6#ifndef HALIDE_RUNTIME_BUFFER_H
7#define HALIDE_RUNTIME_BUFFER_H
21#include <AvailabilityVersions.h>
22#include <TargetConditionals.h>
25#if defined(__has_feature)
26#if __has_feature(memory_sanitizer)
27#include <sanitizer/msan_interface.h>
35#define HALIDE_ALLOCA _alloca
37#define HALIDE_ALLOCA __builtin_alloca
41#if __GNUC__ == 5 && __GNUC_MINOR__ == 1
42#pragma GCC diagnostic ignored "-Warray-bounds"
45#ifndef HALIDE_RUNTIME_BUFFER_CHECK_INDICES
46#define HALIDE_RUNTIME_BUFFER_CHECK_INDICES 0
49#ifndef HALIDE_RUNTIME_BUFFER_ALLOCATION_ALIGNMENT
53#define HALIDE_RUNTIME_BUFFER_ALLOCATION_ALIGNMENT 128
57 "HALIDE_RUNTIME_BUFFER_ALLOCATION_ALIGNMENT must be a power of 2.");
65#ifndef HALIDE_RUNTIME_BUFFER_USE_ALIGNED_ALLOC
74 #define HALIDE_RUNTIME_BUFFER_USE_ALIGNED_ALLOC 0
76#elif defined(__ANDROID_API__) && __ANDROID_API__ < 28
79 #define HALIDE_RUNTIME_BUFFER_USE_ALIGNED_ALLOC 0
81#elif defined(__APPLE__)
83 #if TARGET_OS_OSX && (__MAC_OS_X_VERSION_MIN_REQUIRED < __MAC_10_15)
86 #define HALIDE_RUNTIME_BUFFER_USE_ALIGNED_ALLOC 0
88 #elif TARGET_OS_IPHONE && (__IPHONE_OS_VERSION_MIN_REQUIRED < __IPHONE_14_0)
91 #define HALIDE_RUNTIME_BUFFER_USE_ALIGNED_ALLOC 0
96 #define HALIDE_RUNTIME_BUFFER_USE_ALIGNED_ALLOC 1
102 #if defined(__GLIBCXX__) && !defined(_GLIBCXX_HAVE_ALIGNED_ALLOC)
105 #define HALIDE_RUNTIME_BUFFER_USE_ALIGNED_ALLOC 0
110 #define HALIDE_RUNTIME_BUFFER_USE_ALIGNED_ALLOC 1
123template<
typename T,
int Dims,
int InClassDimStorage>
128template<
typename... Args>
134template<
typename T,
typename... Args>
136 static const bool value = std::is_convertible_v<T, int> &&
AllInts<Args...>::value;
142template<
typename... Args>
143struct AllInts<float, Args...> : std::false_type {};
145template<
typename... Args>
146struct AllInts<double, Args...> : std::false_type {};
150template<
typename Container>
161 static inline void *(*default_allocate_fn)(
size_t) =
nullptr;
221template<
typename T = void,
240 static const bool T_is_void = std::is_same_v<std::remove_const_t<T>,
void>;
243 template<
typename T2>
244 using add_const_if_T_is_const = std::conditional_t<std::is_const_v<T>,
const T2, T2>;
248 using not_void_T = std::conditional_t<T_is_void,
249 add_const_if_T_is_const<uint8_t>,
253 using not_const_T = std::remove_const_t<T>;
259 using storage_T = std::conditional_t<std::is_pointer_v<T>,
uint64_t, not_void_T>;
263 static constexpr bool has_static_halide_type = !T_is_void;
268 return halide_type_of<std::remove_cv_t<not_void_T>>();
273 return alloc !=
nullptr;
276 static constexpr bool has_static_dimensions = (Dims !=
AnyDims);
284 static_assert(!has_static_dimensions || static_dimensions() >= 0);
288 void incref()
const {
289 if (owns_host_memory()) {
293 if (!dev_ref_count) {
299 dev_ref_count =
new DeviceRefCount;
301 dev_ref_count->
count++;
307 struct DevRefCountCropped : DeviceRefCount {
314 Buffer<T, AnyDims> cropped_from;
315 explicit DevRefCountCropped(
const Buffer<T, AnyDims> &cropped_from)
316 : cropped_from(cropped_from) {
322 void crop_from(
const Buffer<T, AnyDims> &cropped_from) {
323 assert(dev_ref_count ==
nullptr);
324 dev_ref_count =
new DevRefCountCropped(cropped_from);
329 void decref(
bool device_only =
false) {
330 if (owns_host_memory() && !device_only) {
332 if (new_count == 0) {
334 alloc->~AllocationHeader();
339 set_host_dirty(
false);
343 new_count = --(dev_ref_count->
count);
345 if (new_count == 0) {
347 assert(!(alloc && device_dirty()) &&
348 "Implicitly freeing a dirty device allocation while a host allocation still lives. "
349 "Call device_free explicitly if you want to drop dirty device-side data. "
350 "Call copy_to_host explicitly if you want the data copied to the host allocation "
351 "before the device allocation is freed.");
368 delete (DevRefCountCropped *)dev_ref_count;
370 delete dev_ref_count;
374 dev_ref_count =
nullptr;
379 void free_shape_storage() {
380 if (buf.
dim != shape) {
386 template<
int DimsSpecified>
387 void make_static_shape_storage() {
388 static_assert(Dims ==
AnyDims || Dims == DimsSpecified,
389 "Number of arguments to Buffer() does not match static dimensionality");
391 if constexpr (Dims ==
AnyDims) {
392 if constexpr (DimsSpecified <= InClassDimStorage) {
395 static_assert(DimsSpecified >= 1);
399 static_assert(InClassDimStorage >= Dims);
404 void make_shape_storage(
const int dimensions) {
405 if (Dims !=
AnyDims && Dims != dimensions) {
406 assert(
false &&
"Number of arguments to Buffer() does not match static dimensionality");
420 template<
typename T2,
int D2,
int S2>
421 void move_shape_from(Buffer<T2, D2, S2> &&other) {
422 if (other.shape == other.buf.dim) {
423 copy_shape_from(other.buf);
425 buf.
dim = other.buf.dim;
426 other.buf.dim =
nullptr;
437 dev_ref_count =
new DeviceRefCount;
443 void initialize_shape(
const int *sizes) {
456 void initialize_shape(
const std::vector<int> &sizes) {
458 initialize_shape(sizes.data());
462 template<
typename Array,
size_t N>
463 void initialize_shape_from_array_shape(
int next, Array (&vals)[N]) {
469 initialize_shape_from_array_shape(next - 1, vals[0]);
475 template<
typename T2>
476 void initialize_shape_from_array_shape(
int,
const T2 &) {
480 template<
typename Array,
size_t N>
481 static int dimensionality_of_array(Array (&vals)[N]) {
482 return dimensionality_of_array(vals[0]) + 1;
485 template<
typename T2>
486 static int dimensionality_of_array(
const T2 &) {
491 template<
typename Array,
size_t N>
492 static halide_type_t scalar_type_of_array(Array (&vals)[N]) {
493 return scalar_type_of_array(vals[0]);
496 template<
typename T2>
498 return halide_type_of<std::remove_cv_t<T2>>();
502 void crop_host(
int d,
int min,
int extent) {
503 assert(dim(d).
min() <=
min);
504 assert(dim(d).
max() >=
min + extent - 1);
506 if (buf.
host !=
nullptr) {
507 buf.
host += (shift * dim(d).stride()) * type().bytes();
514 void crop_host(
const std::vector<std::pair<int, int>> &rect) {
516 int limit = (int)rect.size();
517 assert(limit <= dimensions());
518 for (
int i = 0; i < limit; i++) {
519 crop_host(i, rect[i].first, rect[i].second);
523 void complete_device_crop(Buffer<T, Dims, InClassDimStorage> &result_host_cropped)
const {
531 result_host_cropped.crop_from(((DevRefCountCropped *)dev_ref_count)->cropped_from);
533 result_host_cropped.crop_from(*
this);
539 void slice_host(
int d,
int pos) {
540 static_assert(Dims ==
AnyDims);
541 assert(dimensions() > 0);
542 assert(d >= 0 && d < dimensions());
543 assert(pos >= dim(d).
min() && pos <= dim(d).
max());
546 if (buf.
host !=
nullptr) {
550 buf.
dim[i] = buf.
dim[i + 1];
555 void complete_device_slice(Buffer<T, AnyDims, InClassDimStorage> &result_host_sliced,
int d,
int pos)
const {
564 result_host_sliced.crop_from(((DevRefCountCropped *)dev_ref_count)->cropped_from);
567 result_host_sliced.crop_from(*
this);
598 return min() + extent() - 1;
609 return val != other.
val;
624 return {
min() + extent()};
634 assert(i >= 0 && i < this->dimensions());
644 return dim(i).extent();
647 return dim(i).stride();
654 return buf.number_of_elements();
659 if constexpr (has_static_dimensions) {
674 assert(buf.
host !=
nullptr);
675 return (T *)buf.begin();
680 assert(buf.
host !=
nullptr);
681 return (T *)buf.end();
686 return buf.size_in_bytes();
698 buf.
type = static_halide_type();
701 constexpr int buf_dimensions = (Dims ==
AnyDims) ? 0 : Dims;
702 make_static_shape_storage<buf_dimensions>();
708 assert(T_is_void || buf.
type == static_halide_type());
709 initialize_from_buffer(buf, ownership);
713 template<
typename T2,
int D2,
int S2>
717 template<
typename T2,
int D2,
int S2>
718 static void static_assert_can_convert_from() {
719 static_assert((!std::is_const_v<T2> || std::is_const_v<T>),
720 "Can't convert from a Buffer<const T> to a Buffer<T>");
721 static_assert(std::is_same_v<std::remove_const_t<T>, std::remove_const_t<T2>> ||
723 "type mismatch constructing Buffer");
725 "Can't convert from a Buffer with static dimensionality to a Buffer with different static dimensionality");
739 template<
typename T2,
int D2,
int S2>
741 static_assert_can_convert_from<T2, D2, S2>();
743 if (other.
type() != static_halide_type()) {
757 template<
typename T2,
int D2,
int S2>
762 static_assert_can_convert_from<T2, D2, S2>();
763 assert(can_convert_from(other));
771 dev_ref_count = other.dev_ref_count;
772 copy_shape_from(other.buf);
781 template<
typename T2,
int D2,
int S2>
785 assert_can_convert_from(other);
787 dev_ref_count = other.dev_ref_count;
788 copy_shape_from(other.buf);
795 dev_ref_count(other.dev_ref_count) {
796 other.dev_ref_count =
nullptr;
797 other.alloc =
nullptr;
804 template<
typename T2,
int D2,
int S2>
808 dev_ref_count(other.dev_ref_count) {
809 assert_can_convert_from(other);
810 other.dev_ref_count =
nullptr;
811 other.alloc =
nullptr;
818 template<
typename T2,
int D2,
int S2>
820 if ((
const void *)
this == (
const void *)&other) {
823 assert_can_convert_from(other);
826 dev_ref_count = other.dev_ref_count;
828 free_shape_storage();
830 copy_shape_from(other.buf);
837 if ((
const void *)
this == (
const void *)&other) {
842 dev_ref_count = other.dev_ref_count;
844 free_shape_storage();
846 copy_shape_from(other.buf);
853 template<
typename T2,
int D2,
int S2>
855 assert_can_convert_from(other);
858 other.alloc =
nullptr;
859 dev_ref_count = other.dev_ref_count;
860 other.dev_ref_count =
nullptr;
861 free_shape_storage();
871 other.alloc =
nullptr;
872 dev_ref_count = other.dev_ref_count;
873 other.dev_ref_count =
nullptr;
874 free_shape_storage();
882 size_t size = type().bytes();
883 for (
int i = 0; i < dimensions(); i++) {
884 size *= dim(i).extent();
887 size = (size << 1) >> 1;
888 for (
int i = 0; i < dimensions(); i++) {
889 size /= dim(i).extent();
891 assert(size == (
size_t)type().bytes() &&
"Error: Overflow computing total size of buffer.");
896 void allocate(
void *(*allocate_fn)(
size_t) =
nullptr,
897 void (*deallocate_fn)(
void *) =
nullptr) {
906 const auto align_up = [=](
size_t value) ->
size_t {
907 return (value + alignment - 1) & ~(alignment - 1);
910 size_t size = size_in_bytes();
912#if HALIDE_RUNTIME_BUFFER_USE_ALIGNED_ALLOC
920 void *alloc_storage = ::aligned_alloc(alignment,
align_up(size) + alignment);
934 if (!deallocate_fn) {
936 if (!deallocate_fn) {
937 deallocate_fn =
free;
947 const size_t requested_size =
align_up(size + alignment +
949 (
int)
sizeof(std::max_align_t)));
950 void *alloc_storage = allocate_fn(requested_size);
975 template<
typename... Args,
976 typename = std::enable_if_t<
AllInts<Args...>::value>>
979 assert(static_halide_type() == t);
981 int extents[] = {first, (int)rest...};
983 constexpr int buf_dimensions = 1 + (int)(
sizeof...(rest));
984 make_static_shape_storage<buf_dimensions>();
985 initialize_shape(extents);
999 static_assert(!T_is_void,
1000 "To construct an Buffer<void>, pass a halide_type_t as the first argument to the constructor");
1001 int extents[] = {first};
1002 buf.
type = static_halide_type();
1003 constexpr int buf_dimensions = 1;
1004 make_static_shape_storage<buf_dimensions>();
1005 initialize_shape(extents);
1012 template<
typename... Args,
1013 typename = std::enable_if_t<
AllInts<Args...>::value>>
1014 Buffer(
int first,
int second, Args... rest) {
1015 static_assert(!T_is_void,
1016 "To construct an Buffer<void>, pass a halide_type_t as the first argument to the constructor");
1017 int extents[] = {first, second, (int)rest...};
1018 buf.
type = static_halide_type();
1019 constexpr int buf_dimensions = 2 + (int)(
sizeof...(rest));
1020 make_static_shape_storage<buf_dimensions>();
1021 initialize_shape(extents);
1032 assert(static_halide_type() == t);
1036 make_shape_storage((
int)sizes.size());
1037 initialize_shape(sizes);
1045 explicit Buffer(
const std::vector<int> &sizes)
1046 :
Buffer(static_halide_type(), sizes) {
1051 static std::vector<int> make_ordered_sizes(
const std::vector<int> &sizes,
const std::vector<int> &order) {
1052 assert(order.size() == sizes.size());
1053 std::vector<int> ordered_sizes(sizes.size());
1054 for (
size_t i = 0; i < sizes.size(); ++i) {
1055 ordered_sizes[i] = sizes.at(order[i]);
1057 return ordered_sizes;
1066 :
Buffer(t, make_ordered_sizes(sizes, storage_order)) {
1067 transpose(storage_order);
1070 Buffer(
const std::vector<int> &sizes,
const std::vector<int> &storage_order)
1071 :
Buffer(static_halide_type(), sizes, storage_order) {
1076 template<
typename Array,
size_t N>
1078 const int buf_dimensions = dimensionality_of_array(vals);
1079 buf.
type = scalar_type_of_array(vals);
1081 make_shape_storage(buf_dimensions);
1082 initialize_shape_from_array_shape(buf.
dimensions - 1, vals);
1089 template<
typename... Args,
1090 typename = std::enable_if_t<
AllInts<Args...>::value>>
1093 assert(static_halide_type() == t);
1095 int extents[] = {first, (int)rest...};
1098 constexpr int buf_dimensions = 1 + (int)(
sizeof...(rest));
1099 make_static_shape_storage<buf_dimensions>();
1100 initialize_shape(extents);
1106 template<
typename... Args,
1107 typename = std::enable_if_t<
AllInts<Args...>::value>>
1108 explicit Buffer(T *data,
int first, Args &&...rest) {
1109 int extents[] = {first, (int)rest...};
1110 buf.
type = static_halide_type();
1111 buf.
host = (
uint8_t *)
const_cast<std::remove_const_t<T> *
>(data);
1112 constexpr int buf_dimensions = 1 + (int)(
sizeof...(rest));
1113 make_static_shape_storage<buf_dimensions>();
1114 initialize_shape(extents);
1121 explicit Buffer(T *data,
const std::vector<int> &sizes) {
1122 buf.
type = static_halide_type();
1123 buf.
host = (
uint8_t *)
const_cast<std::remove_const_t<T> *
>(data);
1124 make_shape_storage((
int)sizes.size());
1125 initialize_shape(sizes);
1134 assert(static_halide_type() == t);
1138 make_shape_storage((
int)sizes.size());
1139 initialize_shape(sizes);
1147 assert(static_halide_type() == t);
1151 make_shape_storage(d);
1152 for (
int i = 0; i < d; i++) {
1153 buf.
dim[i] = shape[i];
1161 const std::vector<halide_dimension_t> &shape)
1162 :
Buffer(t, data, (int)shape.size(), shape.data()) {
1169 buf.
type = static_halide_type();
1170 buf.
host = (
uint8_t *)
const_cast<std::remove_const_t<T> *
>(data);
1171 make_shape_storage(d);
1172 for (
int i = 0; i < d; i++) {
1173 buf.
dim[i] = shape[i];
1180 explicit Buffer(T *data,
const std::vector<halide_dimension_t> &shape)
1181 :
Buffer(data, (int)shape.size(), shape.data()) {
1189 free_shape_storage();
1216 template<
typename T2,
int D2 = Dims>
1229 template<
typename T2,
int D2 = Dims>
1242 template<
typename T2,
int D2 = Dims>
1271 template<
typename T2 = T,
typename = std::enable_if_t<!std::is_const_v<T2>>>
1278 template<
typename TVoid,
1280 typename = std::enable_if_t<std::is_same_v<TVoid, void> &&
1281 !std::is_void_v<T2> &&
1282 !std::is_const_v<T2>>>
1284 return as<TVoid, Dims>();
1289 template<
typename TVoid,
1291 typename = std::enable_if_t<std::is_same_v<TVoid, void> &&
1292 !std::is_void_v<T2> &&
1293 std::is_const_v<T2>>>
1295 return as<const TVoid, Dims>();
1301 return (dimensions() > 0) ? dim(0).extent() : 1;
1304 return (dimensions() > 1) ? dim(1).extent() : 1;
1307 return (dimensions() > 2) ? dim(2).extent() : 1;
1314 return dim(0).min();
1318 return dim(0).max();
1322 return dim(1).min();
1326 return dim(1).max();
1346 void (*deallocate_fn)(
void *) =
nullptr)
const {
1357 void (*deallocate_fn)(
void *) =
nullptr)
const {
1358 static_assert(Dims ==
AnyDims || Dims == 3);
1359 assert(dimensions() == 3);
1362 dst.
allocate(allocate_fn, deallocate_fn);
1371 void (*deallocate_fn)(
void *) =
nullptr)
const {
1372 std::vector<int> mins, extents;
1373 const int dims = dimensions();
1375 extents.reserve(dims);
1376 for (
int d = 0; d < dims; ++d) {
1377 mins.push_back(dim(d).
min());
1378 extents.push_back(dim(d).extent());
1382 dst.
allocate(allocate_fn, deallocate_fn);
1409 template<
typename T2,
int D2,
int S2>
1411 static_assert(!std::is_const_v<T>,
"Cannot call copy_from() on a Buffer<const T>");
1412 assert(!device_dirty() &&
"Cannot call Halide::Runtime::Buffer::copy_from on a device dirty destination.");
1413 assert(!src.
device_dirty() &&
"Cannot call Halide::Runtime::Buffer::copy_from on a device dirty source.");
1421 const int d = dimensions();
1422 for (
int i = 0; i < d; i++) {
1425 if (max_coord < min_coord) {
1429 dst.
crop(i, min_coord, max_coord - min_coord + 1);
1430 src.
crop(i, min_coord, max_coord - min_coord + 1);
1437 if (T_is_void ? (type().bytes() == 1) : (
sizeof(not_void_T) == 1)) {
1441 typed_dst.
for_each_value([&](MemType &dst, MemType src) { dst = src; }, typed_src);
1442 }
else if (T_is_void ? (type().bytes() == 2) : (
sizeof(not_void_T) == 2)) {
1446 typed_dst.
for_each_value([&](MemType &dst, MemType src) { dst = src; }, typed_src);
1447 }
else if (T_is_void ? (type().bytes() == 4) : (
sizeof(not_void_T) == 4)) {
1451 typed_dst.
for_each_value([&](MemType &dst, MemType src) { dst = src; }, typed_src);
1452 }
else if (T_is_void ? (type().bytes() == 8) : (
sizeof(not_void_T) == 8)) {
1456 typed_dst.
for_each_value([&](MemType &dst, MemType src) { dst = src; }, typed_src);
1458 assert(
false &&
"type().bytes() must be 1, 2, 4, or 8");
1477 im.crop_host(d,
min, extent);
1479 complete_device_crop(im);
1493 *
this = cropped(d,
min, extent);
1495 crop_host(d,
min, extent);
1515 complete_device_crop(im);
1524 void crop(
const std::vector<std::pair<int, int>> &rect) {
1530 *
this = cropped(rect);
1549 assert(d >= 0 && d < this->dimensions());
1550 device_deallocate();
1565 device_deallocate();
1567 int limit = (int)delta.size();
1568 assert(limit <= dimensions());
1569 for (
int i = 0; i < limit; i++) {
1570 translate(i, delta[i]);
1577 assert(mins.size() <=
static_cast<decltype(mins.size())
>(dimensions()));
1578 device_deallocate();
1579 for (
size_t i = 0; i < mins.size(); i++) {
1580 buf.
dim[i].
min = mins[i];
1584 template<
typename... Args>
1586 set_min(std::vector<int>{args...});
1593 assert(coords.size() <=
static_cast<decltype(coords.size())
>(dimensions()));
1594 for (
size_t i = 0; i < coords.size(); i++) {
1595 if (coords[i] < dim((
int)i).
min() || coords[i] > dim((
int)i).
max()) {
1602 template<
typename... Args>
1604 return contains(std::vector<int>{args...});
1626 assert(d1 >= 0 && d1 < this->dimensions());
1627 assert(d2 >= 0 && d2 < this->dimensions());
1628 std::swap(buf.
dim[d1], buf.
dim[d2]);
1636 assert((
int)order.size() == dimensions());
1637 if (dimensions() < 2) {
1642 std::vector<int> order_sorted = order;
1643 for (
size_t i = 1; i < order_sorted.size(); i++) {
1644 for (
size_t j = i; j > 0 && order_sorted[j - 1] > order_sorted[j]; j--) {
1645 std::swap(order_sorted[j], order_sorted[j - 1]);
1646 transpose(j, j - 1);
1663 static_assert(Dims ==
AnyDims || Dims > 0,
"Cannot slice a 0-dimensional buffer");
1664 assert(dimensions() > 0);
1673 im.slice_host(d, pos);
1675 complete_device_slice(im, d, pos);
1684 static_assert(Dims ==
AnyDims || Dims > 0,
"Cannot slice a 0-dimensional buffer");
1685 assert(dimensions() > 0);
1687 return sliced(d, dim(d).
min());
1696 static_assert(Dims ==
AnyDims,
"Cannot call slice() on a Buffer with static dimensionality.");
1697 assert(dimensions() > 0);
1704 *
this = sliced(d, pos);
1735 static_assert(Dims ==
AnyDims,
"Cannot call embed() on a Buffer with static dimensionality.");
1736 assert(d >= 0 && d <= dimensions());
1738 translate(dimensions() - 1, pos);
1739 for (
int i = dimensions() - 1; i > d; i--) {
1740 transpose(i, i - 1);
1749 static_assert(Dims ==
AnyDims,
"Cannot call add_dimension() on a Buffer with static dimensionality.");
1752 if (buf.
dim != shape) {
1755 for (
int i = 0; i < dims; i++) {
1756 new_shape[i] = buf.
dim[i];
1759 buf.
dim = new_shape;
1760 }
else if (dims == InClassDimStorage) {
1763 for (
int i = 0; i < dims; i++) {
1764 buf.
dim[i] = shape[i];
1769 buf.
dim[dims] = {0, 1, 0};
1791 assert((!v || !device_dirty()) &&
"Cannot set host dirty when device is already dirty. Call copy_to_host() before accessing the buffer from host.");
1792 buf.set_host_dirty(v);
1800 return buf.device_dirty();
1804 return buf.host_dirty();
1808 assert((!v || !host_dirty()) &&
"Cannot set device dirty when host is already dirty.");
1809 buf.set_device_dirty(v);
1813 if (device_dirty()) {
1821 return device_interface->
copy_to_device(ctx, &buf, device_interface);
1827 return device_interface->
device_malloc(ctx, &buf, device_interface);
1831 if (dev_ref_count) {
1833 "Can't call device_free on an unmanaged or wrapped native device handle. "
1834 "Free the source allocation or call device_detach_native instead.");
1836 assert(dev_ref_count->
count == 1 &&
1837 "Multiple Halide::Runtime::Buffer objects share this device "
1838 "allocation. Freeing it would create dangling references. "
1839 "Don't call device_free on Halide buffers that you have copied or "
1840 "passed by value.");
1846 if (dev_ref_count) {
1847 delete dev_ref_count;
1848 dev_ref_count =
nullptr;
1854 uint64_t handle,
void *ctx =
nullptr) {
1855 assert(device_interface);
1858 return device_interface->
wrap_native(ctx, &buf, handle, device_interface);
1862 assert(dev_ref_count &&
1864 "Only call device_detach_native on buffers wrapping a native "
1865 "device handle via device_wrap_native. This buffer was allocated "
1866 "using device_malloc, or is unmanaged. "
1867 "Call device_free or free the original allocation instead.");
1869 assert(dev_ref_count->
count == 1 &&
1870 "Multiple Halide::Runtime::Buffer objects share this device "
1871 "allocation. Freeing it could create dangling references. "
1872 "Don't call device_detach_native on Halide buffers that you "
1873 "have copied or passed by value.");
1878 delete dev_ref_count;
1879 dev_ref_count =
nullptr;
1888 if (dev_ref_count) {
1890 "Can't call device_and_host_free on a device handle not allocated with device_and_host_malloc. "
1891 "Free the source allocation or call device_detach_native instead.");
1893 assert(dev_ref_count->
count == 1 &&
1894 "Multiple Halide::Runtime::Buffer objects share this device "
1895 "allocation. Freeing it would create dangling references. "
1896 "Don't call device_and_host_free on Halide buffers that you have copied or "
1897 "passed by value.");
1903 if (dev_ref_count) {
1904 delete dev_ref_count;
1905 dev_ref_count =
nullptr;
1911 return buf.device_sync(ctx);
1920 if (dev_ref_count ==
nullptr) {
1934 static_assert(Dims ==
AnyDims || Dims == 3,
"make_interleaved() must be called on a Buffer that can represent 3 dimensions.");
1950 return make_interleaved(static_halide_type(), width, height, channels);
1956 static_assert(Dims ==
AnyDims || Dims == 3,
"make_interleaved() must be called on a Buffer that can represent 3 dimensions.");
1965 return make_interleaved(static_halide_type(), data, width, height, channels);
1970 static_assert(Dims ==
AnyDims || Dims == 0,
"make_scalar() must be called on a Buffer that can represent 0 dimensions.");
1978 static_assert(Dims ==
AnyDims || Dims == 0,
"make_scalar() must be called on a Buffer that can represent 0 dimensions.");
1986 static_assert(Dims ==
AnyDims || Dims == 0,
"make_scalar() must be called on a Buffer that can represent 0 dimensions.");
1994 template<
typename T2,
int D2,
int S2>
1997 void *(*allocate_fn)(
size_t) =
nullptr,
1998 void (*deallocate_fn)(
void *) =
nullptr) {
2001 static_assert(Dims == D2 || Dims ==
AnyDims);
2002 const halide_type_t dst_type = T_is_void ? src.
type() : halide_type_of<std::remove_cv_t<not_void_T>>();
2004 allocate_fn, deallocate_fn);
2011 void *(*allocate_fn)(
size_t),
2012 void (*deallocate_fn)(
void *)) {
2014 std::vector<int> swaps;
2015 for (
int i = dimensions - 1; i > 0; i--) {
2016 for (
int j = i; j > 0; j--) {
2017 if (shape[j - 1].stride > shape[j].stride) {
2018 std::swap(shape[j - 1], shape[j]);
2026 for (
int i = 0; i < dimensions; i++) {
2035 while (!swaps.empty()) {
2036 int j = swaps.back();
2037 std::swap(shape[j - 1], shape[j]);
2043 Buffer<> dst(dst_type,
nullptr, dimensions, shape);
2044 dst.allocate(allocate_fn, deallocate_fn);
2049 template<
typename... Args>
2052 offset_of(
int d,
int first, Args... rest)
const {
2053#if HALIDE_RUNTIME_BUFFER_CHECK_INDICES
2054 assert(first >= this->buf.
dim[d].
min);
2055 assert(first < this->buf.
dim[d].
min + this->buf.dim[d].extent);
2057 return offset_of(d + 1, rest...) + (
ptrdiff_t)this->buf.
dim[d].
stride * (first - this->buf.dim[d].min);
2065 template<
typename... Args>
2068 return (storage_T *)(this->buf.
host) + offset_of(0, args...) * type().bytes();
2070 return (storage_T *)(this->buf.
host) + offset_of(0, args...);
2075 ptrdiff_t offset_of(
const int *pos)
const {
2077 for (
int i = this->dimensions() - 1; i >= 0; i--) {
2078#if HALIDE_RUNTIME_BUFFER_CHECK_INDICES
2079 assert(pos[i] >= this->buf.
dim[i].
min);
2080 assert(pos[i] < this->buf.
dim[i].
min + this->buf.dim[i].extent);
2088 storage_T *address_of(
const int *pos)
const {
2090 return (storage_T *)this->buf.
host + offset_of(pos) * type().bytes();
2092 return (storage_T *)this->buf.
host + offset_of(pos);
2099 return (T *)(this->buf.
host);
2109 template<
typename... Args,
2110 typename = std::enable_if_t<
AllInts<Args...>::value>>
2112 static_assert(!T_is_void,
2113 "Cannot use operator() on Buffer<void> types");
2114 constexpr int expected_dims = 1 + (int)(
sizeof...(rest));
2115 static_assert(Dims ==
AnyDims || Dims == expected_dims,
"Buffer with static dimensions was accessed with the wrong number of coordinates in operator()");
2116 assert(!device_dirty());
2117 return *((
const not_void_T *)(address_of(first, rest...)));
2122 static_assert(!T_is_void,
2123 "Cannot use operator() on Buffer<void> types");
2124 constexpr int expected_dims = 0;
2125 static_assert(Dims ==
AnyDims || Dims == expected_dims,
"Buffer with static dimensions was accessed with the wrong number of coordinates in operator()");
2126 assert(!device_dirty());
2127 return *((
const not_void_T *)(data()));
2133 static_assert(!T_is_void,
2134 "Cannot use operator() on Buffer<void> types");
2135 assert(!device_dirty());
2136 return *((
const not_void_T *)(address_of(pos)));
2139 template<
typename... Args,
2140 typename = std::enable_if_t<
AllInts<Args...>::value>>
2142 static_assert(!T_is_void,
2143 "Cannot use operator() on Buffer<void> types");
2144 constexpr int expected_dims = 1 + (int)(
sizeof...(rest));
2145 static_assert(Dims ==
AnyDims || Dims == expected_dims,
"Buffer with static dimensions was accessed with the wrong number of coordinates in operator()");
2147 return *((not_void_T *)(address_of(first, rest...)));
2153 static_assert(!T_is_void,
2154 "Cannot use operator() on Buffer<void> types");
2155 constexpr int expected_dims = 0;
2156 static_assert(Dims ==
AnyDims || Dims == expected_dims,
"Buffer with static dimensions was accessed with the wrong number of coordinates in operator()");
2158 return *((not_void_T *)(data()));
2164 static_assert(!T_is_void,
2165 "Cannot use operator() on Buffer<void> types");
2167 return *((not_void_T *)(address_of(pos)));
2173 bool all_equal =
true;
2174 for_each_element([&](
const int *pos) { all_equal &= (*this)(pos) == val; });
2180 for_each_value([=](T &v) { v = val; });
2188 struct for_each_value_task_dim {
2196 template<
typename Ptr,
typename... Ptrs>
2199 advance_ptrs(stride + 1, ptrs...);
2206 template<
typename Fn,
typename Ptr,
typename... Ptrs>
2207 HALIDE_NEVER_INLINE static void for_each_value_helper(Fn &&f,
int d,
bool innermost_strides_are_one,
2208 const for_each_value_task_dim<
sizeof...(Ptrs) + 1> *t, Ptr ptr, Ptrs... ptrs) {
2210 if (innermost_strides_are_one) {
2211 Ptr
end = ptr + t[0].extent;
2212 while (ptr !=
end) {
2213 f(*ptr++, (*ptrs++)...);
2217 f(*ptr, (*ptrs)...);
2218 advance_ptrs(t[0].stride, ptr, ptrs...);
2223 for_each_value_helper(f, d - 1, innermost_strides_are_one, t, ptr, ptrs...);
2224 advance_ptrs(t[d].stride, ptr, ptrs...);
2231 HALIDE_NEVER_INLINE static std::pair<int, bool> for_each_value_prep(for_each_value_task_dim<N> *t,
2233 const int dimensions = buffers[0]->
dimensions;
2234 assert(dimensions > 0);
2237 for (
int i = 0; i < N; i++) {
2238 if (buffers[i]->device) {
2239 assert(buffers[i]->host &&
2240 "Buffer passed to for_each_value has device allocation but no host allocation. Call allocate() and copy_to_host() first");
2241 assert(!buffers[i]->device_dirty() &&
2242 "Buffer passed to for_each_value is dirty on device. Call copy_to_host() first");
2244 assert(buffers[i]->host &&
2245 "Buffer passed to for_each_value has no host or device allocation");
2250 for (
int i = 0; i < dimensions; i++) {
2251 for (
int j = 0; j < N; j++) {
2252 assert(buffers[j]->dimensions == dimensions);
2253 assert(buffers[j]->dim[i].extent == buffers[0]->dim[i].extent &&
2254 buffers[j]->dim[i].
min == buffers[0]->dim[i].
min);
2255 const int s = buffers[j]->
dim[i].
stride;
2258 t[i].extent = buffers[0]->
dim[i].
extent;
2263 for (
int j = i; j > 0 && t[j].stride[N - 1] < t[j - 1].stride[N - 1]; j--) {
2264 std::swap(t[j], t[j - 1]);
2271 for (
int i = 1; i < d; i++) {
2273 for (
int j = 0; j < N; j++) {
2274 flat = flat && t[i - 1].stride[j] * t[i - 1].extent == t[i].stride[j];
2277 t[i - 1].extent *= t[i].extent;
2278 for (
int j = i; j < d - 1; j++) {
2289 bool innermost_strides_are_one =
true;
2290 for (
int i = 0; i < N; i++) {
2291 innermost_strides_are_one &= (t[0].stride[i] == 1);
2294 return {d, innermost_strides_are_one};
2297 template<
typename Fn,
typename... Args,
int N =
sizeof...(Args) + 1>
2298 void for_each_value_impl(Fn &&f, Args &&...other_buffers)
const {
2299 if (dimensions() > 0) {
2300 const size_t alloc_size = dimensions() *
sizeof(for_each_value_task_dim<N>);
2301 Buffer<>::for_each_value_task_dim<N> *t =
2302 (Buffer<>::for_each_value_task_dim<N> *)
HALIDE_ALLOCA(alloc_size);
2306 auto [new_dims, innermost_strides_are_one] = Buffer<>::for_each_value_prep(t, buffers);
2308 Buffer<>::for_each_value_helper(f, new_dims - 1,
2309 innermost_strides_are_one,
2311 data(), (other_buffers.data())...);
2318 f(*data(), (*other_buffers.data())...);
2338 template<
typename Fn,
typename... Args,
int N =
sizeof...(Args) + 1>
2340 for_each_value_impl(f, std::forward<Args>(other_buffers)...);
2344 template<
typename Fn,
typename... Args,
int N =
sizeof...(Args) + 1>
2348 for_each_value_impl(f, std::forward<Args>(other_buffers)...);
2355 struct for_each_element_task_dim {
2362 template<
typename Fn,
2364 typename =
decltype(std::declval<Fn>()(std::declval<Args>()...))>
2365 HALIDE_ALWAYS_INLINE static void for_each_element_variadic(
int,
int,
const for_each_element_task_dim *, Fn &&f, Args... args) {
2371 template<
typename Fn,
2373 HALIDE_ALWAYS_INLINE static void for_each_element_variadic(
double,
int d,
const for_each_element_task_dim *t, Fn &&f, Args... args) {
2374 for (
int i = t[d].
min; i <= t[d].max; i++) {
2375 for_each_element_variadic(0, d - 1, t, std::forward<Fn>(f), i, args...);
2381 template<
typename Fn,
2383 typename =
decltype(std::declval<Fn>()(std::declval<Args>()...))>
2385 return (
int)(
sizeof...(Args));
2391 template<
typename Fn,
2394 static_assert(
sizeof...(args) <= 256,
2395 "Callable passed to for_each_element must accept either a const int *,"
2396 " or up to 256 ints. No such operator found. Expect infinite template recursion.");
2397 return num_args(0, std::forward<Fn>(f), 0, args...);
2407 typename = std::enable_if_t<(d >= 0)>>
2408 HALIDE_ALWAYS_INLINE static void for_each_element_array_helper(
int,
const for_each_element_task_dim *t, Fn &&f,
int *pos) {
2409 for (pos[d] = t[d].
min; pos[d] <= t[d].max; pos[d]++) {
2410 for_each_element_array_helper<d - 1>(0, t, f, pos);
2417 typename = std::enable_if_t<(d < 0)>>
2418 HALIDE_ALWAYS_INLINE static void for_each_element_array_helper(
double,
const for_each_element_task_dim *t, Fn &&f,
int *pos) {
2427 template<
typename Fn>
2428 static void for_each_element_array(
int d,
const for_each_element_task_dim *t, Fn &&f,
int *pos) {
2431 }
else if (d == 0) {
2435 for_each_element_array_helper<0, Fn>(0, t, std::forward<Fn>(f), pos);
2436 }
else if (d == 1) {
2437 for_each_element_array_helper<1, Fn>(0, t, std::forward<Fn>(f), pos);
2438 }
else if (d == 2) {
2439 for_each_element_array_helper<2, Fn>(0, t, std::forward<Fn>(f), pos);
2440 }
else if (d == 3) {
2441 for_each_element_array_helper<3, Fn>(0, t, std::forward<Fn>(f), pos);
2443 for (pos[d] = t[d].
min; pos[d] <= t[d].max; pos[d]++) {
2444 for_each_element_array(d - 1, t, f, pos);
2452 template<
typename Fn,
2453 typename =
decltype(std::declval<Fn>()((
const int *)
nullptr))>
2454 static void for_each_element(
int,
int dims,
const for_each_element_task_dim *t, Fn &&f,
int check = 0) {
2455 const int size = dims *
sizeof(int);
2460 for_each_element_array(dims - 1, t, std::forward<Fn>(f), pos);
2465 template<
typename Fn>
2466 HALIDE_ALWAYS_INLINE static void for_each_element(
double,
int dims,
const for_each_element_task_dim *t, Fn &&f) {
2467 int args = num_args(0, std::forward<Fn>(f));
2468 assert(dims >= args);
2469 for_each_element_variadic(0, args - 1, t, std::forward<Fn>(f));
2472 template<
typename Fn>
2473 void for_each_element_impl(Fn &&f)
const {
2474 for_each_element_task_dim *t =
2475 (for_each_element_task_dim *)
HALIDE_ALLOCA(dimensions() *
sizeof(for_each_element_task_dim));
2476 for (
int i = 0; i < dimensions(); i++) {
2477 t[i].min = dim(i).min();
2478 t[i].max = dim(i).max();
2480 for_each_element(0, dimensions(), t, std::forward<Fn>(f));
2541 template<
typename Fn>
2543 for_each_element_impl(f);
2547 template<
typename Fn>
2551 for_each_element_impl(f);
2557 template<
typename Fn>
2562 template<
typename... Args,
2563 typename =
decltype(std::declval<Fn>()(std::declval<Args>()...))>
2564 void operator()(Args... args) {
2565 (*buf)(args...) = f(args...);
2569 : f(std::forward<Fn>(f)), buf(buf) {
2578 template<
typename Fn,
2579 typename = std::enable_if_t<!std::is_arithmetic_v<std::decay_t<Fn>>>>
2582 FillHelper<Fn> wrapper(std::forward<Fn>(f),
this);
2583 return for_each_element(wrapper);
2591 return buf.is_bounds_query();
2600#if defined(__has_feature)
2601#if __has_feature(memory_sanitizer)
2603 __msan_check_mem_is_initialized(data(), size_in_bytes());
2605 for_each_value([](T &v) { __msan_check_mem_is_initialized(&v,
sizeof(T)); ; });
#define HALIDE_RUNTIME_BUFFER_ALLOCATION_ALIGNMENT
This file declares the routines used by Halide internally in its runtime.
#define HALIDE_NEVER_INLINE
@ halide_error_code_success
There was no error.
#define HALIDE_ALWAYS_INLINE
struct halide_buffer_t halide_buffer_t
The raw representation of an image passed around by generated Halide code.
Read-only access to the shape.
HALIDE_ALWAYS_INLINE int min() const
The lowest coordinate in this dimension.
Dimension(const halide_dimension_t &dim)
HALIDE_ALWAYS_INLINE int max() const
The highest coordinate in this dimension.
HALIDE_ALWAYS_INLINE iterator end() const
An iterator that points to one past the max coordinate.
HALIDE_ALWAYS_INLINE int stride() const
The number of elements in memory you have to step over to increment this coordinate by one.
HALIDE_ALWAYS_INLINE iterator begin() const
An iterator that points to the min coordinate.
HALIDE_ALWAYS_INLINE int extent() const
The extent of the image along this dimension.
A templated Buffer class that wraps halide_buffer_t and adds functionality.
Buffer< T, Dims, InClassDimStorage > & operator=(const Buffer< T2, D2, S2 > &other)
Assign from another Buffer of possibly-different dimensionality and type.
Buffer< not_const_T, Dims, InClassDimStorage > copy_to_planar(void *(*allocate_fn)(size_t)=nullptr, void(*deallocate_fn)(void *)=nullptr) const
Like copy(), but the copy is created in planar memory layout (vs.
Buffer< T, Dims, InClassDimStorage > transposed(const std::vector< int > &order) const
Make a buffer which refers to the same data in the same layout using a different ordering of the dime...
void translate(int d, int delta)
Translate an image in-place along one dimension by changing how it is indexed.
Buffer(const halide_buffer_t &buf, BufferDeviceOwnership ownership=BufferDeviceOwnership::Unmanaged)
Make a Buffer from a halide_buffer_t.
void allocate(void *(*allocate_fn)(size_t)=nullptr, void(*deallocate_fn)(void *)=nullptr)
Allocate memory for this Buffer.
Buffer< not_const_T, Dims, InClassDimStorage > copy(void *(*allocate_fn)(size_t)=nullptr, void(*deallocate_fn)(void *)=nullptr) const
Make a new image which is a deep copy of this image.
Buffer< T,(Dims==AnyDims ? AnyDims :Dims+1)> embedded(int d, int pos=0) const
Make a new buffer that views this buffer as a single slice in a higher-dimensional space.
void add_dimension()
Add a new dimension with a min of zero and an extent of one.
void slice(int d)
Slice a buffer in-place at the dimension's minimum.
static void set_default_allocate_fn(void *(*allocate_fn)(size_t))
bool owns_host_memory() const
Does this Buffer own the host memory it refers to?
int width() const
Conventional names for the first three dimensions.
void transpose(const std::vector< int > &order)
A generalized transpose: instead of swapping two dimensions, pass a vector that lists each dimension ...
void set_min(const std::vector< int > &mins)
Set the min coordinate of an image in the first N dimensions.
HALIDE_ALWAYS_INLINE Buffer< T, Dims, InClassDimStorage > & for_each_element(Fn &&f)
Buffer(halide_type_t t, add_const_if_T_is_const< void > *data, const std::vector< int > &sizes)
Initialize an Buffer of runtime type from a pointer and a vector of sizes.
HALIDE_ALWAYS_INLINE Buffer< T2, D2, InClassDimStorage > as() &&
Return an rval reference to this Buffer.
int copy_to_host(void *ctx=nullptr)
Buffer(halide_type_t t, const std::vector< int > &sizes)
Allocate a new image of unknown type using a vector of ints as the size.
int device_malloc(const struct halide_device_interface_t *device_interface, void *ctx=nullptr)
int device_free(void *ctx=nullptr)
bool contains(Args... args) const
void crop(const std::vector< std::pair< int, int > > &rect)
Crop an image in-place along the first N dimensions.
void set_device_dirty(bool v=true)
HALIDE_ALWAYS_INLINE const not_void_T & operator()(const int *pos) const
Buffer(T *data, int d, const halide_dimension_t *shape)
Initialize an Buffer from a pointer to the min coordinate and an array describing the shape.
Buffer(Buffer< T2, D2, S2 > &&other)
Move-construct a Buffer from a Buffer of different dimensionality and type.
void slice(int d, int pos)
Rewrite the buffer to refer to a single lower-dimensional slice of itself along the given dimension a...
HALIDE_ALWAYS_INLINE const not_void_T & operator()(int first, Args... rest) const
Access elements.
HALIDE_ALWAYS_INLINE void set_host_dirty(bool v=true)
Methods for managing any GPU allocation.
void msan_check_mem_is_initialized(bool entire=false) const
Convenient check to verify that all of the interesting bytes in the Buffer are initialized under MSAN...
Buffer< T, Dims, InClassDimStorage > & operator=(Buffer< T, Dims, InClassDimStorage > &&other) noexcept
Standard move-assignment operator.
int device_detach_native(void *ctx=nullptr)
int device_wrap_native(const struct halide_device_interface_t *device_interface, uint64_t handle, void *ctx=nullptr)
Buffer< T, Dims, InClassDimStorage > translated(const std::vector< int > &delta) const
Make an image which refers to the same data translated along the first N dimensions.
HALIDE_ALWAYS_INLINE Dimension dim(int i) const
Access the shape of the buffer.
HALIDE_ALWAYS_INLINE Buffer< std::add_const_t< T >, Dims, InClassDimStorage > & as_const() &
as_const() is syntactic sugar for .as<const T>(), to avoid the need to recapitulate the type argument...
Buffer(int first, int second, Args... rest)
HALIDE_ALWAYS_INLINE Buffer< std::add_const_t< T >, Dims, InClassDimStorage > as_const() &&
Buffer< T, Dims, InClassDimStorage > transposed(int d1, int d2) const
Make a buffer which refers to the same data in the same layout using a swapped indexing order for the...
HALIDE_ALWAYS_INLINE Buffer< T, Dims, InClassDimStorage > & for_each_value(Fn &&f, Args &&...other_buffers)
HALIDE_ALWAYS_INLINE not_void_T & operator()()
BufferDeviceOwnership device_ownership() const
Return the method by which the device field is managed.
void check_overflow()
Check the product of the extents fits in memory.
static bool can_convert_from(const Buffer< T2, D2, S2 > &other)
Determine if a Buffer<T, Dims, InClassDimStorage> can be constructed from some other Buffer type.
Buffer< not_const_T, Dims, InClassDimStorage > copy_to_interleaved(void *(*allocate_fn)(size_t)=nullptr, void(*deallocate_fn)(void *)=nullptr) const
Like copy(), but the copy is created in interleaved memory layout (vs.
int device_and_host_malloc(const struct halide_device_interface_t *device_interface, void *ctx=nullptr)
int device_sync(void *ctx=nullptr)
static Buffer< void, Dims, InClassDimStorage > make_interleaved(halide_type_t t, int width, int height, int channels)
If you use the (x, y, c) indexing convention, then Halide Buffers are stored planar by default.
Buffer(const std::vector< int > &sizes)
Allocate a new image of known type using a vector of ints as the size.
void embed(int d, int pos=0)
Embed a buffer in-place, increasing the dimensionality.
static constexpr halide_type_t static_halide_type()
Get the Halide type of T.
Buffer(T *data, int first, Args &&...rest)
Initialize an Buffer from a pointer and some sizes.
int copy_to_device(const struct halide_device_interface_t *device_interface, void *ctx=nullptr)
Buffer(Array(&vals)[N])
Make an Buffer that refers to a statically sized array.
const halide_buffer_t * raw_buffer() const
HALIDE_ALWAYS_INLINE not_void_T & operator()(int first, Args... rest)
static Buffer< T, Dims, InClassDimStorage > make_interleaved(int width, int height, int channels)
If you use the (x, y, c) indexing convention, then Halide Buffers are stored planar by default.
halide_type_t type() const
Get the type of the elements.
int device_and_host_free(const struct halide_device_interface_t *device_interface, void *ctx=nullptr)
Buffer(int first)
Allocate a new image of the given size.
halide_buffer_t * raw_buffer()
Get a pointer to the raw halide_buffer_t this wraps.
T * end() const
A pointer to one beyond the element with the highest address.
HALIDE_ALWAYS_INLINE bool device_dirty() const
Buffer< T, Dims, InClassDimStorage > cropped(const std::vector< std::pair< int, int > > &rect) const
Make an image that refers to a sub-rectangle of this image along the first N dimensions.
static constexpr int static_dimensions()
Callers should not use the result if has_static_dimensions is false.
HALIDE_ALWAYS_INLINE const Buffer< std::add_const_t< T >, Dims, InClassDimStorage > & as_const() const &
void transpose(int d1, int d2)
Transpose a buffer in-place by changing how it is indexed.
void deallocate()
Drop reference to any owned host or device memory, possibly freeing it, if this buffer held the last ...
size_t size_in_bytes() const
The total number of bytes spanned by the data in memory.
bool has_device_allocation() const
void reset()
Reset the Buffer to be equivalent to a default-constructed Buffer of the same static type (if any); B...
Buffer(halide_type_t t, int first, Args... rest)
Allocate a new image of the given size with a runtime type.
int dimensions() const
Get the dimensionality of the buffer.
Buffer(halide_type_t t, add_const_if_T_is_const< void > *data, int d, const halide_dimension_t *shape)
Initialize an Buffer from a pointer to the min coordinate and an array describing the shape.
int min(int i) const
Access to the mins, strides, extents.
HALIDE_ALWAYS_INLINE const Buffer< T, Dims, InClassDimStorage > & for_each_element(Fn &&f) const
Call a function at each site in a buffer.
void device_deallocate()
Drop reference to any owned device memory, possibly freeing it if this buffer held the last reference...
HALIDE_ALWAYS_INLINE const not_void_T & operator()() const
static Buffer< T, Dims, InClassDimStorage > make_scalar()
Make a zero-dimensional Buffer.
void add_dimension_with_stride(int s)
Add a new dimension with a min of zero, an extent of one, and the specified stride.
Buffer(Buffer< T, Dims, InClassDimStorage > &&other) noexcept
Move constructor.
Buffer< T, Dims, InClassDimStorage > cropped(int d, int min, int extent) const
Make an image that refers to a sub-range of this image along the given dimension.
void crop(int d, int min, int extent)
Crop an image in-place along the given dimension.
Buffer< T, Dims, InClassDimStorage > & fill(Fn &&f)
Fill a buffer by evaluating a callable at every site.
static Buffer< T, Dims, InClassDimStorage > make_scalar(T *data)
Make a zero-dimensional Buffer that points to non-owned, existing data.
Buffer< T, Dims, InClassDimStorage > alias() const
Make a copy of the Buffer which shares the underlying host and/or device allocations as the existing ...
void set_min(Args... args)
size_t number_of_elements() const
The total number of elements this buffer represents.
static void assert_can_convert_from(const Buffer< T2, D2, S2 > &other)
Fail an assertion at runtime or compile-time if an Buffer<T, Dims, InClassDimStorage> cannot be const...
void translate(const std::vector< int > &delta)
Translate an image along the first N dimensions by changing how it is indexed.
Buffer(const Buffer< T, Dims, InClassDimStorage > &other)
Copy constructor.
HALIDE_ALWAYS_INLINE not_void_T & operator()(const int *pos)
T * data() const
Get a pointer to the address of the min coordinate.
Buffer< T, Dims, InClassDimStorage > & fill(not_void_T val)
Buffer(const std::vector< int > &sizes, const std::vector< int > &storage_order)
Buffer< T, Dims, InClassDimStorage > & operator=(Buffer< T2, D2, S2 > &&other)
Move from another Buffer of possibly-different dimensionality and type.
Buffer(halide_type_t t, const std::vector< int > &sizes, const std::vector< int > &storage_order)
Allocate a new image of unknown type using a vector of ints as the size and a vector of indices indic...
Buffer(halide_type_t t, add_const_if_T_is_const< void > *data, const std::vector< halide_dimension_t > &shape)
Initialize a Buffer from a pointer to the min coordinate and a vector describing the shape.
Buffer< T,(Dims==AnyDims ? AnyDims :Dims - 1)> sliced(int d, int pos) const
Make a lower-dimensional buffer that refers to one slice of this buffer.
static Buffer< add_const_if_T_is_const< void >, Dims, InClassDimStorage > make_interleaved(halide_type_t t, T *data, int width, int height, int channels)
Wrap an existing interleaved image.
HALIDE_ALWAYS_INLINE const Buffer< T, Dims, InClassDimStorage > & for_each_value(Fn &&f, Args &&...other_buffers) const
Call a function on every value in the buffer, and the corresponding values in some number of other bu...
bool is_bounds_query() const
Check if an input buffer passed extern stage is a querying bounds.
Buffer< T,(Dims==AnyDims ? AnyDims :Dims - 1)> sliced(int d) const
Make a lower-dimensional buffer that refers to one slice of this buffer at the dimension's minimum.
int left() const
Conventional names for the min and max value of each dimension.
void copy_from(Buffer< T2, D2, S2 > src)
Fill a Buffer with the values at the same coordinates in another Buffer.
Buffer< T, Dims, InClassDimStorage > translated(int d, int dx) const
Make an image which refers to the same data with using translated coordinates in the given dimension.
static Buffer< T, Dims, InClassDimStorage > make_interleaved(T *data, int width, int height, int channels)
Wrap an existing interleaved image.
static void set_default_deallocate_fn(void(*deallocate_fn)(void *))
static Buffer< T, Dims, InClassDimStorage > make_with_shape_of(Buffer< T2, D2, S2 > src, void *(*allocate_fn)(size_t)=nullptr, void(*deallocate_fn)(void *)=nullptr)
Make a buffer with the same shape and memory nesting order as another buffer.
Buffer(const Buffer< T2, D2, S2 > &other)
Construct a Buffer from a Buffer of different dimensionality and type.
bool contains(const std::vector< int > &coords) const
Test if a given coordinate is within the bounds of an image.
Buffer(T *data, const std::vector< halide_dimension_t > &shape)
Initialize a Buffer from a pointer to the min coordinate and a vector describing the shape.
Buffer(T *data, const std::vector< int > &sizes)
Initialize an Buffer from a pointer and a vector of sizes.
Buffer< T, Dims, InClassDimStorage > & operator=(const Buffer< T, Dims, InClassDimStorage > &other)
Standard assignment operator.
T * begin() const
A pointer to the element with the lowest address.
bool all_equal(not_void_T val) const
Tests that all values in this buffer are equal to val.
Buffer(halide_type_t t, add_const_if_T_is_const< void > *data, int first, Args &&...rest)
Initialize an Buffer of runtime type from a pointer and some sizes.
HALIDE_ALWAYS_INLINE Buffer< T2, D2, InClassDimStorage > & as() &
Return a typed reference to this Buffer.
HALIDE_ALWAYS_INLINE const Buffer< T2, D2, InClassDimStorage > & as() const &
Return a const typed reference to this Buffer.
static Buffer< add_const_if_T_is_const< void >, Dims, InClassDimStorage > make_scalar(halide_type_t t)
Make a zero-dimensional Buffer.
HALIDE_ALWAYS_INLINE auto slice(Vec vec, Base base, Stride stride, Lanes lanes) noexcept -> SliceOp< decltype(pattern_arg(vec)), decltype(pattern_arg(base)), decltype(pattern_arg(stride)), decltype(pattern_arg(lanes))>
ConstantInterval min(const ConstantInterval &a, const ConstantInterval &b)
ConstantInterval max(const ConstantInterval &a, const ConstantInterval &b)
auto end(reverse_adaptor< T > i)
bool any_zero(const Container &c)
BufferDeviceOwnership
This indicates how to deallocate the device for a Halide::Runtime::Buffer.
@ AllocatedDeviceAndHost
No free routine will be called when device ref count goes to zero
@ WrappedNative
halide_device_free will be called when device ref count goes to zero
@ Unmanaged
halide_device_detach_native will be called when device ref count goes to zero
@ Cropped
Call device_and_host_free when DevRefCount goes to zero.
This file defines the class FunctionDAG, which is our representation of a Halide pipeline,...
@ Internal
Not visible externally, similar to 'static' linkage in C.
Expr min(const FuncRef &a, const FuncRef &b)
Explicit overloads of min and max for FuncRef.
Expr max(const FuncRef &a, const FuncRef &b)
unsigned __INT64_TYPE__ uint64_t
__UINTPTR_TYPE__ uintptr_t
ALWAYS_INLINE T align_up(T p, size_t alignment)
unsigned __INT8_TYPE__ uint8_t
__PTRDIFF_TYPE__ ptrdiff_t
unsigned __INT16_TYPE__ uint16_t
void * memcpy(void *s1, const void *s2, size_t n)
void * memset(void *s, int val, size_t n)
unsigned __INT32_TYPE__ uint32_t
An iterator class, so that you can iterate over coordinates in a dimensions using a range-based for l...
bool operator!=(const iterator &other) const
A similar struct for managing device allocations.
BufferDeviceOwnership ownership
static void *(* default_allocate_fn)(size_t)
static void(* default_deallocate_fn)(void *)
The raw representation of an image passed around by generated Halide code.
int32_t dimensions
The dimensionality of the buffer.
halide_dimension_t * dim
The shape of the buffer.
uint64_t device
A device-handle for e.g.
uint8_t * host
A pointer to the start of the data in main memory.
struct halide_type_t type
The type of each buffer element.
const struct halide_device_interface_t * device_interface
The interface used to interpret the above handle.
Each GPU API provides a halide_device_interface_t struct pointing to the code that manages device all...
int(* device_slice)(void *user_context, const struct halide_buffer_t *src, int slice_dim, int slice_pos, struct halide_buffer_t *dst)
int(* device_and_host_malloc)(void *user_context, struct halide_buffer_t *buf, const struct halide_device_interface_t *device_interface)
int(* wrap_native)(void *user_context, struct halide_buffer_t *buf, uint64_t handle, const struct halide_device_interface_t *device_interface)
int(* device_release_crop)(void *user_context, struct halide_buffer_t *buf)
int(* device_crop)(void *user_context, const struct halide_buffer_t *src, struct halide_buffer_t *dst)
int(* copy_to_host)(void *user_context, struct halide_buffer_t *buf)
int(* copy_to_device)(void *user_context, struct halide_buffer_t *buf, const struct halide_device_interface_t *device_interface)
int(* device_free)(void *user_context, struct halide_buffer_t *buf)
int(* detach_native)(void *user_context, struct halide_buffer_t *buf)
int(* device_and_host_free)(void *user_context, struct halide_buffer_t *buf)
int(* device_malloc)(void *user_context, struct halide_buffer_t *buf, const struct halide_device_interface_t *device_interface)
A runtime tag for a type in the halide type system.