Boost.Asio / standalone Asio
Overview
Write async C++ networking code that compiles on the user's Boost, not the newest one. Asio's API changed shape three times (classic io_service → io_context → C++20 coroutines) and most Asio code on the internet is from the first era, so pick the style from the toolchain first, then follow that style's reference file.
References: Boost.Asio · standalone Asio
Asio's API changed shape three times, so the same task has three correct answers depending on the Boost version in front of you. This skill makes the agent establish that version first, then apply the rules that are genuinely easy to get wrong — strand versus write serialization, buffer and connection lifetime, composed reads for framing — and finally check its own output against a list before calling it done.
When to Use This Skill
- Use when writing or reviewing async C++ networking code with Boost.Asio or standalone Asio: TCP/UDP servers and clients, SSL/TLS streams, timers, resolvers.
- Use when the code involves
io_context,io_service,co_spawn,awaitable,async_read,async_write,strand,asio::spawn,yield_context, or completion-handler callbacks. - Use when the target toolchain is old: an older Boost or a pre-C++20 standard, where coroutine examples will not compile.
- Use when async code compiles but misbehaves: interleaved writes, dangling buffers, sockets closing early,
operation_abortedtreated as an error.
Step 1: pick the style (do this before writing code)
Determine the Boost (or Asio) version and the C++ standard actually in use — find_package(Boost) output, dpkg -l libboost-dev, brew info boost, CMAKE_CXX_STANDARD, or ask. Do not assume the newest.
| Boost | C++ std | Style | Read |
|---|---|---|---|
| ≥ 1.77 | C++20 | Coroutines (co_await + awaitable<T>) — preferred | references/coroutines.md |
| ≥ 1.74 | C++11–17 | Completion handlers (callbacks) — the portable baseline | references/pre-cpp20.md |
| ≥ 1.80 | C++11–17 | Stackful asio::spawn + yield_context (links Boost.Coroutine — not header-only) | references/pre-cpp20.md |
| 1.62–1.65 | C++11 | Classic io_service / strand.wrap / expires_from_now | references/classic-boost.md |
SSL/TLS in any style: references/ssl.md. CMake for any style: references/build.md.
io_context, make_strand, bind_executor, steady_timer, signal_set, async_read/async_write/async_read_until, buffers and resolver are library features — identical in the coroutine and callback styles. Only the suspension mechanism differs.
Step 2: version floors (verified by compiling, not from docs)
Reach for one of these and the build breaks on older distros:
| Feature | Floor |
|---|---|
experimental/awaitable_operators.hpp (the || / && operators) | Boost ≥ 1.77 / Asio ≥ 1.20 |
as_tuple completion token | Boost ≥ 1.79 / Asio ≥ 1.21 |
co_composed (custom composed ops) | Boost ≥ 1.85 / Asio ≥ 1.30 |
3-arg asio::spawn(ex, fn, token) | Boost ≥ 1.80 (older Boost has only spawn(ex, fn)) |
any_io_executor (strand<any_io_executor>, tcp::socket's default executor) | Boost ≥ 1.74 — the floor for the callback style; below it, use legacy io_context::strand |
io_context, make_strand, expires_after | Boost ≥ 1.66 — below it, classic io_service |
Distro floors that bite: Debian bookworm ships Boost 1.74 (no awaitable_operators.hpp — #include fails outright), Ubuntu 20.04 ships 1.71 (no any_io_executor), Debian 9 ships 1.62.
Language, not library: the chrono literals 250ms / 30s are C++14. For a true C++11 build write std::chrono::milliseconds(250).
Step 3: the rules that are actually easy to get wrong
A strand does not serialize writes. A strand serializes handler execution, not whole composed operations. Two async_writes in flight on the same strand still interleave bytes on the wire. Full-duplex (a read loop plus concurrent pushes/replies) needs a per-connection strand and an outbound queue with an in-flight flag, so at most one async_write exists at a time. This is the single most common wrong answer about Asio.
Buffers do not own memory. asio::buffer() is a view. Storage must outlive the operation: coroutine locals are fine across co_await in the same frame; in callback style the same data must become a member, not a local.
Connections must outlive their handlers. enable_shared_from_this, and capture self in every co_spawn / handler — read loop, write loop, and each timer.
Frame with composed reads. async_read (fills the buffer exactly) for a length prefix and then the body; never async_read_some, which returns short.
Wrap as_tuple. Always as_tuple(use_awaitable). Bare as_tuple resolves against the operation's default token and compiles in some contexts, fails in others.
async_accept(make_strand(...)) changes two things: it forces an explicit completion token back on the call, and the accepted socket is basic_stream_socket<tcp, strand<...>>, not tcp::socket. Take it by value or with auto — binding it to tcp::socket& will not compile.
Re-arming a timer resolves the pending wait with operation_aborted. In an idle-timeout loop that is the signal to keep waiting, not an error.
GCC needs -fcoroutines for the C++20 style, and header-only Boost needs BOOST_ERROR_CODE_HEADER_ONLY defined in exactly one place (CMake).
Common mistakes
| Mistake | Fix |
|---|---|
| Buffer dangling (local goes out of scope during async op) | Ensure buffer lifetime ≥ operation lifetime; coroutine locals or members, not callback locals |
Forgetting io.run() | No handlers dispatch without run() / run_one() |
| Concurrent socket access without strand | Wrap in strand<> or serialize via one coroutine chain |
| Assuming a strand prevents interleaved writes | Add a write queue — see Step 3 |
Using use_awaitable where deferred suffices | Omit the token (default is deferred) unless using || / && |
| Ignoring short reads/writes | Use composed async_read / async_write / async_read_until, not async_read_some |
Not setting reuse_address on the acceptor | Set before bind/listen or restarts hit "address in use" |
| SSL operations without a strand | All ssl::stream ops need strand synchronization |
| Blocking inside a handler | Never block in a completion handler |
| Accepting a socket with the wrong executor type | See async_accept(make_strand(...)) in Step 3 |
Requiring the Boost::system component | Header-only since 1.74: Boost::headers + BOOST_ERROR_CODE_HEADER_ONLY. Only classic (pre-1.66) needs the link |
Missing -fcoroutines on GCC | Build fails — add $<$<CXX_COMPILER_ID:GNU>:-fcoroutines> |
| Writing coroutine code for a Boost that predates it | Do Step 1 first |
Boost.Asio vs standalone Asio
Same author, same API — namespace and includes differ.
| Aspect | Boost.Asio | Standalone Asio |
|---|---|---|
| Namespace / include | boost::asio / <boost/asio.hpp> | asio / <asio.hpp> |
| Error code | boost::system::error_code | asio::error_code (or std::error_code) |
| Install (brew) | brew install boost | brew install asio |
| CMake | Boost::headers | manual include path |
| Version (2025) | 1.87–1.90 (with Boost) | 1.30–1.36 (independent) |
| Macro prefix | BOOST_ASIO_ | ASIO_ |
Support both with a shim, then use net:: throughout:
#ifdef USE_STANDALONE_ASIO
#include <asio.hpp>
namespace net = asio;
using error_code = asio::error_code;
#else
#include <boost/asio.hpp>
namespace net = boost::asio;
using error_code = boost::system::error_code;
#endif
namespace ssl = net::ssl;
using tcp = net::ip::tcp;
Before you call it done
Check the code you just wrote against this list:
- Style matches the target Boost version and C++ standard (Step 1), and every API used clears its floor (Step 2).
- Every buffer passed to an async op outlives that op — no callback locals, no dangling
string_view. - At most one
async_writeper socket in flight, enforced by a queue + flag, if anything writes concurrently with reading. - Every async chain on a shared object runs on the same strand;
selfcaptured in every handler andco_spawn. - Framing / delimited reads use composed
async_read/async_read_until. - Errors are handled, not swallowed:
as_tuple(use_awaitable)destructured, or the callback'secchecked, on every op. -
operation_aborteddistinguished from real errors wherever a timer is re-armed or an op is cancelled. - Acceptor sets
reuse_address; shutdown path closes the acceptor and drains sessions. - CMake has the standard,
-fcoroutinesfor GCC (C++20 only),BOOST_ERROR_CODE_HEADER_ONLYin one place, andBoost::coroutineonly if using stackfulspawn. - It compiles. Build it — most of the mistakes above are compile-time, and the version floors are only real once tested.
Worked examples
Three CI-verified implementations of the same full-duplex framed-protocol server, one per style — copy from the one matching Step 1. Paths are relative to this skill directory; if only the skill was installed, they are at https://github.com/alexprivalov/boost-asio-skill/tree/main/examples.
../../examples/market-data-feed/— C++20 coroutines (Boost 1.77+; verified 1.83–1.90)../../examples/market-data-feed-precpp20/— callbacks, C++11-clean (verified Boost 1.74+, incl. Windows/MSVC)../../examples/market-data-feed-classic/— classicio_service(verified back to Boost 1.62 / Debian 9)
Official documentation
- Overview: https://www.boost.org/doc/libs/latest/doc/html/boost_asio/overview.html
- Reference: https://www.boost.org/doc/libs/latest/doc/html/boost_asio/reference.html
- Examples: https://www.boost.org/doc/libs/latest/doc/html/boost_asio/examples.html
Limitations
- This skill does not replace compiling and testing against the target toolchain. The version floors it documents are only real once built — build the code.
- It does not cover Boost.Beast (HTTP/WebSocket), io_uring backends, or UDP multicast specifics.
- Stop and ask when the Boost version and C++ standard cannot be determined; the style choice depends on them.
Security & Safety Notes
- Read-only guidance: this skill contains no shell commands, network fetches, credentials, or mutation instructions. The commands it names (
dpkg -l libboost-dev,brew info boost) are local version queries. - Networking code it produces accepts untrusted input. Validate length prefixes before allocating (
std::string body(n, 0)with an attacker-controllednis a memory-exhaustion vector — cap it), and verify peer certificates when using TLS rather than disabling verification to make a handshake pass.
Related Skills
@cpp-pro— general modern C++ idioms; this skill assumes them and adds the Asio-specific rules.