File: C:/Users/fred/anaconda3/Library/include/zfp/array2.hpp
#ifndef ZFP_ARRAY2_HPP
#define ZFP_ARRAY2_HPP
#include <cstddef>
#include <cstring>
#include <iterator>
#include "zfp/array.hpp"
#include "zfp/index.hpp"
#include "zfp/codec/zfpcodec.hpp"
#include "zfp/internal/array/cache2.hpp"
#include "zfp/internal/array/handle2.hpp"
#include "zfp/internal/array/iterator2.hpp"
#include "zfp/internal/array/pointer2.hpp"
#include "zfp/internal/array/reference2.hpp"
#include "zfp/internal/array/store2.hpp"
#include "zfp/internal/array/view2.hpp"
namespace zfp {
// compressed 2D array of scalars
template <
typename Scalar,
class Codec = zfp::codec::zfp2<Scalar>,
class Index = zfp::index::implicit
>
class array2 : public array {
public:
// types utilized by nested classes
typedef array2 container_type;
typedef Scalar value_type;
typedef Codec codec_type;
typedef Index index_type;
typedef zfp::internal::BlockStore2<value_type, codec_type, index_type> store_type;
typedef zfp::internal::BlockCache2<value_type, store_type> cache_type;
typedef typename Codec::header header;
// accessor classes
typedef zfp::internal::dim2::const_reference<array2> const_reference;
typedef zfp::internal::dim2::const_pointer<array2> const_pointer;
typedef zfp::internal::dim2::const_iterator<array2> const_iterator;
typedef zfp::internal::dim2::const_view<array2> const_view;
typedef zfp::internal::dim2::private_const_view<array2> private_const_view;
typedef zfp::internal::dim2::reference<array2> reference;
typedef zfp::internal::dim2::pointer<array2> pointer;
typedef zfp::internal::dim2::iterator<array2> iterator;
typedef zfp::internal::dim2::view<array2> view;
typedef zfp::internal::dim2::flat_view<array2> flat_view;
typedef zfp::internal::dim2::nested_view1<array2> nested_view1;
typedef zfp::internal::dim2::nested_view2<array2> nested_view2;
typedef zfp::internal::dim2::nested_view2<array2> nested_view;
typedef zfp::internal::dim2::private_view<array2> private_view;
// default constructor
array2() :
array(2, Codec::type),
cache(store)
{}
// constructor of nx * ny array using rate bits per value, at least
// cache_size bytes of cache, and optionally initialized from flat array p
array2(size_t nx, size_t ny, double rate, const value_type* p = 0, size_t cache_size = 0) :
array(2, Codec::type),
store(nx, ny, zfp_config_rate(rate, true)),
cache(store, cache_size)
{
this->nx = nx;
this->ny = ny;
if (p)
set(p);
}
// constructor, from previously-serialized compressed array
array2(const zfp::array::header& header, const void* buffer = 0, size_t buffer_size_bytes = 0) :
array(2, Codec::type, header),
store(header.size_x(), header.size_y(), zfp_config_rate(header.rate(), true)),
cache(store)
{
if (buffer) {
if (buffer_size_bytes && buffer_size_bytes < store.compressed_size())
throw zfp::exception("buffer size is smaller than required");
std::memcpy(store.compressed_data(), buffer, store.compressed_size());
}
}
// copy constructor--performs a deep copy
array2(const array2& a) :
array(),
cache(store)
{
deep_copy(a);
}
// construction from view--perform deep copy of (sub)array
template <class View>
array2(const View& v) :
array(2, Codec::type),
store(v.size_x(), v.size_y(), zfp_config_rate(v.rate(), true)),
cache(store)
{
this->nx = v.size_x();
this->ny = v.size_y();
// initialize array in its preferred order
for (iterator it = begin(); it != end(); ++it)
*it = v(it.i(), it.j());
}
// virtual destructor
virtual ~array2() {}
// assignment operator--performs a deep copy
array2& operator=(const array2& a)
{
if (this != &a)
deep_copy(a);
return *this;
}
// total number of elements in array
size_t size() const { return nx * ny; }
// array dimensions
size_t size_x() const { return nx; }
size_t size_y() const { return ny; }
// resize the array (all previously stored data will be lost)
void resize(size_t nx, size_t ny, bool clear = true)
{
cache.clear();
this->nx = nx;
this->ny = ny;
store.resize(nx, ny, clear);
}
// rate in bits per value
double rate() const { return store.rate(); }
// set rate in bits per value
double set_rate(double rate)
{
cache.clear();
return store.set_rate(rate, true);
}
// byte size of array data structure components indicated by mask
size_t size_bytes(uint mask = ZFP_DATA_ALL) const
{
size_t size = 0;
size += store.size_bytes(mask);
size += cache.size_bytes(mask);
if (mask & ZFP_DATA_META)
size += sizeof(*this);
return size;
}
// number of bytes of compressed data
size_t compressed_size() const { return store.compressed_size(); }
// pointer to compressed data for read or write access
void* compressed_data() const
{
cache.flush();
return store.compressed_data();
}
// cache size in number of bytes
size_t cache_size() const { return cache.size(); }
// set minimum cache size in bytes (array dimensions must be known)
void set_cache_size(size_t bytes)
{
cache.flush();
cache.resize(bytes);
}
// empty cache without compressing modified cached blocks
void clear_cache() const { cache.clear(); }
// flush cache by compressing all modified cached blocks
void flush_cache() const { cache.flush(); }
// decompress array and store at p
void get(value_type* p) const
{
const size_t bx = store.block_size_x();
const size_t by = store.block_size_y();
const ptrdiff_t sx = 1;
const ptrdiff_t sy = static_cast<ptrdiff_t>(nx);
size_t block_index = 0;
for (size_t j = 0; j < by; j++, p += 4 * sx * ptrdiff_t(nx - bx))
for (size_t i = 0; i < bx; i++, p += 4)
cache.get_block(block_index++, p, sx, sy);
}
// initialize array by copying and compressing data stored at p
void set(const value_type* p)
{
const size_t bx = store.block_size_x();
const size_t by = store.block_size_y();
size_t block_index = 0;
if (p) {
// compress data stored at p
const ptrdiff_t sx = 1;
const ptrdiff_t sy = static_cast<ptrdiff_t>(nx);
for (size_t j = 0; j < by; j++, p += 4 * sx * ptrdiff_t(nx - bx))
for (size_t i = 0; i < bx; i++, p += 4)
cache.put_block(block_index++, p, sx, sy);
}
else {
// zero-initialize array
const value_type block[4 * 4] = {};
while (block_index < bx * by)
cache.put_block(block_index++, block, 1, 4);
}
}
// (i, j) accessors
const_reference operator()(size_t i, size_t j) const { return const_reference(const_cast<container_type*>(this), i, j); }
reference operator()(size_t i, size_t j) { return reference(this, i, j); }
// flat index accessors
const_reference operator[](size_t index) const
{
size_t i, j;
ij(i, j, index);
return const_reference(const_cast<container_type*>(this), i, j);
}
reference operator[](size_t index)
{
size_t i, j;
ij(i, j, index);
return reference(this, i, j);
}
// random access iterators
const_iterator cbegin() const { return const_iterator(this, 0, 0); }
const_iterator cend() const { return const_iterator(this, 0, ny); }
const_iterator begin() const { return cbegin(); }
const_iterator end() const { return cend(); }
iterator begin() { return iterator(this, 0, 0); }
iterator end() { return iterator(this, 0, ny); }
protected:
friend class zfp::internal::dim2::const_handle<array2>;
friend class zfp::internal::dim2::const_reference<array2>;
friend class zfp::internal::dim2::const_pointer<array2>;
friend class zfp::internal::dim2::const_iterator<array2>;
friend class zfp::internal::dim2::const_view<array2>;
friend class zfp::internal::dim2::private_const_view<array2>;
friend class zfp::internal::dim2::reference<array2>;
friend class zfp::internal::dim2::pointer<array2>;
friend class zfp::internal::dim2::iterator<array2>;
friend class zfp::internal::dim2::view<array2>;
friend class zfp::internal::dim2::flat_view<array2>;
friend class zfp::internal::dim2::nested_view1<array2>;
friend class zfp::internal::dim2::nested_view2<array2>;
friend class zfp::internal::dim2::private_view<array2>;
// perform a deep copy
void deep_copy(const array2& a)
{
// copy base class members
array::deep_copy(a);
// copy persistent storage
store.deep_copy(a.store);
// copy cached data
cache.deep_copy(a.cache);
}
// global index bounds
size_t min_x() const { return 0; }
size_t max_x() const { return nx; }
size_t min_y() const { return 0; }
size_t max_y() const { return ny; }
// inspector
value_type get(size_t i, size_t j) const { return cache.get(i, j); }
// mutators (called from proxy reference)
void set(size_t i, size_t j, value_type val) { cache.set(i, j, val); }
void add(size_t i, size_t j, value_type val) { cache.ref(i, j) += val; }
void sub(size_t i, size_t j, value_type val) { cache.ref(i, j) -= val; }
void mul(size_t i, size_t j, value_type val) { cache.ref(i, j) *= val; }
void div(size_t i, size_t j, value_type val) { cache.ref(i, j) /= val; }
// convert flat index to (i, j)
void ij(size_t& i, size_t& j, size_t index) const
{
i = index % nx; index /= nx;
j = index;
}
store_type store; // persistent storage of compressed blocks
cache_type cache; // cache of decompressed blocks
};
typedef array2<float> array2f;
typedef array2<double> array2d;
}
#endif