T1 > > remainder(const T0 &x, const RVec< T1 > &v)
#define RVEC_UNARY_OPERATOR(OP)
RVec< Common_t > DeltaR2(const RVec< T0 > &eta1, const RVec< T1 > &eta2, const RVec< T2 > &phi1, const RVec< T3 > &phi2, const Common_t c=M_PI)
Return the square of the distance on the - plane ( ) from the collections eta1, eta2,...
RVec< PromoteType< T > > cosh(const RVec< T > &v)
RVec< PromoteType< T > > abs(const RVec< T > &v)
#define RVEC_ASSIGNMENT_OPERATOR(OP)
RVec< PromoteType< T > > round(const RVec< T > &v)
RVec< T > Sort(const RVec< T > &v)
Return copy of RVec with elements sorted in ascending order.
RVec< typename RVec< T >::size_type > StableArgsort(const RVec< T > &v)
Return an RVec of indices that sort the input RVec while keeping the order of equal elements.
RVec< PromoteType< T > > tgamma(const RVec< T > &v)
RVec< PromoteType< T > > log2(const RVec< T > &v)
Common_t DeltaPhi(T0 v1, T1 v2, const Common_t c=M_PI)
Return the angle difference of two scalars.
RVec< Common_t > Concatenate(const RVec< T0 > &v0, const RVec< T1 > &v1)
Return the concatenation of two RVecs.
RVec< PromoteType< T > > tan(const RVec< T > &v)
RVec< PromoteType< T > > erf(const RVec< T > &v)
RVec< PromoteType< T > > cos(const RVec< T > &v)
RVec< PromoteType< T > > floor(const RVec< T > &v)
RVec< PromoteTypes< T0, T1 > > pow(const T0 &x, const RVec< T1 > &v)
RVec< PromoteType< T > > atanh(const RVec< T > &v)
RVec< PromoteType< T > > acosh(const RVec< T > &v)
Common_t InvariantMasses_PxPyPzM(const T0 &x1, const T1 &y1, const T2 &z1, const T3 &mass1, const T4 &x2, const T5 &y2, const T6 &z2, const T7 &mass2)
Return the invariant mass of two particles given x coordinate (px), y coordinate (py),...
RVec< PromoteType< T > > ceil(const RVec< T > &v)
RVec< PromoteType< T > > cbrt(const RVec< T > &v)
T Sum(const RVec< T > &v, const T zero=T(0))
Sum elements of an RVec.
double Mean(const RVec< T > &v)
Get the mean of the elements of an RVec.
RVec< Common_t > InvariantMasses(const RVec< T0 > &pt1, const RVec< T1 > &eta1, const RVec< T2 > &phi1, const RVec< T3 > &mass1, const RVec< T4 > &pt2, const RVec< T5 > &eta2, const RVec< T6 > &phi2, const RVec< T7 > &mass2)
Return the invariant mass of two particles given the collections of the quantities transverse momentu...
RVec< T > Take(const RVec< T > &v, const RVec< typename RVec< T >::size_type > &i)
Return elements of a vector at given indices.
RVec< PromoteType< T > > asin(const RVec< T > &v)
void swap(RVec< T > &lhs, RVec< T > &rhs)
RVec< PromoteTypes< T0, T1 > > hypot(const T0 &x, const RVec< T1 > &v)
RVec< PromoteType< T > > log(const RVec< T > &v)
RVec< T > Construct(const RVec< Args_t > &... args)
Build an RVec of objects starting from RVecs of input to their constructors.
RVec< PromoteTypes< T0, T1 > > atan2(const T0 &x, const RVec< T1 > &v)
RVec< PromoteType< T > > trunc(const RVec< T > &v)
RVec< PromoteType< T > > llround(const RVec< T > &v)
RVec< PromoteTypes< T0, T1 > > fdim(const T0 &x, const RVec< T1 > &v)
#define RVEC_STD_BINARY_FUNCTION(F)
RVec< PromoteType< T > > lround(const RVec< T > &v)
#define RVEC_BINARY_OPERATOR(OP)
RVec< T > Drop(const RVec< T > &v, RVec< typename RVec< T >::size_type > idxs)
Return a copy of the container without the elements at the specified indices.
Common_t InvariantMass(const RVec< T0 > &pt, const RVec< T1 > &eta, const RVec< T2 > &phi, const RVec< T3 > &mass)
Return the invariant mass of multiple particles given the collections of the quantities transverse mo...
Common_t Angle(T0 x1, T1 y1, T2 z1, T3 x2, T4 y2, T5 z2)
Return the angle between two three-vectors given the quantities x coordinate (x), y coordinate (y),...
RVec< Ret_t > Logspace(T start, T end, unsigned long long n=128, const bool endpoint=true, T base=10.0)
Produce RVec with n log-spaced entries from base^{start} to base^{end}.
T Min(const RVec< T > &v)
Get the smallest element of an RVec.
size_t CapacityInBytes(const RVecN< T, N > &X)
#define RVEC_LOGICAL_OPERATOR(OP)
RVec< PromoteType< T > > sinh(const RVec< T > &v)
RVec< PromoteType< T > > sqrt(const RVec< T > &v)
RVec< PromoteType< T > > erfc(const RVec< T > &v)
RVec< RVec< std::size_t > > Combinations(const std::size_t size1, const std::size_t size2)
Return the indices that represent all combinations of the elements of two RVecs.
#define RVEC_STD_UNARY_FUNCTION(F)
RVec< PromoteType< T > > log10(const RVec< T > &v)
RVec< typename RVec< T >::size_type > Enumerate(const RVec< T > &v)
For any Rvec v produce another RVec with entries starting from 0, and incrementing by 1 until a N = v...
RVec< PromoteTypes< T0, T1 > > fmod(const T0 &x, const RVec< T1 > &v)
auto Map(Args &&... args)
Create new collection applying a callable to the elements of the input collection.
RVec< PromoteType< T > > exp(const RVec< T > &v)
RVec< T > Where(const RVec< int > &c, const RVec< T > &v1, const RVec< T > &v2)
Return the elements of v1 if the condition c is true and v2 if the condition c is false.
double StdDev(const RVec< T > &v)
Get the standard deviation of the elements of an RVec.
auto Any(const RVec< T > &v) -> decltype(v[0]==true)
Return true if any of the elements equates to true, return false otherwise.
RVec< Ret_t > Linspace(T start, T end, unsigned long long n=128, const bool endpoint=true)
Produce RVec with N evenly-spaced entries from start to end.
RVec< PromoteType< T > > tanh(const RVec< T > &v)
RVec< PromoteType< T > > acos(const RVec< T > &v)
RVec< PromoteType< T > > log1p(const RVec< T > &v)
RVec< Ret_t > Arange(T start, T end, T step)
Produce RVec with entries in the range [start, end) in increments of step.
RVec< typename RVec< T >::size_type > Argsort(const RVec< T > &v)
Return an RVec of indices that sort the input RVec.
std::size_t ArgMin(const RVec< T > &v)
Get the index of the smallest element of an RVec In case of multiple occurrences of the minimum value...
RVec< PromoteType< T > > atan(const RVec< T > &v)
RVec< T > StableSort(const RVec< T > &v)
Return copy of RVec with elements sorted in ascending order while keeping the order of equal elements...
RVec< PromoteType< T > > sin(const RVec< T > &v)
double Var(const RVec< T > &v)
Get the variance of the elements of an RVec.
RVec< PromoteType< T > > exp2(const RVec< T > &v)
std::size_t ArgMax(const RVec< T > &v)
Get the index of the greatest element of an RVec In case of multiple occurrences of the maximum value...
bool IsSmall(const ROOT::VecOps::RVec< T > &v)
bool IsAdopting(const ROOT::VecOps::RVec< T > &v)
Special implementation of ROOT::RRangeCast for TCollection, including a check that the cast target ty...
auto MapImpl(F &&f, RVecs &&... vs) -> RVec< decltype(f(vs[0]...))>
void ResetView(RVec< T > &v, T *addr, std::size_t sz)
An unsafe function to reset the buffer for which this RVec is acting as a view.
ROOT::VecOps::RVec< T > RVec
uint64_t NextPowerOf2(uint64_t A)
Return the next power of two (in 64-bits) that is strictly greater than A.
constexpr bool All(const bool *vals, std::size_t size)
std::size_t GetVectorsSize(const std::string &id, const RVec< T > &... vs)
void UninitializedValueConstruct(ForwardIt first, ForwardIt last)
auto MapFromTuple(Tuple_t &&t, std::index_sequence< Is... >) -> decltype(MapImpl(std::get< std::tuple_size< Tuple_t >::value - 1 >(t), std::get< Is >(t)...))
namespace associated R package for ROOT.
ROOT::VecOps::RVec< unsigned int > RVecU
ROOT::VecOps::RVec< long long int > RVecLL
ROOT::VecOps::RVec< float > RVecF
ROOT::VecOps::RVec< char > RVecC
ROOT::VecOps::RVec< long int > RVecL
ROOT::VecOps::RVec< unsigned long int > RVecUL
ROOT::VecOps::RVec< bool > RVecB
ROOT::VecOps::RVec< unsigned long long int > RVecULL
ROOT::VecOps::RVec< double > RVecD
ROOT::VecOps::RVec< int > RVecI
The size of the inline storage of an RVec.
static constexpr std::size_t cacheLineSize
static constexpr unsigned maxInlineByteSize
static constexpr unsigned value
static constexpr unsigned elementsPerCacheLine
Used to figure out the offset of the first element of an RVec.
char Base[sizeof(SmallVectorBase)]
Storage for the SmallVector elements.
char InlineElts[N *sizeof(T)]