Expression Templates Library (ETL)
conv_2d_valid_multi_expr.hpp
1 //=======================================================================
2 // Copyright (c) 2014-2023 Baptiste Wicht
3 // Distributed under the terms of the MIT License.
4 // (See accompanying file LICENSE or copy at
5 // http://opensource.org/licenses/MIT)
6 //=======================================================================
7 
8 #pragma once
9 
10 #include "etl/expr/base_temporary_expr.hpp"
11 
12 //Get the implementations
13 #include "etl/impl/conv.hpp"
14 
15 namespace etl {
16 
21 template <etl_2d A, etl_3d B, size_t S1, size_t S2, size_t P1, size_t P2, bool Flipped>
22 struct conv_2d_valid_multi_expr : base_temporary_expr_bin<conv_2d_valid_multi_expr<A, B, S1, S2, P1, P2, Flipped>, A, B> {
27 
28  static constexpr auto storage_order = left_traits::storage_order;
29 
34  static constexpr bool gpu_computable = cudnn_enabled && impl::cudnn::conv_possible_<A, B> && is_2d<A>;
35 
40  explicit conv_2d_valid_multi_expr(A a, B b) : base_type(a, b) {
41  //Nothing else to init
42  }
43 
44  // Assignment functions
45 
49  template <etl_2d I, etl_3d K, etl_3d C>
50  static void check([[maybe_unused]] const I& input, [[maybe_unused]] const K& kernel, [[maybe_unused]] const C& conv) {
51  if constexpr (all_fast<A, B, C>) {
52  static_assert(etl::dim<0, C>() == etl::dim<0, K>(), "Invalid dimensions for conv2_valid");
53  static_assert(etl::dim<1, C>() == (etl::dim<0, I>() - etl::dim<1, K>() + 2 * P1) / S1 + 1, "Invalid dimensions for conv2_valid");
54  static_assert(etl::dim<2, C>() == (etl::dim<1, I>() - etl::dim<2, K>() + 2 * P2) / S2 + 1, "Invalid dimensions for conv2_valid");
55  } else {
56  cpp_assert(etl::dim(conv, 0) == etl::dim(kernel, 0), "Invalid dimensions for conv2_valid");
57  cpp_assert(etl::dim(conv, 1) == (etl::dim(input, 0) - etl::dim(kernel, 1) + 2 * P1) / S1 + 1, "Invalid dimensions for conv2_valid");
58  cpp_assert(etl::dim(conv, 2) == (etl::dim(input, 1) - etl::dim(kernel, 2) + 2 * P2) / S2 + 1, "Invalid dimensions for conv2_valid");
59  }
60  }
61 
67  template <etl_expr C>
68  void assign_to(C&& c) const {
69  inc_counter("temp:assign");
70 
71  auto& a = this->a();
72  auto& b = this->b();
73 
74  check(a, b, c);
75 
76  if constexpr (Flipped) {
78  } else {
80  }
81  }
82 
87  template <etl_expr L>
88  void assign_add_to(L&& lhs) const {
89  std_add_evaluate(*this, lhs);
90  }
91 
96  template <etl_expr L>
97  void assign_sub_to(L&& lhs) const {
98  std_sub_evaluate(*this, lhs);
99  }
100 
105  template <etl_expr L>
106  void assign_mul_to(L&& lhs) const {
107  std_mul_evaluate(*this, lhs);
108  }
109 
114  template <etl_expr L>
115  void assign_div_to(L&& lhs) const {
116  std_div_evaluate(*this, lhs);
117  }
118 
123  template <etl_expr L>
124  void assign_mod_to(L&& lhs) const {
125  std_mod_evaluate(*this, lhs);
126  }
127 
134  friend std::ostream& operator<<(std::ostream& os, const conv_2d_valid_multi_expr& expr) {
135  return os << "conv2_valid_multi(" << expr._a << ", " << expr._b << ")";
136  }
137 };
138 
143 template <typename A, typename B, size_t S1, size_t S2, size_t P1, size_t P2, bool Flipped>
144 struct etl_traits<etl::conv_2d_valid_multi_expr<A, B, S1, S2, P1, P2, Flipped>> {
146  using left_expr_t = std::decay_t<A>;
147  using right_expr_t = std::decay_t<B>;
151 
152  static constexpr bool is_etl = true;
153  static constexpr bool is_transformer = false;
154  static constexpr bool is_view = false;
155  static constexpr bool is_magic_view = false;
156  static constexpr bool is_fast = all_fast<A, B>;
157  static constexpr bool is_linear = false;
158  static constexpr bool is_thread_safe = true;
159  static constexpr bool is_value = false;
160  static constexpr bool is_direct = true;
161  static constexpr bool is_generator = false;
162  static constexpr bool is_padded = false;
163  static constexpr bool is_aligned = true;
164  static constexpr bool is_temporary = true;
165  static constexpr order storage_order = left_traits::storage_order;
166  static constexpr bool gpu_computable = is_gpu_t<value_type> && cuda_enabled;
167 
173  template <vector_mode_t V>
174  static constexpr bool vectorizable = true;
175 
180  template <size_t DD>
181  static constexpr size_t dim() {
182  return DD == 0 ? etl::dim<0, B>()
183  : DD == 1 ? (etl::dim<0, A>() - etl::dim<1, B>() + 2 * P1) / S1 + 1 : (etl::dim<1, A>() - etl::dim<2, B>() + 2 * P2) / S2 + 1;
184  }
185 
192  static size_t dim(const expr_t& e, size_t d) {
193  if (d == 0) {
194  return etl::dim(e._b, 0);
195  } else if (d == 1) {
196  return (etl::dim(e._a, 0) - etl::dim(e._b, 1) + 2 * P1) / S1 + 1;
197  } else {
198  return (etl::dim(e._a, 1) - etl::dim(e._b, 2) + 2 * P2) / S2 + 1;
199  }
200  }
201 
207  static size_t size(const expr_t& e) {
208  return (etl::dim(e._b, 0)) * ((etl::dim(e._a, 0) - etl::dim(e._b, 1) + 2 * P1) / S1 + 1) * ((etl::dim(e._a, 1) - etl::dim(e._b, 2) + 2 * P2) / S2 + 1);
209  }
210 
215  static constexpr size_t size() {
216  return (etl::dim<0, B>()) * ((etl::dim<0, A>() - etl::dim<1, B>() + 2 * P1) / S1 + 1) * ((etl::dim<1, A>() - etl::dim<2, B>() + 2 * P2) / S2 + 1);
217  }
218 
223  static constexpr size_t dimensions() {
224  return 3;
225  }
226 
231  static constexpr int complexity() noexcept {
232  return -1;
233  }
234 };
235 
244 template <size_t S1 = 1, size_t S2 = 1, size_t P1 = 0, size_t P2 = 0, etl_expr A, etl_expr B>
246  return conv_2d_valid_multi_expr<detail::build_type<A>, detail::build_type<B>, S1, S2, P1, P2, false>{a, b};
247 }
248 
258 template <size_t S1 = 1, size_t S2 = 1, size_t P1 = 0, size_t P2 = 0, etl_expr A, etl_expr B, etl_expr C>
259 auto conv_2d_valid_multi(A&& a, B&& b, C&& c) {
260  c = conv_2d_valid_multi<S1, S2, P1, P2>(a, b);
261 
262  return c;
263 }
264 
273 template <size_t S1 = 1, size_t S2 = 1, size_t P1 = 0, size_t P2 = 0, etl_expr A, etl_expr B>
274 conv_2d_valid_multi_expr<detail::build_type<A>, detail::build_type<B>, S1, S2, P1, P2, true> conv_2d_valid_multi_flipped(A&& a, B&& b) {
275  return conv_2d_valid_multi_expr<detail::build_type<A>, detail::build_type<B>, S1, S2, P1, P2, true>{a, b};
276 }
277 
287 template <size_t S1 = 1, size_t S2 = 1, size_t P1 = 0, size_t P2 = 0, etl_expr A, etl_expr B, etl_expr C>
288 auto conv_2d_valid_multi_flipped(A&& a, B&& b, C&& c) {
289  c = conv_2d_valid_multi_flipped<S1, S2, P1, P2>(a, b);
290 
291  return c;
292 }
293 
294 } //end of namespace etl
std::decay_t< A > left_expr_t
The left sub expression type.
Definition: conv_2d_valid_multi_expr.hpp:146
static constexpr size_t size()
Returns the size of the expression.
Definition: conv_2d_valid_multi_expr.hpp:215
static constexpr size_t dimensions()
Returns the number of dimensions of the expression.
Definition: conv_2d_valid_multi_expr.hpp:223
conv_2d_valid_multi_expr< detail::build_type< A >, detail::build_type< B >, S1, S2, P1, P2, true > conv_2d_valid_multi_flipped(A &&a, B &&b)
Creates an expression representing the &#39;valid&#39; 1D convolution of a and flipped b. ...
Definition: conv_2d_valid_multi_expr.hpp:274
static size_t dim(const expr_t &e, size_t d)
Returns the dth dimension of the expression.
Definition: conv_2d_valid_multi_expr.hpp:192
B _b
The sub expression reference.
Definition: base_temporary_expr.hpp:534
static constexpr size_t dim()
Returns the DDth dimension of the expression.
Definition: conv_2d_valid_multi_expr.hpp:181
conv_2d_valid_multi_expr< detail::build_type< A >, detail::build_type< B >, S1, S2, P1, P2, false > conv_2d_valid_multi(A &&a, B &&b)
Creates an expression representing the &#39;valid&#39; 1D convolution of a and b.
Definition: conv_2d_valid_multi_expr.hpp:245
constexpr bool is_magic_view
Traits indicating if the given ETL type is a magic view expression.
Definition: traits.hpp:311
static void apply(I &&input, K &&kernel, C &&conv)
Apply the convolution.
Definition: conv_multi.hpp:29
A _a
The sub expression reference.
Definition: base_temporary_expr.hpp:533
order
Storage order of a matrix.
Definition: order.hpp:15
std::decay_t< B > right_expr_t
The right sub expression type.
Definition: conv_2d_valid_multi_expr.hpp:147
constexpr bool cuda_enabled
Indicates if CUDA is available.
Definition: config.hpp:94
void assign_div_to(L &&lhs) const
Divide the given left-hand-side expression.
Definition: conv_2d_valid_multi_expr.hpp:115
void assign_sub_to(L &&lhs) const
Sub from the given left-hand-side expression.
Definition: conv_2d_valid_multi_expr.hpp:97
Abstract base class for temporary binary expression.
Definition: base_temporary_expr.hpp:529
static constexpr bool gpu_computable
Indicates if the temporary expression can be directly evaluated using only GPU.
Definition: conv_2d_valid_multi_expr.hpp:34
void assign_to(C &&c) const
Assign to a matrix.
Definition: conv_2d_valid_multi_expr.hpp:68
std::add_lvalue_reference_t< B > b()
Returns the sub expression.
Definition: base_temporary_expr.hpp:593
A transposition expression.
Definition: conv_2d_valid_multi_expr.hpp:22
static constexpr auto storage_order
The sub storage order.
Definition: conv_2d_valid_multi_expr.hpp:28
constexpr bool is_fast
Traits to test if the given ETL expresion type is fast (sizes known at compile-time) ...
Definition: traits.hpp:588
value_t< A > value_type
The value type of the expression.
Definition: conv_2d_valid_multi_expr.hpp:150
Traits to get information about ETL types.
Definition: tmp.hpp:68
conv_2d_valid_multi_expr(A a, B b)
Construct a new expression.
Definition: conv_2d_valid_multi_expr.hpp:40
Root namespace for the ETL library.
Definition: adapter.hpp:15
static void check([[maybe_unused]] const I &input, [[maybe_unused]] const K &kernel, [[maybe_unused]] const C &conv)
Assert that the convolution is done on correct dimensions.
Definition: conv_2d_valid_multi_expr.hpp:50
static void apply(I &&input, K &&kernel, C &&conv)
Apply the convolution.
Definition: conv_multi.hpp:80
static size_t size(const expr_t &e)
Returns the size of the expression.
Definition: conv_2d_valid_multi_expr.hpp:207
auto dim(E &&value, size_t i) -> detail::identity_helper< E, dim_view< detail::build_identity_type< E >, D >>
Return a view representing the ith Dth dimension.
Definition: view_expression_builder.hpp:25
std::conditional_t< is_etl_value< T >, const std::decay_t< T > &, std::decay_t< T > > build_type
Helper to build the type for a sub expression.
Definition: expression_helpers.hpp:24
constexpr bool cudnn_enabled
Indicates if the NVIDIA CUDNN library is available for ETL.
Definition: config.hpp:114
void std_mod_evaluate(Expr &&expr, Result &&result)
Compound modulo evaluation of the expr into result.
Definition: evaluator.hpp:1271
void std_mul_evaluate(Expr &&expr, Result &&result)
Compound multiply evaluation of the expr into result.
Definition: evaluator.hpp:1233
constexpr bool is_transformer
Traits indicating if the given ETL type is a transformer expression.
Definition: traits.hpp:297
Selector for the convolution implementations.
constexpr bool is_view
Traits indicating if the given ETL type is a view expression.
Definition: traits.hpp:304
friend std::ostream & operator<<(std::ostream &os, const conv_2d_valid_multi_expr &expr)
Print a representation of the expression on the given stream.
Definition: conv_2d_valid_multi_expr.hpp:134
value_t< A > value_type
The type of value of the expression.
Definition: conv_2d_valid_multi_expr.hpp:23
void std_sub_evaluate(Expr &&expr, Result &&result)
Compound subtract evaluation of the expr into result.
Definition: evaluator.hpp:1214
constexpr bool is_thread_safe
Traits to test if the given ETL expresion type is thread safe.
Definition: traits.hpp:687
static constexpr int complexity() noexcept
Estimate the complexity of computation.
Definition: conv_2d_valid_multi_expr.hpp:231
typename decay_traits< E >::value_type value_t
Traits to extract the value type out of an ETL type.
Definition: tmp.hpp:81
void std_div_evaluate(Expr &&expr, Result &&result)
Compound divide evaluation of the expr into result.
Definition: evaluator.hpp:1252
void inc_counter([[maybe_unused]] const char *name)
Increase the given counter.
Definition: counters.hpp:25
void assign_mod_to(L &&lhs) const
Modulo the given left-hand-side expression.
Definition: conv_2d_valid_multi_expr.hpp:124
std::add_lvalue_reference_t< A > a()
Returns the sub expression.
Definition: base_temporary_expr.hpp:577
void assign_mul_to(L &&lhs) const
Multiply the given left-hand-side expression.
Definition: conv_2d_valid_multi_expr.hpp:106
void std_add_evaluate(Expr &&expr, Result &&result)
Compound add evaluation of the expr into result.
Definition: evaluator.hpp:1195
void assign_add_to(L &&lhs) const
Add to the given left-hand-side expression.
Definition: conv_2d_valid_multi_expr.hpp:88