blob: a52e5e1f143613e1b78eb8b4d84ea13d6285e386 [file] [log] [blame]
// WARNING: This file is machine generated by fidlgen.
#pragma once
#include <lib/fidl/internal.h>
#include <lib/fidl/llcpp/array.h>
#include <lib/fidl/llcpp/buffer_allocator.h>
#include <lib/fidl/llcpp/buffer_then_heap_allocator.h>
#include <lib/fidl/llcpp/coding.h>
#include <lib/fidl/llcpp/envelope.h>
#include <lib/fidl/llcpp/errors.h>
#include <lib/fidl/llcpp/memory.h>
#include <lib/fidl/llcpp/message.h>
#include <lib/fidl/llcpp/message_storage.h>
#include <lib/fidl/llcpp/object_view.h>
#include <lib/fidl/llcpp/string_view.h>
#include <lib/fidl/llcpp/tracking_ptr.h>
#include <lib/fidl/llcpp/traits.h>
#include <lib/fidl/llcpp/vector_view.h>
#include <lib/fit/function.h>
#include <lib/stdcompat/optional.h>
#include <algorithm>
#include <cstddef>
#include <variant>
#ifdef __Fuchsia__
#include <lib/fidl/llcpp/client.h>
#include <lib/fidl/llcpp/client_end.h>
#include <lib/fidl/llcpp/connect_service.h>
#include <lib/fidl/llcpp/result.h>
#include <lib/fidl/llcpp/server.h>
#include <lib/fidl/llcpp/server_end.h>
#include <lib/fidl/llcpp/service_handler_interface.h>
#include <lib/fidl/llcpp/sync_call.h>
#include <lib/fidl/llcpp/transaction.h>
#include <lib/fidl/txn_header.h>
#include <lib/zx/handle.h>
#endif // __Fuchsia__
#include <zircon/fidl.h>
namespace llcpp {
namespace fidl {
namespace test {
namespace encapsulatedstructs {
namespace wire {
struct NonInlineStructTestStruct;
} // namespace wire
using NonInlineStructTestStruct =
::llcpp::fidl::test::encapsulatedstructs::wire::NonInlineStructTestStruct;
namespace wire {
struct Int8Int32;
} // namespace wire
using Int8Int32 = ::llcpp::fidl::test::encapsulatedstructs::wire::Int8Int32;
namespace wire {
struct Int16Int8;
} // namespace wire
using Int16Int8 = ::llcpp::fidl::test::encapsulatedstructs::wire::Int16Int8;
namespace wire {
struct ArrayInt16Int8;
} // namespace wire
using ArrayInt16Int8 =
::llcpp::fidl::test::encapsulatedstructs::wire::ArrayInt16Int8;
namespace wire {
struct StructPaddingTestStruct;
} // namespace wire
using StructPaddingTestStruct =
::llcpp::fidl::test::encapsulatedstructs::wire::StructPaddingTestStruct;
namespace wire {
struct TopLevelStruct;
} // namespace wire
using TopLevelStruct =
::llcpp::fidl::test::encapsulatedstructs::wire::TopLevelStruct;
namespace wire {
#ifdef __Fuchsia__
extern "C" const fidl_type_t
fidl_test_encapsulatedstructs_NonInlineStructTestStructTable;
struct NonInlineStructTestStruct {
static constexpr const fidl_type_t* Type =
&fidl_test_encapsulatedstructs_NonInlineStructTestStructTable;
static constexpr uint32_t MaxNumHandles = 1;
static constexpr uint32_t PrimarySize = 16;
[[maybe_unused]] static constexpr uint32_t MaxOutOfLine = 8;
static constexpr bool HasPointer = true;
::fidl::tracking_ptr<
::llcpp::fidl::test::encapsulatedstructs::wire::Int16Int8>
element = {};
::zx::handle h = {};
void _CloseHandles();
private:
class UnownedEncodedByteMessage final {
public:
UnownedEncodedByteMessage(uint8_t* bytes, uint32_t byte_size,
NonInlineStructTestStruct* value)
: message_(bytes, byte_size, sizeof(NonInlineStructTestStruct),
handles_,
std::min(ZX_CHANNEL_MAX_MSG_HANDLES, MaxNumHandles), 0) {
message_.Encode<NonInlineStructTestStruct>(value);
}
UnownedEncodedByteMessage(const UnownedEncodedByteMessage&) = delete;
UnownedEncodedByteMessage(UnownedEncodedByteMessage&&) = delete;
UnownedEncodedByteMessage* operator=(const UnownedEncodedByteMessage&) =
delete;
UnownedEncodedByteMessage* operator=(UnownedEncodedByteMessage&&) = delete;
zx_status_t status() const { return message_.status(); }
#ifdef __Fuchsia__
const char* status_string() const { return message_.status_string(); }
#endif
bool ok() const { return message_.status() == ZX_OK; }
const char* error() const { return message_.error(); }
::fidl::OutgoingByteMessage& GetOutgoingMessage() { return message_; }
private:
zx_handle_disposition_t
handles_[std::min(ZX_CHANNEL_MAX_MSG_HANDLES, MaxNumHandles)];
::fidl::OutgoingByteMessage message_;
};
class UnownedEncodedIovecMessage final {
public:
UnownedEncodedIovecMessage(zx_channel_iovec_t* iovecs, uint32_t iovec_size,
fidl_iovec_substitution_t* substitutions,
uint32_t substitutions_size,
NonInlineStructTestStruct* value)
: message_(::fidl::OutgoingIovecMessage::constructor_args{
.iovecs = iovecs,
.iovecs_actual = 0,
.iovecs_capacity = iovec_size,
.substitutions = substitutions,
.substitutions_actual = 0,
.substitutions_capacity = substitutions_size,
.handles = handles_,
.handle_actual = 0,
.handle_capacity =
std::min(ZX_CHANNEL_MAX_MSG_HANDLES, MaxNumHandles),
}) {
message_.Encode<NonInlineStructTestStruct>(value);
}
UnownedEncodedIovecMessage(const UnownedEncodedIovecMessage&) = delete;
UnownedEncodedIovecMessage(UnownedEncodedIovecMessage&&) = delete;
UnownedEncodedIovecMessage* operator=(const UnownedEncodedIovecMessage&) =
delete;
UnownedEncodedIovecMessage* operator=(UnownedEncodedIovecMessage&&) =
delete;
zx_status_t status() const { return message_.status(); }
#ifdef __Fuchsia__
const char* status_string() const { return message_.status_string(); }
#endif
bool ok() const { return message_.status() == ZX_OK; }
const char* error() const { return message_.error(); }
::fidl::OutgoingIovecMessage& GetOutgoingMessage() { return message_; }
private:
zx_handle_disposition_t
handles_[std::min(ZX_CHANNEL_MAX_MSG_HANDLES, MaxNumHandles)];
::fidl::OutgoingIovecMessage message_;
};
class OwnedEncodedByteMessage final {
public:
explicit OwnedEncodedByteMessage(NonInlineStructTestStruct* value)
: message_(bytes_, sizeof(bytes_), value) {}
OwnedEncodedByteMessage(const OwnedEncodedByteMessage&) = delete;
OwnedEncodedByteMessage(OwnedEncodedByteMessage&&) = delete;
OwnedEncodedByteMessage* operator=(const OwnedEncodedByteMessage&) = delete;
OwnedEncodedByteMessage* operator=(OwnedEncodedByteMessage&&) = delete;
zx_status_t status() const { return message_.status(); }
#ifdef __Fuchsia__
const char* status_string() const { return message_.status_string(); }
#endif
bool ok() const { return message_.ok(); }
const char* error() const { return message_.error(); }
::fidl::OutgoingByteMessage& GetOutgoingMessage() {
return message_.GetOutgoingMessage();
}
private:
FIDL_ALIGNDECL
uint8_t bytes_[FIDL_ALIGN(PrimarySize + MaxOutOfLine)];
UnownedEncodedByteMessage message_;
};
class OwnedEncodedIovecMessage final {
public:
explicit OwnedEncodedIovecMessage(NonInlineStructTestStruct* value)
: message_(iovecs_, ::fidl::internal::kIovecBufferSize, substitutions_,
::fidl::internal::kIovecBufferSize, value) {}
OwnedEncodedIovecMessage(const OwnedEncodedIovecMessage&) = delete;
OwnedEncodedIovecMessage(OwnedEncodedIovecMessage&&) = delete;
OwnedEncodedIovecMessage* operator=(const OwnedEncodedIovecMessage&) =
delete;
OwnedEncodedIovecMessage* operator=(OwnedEncodedIovecMessage&&) = delete;
zx_status_t status() const { return message_.status(); }
#ifdef __Fuchsia__
const char* status_string() const { return message_.status_string(); }
#endif
bool ok() const { return message_.ok(); }
const char* error() const { return message_.error(); }
::fidl::OutgoingIovecMessage& GetOutgoingMessage() {
return message_.GetOutgoingMessage();
}
private:
zx_channel_iovec_t iovecs_[::fidl::internal::kIovecBufferSize];
fidl_iovec_substitution_t
substitutions_[::fidl::internal::kIovecBufferSize];
UnownedEncodedIovecMessage message_;
};
public:
friend ::fidl::internal::EncodedMessageTypes<NonInlineStructTestStruct>;
using OwnedEncodedMessage = OwnedEncodedByteMessage;
using UnownedEncodedMessage = UnownedEncodedByteMessage;
class DecodedMessage final : public ::fidl::internal::IncomingMessage {
public:
DecodedMessage(uint8_t* bytes, uint32_t byte_actual,
zx_handle_info_t* handles = nullptr,
uint32_t handle_actual = 0)
: ::fidl::internal::IncomingMessage(bytes, byte_actual, handles,
handle_actual) {
Decode<struct NonInlineStructTestStruct>();
}
DecodedMessage(fidl_incoming_msg_t* msg)
: ::fidl::internal::IncomingMessage(msg) {
Decode<struct NonInlineStructTestStruct>();
}
DecodedMessage(const DecodedMessage&) = delete;
DecodedMessage(DecodedMessage&&) = delete;
DecodedMessage* operator=(const DecodedMessage&) = delete;
DecodedMessage* operator=(DecodedMessage&&) = delete;
~DecodedMessage() {
if (ok() && (PrimaryObject() != nullptr)) {
PrimaryObject()->_CloseHandles();
}
}
struct NonInlineStructTestStruct* PrimaryObject() {
ZX_DEBUG_ASSERT(ok());
return reinterpret_cast<struct NonInlineStructTestStruct*>(bytes());
}
// Release the ownership of the decoded message. That means that the handles
// won't be closed When the object is destroyed. After calling this method,
// the DecodedMessage object should not be used anymore.
void ReleasePrimaryObject() { ResetBytes(); }
};
};
#endif // __Fuchsia__
extern "C" const fidl_type_t fidl_test_encapsulatedstructs_Int8Int32Table;
struct Int8Int32 {
static constexpr const fidl_type_t* Type =
&fidl_test_encapsulatedstructs_Int8Int32Table;
static constexpr uint32_t MaxNumHandles = 0;
static constexpr uint32_t PrimarySize = 8;
[[maybe_unused]] static constexpr uint32_t MaxOutOfLine = 0;
static constexpr bool HasPointer = false;
int8_t a = {};
int32_t b = {};
private:
class UnownedEncodedByteMessage final {
public:
UnownedEncodedByteMessage(uint8_t* bytes, uint32_t byte_size,
Int8Int32* value)
: message_(bytes, byte_size, sizeof(Int8Int32), nullptr, 0, 0) {
message_.Encode<Int8Int32>(value);
}
UnownedEncodedByteMessage(const UnownedEncodedByteMessage&) = delete;
UnownedEncodedByteMessage(UnownedEncodedByteMessage&&) = delete;
UnownedEncodedByteMessage* operator=(const UnownedEncodedByteMessage&) =
delete;
UnownedEncodedByteMessage* operator=(UnownedEncodedByteMessage&&) = delete;
zx_status_t status() const { return message_.status(); }
#ifdef __Fuchsia__
const char* status_string() const { return message_.status_string(); }
#endif
bool ok() const { return message_.status() == ZX_OK; }
const char* error() const { return message_.error(); }
::fidl::OutgoingByteMessage& GetOutgoingMessage() { return message_; }
private:
::fidl::OutgoingByteMessage message_;
};
class UnownedEncodedIovecMessage final {
public:
UnownedEncodedIovecMessage(zx_channel_iovec_t* iovecs, uint32_t iovec_size,
fidl_iovec_substitution_t* substitutions,
uint32_t substitutions_size, Int8Int32* value)
: message_(::fidl::OutgoingIovecMessage::constructor_args{
.iovecs = iovecs,
.iovecs_actual = 0,
.iovecs_capacity = iovec_size,
.substitutions = substitutions,
.substitutions_actual = 0,
.substitutions_capacity = substitutions_size,
.handles = nullptr,
.handle_actual = 0,
.handle_capacity = 0,
}) {
message_.Encode<Int8Int32>(value);
}
UnownedEncodedIovecMessage(const UnownedEncodedIovecMessage&) = delete;
UnownedEncodedIovecMessage(UnownedEncodedIovecMessage&&) = delete;
UnownedEncodedIovecMessage* operator=(const UnownedEncodedIovecMessage&) =
delete;
UnownedEncodedIovecMessage* operator=(UnownedEncodedIovecMessage&&) =
delete;
zx_status_t status() const { return message_.status(); }
#ifdef __Fuchsia__
const char* status_string() const { return message_.status_string(); }
#endif
bool ok() const { return message_.status() == ZX_OK; }
const char* error() const { return message_.error(); }
::fidl::OutgoingIovecMessage& GetOutgoingMessage() { return message_; }
private:
::fidl::OutgoingIovecMessage message_;
};
class OwnedEncodedByteMessage final {
public:
explicit OwnedEncodedByteMessage(Int8Int32* value)
: message_(bytes_, sizeof(bytes_), value) {}
OwnedEncodedByteMessage(const OwnedEncodedByteMessage&) = delete;
OwnedEncodedByteMessage(OwnedEncodedByteMessage&&) = delete;
OwnedEncodedByteMessage* operator=(const OwnedEncodedByteMessage&) = delete;
OwnedEncodedByteMessage* operator=(OwnedEncodedByteMessage&&) = delete;
zx_status_t status() const { return message_.status(); }
#ifdef __Fuchsia__
const char* status_string() const { return message_.status_string(); }
#endif
bool ok() const { return message_.ok(); }
const char* error() const { return message_.error(); }
::fidl::OutgoingByteMessage& GetOutgoingMessage() {
return message_.GetOutgoingMessage();
}
private:
FIDL_ALIGNDECL
uint8_t bytes_[FIDL_ALIGN(PrimarySize + MaxOutOfLine)];
UnownedEncodedByteMessage message_;
};
class OwnedEncodedIovecMessage final {
public:
explicit OwnedEncodedIovecMessage(Int8Int32* value)
: message_(iovecs_, ::fidl::internal::kIovecBufferSize, substitutions_,
::fidl::internal::kIovecBufferSize, value) {}
OwnedEncodedIovecMessage(const OwnedEncodedIovecMessage&) = delete;
OwnedEncodedIovecMessage(OwnedEncodedIovecMessage&&) = delete;
OwnedEncodedIovecMessage* operator=(const OwnedEncodedIovecMessage&) =
delete;
OwnedEncodedIovecMessage* operator=(OwnedEncodedIovecMessage&&) = delete;
zx_status_t status() const { return message_.status(); }
#ifdef __Fuchsia__
const char* status_string() const { return message_.status_string(); }
#endif
bool ok() const { return message_.ok(); }
const char* error() const { return message_.error(); }
::fidl::OutgoingIovecMessage& GetOutgoingMessage() {
return message_.GetOutgoingMessage();
}
private:
zx_channel_iovec_t iovecs_[::fidl::internal::kIovecBufferSize];
fidl_iovec_substitution_t
substitutions_[::fidl::internal::kIovecBufferSize];
UnownedEncodedIovecMessage message_;
};
public:
friend ::fidl::internal::EncodedMessageTypes<Int8Int32>;
using OwnedEncodedMessage = OwnedEncodedByteMessage;
using UnownedEncodedMessage = UnownedEncodedByteMessage;
class DecodedMessage final : public ::fidl::internal::IncomingMessage {
public:
DecodedMessage(uint8_t* bytes, uint32_t byte_actual,
zx_handle_info_t* handles = nullptr,
uint32_t handle_actual = 0)
: ::fidl::internal::IncomingMessage(bytes, byte_actual, handles,
handle_actual) {
Decode<struct Int8Int32>();
}
DecodedMessage(fidl_incoming_msg_t* msg)
: ::fidl::internal::IncomingMessage(msg) {
Decode<struct Int8Int32>();
}
DecodedMessage(const DecodedMessage&) = delete;
DecodedMessage(DecodedMessage&&) = delete;
DecodedMessage* operator=(const DecodedMessage&) = delete;
DecodedMessage* operator=(DecodedMessage&&) = delete;
struct Int8Int32* PrimaryObject() {
ZX_DEBUG_ASSERT(ok());
return reinterpret_cast<struct Int8Int32*>(bytes());
}
// Release the ownership of the decoded message. That means that the handles
// won't be closed When the object is destroyed. After calling this method,
// the DecodedMessage object should not be used anymore.
void ReleasePrimaryObject() { ResetBytes(); }
};
};
extern "C" const fidl_type_t fidl_test_encapsulatedstructs_Int16Int8Table;
struct Int16Int8 {
static constexpr const fidl_type_t* Type =
&fidl_test_encapsulatedstructs_Int16Int8Table;
static constexpr uint32_t MaxNumHandles = 0;
static constexpr uint32_t PrimarySize = 4;
[[maybe_unused]] static constexpr uint32_t MaxOutOfLine = 0;
static constexpr bool HasPointer = false;
int16_t a = {};
int8_t b = {};
private:
class UnownedEncodedByteMessage final {
public:
UnownedEncodedByteMessage(uint8_t* bytes, uint32_t byte_size,
Int16Int8* value)
: message_(bytes, byte_size, sizeof(Int16Int8), nullptr, 0, 0) {
message_.Encode<Int16Int8>(value);
}
UnownedEncodedByteMessage(const UnownedEncodedByteMessage&) = delete;
UnownedEncodedByteMessage(UnownedEncodedByteMessage&&) = delete;
UnownedEncodedByteMessage* operator=(const UnownedEncodedByteMessage&) =
delete;
UnownedEncodedByteMessage* operator=(UnownedEncodedByteMessage&&) = delete;
zx_status_t status() const { return message_.status(); }
#ifdef __Fuchsia__
const char* status_string() const { return message_.status_string(); }
#endif
bool ok() const { return message_.status() == ZX_OK; }
const char* error() const { return message_.error(); }
::fidl::OutgoingByteMessage& GetOutgoingMessage() { return message_; }
private:
::fidl::OutgoingByteMessage message_;
};
class UnownedEncodedIovecMessage final {
public:
UnownedEncodedIovecMessage(zx_channel_iovec_t* iovecs, uint32_t iovec_size,
fidl_iovec_substitution_t* substitutions,
uint32_t substitutions_size, Int16Int8* value)
: message_(::fidl::OutgoingIovecMessage::constructor_args{
.iovecs = iovecs,
.iovecs_actual = 0,
.iovecs_capacity = iovec_size,
.substitutions = substitutions,
.substitutions_actual = 0,
.substitutions_capacity = substitutions_size,
.handles = nullptr,
.handle_actual = 0,
.handle_capacity = 0,
}) {
message_.Encode<Int16Int8>(value);
}
UnownedEncodedIovecMessage(const UnownedEncodedIovecMessage&) = delete;
UnownedEncodedIovecMessage(UnownedEncodedIovecMessage&&) = delete;
UnownedEncodedIovecMessage* operator=(const UnownedEncodedIovecMessage&) =
delete;
UnownedEncodedIovecMessage* operator=(UnownedEncodedIovecMessage&&) =
delete;
zx_status_t status() const { return message_.status(); }
#ifdef __Fuchsia__
const char* status_string() const { return message_.status_string(); }
#endif
bool ok() const { return message_.status() == ZX_OK; }
const char* error() const { return message_.error(); }
::fidl::OutgoingIovecMessage& GetOutgoingMessage() { return message_; }
private:
::fidl::OutgoingIovecMessage message_;
};
class OwnedEncodedByteMessage final {
public:
explicit OwnedEncodedByteMessage(Int16Int8* value)
: message_(bytes_, sizeof(bytes_), value) {}
OwnedEncodedByteMessage(const OwnedEncodedByteMessage&) = delete;
OwnedEncodedByteMessage(OwnedEncodedByteMessage&&) = delete;
OwnedEncodedByteMessage* operator=(const OwnedEncodedByteMessage&) = delete;
OwnedEncodedByteMessage* operator=(OwnedEncodedByteMessage&&) = delete;
zx_status_t status() const { return message_.status(); }
#ifdef __Fuchsia__
const char* status_string() const { return message_.status_string(); }
#endif
bool ok() const { return message_.ok(); }
const char* error() const { return message_.error(); }
::fidl::OutgoingByteMessage& GetOutgoingMessage() {
return message_.GetOutgoingMessage();
}
private:
FIDL_ALIGNDECL
uint8_t bytes_[FIDL_ALIGN(PrimarySize + MaxOutOfLine)];
UnownedEncodedByteMessage message_;
};
class OwnedEncodedIovecMessage final {
public:
explicit OwnedEncodedIovecMessage(Int16Int8* value)
: message_(iovecs_, ::fidl::internal::kIovecBufferSize, substitutions_,
::fidl::internal::kIovecBufferSize, value) {}
OwnedEncodedIovecMessage(const OwnedEncodedIovecMessage&) = delete;
OwnedEncodedIovecMessage(OwnedEncodedIovecMessage&&) = delete;
OwnedEncodedIovecMessage* operator=(const OwnedEncodedIovecMessage&) =
delete;
OwnedEncodedIovecMessage* operator=(OwnedEncodedIovecMessage&&) = delete;
zx_status_t status() const { return message_.status(); }
#ifdef __Fuchsia__
const char* status_string() const { return message_.status_string(); }
#endif
bool ok() const { return message_.ok(); }
const char* error() const { return message_.error(); }
::fidl::OutgoingIovecMessage& GetOutgoingMessage() {
return message_.GetOutgoingMessage();
}
private:
zx_channel_iovec_t iovecs_[::fidl::internal::kIovecBufferSize];
fidl_iovec_substitution_t
substitutions_[::fidl::internal::kIovecBufferSize];
UnownedEncodedIovecMessage message_;
};
public:
friend ::fidl::internal::EncodedMessageTypes<Int16Int8>;
using OwnedEncodedMessage = OwnedEncodedByteMessage;
using UnownedEncodedMessage = UnownedEncodedByteMessage;
class DecodedMessage final : public ::fidl::internal::IncomingMessage {
public:
DecodedMessage(uint8_t* bytes, uint32_t byte_actual,
zx_handle_info_t* handles = nullptr,
uint32_t handle_actual = 0)
: ::fidl::internal::IncomingMessage(bytes, byte_actual, handles,
handle_actual) {
Decode<struct Int16Int8>();
}
DecodedMessage(fidl_incoming_msg_t* msg)
: ::fidl::internal::IncomingMessage(msg) {
Decode<struct Int16Int8>();
}
DecodedMessage(const DecodedMessage&) = delete;
DecodedMessage(DecodedMessage&&) = delete;
DecodedMessage* operator=(const DecodedMessage&) = delete;
DecodedMessage* operator=(DecodedMessage&&) = delete;
struct Int16Int8* PrimaryObject() {
ZX_DEBUG_ASSERT(ok());
return reinterpret_cast<struct Int16Int8*>(bytes());
}
// Release the ownership of the decoded message. That means that the handles
// won't be closed When the object is destroyed. After calling this method,
// the DecodedMessage object should not be used anymore.
void ReleasePrimaryObject() { ResetBytes(); }
};
};
extern "C" const fidl_type_t fidl_test_encapsulatedstructs_ArrayInt16Int8Table;
struct ArrayInt16Int8 {
static constexpr const fidl_type_t* Type =
&fidl_test_encapsulatedstructs_ArrayInt16Int8Table;
static constexpr uint32_t MaxNumHandles = 0;
static constexpr uint32_t PrimarySize = 12;
[[maybe_unused]] static constexpr uint32_t MaxOutOfLine = 0;
static constexpr bool HasPointer = false;
::fidl::Array<::llcpp::fidl::test::encapsulatedstructs::wire::Int16Int8, 3>
arr = {};
private:
class UnownedEncodedByteMessage final {
public:
UnownedEncodedByteMessage(uint8_t* bytes, uint32_t byte_size,
ArrayInt16Int8* value)
: message_(bytes, byte_size, sizeof(ArrayInt16Int8), nullptr, 0, 0) {
message_.Encode<ArrayInt16Int8>(value);
}
UnownedEncodedByteMessage(const UnownedEncodedByteMessage&) = delete;
UnownedEncodedByteMessage(UnownedEncodedByteMessage&&) = delete;
UnownedEncodedByteMessage* operator=(const UnownedEncodedByteMessage&) =
delete;
UnownedEncodedByteMessage* operator=(UnownedEncodedByteMessage&&) = delete;
zx_status_t status() const { return message_.status(); }
#ifdef __Fuchsia__
const char* status_string() const { return message_.status_string(); }
#endif
bool ok() const { return message_.status() == ZX_OK; }
const char* error() const { return message_.error(); }
::fidl::OutgoingByteMessage& GetOutgoingMessage() { return message_; }
private:
::fidl::OutgoingByteMessage message_;
};
class UnownedEncodedIovecMessage final {
public:
UnownedEncodedIovecMessage(zx_channel_iovec_t* iovecs, uint32_t iovec_size,
fidl_iovec_substitution_t* substitutions,
uint32_t substitutions_size,
ArrayInt16Int8* value)
: message_(::fidl::OutgoingIovecMessage::constructor_args{
.iovecs = iovecs,
.iovecs_actual = 0,
.iovecs_capacity = iovec_size,
.substitutions = substitutions,
.substitutions_actual = 0,
.substitutions_capacity = substitutions_size,
.handles = nullptr,
.handle_actual = 0,
.handle_capacity = 0,
}) {
message_.Encode<ArrayInt16Int8>(value);
}
UnownedEncodedIovecMessage(const UnownedEncodedIovecMessage&) = delete;
UnownedEncodedIovecMessage(UnownedEncodedIovecMessage&&) = delete;
UnownedEncodedIovecMessage* operator=(const UnownedEncodedIovecMessage&) =
delete;
UnownedEncodedIovecMessage* operator=(UnownedEncodedIovecMessage&&) =
delete;
zx_status_t status() const { return message_.status(); }
#ifdef __Fuchsia__
const char* status_string() const { return message_.status_string(); }
#endif
bool ok() const { return message_.status() == ZX_OK; }
const char* error() const { return message_.error(); }
::fidl::OutgoingIovecMessage& GetOutgoingMessage() { return message_; }
private:
::fidl::OutgoingIovecMessage message_;
};
class OwnedEncodedByteMessage final {
public:
explicit OwnedEncodedByteMessage(ArrayInt16Int8* value)
: message_(bytes_, sizeof(bytes_), value) {}
OwnedEncodedByteMessage(const OwnedEncodedByteMessage&) = delete;
OwnedEncodedByteMessage(OwnedEncodedByteMessage&&) = delete;
OwnedEncodedByteMessage* operator=(const OwnedEncodedByteMessage&) = delete;
OwnedEncodedByteMessage* operator=(OwnedEncodedByteMessage&&) = delete;
zx_status_t status() const { return message_.status(); }
#ifdef __Fuchsia__
const char* status_string() const { return message_.status_string(); }
#endif
bool ok() const { return message_.ok(); }
const char* error() const { return message_.error(); }
::fidl::OutgoingByteMessage& GetOutgoingMessage() {
return message_.GetOutgoingMessage();
}
private:
FIDL_ALIGNDECL
uint8_t bytes_[FIDL_ALIGN(PrimarySize + MaxOutOfLine)];
UnownedEncodedByteMessage message_;
};
class OwnedEncodedIovecMessage final {
public:
explicit OwnedEncodedIovecMessage(ArrayInt16Int8* value)
: message_(iovecs_, ::fidl::internal::kIovecBufferSize, substitutions_,
::fidl::internal::kIovecBufferSize, value) {}
OwnedEncodedIovecMessage(const OwnedEncodedIovecMessage&) = delete;
OwnedEncodedIovecMessage(OwnedEncodedIovecMessage&&) = delete;
OwnedEncodedIovecMessage* operator=(const OwnedEncodedIovecMessage&) =
delete;
OwnedEncodedIovecMessage* operator=(OwnedEncodedIovecMessage&&) = delete;
zx_status_t status() const { return message_.status(); }
#ifdef __Fuchsia__
const char* status_string() const { return message_.status_string(); }
#endif
bool ok() const { return message_.ok(); }
const char* error() const { return message_.error(); }
::fidl::OutgoingIovecMessage& GetOutgoingMessage() {
return message_.GetOutgoingMessage();
}
private:
zx_channel_iovec_t iovecs_[::fidl::internal::kIovecBufferSize];
fidl_iovec_substitution_t
substitutions_[::fidl::internal::kIovecBufferSize];
UnownedEncodedIovecMessage message_;
};
public:
friend ::fidl::internal::EncodedMessageTypes<ArrayInt16Int8>;
using OwnedEncodedMessage = OwnedEncodedByteMessage;
using UnownedEncodedMessage = UnownedEncodedByteMessage;
class DecodedMessage final : public ::fidl::internal::IncomingMessage {
public:
DecodedMessage(uint8_t* bytes, uint32_t byte_actual,
zx_handle_info_t* handles = nullptr,
uint32_t handle_actual = 0)
: ::fidl::internal::IncomingMessage(bytes, byte_actual, handles,
handle_actual) {
Decode<struct ArrayInt16Int8>();
}
DecodedMessage(fidl_incoming_msg_t* msg)
: ::fidl::internal::IncomingMessage(msg) {
Decode<struct ArrayInt16Int8>();
}
DecodedMessage(const DecodedMessage&) = delete;
DecodedMessage(DecodedMessage&&) = delete;
DecodedMessage* operator=(const DecodedMessage&) = delete;
DecodedMessage* operator=(DecodedMessage&&) = delete;
struct ArrayInt16Int8* PrimaryObject() {
ZX_DEBUG_ASSERT(ok());
return reinterpret_cast<struct ArrayInt16Int8*>(bytes());
}
// Release the ownership of the decoded message. That means that the handles
// won't be closed When the object is destroyed. After calling this method,
// the DecodedMessage object should not be used anymore.
void ReleasePrimaryObject() { ResetBytes(); }
};
};
extern "C" const fidl_type_t
fidl_test_encapsulatedstructs_StructPaddingTestStructTable;
struct StructPaddingTestStruct {
static constexpr const fidl_type_t* Type =
&fidl_test_encapsulatedstructs_StructPaddingTestStructTable;
static constexpr uint32_t MaxNumHandles = 0;
static constexpr uint32_t PrimarySize = 24;
[[maybe_unused]] static constexpr uint32_t MaxOutOfLine = 0;
static constexpr bool HasPointer = false;
::llcpp::fidl::test::encapsulatedstructs::wire::Int16Int8 trailing = {};
::llcpp::fidl::test::encapsulatedstructs::wire::Int8Int32 inner = {};
::llcpp::fidl::test::encapsulatedstructs::wire::ArrayInt16Int8 array = {};
private:
class UnownedEncodedByteMessage final {
public:
UnownedEncodedByteMessage(uint8_t* bytes, uint32_t byte_size,
StructPaddingTestStruct* value)
: message_(bytes, byte_size, sizeof(StructPaddingTestStruct), nullptr,
0, 0) {
message_.Encode<StructPaddingTestStruct>(value);
}
UnownedEncodedByteMessage(const UnownedEncodedByteMessage&) = delete;
UnownedEncodedByteMessage(UnownedEncodedByteMessage&&) = delete;
UnownedEncodedByteMessage* operator=(const UnownedEncodedByteMessage&) =
delete;
UnownedEncodedByteMessage* operator=(UnownedEncodedByteMessage&&) = delete;
zx_status_t status() const { return message_.status(); }
#ifdef __Fuchsia__
const char* status_string() const { return message_.status_string(); }
#endif
bool ok() const { return message_.status() == ZX_OK; }
const char* error() const { return message_.error(); }
::fidl::OutgoingByteMessage& GetOutgoingMessage() { return message_; }
private:
::fidl::OutgoingByteMessage message_;
};
class UnownedEncodedIovecMessage final {
public:
UnownedEncodedIovecMessage(zx_channel_iovec_t* iovecs, uint32_t iovec_size,
fidl_iovec_substitution_t* substitutions,
uint32_t substitutions_size,
StructPaddingTestStruct* value)
: message_(::fidl::OutgoingIovecMessage::constructor_args{
.iovecs = iovecs,
.iovecs_actual = 0,
.iovecs_capacity = iovec_size,
.substitutions = substitutions,
.substitutions_actual = 0,
.substitutions_capacity = substitutions_size,
.handles = nullptr,
.handle_actual = 0,
.handle_capacity = 0,
}) {
message_.Encode<StructPaddingTestStruct>(value);
}
UnownedEncodedIovecMessage(const UnownedEncodedIovecMessage&) = delete;
UnownedEncodedIovecMessage(UnownedEncodedIovecMessage&&) = delete;
UnownedEncodedIovecMessage* operator=(const UnownedEncodedIovecMessage&) =
delete;
UnownedEncodedIovecMessage* operator=(UnownedEncodedIovecMessage&&) =
delete;
zx_status_t status() const { return message_.status(); }
#ifdef __Fuchsia__
const char* status_string() const { return message_.status_string(); }
#endif
bool ok() const { return message_.status() == ZX_OK; }
const char* error() const { return message_.error(); }
::fidl::OutgoingIovecMessage& GetOutgoingMessage() { return message_; }
private:
::fidl::OutgoingIovecMessage message_;
};
class OwnedEncodedByteMessage final {
public:
explicit OwnedEncodedByteMessage(StructPaddingTestStruct* value)
: message_(bytes_, sizeof(bytes_), value) {}
OwnedEncodedByteMessage(const OwnedEncodedByteMessage&) = delete;
OwnedEncodedByteMessage(OwnedEncodedByteMessage&&) = delete;
OwnedEncodedByteMessage* operator=(const OwnedEncodedByteMessage&) = delete;
OwnedEncodedByteMessage* operator=(OwnedEncodedByteMessage&&) = delete;
zx_status_t status() const { return message_.status(); }
#ifdef __Fuchsia__
const char* status_string() const { return message_.status_string(); }
#endif
bool ok() const { return message_.ok(); }
const char* error() const { return message_.error(); }
::fidl::OutgoingByteMessage& GetOutgoingMessage() {
return message_.GetOutgoingMessage();
}
private:
FIDL_ALIGNDECL
uint8_t bytes_[FIDL_ALIGN(PrimarySize + MaxOutOfLine)];
UnownedEncodedByteMessage message_;
};
class OwnedEncodedIovecMessage final {
public:
explicit OwnedEncodedIovecMessage(StructPaddingTestStruct* value)
: message_(iovecs_, ::fidl::internal::kIovecBufferSize, substitutions_,
::fidl::internal::kIovecBufferSize, value) {}
OwnedEncodedIovecMessage(const OwnedEncodedIovecMessage&) = delete;
OwnedEncodedIovecMessage(OwnedEncodedIovecMessage&&) = delete;
OwnedEncodedIovecMessage* operator=(const OwnedEncodedIovecMessage&) =
delete;
OwnedEncodedIovecMessage* operator=(OwnedEncodedIovecMessage&&) = delete;
zx_status_t status() const { return message_.status(); }
#ifdef __Fuchsia__
const char* status_string() const { return message_.status_string(); }
#endif
bool ok() const { return message_.ok(); }
const char* error() const { return message_.error(); }
::fidl::OutgoingIovecMessage& GetOutgoingMessage() {
return message_.GetOutgoingMessage();
}
private:
zx_channel_iovec_t iovecs_[::fidl::internal::kIovecBufferSize];
fidl_iovec_substitution_t
substitutions_[::fidl::internal::kIovecBufferSize];
UnownedEncodedIovecMessage message_;
};
public:
friend ::fidl::internal::EncodedMessageTypes<StructPaddingTestStruct>;
using OwnedEncodedMessage = OwnedEncodedByteMessage;
using UnownedEncodedMessage = UnownedEncodedByteMessage;
class DecodedMessage final : public ::fidl::internal::IncomingMessage {
public:
DecodedMessage(uint8_t* bytes, uint32_t byte_actual,
zx_handle_info_t* handles = nullptr,
uint32_t handle_actual = 0)
: ::fidl::internal::IncomingMessage(bytes, byte_actual, handles,
handle_actual) {
Decode<struct StructPaddingTestStruct>();
}
DecodedMessage(fidl_incoming_msg_t* msg)
: ::fidl::internal::IncomingMessage(msg) {
Decode<struct StructPaddingTestStruct>();
}
DecodedMessage(const DecodedMessage&) = delete;
DecodedMessage(DecodedMessage&&) = delete;
DecodedMessage* operator=(const DecodedMessage&) = delete;
DecodedMessage* operator=(DecodedMessage&&) = delete;
struct StructPaddingTestStruct* PrimaryObject() {
ZX_DEBUG_ASSERT(ok());
return reinterpret_cast<struct StructPaddingTestStruct*>(bytes());
}
// Release the ownership of the decoded message. That means that the handles
// won't be closed When the object is destroyed. After calling this method,
// the DecodedMessage object should not be used anymore.
void ReleasePrimaryObject() { ResetBytes(); }
};
};
#ifdef __Fuchsia__
extern "C" const fidl_type_t fidl_test_encapsulatedstructs_TopLevelStructTable;
struct TopLevelStruct {
static constexpr const fidl_type_t* Type =
&fidl_test_encapsulatedstructs_TopLevelStructTable;
static constexpr uint32_t MaxNumHandles = 1;
static constexpr uint32_t PrimarySize = 40;
[[maybe_unused]] static constexpr uint32_t MaxOutOfLine = 8;
static constexpr bool HasPointer = true;
::llcpp::fidl::test::encapsulatedstructs::wire::StructPaddingTestStruct a =
{};
::llcpp::fidl::test::encapsulatedstructs::wire::NonInlineStructTestStruct b =
{};
void _CloseHandles();
private:
class UnownedEncodedByteMessage final {
public:
UnownedEncodedByteMessage(uint8_t* bytes, uint32_t byte_size,
TopLevelStruct* value)
: message_(bytes, byte_size, sizeof(TopLevelStruct), handles_,
std::min(ZX_CHANNEL_MAX_MSG_HANDLES, MaxNumHandles), 0) {
message_.Encode<TopLevelStruct>(value);
}
UnownedEncodedByteMessage(const UnownedEncodedByteMessage&) = delete;
UnownedEncodedByteMessage(UnownedEncodedByteMessage&&) = delete;
UnownedEncodedByteMessage* operator=(const UnownedEncodedByteMessage&) =
delete;
UnownedEncodedByteMessage* operator=(UnownedEncodedByteMessage&&) = delete;
zx_status_t status() const { return message_.status(); }
#ifdef __Fuchsia__
const char* status_string() const { return message_.status_string(); }
#endif
bool ok() const { return message_.status() == ZX_OK; }
const char* error() const { return message_.error(); }
::fidl::OutgoingByteMessage& GetOutgoingMessage() { return message_; }
private:
zx_handle_disposition_t
handles_[std::min(ZX_CHANNEL_MAX_MSG_HANDLES, MaxNumHandles)];
::fidl::OutgoingByteMessage message_;
};
class UnownedEncodedIovecMessage final {
public:
UnownedEncodedIovecMessage(zx_channel_iovec_t* iovecs, uint32_t iovec_size,
fidl_iovec_substitution_t* substitutions,
uint32_t substitutions_size,
TopLevelStruct* value)
: message_(::fidl::OutgoingIovecMessage::constructor_args{
.iovecs = iovecs,
.iovecs_actual = 0,
.iovecs_capacity = iovec_size,
.substitutions = substitutions,
.substitutions_actual = 0,
.substitutions_capacity = substitutions_size,
.handles = handles_,
.handle_actual = 0,
.handle_capacity =
std::min(ZX_CHANNEL_MAX_MSG_HANDLES, MaxNumHandles),
}) {
message_.Encode<TopLevelStruct>(value);
}
UnownedEncodedIovecMessage(const UnownedEncodedIovecMessage&) = delete;
UnownedEncodedIovecMessage(UnownedEncodedIovecMessage&&) = delete;
UnownedEncodedIovecMessage* operator=(const UnownedEncodedIovecMessage&) =
delete;
UnownedEncodedIovecMessage* operator=(UnownedEncodedIovecMessage&&) =
delete;
zx_status_t status() const { return message_.status(); }
#ifdef __Fuchsia__
const char* status_string() const { return message_.status_string(); }
#endif
bool ok() const { return message_.status() == ZX_OK; }
const char* error() const { return message_.error(); }
::fidl::OutgoingIovecMessage& GetOutgoingMessage() { return message_; }
private:
zx_handle_disposition_t
handles_[std::min(ZX_CHANNEL_MAX_MSG_HANDLES, MaxNumHandles)];
::fidl::OutgoingIovecMessage message_;
};
class OwnedEncodedByteMessage final {
public:
explicit OwnedEncodedByteMessage(TopLevelStruct* value)
: message_(bytes_, sizeof(bytes_), value) {}
OwnedEncodedByteMessage(const OwnedEncodedByteMessage&) = delete;
OwnedEncodedByteMessage(OwnedEncodedByteMessage&&) = delete;
OwnedEncodedByteMessage* operator=(const OwnedEncodedByteMessage&) = delete;
OwnedEncodedByteMessage* operator=(OwnedEncodedByteMessage&&) = delete;
zx_status_t status() const { return message_.status(); }
#ifdef __Fuchsia__
const char* status_string() const { return message_.status_string(); }
#endif
bool ok() const { return message_.ok(); }
const char* error() const { return message_.error(); }
::fidl::OutgoingByteMessage& GetOutgoingMessage() {
return message_.GetOutgoingMessage();
}
private:
FIDL_ALIGNDECL
uint8_t bytes_[FIDL_ALIGN(PrimarySize + MaxOutOfLine)];
UnownedEncodedByteMessage message_;
};
class OwnedEncodedIovecMessage final {
public:
explicit OwnedEncodedIovecMessage(TopLevelStruct* value)
: message_(iovecs_, ::fidl::internal::kIovecBufferSize, substitutions_,
::fidl::internal::kIovecBufferSize, value) {}
OwnedEncodedIovecMessage(const OwnedEncodedIovecMessage&) = delete;
OwnedEncodedIovecMessage(OwnedEncodedIovecMessage&&) = delete;
OwnedEncodedIovecMessage* operator=(const OwnedEncodedIovecMessage&) =
delete;
OwnedEncodedIovecMessage* operator=(OwnedEncodedIovecMessage&&) = delete;
zx_status_t status() const { return message_.status(); }
#ifdef __Fuchsia__
const char* status_string() const { return message_.status_string(); }
#endif
bool ok() const { return message_.ok(); }
const char* error() const { return message_.error(); }
::fidl::OutgoingIovecMessage& GetOutgoingMessage() {
return message_.GetOutgoingMessage();
}
private:
zx_channel_iovec_t iovecs_[::fidl::internal::kIovecBufferSize];
fidl_iovec_substitution_t
substitutions_[::fidl::internal::kIovecBufferSize];
UnownedEncodedIovecMessage message_;
};
public:
friend ::fidl::internal::EncodedMessageTypes<TopLevelStruct>;
using OwnedEncodedMessage = OwnedEncodedByteMessage;
using UnownedEncodedMessage = UnownedEncodedByteMessage;
class DecodedMessage final : public ::fidl::internal::IncomingMessage {
public:
DecodedMessage(uint8_t* bytes, uint32_t byte_actual,
zx_handle_info_t* handles = nullptr,
uint32_t handle_actual = 0)
: ::fidl::internal::IncomingMessage(bytes, byte_actual, handles,
handle_actual) {
Decode<struct TopLevelStruct>();
}
DecodedMessage(fidl_incoming_msg_t* msg)
: ::fidl::internal::IncomingMessage(msg) {
Decode<struct TopLevelStruct>();
}
DecodedMessage(const DecodedMessage&) = delete;
DecodedMessage(DecodedMessage&&) = delete;
DecodedMessage* operator=(const DecodedMessage&) = delete;
DecodedMessage* operator=(DecodedMessage&&) = delete;
~DecodedMessage() {
if (ok() && (PrimaryObject() != nullptr)) {
PrimaryObject()->_CloseHandles();
}
}
struct TopLevelStruct* PrimaryObject() {
ZX_DEBUG_ASSERT(ok());
return reinterpret_cast<struct TopLevelStruct*>(bytes());
}
// Release the ownership of the decoded message. That means that the handles
// won't be closed When the object is destroyed. After calling this method,
// the DecodedMessage object should not be used anymore.
void ReleasePrimaryObject() { ResetBytes(); }
};
};
#endif // __Fuchsia__
} // namespace wire
} // namespace encapsulatedstructs
} // namespace test
} // namespace fidl
} // namespace llcpp
namespace fidl {
#ifdef __Fuchsia__
template <>
struct IsFidlType<
::llcpp::fidl::test::encapsulatedstructs::wire::NonInlineStructTestStruct>
: public std::true_type {};
template <>
struct IsStruct<
::llcpp::fidl::test::encapsulatedstructs::wire::NonInlineStructTestStruct>
: public std::true_type {};
static_assert(
std::is_standard_layout_v<::llcpp::fidl::test::encapsulatedstructs::wire::
NonInlineStructTestStruct>);
static_assert(offsetof(::llcpp::fidl::test::encapsulatedstructs::wire::
NonInlineStructTestStruct,
element) == 0);
static_assert(offsetof(::llcpp::fidl::test::encapsulatedstructs::wire::
NonInlineStructTestStruct,
h) == 8);
static_assert(sizeof(::llcpp::fidl::test::encapsulatedstructs::wire::
NonInlineStructTestStruct) ==
::llcpp::fidl::test::encapsulatedstructs::wire::
NonInlineStructTestStruct::PrimarySize);
#endif // __Fuchsia__
template <>
struct IsFidlType<::llcpp::fidl::test::encapsulatedstructs::wire::Int8Int32>
: public std::true_type {};
template <>
struct IsStruct<::llcpp::fidl::test::encapsulatedstructs::wire::Int8Int32>
: public std::true_type {};
static_assert(std::is_standard_layout_v<
::llcpp::fidl::test::encapsulatedstructs::wire::Int8Int32>);
static_assert(
offsetof(::llcpp::fidl::test::encapsulatedstructs::wire::Int8Int32, a) ==
0);
static_assert(
offsetof(::llcpp::fidl::test::encapsulatedstructs::wire::Int8Int32, b) ==
4);
static_assert(
sizeof(::llcpp::fidl::test::encapsulatedstructs::wire::Int8Int32) ==
::llcpp::fidl::test::encapsulatedstructs::wire::Int8Int32::PrimarySize);
template <>
struct IsFidlType<::llcpp::fidl::test::encapsulatedstructs::wire::Int16Int8>
: public std::true_type {};
template <>
struct IsStruct<::llcpp::fidl::test::encapsulatedstructs::wire::Int16Int8>
: public std::true_type {};
static_assert(std::is_standard_layout_v<
::llcpp::fidl::test::encapsulatedstructs::wire::Int16Int8>);
static_assert(
offsetof(::llcpp::fidl::test::encapsulatedstructs::wire::Int16Int8, a) ==
0);
static_assert(
offsetof(::llcpp::fidl::test::encapsulatedstructs::wire::Int16Int8, b) ==
2);
static_assert(
sizeof(::llcpp::fidl::test::encapsulatedstructs::wire::Int16Int8) ==
::llcpp::fidl::test::encapsulatedstructs::wire::Int16Int8::PrimarySize);
template <>
struct IsFidlType<
::llcpp::fidl::test::encapsulatedstructs::wire::ArrayInt16Int8>
: public std::true_type {};
template <>
struct IsStruct<::llcpp::fidl::test::encapsulatedstructs::wire::ArrayInt16Int8>
: public std::true_type {};
static_assert(std::is_standard_layout_v<
::llcpp::fidl::test::encapsulatedstructs::wire::ArrayInt16Int8>);
static_assert(
offsetof(::llcpp::fidl::test::encapsulatedstructs::wire::ArrayInt16Int8,
arr) == 0);
static_assert(
sizeof(::llcpp::fidl::test::encapsulatedstructs::wire::ArrayInt16Int8) ==
::llcpp::fidl::test::encapsulatedstructs::wire::ArrayInt16Int8::
PrimarySize);
template <>
struct IsFidlType<
::llcpp::fidl::test::encapsulatedstructs::wire::StructPaddingTestStruct>
: public std::true_type {};
template <>
struct IsStruct<
::llcpp::fidl::test::encapsulatedstructs::wire::StructPaddingTestStruct>
: public std::true_type {};
static_assert(
std::is_standard_layout_v<::llcpp::fidl::test::encapsulatedstructs::wire::
StructPaddingTestStruct>);
static_assert(
offsetof(
::llcpp::fidl::test::encapsulatedstructs::wire::StructPaddingTestStruct,
trailing) == 0);
static_assert(
offsetof(
::llcpp::fidl::test::encapsulatedstructs::wire::StructPaddingTestStruct,
inner) == 4);
static_assert(
offsetof(
::llcpp::fidl::test::encapsulatedstructs::wire::StructPaddingTestStruct,
array) == 12);
static_assert(sizeof(::llcpp::fidl::test::encapsulatedstructs::wire::
StructPaddingTestStruct) ==
::llcpp::fidl::test::encapsulatedstructs::wire::
StructPaddingTestStruct::PrimarySize);
#ifdef __Fuchsia__
template <>
struct IsFidlType<
::llcpp::fidl::test::encapsulatedstructs::wire::TopLevelStruct>
: public std::true_type {};
template <>
struct IsStruct<::llcpp::fidl::test::encapsulatedstructs::wire::TopLevelStruct>
: public std::true_type {};
static_assert(std::is_standard_layout_v<
::llcpp::fidl::test::encapsulatedstructs::wire::TopLevelStruct>);
static_assert(
offsetof(::llcpp::fidl::test::encapsulatedstructs::wire::TopLevelStruct,
a) == 0);
static_assert(
offsetof(::llcpp::fidl::test::encapsulatedstructs::wire::TopLevelStruct,
b) == 24);
static_assert(
sizeof(::llcpp::fidl::test::encapsulatedstructs::wire::TopLevelStruct) ==
::llcpp::fidl::test::encapsulatedstructs::wire::TopLevelStruct::
PrimarySize);
#endif // __Fuchsia__
} // namespace fidl
namespace llcpp {
namespace fidl {
namespace test {
namespace encapsulatedstructs {
namespace wire {} // namespace wire
} // namespace encapsulatedstructs
} // namespace test
} // namespace fidl
} // namespace llcpp