step_iterator.hpp 14 KB

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  1. //
  2. // Copyright 2005-2007 Adobe Systems Incorporated
  3. //
  4. // Distributed under the Boost Software License, Version 1.0
  5. // See accompanying file LICENSE_1_0.txt or copy at
  6. // http://www.boost.org/LICENSE_1_0.txt
  7. //
  8. #ifndef BOOST_GIL_STEP_ITERATOR_HPP
  9. #define BOOST_GIL_STEP_ITERATOR_HPP
  10. #include <boost/gil/dynamic_step.hpp>
  11. #include <boost/gil/pixel_iterator.hpp>
  12. #include <boost/gil/pixel_iterator_adaptor.hpp>
  13. #include <boost/gil/utilities.hpp>
  14. #include <boost/iterator/iterator_facade.hpp>
  15. #include <cstddef>
  16. #include <iterator>
  17. namespace boost { namespace gil {
  18. /// \defgroup PixelIteratorModelStepPtr step iterators
  19. /// \ingroup PixelIteratorModel
  20. /// \brief Iterators that allow for specifying the step between two adjacent values
  21. namespace detail {
  22. /// \ingroup PixelIteratorModelStepPtr
  23. /// \brief An adaptor over an existing iterator that changes the step unit
  24. ///
  25. /// (i.e. distance(it,it+1)) by a given predicate. Instead of calling base's
  26. /// operators ++, --, +=, -=, etc. the adaptor is using the passed policy object SFn
  27. /// for advancing and for computing the distance between iterators.
  28. template <typename Derived, // type of the derived class
  29. typename Iterator, // Models Iterator
  30. typename SFn> // A policy object that can compute the distance between two iterators of type Iterator
  31. // and can advance an iterator of type Iterator a given number of Iterator's units
  32. class step_iterator_adaptor : public iterator_adaptor<Derived, Iterator, use_default, use_default, use_default, typename SFn::difference_type>
  33. {
  34. public:
  35. using parent_t = iterator_adaptor<Derived, Iterator, use_default, use_default, use_default, typename SFn::difference_type>;
  36. using base_difference_type = typename std::iterator_traits<Iterator>::difference_type;
  37. using difference_type = typename SFn::difference_type;
  38. using reference = typename std::iterator_traits<Iterator>::reference;
  39. step_iterator_adaptor() {}
  40. step_iterator_adaptor(const Iterator& it, SFn step_fn=SFn()) : parent_t(it), _step_fn(step_fn) {}
  41. difference_type step() const { return _step_fn.step(); }
  42. protected:
  43. SFn _step_fn;
  44. private:
  45. friend class boost::iterator_core_access;
  46. void increment() { _step_fn.advance(this->base_reference(),1); }
  47. void decrement() { _step_fn.advance(this->base_reference(),-1); }
  48. void advance(base_difference_type d) { _step_fn.advance(this->base_reference(),d); }
  49. difference_type distance_to(const step_iterator_adaptor& it) const { return _step_fn.difference(this->base_reference(),it.base_reference()); }
  50. };
  51. // although iterator_adaptor defines these, the default implementation computes distance and compares for zero.
  52. // it is often faster to just apply the relation operator to the base
  53. template <typename D,typename Iterator,typename SFn> inline
  54. bool operator>(const step_iterator_adaptor<D,Iterator,SFn>& p1, const step_iterator_adaptor<D,Iterator,SFn>& p2) {
  55. return p1.step()>0 ? p1.base()> p2.base() : p1.base()< p2.base();
  56. }
  57. template <typename D,typename Iterator,typename SFn> inline
  58. bool operator<(const step_iterator_adaptor<D,Iterator,SFn>& p1, const step_iterator_adaptor<D,Iterator,SFn>& p2) {
  59. return p1.step()>0 ? p1.base()< p2.base() : p1.base()> p2.base();
  60. }
  61. template <typename D,typename Iterator,typename SFn> inline
  62. bool operator>=(const step_iterator_adaptor<D,Iterator,SFn>& p1, const step_iterator_adaptor<D,Iterator,SFn>& p2) {
  63. return p1.step()>0 ? p1.base()>=p2.base() : p1.base()<=p2.base();
  64. }
  65. template <typename D,typename Iterator,typename SFn> inline
  66. bool operator<=(const step_iterator_adaptor<D,Iterator,SFn>& p1, const step_iterator_adaptor<D,Iterator,SFn>& p2) {
  67. return p1.step()>0 ? p1.base()<=p2.base() : p1.base()>=p2.base();
  68. }
  69. template <typename D,typename Iterator,typename SFn> inline
  70. bool operator==(const step_iterator_adaptor<D,Iterator,SFn>& p1, const step_iterator_adaptor<D,Iterator,SFn>& p2) {
  71. return p1.base()==p2.base();
  72. }
  73. template <typename D,typename Iterator,typename SFn> inline
  74. bool operator!=(const step_iterator_adaptor<D,Iterator,SFn>& p1, const step_iterator_adaptor<D,Iterator,SFn>& p2) {
  75. return p1.base()!=p2.base();
  76. }
  77. } // namespace detail
  78. ////////////////////////////////////////////////////////////////////////////////////////
  79. /// MEMORY-BASED STEP ITERATOR
  80. ////////////////////////////////////////////////////////////////////////////////////////
  81. /// \class memory_based_step_iterator
  82. /// \ingroup PixelIteratorModelStepPtr PixelBasedModel
  83. /// \brief Iterator with dynamically specified step in memory units (bytes or bits). Models StepIteratorConcept, IteratorAdaptorConcept, MemoryBasedIteratorConcept, PixelIteratorConcept, HasDynamicXStepTypeConcept
  84. ///
  85. /// A refinement of step_iterator_adaptor that uses a dynamic parameter for the step
  86. /// which is specified in memory units, such as bytes or bits
  87. ///
  88. /// Pixel step iterators are used to provide iteration over non-adjacent pixels.
  89. /// Common use is a vertical traversal, where the step is the row stride.
  90. ///
  91. /// Another application is as a sub-channel view. For example, a red intensity image over
  92. /// interleaved RGB data would use a step iterator adaptor with step sizeof(channel_t)*3
  93. /// In the latter example the step size could be fixed at compile time for efficiency.
  94. /// Compile-time fixed step can be implemented by providing a step function object that takes the step as a template
  95. ////////////////////////////////////////////////////////////////////////////////////////
  96. /// \ingroup PixelIteratorModelStepPtr
  97. /// \brief function object that returns the memory unit distance between two iterators and advances a given iterator a given number of mem units (bytes or bits)
  98. template <typename Iterator>
  99. struct memunit_step_fn {
  100. using difference_type = std::ptrdiff_t;
  101. memunit_step_fn(difference_type step=memunit_step(Iterator())) : _step(step) {}
  102. difference_type difference(const Iterator& it1, const Iterator& it2) const { return memunit_distance(it1,it2)/_step; }
  103. void advance(Iterator& it, difference_type d) const { memunit_advance(it,d*_step); }
  104. difference_type step() const { return _step; }
  105. void set_step(std::ptrdiff_t step) { _step=step; }
  106. private:
  107. GIL_CLASS_REQUIRE(Iterator, boost::gil, MemoryBasedIteratorConcept)
  108. difference_type _step;
  109. };
  110. template <typename Iterator>
  111. class memory_based_step_iterator : public detail::step_iterator_adaptor<memory_based_step_iterator<Iterator>,
  112. Iterator,
  113. memunit_step_fn<Iterator>>
  114. {
  115. GIL_CLASS_REQUIRE(Iterator, boost::gil, MemoryBasedIteratorConcept)
  116. public:
  117. using parent_t = detail::step_iterator_adaptor<memory_based_step_iterator<Iterator>,
  118. Iterator,
  119. memunit_step_fn<Iterator>>;
  120. using reference = typename parent_t::reference;
  121. using difference_type = typename parent_t::difference_type;
  122. using x_iterator = Iterator;
  123. memory_based_step_iterator() : parent_t(Iterator()) {}
  124. memory_based_step_iterator(Iterator it, std::ptrdiff_t memunit_step) : parent_t(it, memunit_step_fn<Iterator>(memunit_step)) {}
  125. template <typename I2>
  126. memory_based_step_iterator(const memory_based_step_iterator<I2>& it)
  127. : parent_t(it.base(), memunit_step_fn<Iterator>(it.step())) {}
  128. /// For some reason operator[] provided by iterator_adaptor returns a custom class that is convertible to reference
  129. /// We require our own reference because it is registered in iterator_traits
  130. reference operator[](difference_type d) const { return *(*this+d); }
  131. void set_step(std::ptrdiff_t memunit_step) { this->_step_fn.set_step(memunit_step); }
  132. x_iterator& base() { return parent_t::base_reference(); }
  133. x_iterator const& base() const { return parent_t::base_reference(); }
  134. };
  135. template <typename Iterator>
  136. struct const_iterator_type<memory_based_step_iterator<Iterator> > {
  137. using type = memory_based_step_iterator<typename const_iterator_type<Iterator>::type>;
  138. };
  139. template <typename Iterator>
  140. struct iterator_is_mutable<memory_based_step_iterator<Iterator> > : public iterator_is_mutable<Iterator> {};
  141. /////////////////////////////
  142. // IteratorAdaptorConcept
  143. /////////////////////////////
  144. template <typename Iterator>
  145. struct is_iterator_adaptor<memory_based_step_iterator<Iterator> > : public mpl::true_{};
  146. template <typename Iterator>
  147. struct iterator_adaptor_get_base<memory_based_step_iterator<Iterator> > {
  148. using type = Iterator;
  149. };
  150. template <typename Iterator, typename NewBaseIterator>
  151. struct iterator_adaptor_rebind<memory_based_step_iterator<Iterator>,NewBaseIterator> {
  152. using type = memory_based_step_iterator<NewBaseIterator>;
  153. };
  154. /////////////////////////////
  155. // PixelBasedConcept
  156. /////////////////////////////
  157. template <typename Iterator>
  158. struct color_space_type<memory_based_step_iterator<Iterator> > : public color_space_type<Iterator> {};
  159. template <typename Iterator>
  160. struct channel_mapping_type<memory_based_step_iterator<Iterator> > : public channel_mapping_type<Iterator> {};
  161. template <typename Iterator>
  162. struct is_planar<memory_based_step_iterator<Iterator> > : public is_planar<Iterator> {};
  163. template <typename Iterator>
  164. struct channel_type<memory_based_step_iterator<Iterator> > : public channel_type<Iterator> {};
  165. /////////////////////////////
  166. // MemoryBasedIteratorConcept
  167. /////////////////////////////
  168. template <typename Iterator>
  169. struct byte_to_memunit<memory_based_step_iterator<Iterator> > : public byte_to_memunit<Iterator> {};
  170. template <typename Iterator>
  171. inline std::ptrdiff_t memunit_step(const memory_based_step_iterator<Iterator>& p) { return p.step(); }
  172. template <typename Iterator>
  173. inline std::ptrdiff_t memunit_distance(const memory_based_step_iterator<Iterator>& p1,
  174. const memory_based_step_iterator<Iterator>& p2) {
  175. return memunit_distance(p1.base(),p2.base());
  176. }
  177. template <typename Iterator>
  178. inline void memunit_advance(memory_based_step_iterator<Iterator>& p,
  179. std::ptrdiff_t diff) {
  180. memunit_advance(p.base(), diff);
  181. }
  182. template <typename Iterator>
  183. inline memory_based_step_iterator<Iterator>
  184. memunit_advanced(const memory_based_step_iterator<Iterator>& p,
  185. std::ptrdiff_t diff) {
  186. return memory_based_step_iterator<Iterator>(memunit_advanced(p.base(), diff),p.step());
  187. }
  188. template <typename Iterator>
  189. inline typename std::iterator_traits<Iterator>::reference
  190. memunit_advanced_ref(const memory_based_step_iterator<Iterator>& p,
  191. std::ptrdiff_t diff) {
  192. return memunit_advanced_ref(p.base(), diff);
  193. }
  194. /////////////////////////////
  195. // HasDynamicXStepTypeConcept
  196. /////////////////////////////
  197. template <typename Iterator>
  198. struct dynamic_x_step_type<memory_based_step_iterator<Iterator> > {
  199. using type = memory_based_step_iterator<Iterator>;
  200. };
  201. // For step iterators, pass the function object to the base
  202. template <typename Iterator, typename Deref>
  203. struct iterator_add_deref<memory_based_step_iterator<Iterator>,Deref> {
  204. GIL_CLASS_REQUIRE(Deref, boost::gil, PixelDereferenceAdaptorConcept)
  205. using type = memory_based_step_iterator<typename iterator_add_deref<Iterator, Deref>::type>;
  206. static type make(const memory_based_step_iterator<Iterator>& it, const Deref& d) { return type(iterator_add_deref<Iterator, Deref>::make(it.base(),d),it.step()); }
  207. };
  208. ////////////////////////////////////////////////////////////////////////////////////////
  209. /// make_step_iterator
  210. ////////////////////////////////////////////////////////////////////////////////////////
  211. template <typename I> typename dynamic_x_step_type<I>::type make_step_iterator(const I& it, std::ptrdiff_t step);
  212. namespace detail {
  213. // if the iterator is a plain base iterator (non-adaptor), wraps it in memory_based_step_iterator
  214. template <typename I>
  215. typename dynamic_x_step_type<I>::type make_step_iterator_impl(const I& it, std::ptrdiff_t step, mpl::false_) {
  216. return memory_based_step_iterator<I>(it, step);
  217. }
  218. // If the iterator is compound, put the step in its base
  219. template <typename I>
  220. typename dynamic_x_step_type<I>::type make_step_iterator_impl(const I& it, std::ptrdiff_t step, mpl::true_) {
  221. return make_step_iterator(it.base(), step);
  222. }
  223. // If the iterator is memory_based_step_iterator, change the step
  224. template <typename BaseIt>
  225. memory_based_step_iterator<BaseIt> make_step_iterator_impl(const memory_based_step_iterator<BaseIt>& it, std::ptrdiff_t step, mpl::true_) {
  226. return memory_based_step_iterator<BaseIt>(it.base(), step);
  227. }
  228. }
  229. /// \brief Constructs a step iterator from a base iterator and a step.
  230. ///
  231. /// To construct a step iterator from a given iterator Iterator and a given step, if Iterator does not
  232. /// already have a dynamic step, we wrap it in a memory_based_step_iterator. Otherwise we
  233. /// do a compile-time traversal of the chain of iterator adaptors to locate the step iterator
  234. /// and then set it step to the new one.
  235. ///
  236. /// The step iterator of Iterator is not always memory_based_step_iterator<Iterator>. For example, Iterator may
  237. /// already be a memory_based_step_iterator, in which case it will be inefficient to stack them;
  238. /// we can obtain the same result by multiplying their steps. Note that for Iterator to be a
  239. /// step iterator it does not necessarily have to have the form memory_based_step_iterator<J>.
  240. /// The step iterator can be wrapped inside another iterator. Also, it may not have the
  241. /// type memory_based_step_iterator, but it could be a user-provided type.
  242. template <typename I> // Models MemoryBasedIteratorConcept, HasDynamicXStepTypeConcept
  243. typename dynamic_x_step_type<I>::type make_step_iterator(const I& it, std::ptrdiff_t step) {
  244. return detail::make_step_iterator_impl(it, step, typename is_iterator_adaptor<I>::type());
  245. }
  246. }} // namespace boost::gil
  247. #endif