Files
Cubed/third_party/asio/include/asio/read_at.hpp
zhenyan121 30f843ba6b feature: multiplayer (#25)
* build: add asio library

* feat(dev_panel): add Asio to about table

* refactor(gameplay): split Chunk into server/client variants and add networking

* feat(gameplay): add Session class and UUID generation utility

* feat(network): integrate protobuf for player sync and session management

Add Protobuf dependency, define proto messages for player requests, positions, and chunk data. Refactor Session to use strand and async write. Implement player join/exit and position sync in ServerWorld.

* refactor(proto): restructure protobuf definitions and update build system

* feat(protocol): add packet serialization and login handling

Introduce packet header and ID mapping for protobuf messages.
Refactor session and server_world to use new packet wrapper.
Fix missing semicolons in proto files.

* refactor(packet): serialize directly into packet buffer with ByteSizeLong

* feat(world): add player-based chunk loading and UUID support

Restructure world generation to trigger chunk loading based on player
movement. Replace player name with UUID for identification. Implement
chunk request/response protocol. Improve thread management for gen
thread.

* feat(server): add block change packet handling and increase reserved threads

* refactor(server): enhance thread safety and session management

* fix(session): catch std::exception in read_loop and log error

* fix(network-server): stop accept loop on shutdown flag

* fix(gameplay): correct unknown error log condition and missing chunk pos update

* feat(client): add client-side chunk, player, world and network classes

* feat(client-chunk): add greedy meshing, receive_chunk, and biome field

* feat(client_player): add name constructor param, remove chunk transition

* feat(gameplay): integrate network client and thread-safe player pos

* feat(gameplay): add block change sync and coordinate utils

* refactor(server): replace Chunk with ServerChunk

* refactor(gameplay): split world into client and server

Remove monolithic World, Player, Chunk classes. Introduce ClientWorld, ServerWorld, ClientPlayer, and related networked components. Add Abseil dependency for logging and checks. Rename old files to pre_remove_* and update all includes and references accordingly.

* feat(gameplay): add time sync and network improvements

* fix: correct neighbor block indexing and add time update support

* feat(gameplay): optimize chunk request with player chunk tracking

Add `update_player_chunk()` method to `ClientPlayer` that triggers a chunk request when the player moves more than 2 chunks away from the last recorded chunk. Introduce an atomic `m_requesting_chunk` flag in `ClientWorld` to prevent concurrent requests. Rename `m_player_chunk_pos` to `m_last_chunk_pos` for clarity.

* refactor(client_world): split pending queue into data and upload queues

* feat(client): add center-based chunk loading priority

* feat(app): add client/server CLI arguments and init guards

* feat(multiplayer): add rendering of other players as colored cubes

* feat(gameplay): add thread pool for asynchronous chunk data processing

* feat(gameplay): add player logout and disconnect handling

* fix(dev_panel): add protobuf to about table libraries

* build: add ZLIB dependency

* refactor(packet): replace zlib with zstd compression and restructure header

Increase header length to 12 bytes, add CompressType and PacketHeader struct, and implement decode_packet_header. Update CMake to find zstd and link against it, adding Findzstd module.

* refactor(network): extract packet header decoding into function

* feat(packet): implement zstd compression and refactor packet decoding

* perf(gameplay): optimize protobuf message allocation with Arena and limit thread pool size

Switch to Arena allocation for protobuf messages to reduce heap allocations. Pass ChunkDataRsp by value to enable move semantics. Cap thread pool size to hardware concurrency with max 4 threads.

* refactor(gameplay): use steady clock and sleep_until for tick loop timing

* refactor(gameplay): rename remote player types and add interpolation

* refactor(server_world): use thread pool for chunk request handling

* refactor(packet): replace if-constexpr chain with explicit template specializations

Refactor `get_packet_id()` by removing the if-constexpr chain and instead
providing explicit specializations for each packet type. This simplifies the
primary template (which now only contains a static assertion) and improves
compile-time dispatch clarity. The `always_false` helper is no longer needed
in the primary template.

* feat(gameplay): add packet to clear all chunks on server rebuild

Add new packet S2C_ClearAllChunks (ID 3005) to notify clients when the server rebuilds its world. Clients respond by clearing their chunk cache and requesting fresh chunks. Shift UPDATE_TIME packet ID to 3006 to accommodate.

* feat(dev_panel): split world tab; add chunk request logging and fix flag reset

* feat(tools): add RecentQueue to replace std::deque in server_world

* feat(gameplay): add task ID to chunk requests to discard stale responses

* refactor(block): move block source to gameplay directory

* feat(toml): add shared TOML utilities and handle ip.toml

* feat: add player name configuration and rename config file

- Add --player command-line argument and 'player' field in Arguments struct
- Rename ip.toml to server.toml and corresponding internal variable to 'server'
- Fix block.cpp source path in CMakeLists.txt

* build(cmake): modularize build configuration

* fix: build fail on windows

* refactor(renderer): rename Logger level enum value DEBUG to L_DEBUG

* refactor(world): rework chunk state machine and player chunk tracking

Introduce ChunkState enum and ChunkEntity struct to manage chunk lifecycle. Store chunks as shared_ptr to avoid move operations during generation. Add clear_unused_chunks to remove chunks not referenced by any player. Implement deferred chunk request queue for safe processing after generation completes. Update player chunk set during required chunk computation. Improve thread safety with mutexes on chunk and player maps. Fix m_gening flag not reset after generation and add assertions for correctness. Change need_gen to require a player UUID, removing std::optional. Add chunk_size query method for debugging.

* fix(server): ensure chunk is ready before sending or setting block

* refactor(server_world): separate gen and net thread pools

Introduce a second thread pool for network operations and a `ThreadPoolKind` enum to distinguish between gen and net pools. Rename `pool_threads()` to `gen_pool_threads()`, add `change_pool_threads()` overload that accepts the pool kind, and update the dev panel to use the gen pool. Adjust logging and initialization to handle both pools.

* feat(client_world): implement server exit acknowledgment with timeout

* feat(gameplay): implement server stop and client exit handling

Add server_stop flag to LogoutRsp protocol. Modify client_world to check for server stop or own logout to set exit flag. Add ServerWorld::stop() to broadcast stop and cleanly shut down. Refactor chunk ownership to unique_ptr. Remove name parameter from get_look_block_pos.

* fix(app): correct port validation and remove redundant TOML helper

* fix: address unused parameter warnings and missing port assignment

* refactor(gameplay): remove old pre_remove chunk, player, and world files

* refactor(server): replace chunk set with flat_hash_set and add ref count

- Replace std::unordered_set with absl::flat_hash_set for chunk position sets.
- Add ref_count field to ChunkEntity and implement update_ref_count().
- Remove clear_unused_chunks() and use ref counting for chunk lifetime.
- Add get_chunk_pos_set() accessors to ServerPlayer.

* fix(client-world): delay chunk request to wait for server central chunk generation

* refactor(gameplay): migrate chunk storage to tbb::concurrent_hash_map

* refactor(server_world): replace future-based chunk generation with queue

Remove `std::future` per-chunk tracking and poll_finished_chunks().
Instead, generation tasks push completed chunks to a concurrent queue
consumed during update. This eliminates wait_all_chunk_tasks() and
simplifies synchronization.

* refactor(client_world): use concurrent data structures for chunk management

Replace std::shared_mutex and std::unordered_set with tbb::concurrent_hash_map for chunk storage, tbb::concurrent_queue for pending uploads, and absl::flat_hash_set for player chunk positions. This improves thread safety and reduces locking overhead. Refactor receive_chunk and request_chunk to work with the new concurrent model.

* build(windows): add Nvidia and AMD GPU high performance exports

* fix(ci): update header file pattern in clang-format check

* style(clang-format): comment out AlignPPAndNotPP option

* chore: enable AlignPPAndNotPP in clang-format and pin clang version in CI

* ci(workflow): update format check to use LLVM 22

* ci(format-check): install clang-format-22

* perf(world): cull distant players from updates and rendering

Add distance2 utility function. On client, skip rendering other players if distance squared exceeds rendering distance. On server, only send player position and block change updates to players in relevant chunks.

* refactor(math_tools): convert free functions to inline in header

* refactor(dev_panel): remove seed editing and server rebuild world, move client rebuild

- Remove text editing for perlin seed and filter function
- Remove ServerWorld::rebuild_world() method and its atomic flag
- Move 'Rebuild World' button to client world tab
- Remove unused perlin_noise_input_buffer

* fix(server_world): floor block position coordinates in handle_block_change

* refactor(gameplay): pass new_chunks vector as parameter instead of member variable

* perf(client): improve chunk rendering performance with snapshots and threaded generation

* feat(tools): add PriorityThreadPool with priority scheduling

Implement PriorityThreadPool supporting task priorities and FIFO ordering for same priority.
Update ClientWorld to use the new pool with explicit priority for chunk operations.
Fix ThreadPool stop logic with atomic exchange and remove unnecessary lambda capture.

* feat(networking): add priority and sequence ordering to packet send queues

* feat(server-world): use priority thread pool for chunk generation

Introduce PriorityThreadPool to process chunk generation tasks with priorities based on their distance from the player. Closer chunks receive higher priority, improving responsiveness.

* refactor(client): extract AABB creation and add collision check on block place

Make ClientPlayer::get_aabb and ClientWorld::get_block_aabb static.
Change player size to static constexpr M_SIZE.
Use shared_mutex for concurrent reads of other players.
Check for collision with other players before placing a block.

* feat(build): add build-time version system via CMake configure_file

* ci(release): add release build workflow for windows
2026-07-02 14:51:34 +08:00

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//
// read_at.hpp
// ~~~~~~~~~~~
//
// Copyright (c) 2003-2026 Christopher M. Kohlhoff (chris at kohlhoff dot com)
//
// Distributed under the Boost Software License, Version 1.0. (See accompanying
// file LICENSE_1_0.txt or copy at http://www.boost.org/LICENSE_1_0.txt)
//
#ifndef ASIO_READ_AT_HPP
#define ASIO_READ_AT_HPP
#if defined(_MSC_VER) && (_MSC_VER >= 1200)
# pragma once
#endif // defined(_MSC_VER) && (_MSC_VER >= 1200)
#include "asio/detail/config.hpp"
#include <cstddef>
#include "asio/async_result.hpp"
#include "asio/completion_condition.hpp"
#include "asio/detail/cstdint.hpp"
#include "asio/error.hpp"
#if !defined(ASIO_NO_EXTENSIONS)
# include "asio/basic_streambuf_fwd.hpp"
#endif // !defined(ASIO_NO_EXTENSIONS)
#include "asio/detail/push_options.hpp"
namespace asio {
ASIO_INLINE_NAMESPACE_BEGIN
namespace detail {
template <typename> class initiate_async_read_at;
#if !defined(ASIO_NO_IOSTREAM)
template <typename> class initiate_async_read_at_streambuf;
#endif // !defined(ASIO_NO_IOSTREAM)
} // namespace detail
/**
* @defgroup read_at asio::read_at
*
* @brief The @c read_at function is a composed operation that reads a certain
* amount of data at the specified offset before returning.
*/
/*@{*/
/// Attempt to read a certain amount of data at the specified offset before
/// returning.
/**
* This function is used to read a certain number of bytes of data from a
* random access device at the specified offset. The call will block until one
* of the following conditions is true:
*
* @li The supplied buffers are full. That is, the bytes transferred is equal to
* the sum of the buffer sizes.
*
* @li An error occurred.
*
* This operation is implemented in terms of zero or more calls to the device's
* read_some_at function.
*
* @param d The device from which the data is to be read. The type must support
* the SyncRandomAccessReadDevice concept.
*
* @param offset The offset at which the data will be read.
*
* @param buffers One or more buffers into which the data will be read. The sum
* of the buffer sizes indicates the maximum number of bytes to read from the
* device.
*
* @returns The number of bytes transferred.
*
* @throws asio::system_error Thrown on failure.
*
* @par Example
* To read into a single data buffer use the @ref buffer function as follows:
* @code asio::read_at(d, 42, asio::buffer(data, size)); @endcode
* See the @ref buffer documentation for information on reading into multiple
* buffers in one go, and how to use it with arrays, boost::array or
* std::vector.
*
* @note This overload is equivalent to calling:
* @code asio::read_at(
* d, 42, buffers,
* asio::transfer_all()); @endcode
*/
template <typename SyncRandomAccessReadDevice, typename MutableBufferSequence>
std::size_t read_at(SyncRandomAccessReadDevice& d,
uint64_t offset, const MutableBufferSequence& buffers);
/// Attempt to read a certain amount of data at the specified offset before
/// returning.
/**
* This function is used to read a certain number of bytes of data from a
* random access device at the specified offset. The call will block until one
* of the following conditions is true:
*
* @li The supplied buffers are full. That is, the bytes transferred is equal to
* the sum of the buffer sizes.
*
* @li An error occurred.
*
* This operation is implemented in terms of zero or more calls to the device's
* read_some_at function.
*
* @param d The device from which the data is to be read. The type must support
* the SyncRandomAccessReadDevice concept.
*
* @param offset The offset at which the data will be read.
*
* @param buffers One or more buffers into which the data will be read. The sum
* of the buffer sizes indicates the maximum number of bytes to read from the
* device.
*
* @param ec Set to indicate what error occurred, if any.
*
* @returns The number of bytes transferred.
*
* @par Example
* To read into a single data buffer use the @ref buffer function as follows:
* @code asio::read_at(d, 42,
* asio::buffer(data, size), ec); @endcode
* See the @ref buffer documentation for information on reading into multiple
* buffers in one go, and how to use it with arrays, boost::array or
* std::vector.
*
* @note This overload is equivalent to calling:
* @code asio::read_at(
* d, 42, buffers,
* asio::transfer_all(), ec); @endcode
*/
template <typename SyncRandomAccessReadDevice, typename MutableBufferSequence>
std::size_t read_at(SyncRandomAccessReadDevice& d,
uint64_t offset, const MutableBufferSequence& buffers,
asio::error_code& ec);
/// Attempt to read a certain amount of data at the specified offset before
/// returning.
/**
* This function is used to read a certain number of bytes of data from a
* random access device at the specified offset. The call will block until one
* of the following conditions is true:
*
* @li The supplied buffers are full. That is, the bytes transferred is equal to
* the sum of the buffer sizes.
*
* @li The completion_condition function object returns 0.
*
* This operation is implemented in terms of zero or more calls to the device's
* read_some_at function.
*
* @param d The device from which the data is to be read. The type must support
* the SyncRandomAccessReadDevice concept.
*
* @param offset The offset at which the data will be read.
*
* @param buffers One or more buffers into which the data will be read. The sum
* of the buffer sizes indicates the maximum number of bytes to read from the
* device.
*
* @param completion_condition The function object to be called to determine
* whether the read operation is complete. The signature of the function object
* must be:
* @code std::size_t completion_condition(
* // Result of latest read_some_at operation.
* const asio::error_code& error,
*
* // Number of bytes transferred so far.
* std::size_t bytes_transferred
* ); @endcode
* A return value of 0 indicates that the read operation is complete. A non-zero
* return value indicates the maximum number of bytes to be read on the next
* call to the device's read_some_at function.
*
* @returns The number of bytes transferred.
*
* @throws asio::system_error Thrown on failure.
*
* @par Example
* To read into a single data buffer use the @ref buffer function as follows:
* @code asio::read_at(d, 42, asio::buffer(data, size),
* asio::transfer_at_least(32)); @endcode
* See the @ref buffer documentation for information on reading into multiple
* buffers in one go, and how to use it with arrays, boost::array or
* std::vector.
*/
template <typename SyncRandomAccessReadDevice, typename MutableBufferSequence,
typename CompletionCondition>
std::size_t read_at(SyncRandomAccessReadDevice& d,
uint64_t offset, const MutableBufferSequence& buffers,
CompletionCondition completion_condition,
constraint_t<
is_completion_condition<CompletionCondition>::value
> = 0);
/// Attempt to read a certain amount of data at the specified offset before
/// returning.
/**
* This function is used to read a certain number of bytes of data from a
* random access device at the specified offset. The call will block until one
* of the following conditions is true:
*
* @li The supplied buffers are full. That is, the bytes transferred is equal to
* the sum of the buffer sizes.
*
* @li The completion_condition function object returns 0.
*
* This operation is implemented in terms of zero or more calls to the device's
* read_some_at function.
*
* @param d The device from which the data is to be read. The type must support
* the SyncRandomAccessReadDevice concept.
*
* @param offset The offset at which the data will be read.
*
* @param buffers One or more buffers into which the data will be read. The sum
* of the buffer sizes indicates the maximum number of bytes to read from the
* device.
*
* @param completion_condition The function object to be called to determine
* whether the read operation is complete. The signature of the function object
* must be:
* @code std::size_t completion_condition(
* // Result of latest read_some_at operation.
* const asio::error_code& error,
*
* // Number of bytes transferred so far.
* std::size_t bytes_transferred
* ); @endcode
* A return value of 0 indicates that the read operation is complete. A non-zero
* return value indicates the maximum number of bytes to be read on the next
* call to the device's read_some_at function.
*
* @param ec Set to indicate what error occurred, if any.
*
* @returns The number of bytes read. If an error occurs, returns the total
* number of bytes successfully transferred prior to the error.
*/
template <typename SyncRandomAccessReadDevice, typename MutableBufferSequence,
typename CompletionCondition>
std::size_t read_at(SyncRandomAccessReadDevice& d,
uint64_t offset, const MutableBufferSequence& buffers,
CompletionCondition completion_condition, asio::error_code& ec,
constraint_t<
is_completion_condition<CompletionCondition>::value
> = 0);
#if !defined(ASIO_NO_EXTENSIONS)
#if !defined(ASIO_NO_IOSTREAM)
/// Attempt to read a certain amount of data at the specified offset before
/// returning.
/**
* This function is used to read a certain number of bytes of data from a
* random access device at the specified offset. The call will block until one
* of the following conditions is true:
*
* @li An error occurred.
*
* This operation is implemented in terms of zero or more calls to the device's
* read_some_at function.
*
* @param d The device from which the data is to be read. The type must support
* the SyncRandomAccessReadDevice concept.
*
* @param offset The offset at which the data will be read.
*
* @param b The basic_streambuf object into which the data will be read.
*
* @returns The number of bytes transferred.
*
* @throws asio::system_error Thrown on failure.
*
* @note This overload is equivalent to calling:
* @code asio::read_at(
* d, 42, b,
* asio::transfer_all()); @endcode
*/
template <typename SyncRandomAccessReadDevice, typename Allocator>
std::size_t read_at(SyncRandomAccessReadDevice& d,
uint64_t offset, basic_streambuf<Allocator>& b);
/// Attempt to read a certain amount of data at the specified offset before
/// returning.
/**
* This function is used to read a certain number of bytes of data from a
* random access device at the specified offset. The call will block until one
* of the following conditions is true:
*
* @li An error occurred.
*
* This operation is implemented in terms of zero or more calls to the device's
* read_some_at function.
*
* @param d The device from which the data is to be read. The type must support
* the SyncRandomAccessReadDevice concept.
*
* @param offset The offset at which the data will be read.
*
* @param b The basic_streambuf object into which the data will be read.
*
* @param ec Set to indicate what error occurred, if any.
*
* @returns The number of bytes transferred.
*
* @note This overload is equivalent to calling:
* @code asio::read_at(
* d, 42, b,
* asio::transfer_all(), ec); @endcode
*/
template <typename SyncRandomAccessReadDevice, typename Allocator>
std::size_t read_at(SyncRandomAccessReadDevice& d,
uint64_t offset, basic_streambuf<Allocator>& b,
asio::error_code& ec);
/// Attempt to read a certain amount of data at the specified offset before
/// returning.
/**
* This function is used to read a certain number of bytes of data from a
* random access device at the specified offset. The call will block until one
* of the following conditions is true:
*
* @li The completion_condition function object returns 0.
*
* This operation is implemented in terms of zero or more calls to the device's
* read_some_at function.
*
* @param d The device from which the data is to be read. The type must support
* the SyncRandomAccessReadDevice concept.
*
* @param offset The offset at which the data will be read.
*
* @param b The basic_streambuf object into which the data will be read.
*
* @param completion_condition The function object to be called to determine
* whether the read operation is complete. The signature of the function object
* must be:
* @code std::size_t completion_condition(
* // Result of latest read_some_at operation.
* const asio::error_code& error,
*
* // Number of bytes transferred so far.
* std::size_t bytes_transferred
* ); @endcode
* A return value of 0 indicates that the read operation is complete. A non-zero
* return value indicates the maximum number of bytes to be read on the next
* call to the device's read_some_at function.
*
* @returns The number of bytes transferred.
*
* @throws asio::system_error Thrown on failure.
*/
template <typename SyncRandomAccessReadDevice, typename Allocator,
typename CompletionCondition>
std::size_t read_at(SyncRandomAccessReadDevice& d,
uint64_t offset, basic_streambuf<Allocator>& b,
CompletionCondition completion_condition,
constraint_t<
is_completion_condition<CompletionCondition>::value
> = 0);
/// Attempt to read a certain amount of data at the specified offset before
/// returning.
/**
* This function is used to read a certain number of bytes of data from a
* random access device at the specified offset. The call will block until one
* of the following conditions is true:
*
* @li The completion_condition function object returns 0.
*
* This operation is implemented in terms of zero or more calls to the device's
* read_some_at function.
*
* @param d The device from which the data is to be read. The type must support
* the SyncRandomAccessReadDevice concept.
*
* @param offset The offset at which the data will be read.
*
* @param b The basic_streambuf object into which the data will be read.
*
* @param completion_condition The function object to be called to determine
* whether the read operation is complete. The signature of the function object
* must be:
* @code std::size_t completion_condition(
* // Result of latest read_some_at operation.
* const asio::error_code& error,
*
* // Number of bytes transferred so far.
* std::size_t bytes_transferred
* ); @endcode
* A return value of 0 indicates that the read operation is complete. A non-zero
* return value indicates the maximum number of bytes to be read on the next
* call to the device's read_some_at function.
*
* @param ec Set to indicate what error occurred, if any.
*
* @returns The number of bytes read. If an error occurs, returns the total
* number of bytes successfully transferred prior to the error.
*/
template <typename SyncRandomAccessReadDevice, typename Allocator,
typename CompletionCondition>
std::size_t read_at(SyncRandomAccessReadDevice& d,
uint64_t offset, basic_streambuf<Allocator>& b,
CompletionCondition completion_condition, asio::error_code& ec,
constraint_t<
is_completion_condition<CompletionCondition>::value
> = 0);
#endif // !defined(ASIO_NO_IOSTREAM)
#endif // !defined(ASIO_NO_EXTENSIONS)
/*@}*/
/**
* @defgroup async_read_at asio::async_read_at
*
* @brief The @c async_read_at function is a composed asynchronous operation
* that reads a certain amount of data at the specified offset.
*/
/*@{*/
/// Start an asynchronous operation to read a certain amount of data at the
/// specified offset.
/**
* This function is used to asynchronously read a certain number of bytes of
* data from a random access device at the specified offset. It is an
* initiating function for an @ref asynchronous_operation, and always returns
* immediately. The asynchronous operation will continue until one of the
* following conditions is true:
*
* @li The supplied buffers are full. That is, the bytes transferred is equal to
* the sum of the buffer sizes.
*
* @li An error occurred.
*
* This operation is implemented in terms of zero or more calls to the device's
* async_read_some_at function.
*
* @param d The device from which the data is to be read. The type must support
* the AsyncRandomAccessReadDevice concept.
*
* @param offset The offset at which the data will be read.
*
* @param buffers One or more buffers into which the data will be read. The sum
* of the buffer sizes indicates the maximum number of bytes to read from the
* device. Although the buffers object may be copied as necessary, ownership of
* the underlying memory blocks is retained by the caller, which must guarantee
* that they remain valid until the completion handler is called.
*
* @param token The @ref completion_token that will be used to produce a
* completion handler, which will be called when the read completes.
* Potential completion tokens include @ref use_future, @ref use_awaitable,
* @ref yield_context, or a function object with the correct completion
* signature. The function signature of the completion handler must be:
* @code void handler(
* // Result of operation.
* const asio::error_code& error,
*
* // Number of bytes copied into the buffers. If an error
* // occurred, this will be the number of bytes successfully
* // transferred prior to the error.
* std::size_t bytes_transferred
* ); @endcode
* Regardless of whether the asynchronous operation completes immediately or
* not, the completion handler will not be invoked from within this function.
* On immediate completion, invocation of the handler will be performed in a
* manner equivalent to using asio::async_immediate().
*
* @par Completion Signature
* @code void(asio::error_code, std::size_t) @endcode
*
* @par Example
* To read into a single data buffer use the @ref buffer function as follows:
* @code
* asio::async_read_at(d, 42, asio::buffer(data, size), handler);
* @endcode
* See the @ref buffer documentation for information on reading into multiple
* buffers in one go, and how to use it with arrays, boost::array or
* std::vector.
*
* @note This overload is equivalent to calling:
* @code asio::async_read_at(
* d, 42, buffers,
* asio::transfer_all(),
* handler); @endcode
*
* @par Per-Operation Cancellation
* This asynchronous operation supports cancellation for the following
* asio::cancellation_type values:
*
* @li @c cancellation_type::terminal
*
* @li @c cancellation_type::partial
*
* if they are also supported by the @c AsyncRandomAccessReadDevice type's
* async_read_some_at operation.
*/
template <typename AsyncRandomAccessReadDevice, typename MutableBufferSequence,
ASIO_COMPLETION_TOKEN_FOR(void (asio::error_code,
std::size_t)) ReadToken = default_completion_token_t<
typename AsyncRandomAccessReadDevice::executor_type>>
inline auto async_read_at(AsyncRandomAccessReadDevice& d,
uint64_t offset, const MutableBufferSequence& buffers,
ReadToken&& token = default_completion_token_t<
typename AsyncRandomAccessReadDevice::executor_type>(),
constraint_t<
!is_completion_condition<ReadToken>::value
> = 0)
-> decltype(
async_initiate<ReadToken,
void (asio::error_code, std::size_t)>(
declval<detail::initiate_async_read_at<AsyncRandomAccessReadDevice>>(),
token, offset, buffers, transfer_all()))
{
return async_initiate<ReadToken,
void (asio::error_code, std::size_t)>(
detail::initiate_async_read_at<AsyncRandomAccessReadDevice>(d),
token, offset, buffers, transfer_all());
}
/// Start an asynchronous operation to read a certain amount of data at the
/// specified offset.
/**
* This function is used to asynchronously read a certain number of bytes of
* data from a random access device at the specified offset. It is an
* initiating function for an @ref asynchronous_operation, and always returns
* immediately. The asynchronous operation will continue until one of the
* following conditions is true:
*
* @li The supplied buffers are full. That is, the bytes transferred is equal to
* the sum of the buffer sizes.
*
* @li The completion_condition function object returns 0.
*
* @param d The device from which the data is to be read. The type must support
* the AsyncRandomAccessReadDevice concept.
*
* @param offset The offset at which the data will be read.
*
* @param buffers One or more buffers into which the data will be read. The sum
* of the buffer sizes indicates the maximum number of bytes to read from the
* device. Although the buffers object may be copied as necessary, ownership of
* the underlying memory blocks is retained by the caller, which must guarantee
* that they remain valid until the completion handler is called.
*
* @param completion_condition The function object to be called to determine
* whether the read operation is complete. The signature of the function object
* must be:
* @code std::size_t completion_condition(
* // Result of latest async_read_some_at operation.
* const asio::error_code& error,
*
* // Number of bytes transferred so far.
* std::size_t bytes_transferred
* ); @endcode
* A return value of 0 indicates that the read operation is complete. A non-zero
* return value indicates the maximum number of bytes to be read on the next
* call to the device's async_read_some_at function.
*
* @param token The @ref completion_token that will be used to produce a
* completion handler, which will be called when the read completes.
* Potential completion tokens include @ref use_future, @ref use_awaitable,
* @ref yield_context, or a function object with the correct completion
* signature. The function signature of the completion handler must be:
* @code void handler(
* // Result of operation.
* const asio::error_code& error,
*
* // Number of bytes copied into the buffers. If an error
* // occurred, this will be the number of bytes successfully
* // transferred prior to the error.
* std::size_t bytes_transferred
* ); @endcode
* Regardless of whether the asynchronous operation completes immediately or
* not, the completion handler will not be invoked from within this function.
* On immediate completion, invocation of the handler will be performed in a
* manner equivalent to using asio::async_immediate().
*
* @par Completion Signature
* @code void(asio::error_code, std::size_t) @endcode
*
* @par Example
* To read into a single data buffer use the @ref buffer function as follows:
* @code asio::async_read_at(d, 42,
* asio::buffer(data, size),
* asio::transfer_at_least(32),
* handler); @endcode
* See the @ref buffer documentation for information on reading into multiple
* buffers in one go, and how to use it with arrays, boost::array or
* std::vector.
*
* @par Per-Operation Cancellation
* This asynchronous operation supports cancellation for the following
* asio::cancellation_type values:
*
* @li @c cancellation_type::terminal
*
* @li @c cancellation_type::partial
*
* if they are also supported by the @c AsyncRandomAccessReadDevice type's
* async_read_some_at operation.
*/
template <typename AsyncRandomAccessReadDevice,
typename MutableBufferSequence, typename CompletionCondition,
ASIO_COMPLETION_TOKEN_FOR(void (asio::error_code,
std::size_t)) ReadToken = default_completion_token_t<
typename AsyncRandomAccessReadDevice::executor_type>>
inline auto async_read_at(AsyncRandomAccessReadDevice& d,
uint64_t offset, const MutableBufferSequence& buffers,
CompletionCondition completion_condition,
ReadToken&& token = default_completion_token_t<
typename AsyncRandomAccessReadDevice::executor_type>(),
constraint_t<
is_completion_condition<CompletionCondition>::value
> = 0)
-> decltype(
async_initiate<ReadToken,
void (asio::error_code, std::size_t)>(
declval<detail::initiate_async_read_at<AsyncRandomAccessReadDevice>>(),
token, offset, buffers,
static_cast<CompletionCondition&&>(completion_condition)))
{
return async_initiate<ReadToken,
void (asio::error_code, std::size_t)>(
detail::initiate_async_read_at<AsyncRandomAccessReadDevice>(d),
token, offset, buffers,
static_cast<CompletionCondition&&>(completion_condition));
}
#if !defined(ASIO_NO_EXTENSIONS)
#if !defined(ASIO_NO_IOSTREAM)
/// Start an asynchronous operation to read a certain amount of data at the
/// specified offset.
/**
* This function is used to asynchronously read a certain number of bytes of
* data from a random access device at the specified offset. It is an
* initiating function for an @ref asynchronous_operation, and always returns
* immediately. The asynchronous operation will continue until one of the
* following conditions is true:
*
* @li An error occurred.
*
* This operation is implemented in terms of zero or more calls to the device's
* async_read_some_at function.
*
* @param d The device from which the data is to be read. The type must support
* the AsyncRandomAccessReadDevice concept.
*
* @param offset The offset at which the data will be read.
*
* @param b A basic_streambuf object into which the data will be read. Ownership
* of the streambuf is retained by the caller, which must guarantee that it
* remains valid until the completion handler is called.
*
* @param token The @ref completion_token that will be used to produce a
* completion handler, which will be called when the read completes.
* Potential completion tokens include @ref use_future, @ref use_awaitable,
* @ref yield_context, or a function object with the correct completion
* signature. The function signature of the completion handler must be:
* @code void handler(
* // Result of operation.
* const asio::error_code& error,
*
* // Number of bytes copied into the buffers. If an error
* // occurred, this will be the number of bytes successfully
* // transferred prior to the error.
* std::size_t bytes_transferred
* ); @endcode
* Regardless of whether the asynchronous operation completes immediately or
* not, the completion handler will not be invoked from within this function.
* On immediate completion, invocation of the handler will be performed in a
* manner equivalent to using asio::async_immediate().
*
* @par Completion Signature
* @code void(asio::error_code, std::size_t) @endcode
*
* @note This overload is equivalent to calling:
* @code asio::async_read_at(
* d, 42, b,
* asio::transfer_all(),
* handler); @endcode
*
* @par Per-Operation Cancellation
* This asynchronous operation supports cancellation for the following
* asio::cancellation_type values:
*
* @li @c cancellation_type::terminal
*
* @li @c cancellation_type::partial
*
* if they are also supported by the @c AsyncRandomAccessReadDevice type's
* async_read_some_at operation.
*/
template <typename AsyncRandomAccessReadDevice, typename Allocator,
ASIO_COMPLETION_TOKEN_FOR(void (asio::error_code,
std::size_t)) ReadToken = default_completion_token_t<
typename AsyncRandomAccessReadDevice::executor_type>>
inline auto async_read_at(AsyncRandomAccessReadDevice& d,
uint64_t offset, basic_streambuf<Allocator>& b,
ReadToken&& token = default_completion_token_t<
typename AsyncRandomAccessReadDevice::executor_type>(),
constraint_t<
!is_completion_condition<ReadToken>::value
> = 0)
-> decltype(
async_initiate<ReadToken,
void (asio::error_code, std::size_t)>(
declval<detail::initiate_async_read_at_streambuf<
AsyncRandomAccessReadDevice>>(),
token, offset, &b, transfer_all()))
{
return async_initiate<ReadToken,
void (asio::error_code, std::size_t)>(
detail::initiate_async_read_at_streambuf<AsyncRandomAccessReadDevice>(d),
token, offset, &b, transfer_all());
}
/// Start an asynchronous operation to read a certain amount of data at the
/// specified offset.
/**
* This function is used to asynchronously read a certain number of bytes of
* data from a random access device at the specified offset. It is an
* initiating function for an @ref asynchronous_operation, and always returns
* immediately. The asynchronous operation will continue until one of the
* following conditions is true:
*
* @li The completion_condition function object returns 0.
*
* This operation is implemented in terms of zero or more calls to the device's
* async_read_some_at function.
*
* @param d The device from which the data is to be read. The type must support
* the AsyncRandomAccessReadDevice concept.
*
* @param offset The offset at which the data will be read.
*
* @param b A basic_streambuf object into which the data will be read. Ownership
* of the streambuf is retained by the caller, which must guarantee that it
* remains valid until the completion handler is called.
*
* @param completion_condition The function object to be called to determine
* whether the read operation is complete. The signature of the function object
* must be:
* @code std::size_t completion_condition(
* // Result of latest async_read_some_at operation.
* const asio::error_code& error,
*
* // Number of bytes transferred so far.
* std::size_t bytes_transferred
* ); @endcode
* A return value of 0 indicates that the read operation is complete. A non-zero
* return value indicates the maximum number of bytes to be read on the next
* call to the device's async_read_some_at function.
*
* @param token The @ref completion_token that will be used to produce a
* completion handler, which will be called when the read completes.
* Potential completion tokens include @ref use_future, @ref use_awaitable,
* @ref yield_context, or a function object with the correct completion
* signature. The function signature of the completion handler must be:
* @code void handler(
* // Result of operation.
* const asio::error_code& error,
*
* // Number of bytes copied into the buffers. If an error
* // occurred, this will be the number of bytes successfully
* // transferred prior to the error.
* std::size_t bytes_transferred
* ); @endcode
* Regardless of whether the asynchronous operation completes immediately or
* not, the completion handler will not be invoked from within this function.
* On immediate completion, invocation of the handler will be performed in a
* manner equivalent to using asio::async_immediate().
*
* @par Completion Signature
* @code void(asio::error_code, std::size_t) @endcode
*
* @par Per-Operation Cancellation
* This asynchronous operation supports cancellation for the following
* asio::cancellation_type values:
*
* @li @c cancellation_type::terminal
*
* @li @c cancellation_type::partial
*
* if they are also supported by the @c AsyncRandomAccessReadDevice type's
* async_read_some_at operation.
*/
template <typename AsyncRandomAccessReadDevice,
typename Allocator, typename CompletionCondition,
ASIO_COMPLETION_TOKEN_FOR(void (asio::error_code,
std::size_t)) ReadToken = default_completion_token_t<
typename AsyncRandomAccessReadDevice::executor_type>>
inline auto async_read_at(AsyncRandomAccessReadDevice& d, uint64_t offset,
basic_streambuf<Allocator>& b, CompletionCondition completion_condition,
ReadToken&& token = default_completion_token_t<
typename AsyncRandomAccessReadDevice::executor_type>(),
constraint_t<
is_completion_condition<CompletionCondition>::value
> = 0)
-> decltype(
async_initiate<ReadToken,
void (asio::error_code, std::size_t)>(
declval<detail::initiate_async_read_at_streambuf<
AsyncRandomAccessReadDevice>>(),
token, offset, &b,
static_cast<CompletionCondition&&>(completion_condition)))
{
return async_initiate<ReadToken,
void (asio::error_code, std::size_t)>(
detail::initiate_async_read_at_streambuf<AsyncRandomAccessReadDevice>(d),
token, offset, &b,
static_cast<CompletionCondition&&>(completion_condition));
}
#endif // !defined(ASIO_NO_IOSTREAM)
#endif // !defined(ASIO_NO_EXTENSIONS)
/*@}*/
ASIO_INLINE_NAMESPACE_END
} // namespace asio
#include "asio/detail/pop_options.hpp"
#include "asio/impl/read_at.hpp"
#endif // ASIO_READ_AT_HPP