54 KiB
Flash HTTP/2 — Decision Log
This is the living record of every non-obvious choice made while implementing
flash/docs/http2/IMPLEMENTATION-PLAN.md. It is not a changelog of what was built — the git
history is that — it is a record of why, for choices that were not forced by the RFC and that
a future reader would otherwise have to re-derive or, worse, silently re-litigate.
Every entry: Context / Options / Decision / Consequence / Revisit when.
Seeded at Phase 0 with DEC-01…DEC-10 (the decisions already implied by the plan itself, per
Appendix A). Every subsequent non-obvious choice appends a new entry with the next free number.
Numbers are never reused, even if a decision is later reversed — the reversal gets its own entry
that supersedes the earlier one and says so explicitly.
DEC-01 — HTTP/2 lives in flash core, package dev.relism.flash.http2, not an extension
Context. Flash has an extension mechanism (flash-ext-* modules) for optional
functionality. HTTP/2 could in principle be shipped as flash-ext-h2.
Options.
- Ship as an extension, loaded optionally.
- Ship in
flashcore, alongside HTTP/1.1.
Decision. Core (option 2).
Consequence. The protocol decision (h1 vs h2) is made once, immediately after
ALPN/preface detection, inside the transport layer. HttpServer (and its Phase 2 replacement)
is package-private to flash core; an extension cannot hook into ALPN negotiation or the
accept loop without core exposing seams it does not otherwise need. HTTP/2 is a transport
concern in the same sense HTTP/1.1 is — it cannot be optional in the way, say, an OpenAPI
generator is.
Revisit when. Never, absent a restructuring of the extension mechanism itself to support transport-level extensions (not currently planned).
DEC-02 — h1 and h2 are peers behind a ConnectionProtocol seam, never flags in shared code
Context. The obvious shortcut is if (isHttp2) { ... } else { ... } scattered through the
existing HTTP/1.1 code paths.
Options.
- Flag-branch inside shared code.
- A
ConnectionProtocolinterface with two implementations (Http1Connection,Http2Connection), selected once per connection.
Decision. Option 2 (R1).
Consequence. Shared code (byte scanning, the writer discipline, Request/Response) is
extracted upward into protocol-neutral components (dev.relism.flash.bytes,
ResponseSerializer), never pushed sideways with a protocol flag. This is enforced by an
architecture test (Phase 2) asserting dev.relism.flash.http1 never references
dev.relism.flash.http2 and vice versa. The cost is more up-front extraction work in Phase 2 and
Phase 6; the benefit is that h1 throughput cannot regress from an if that the JIT fails to
eliminate, and that either implementation can be read in isolation.
Revisit when. Never — this is a structural invariant, not a tunable.
DEC-03 — ReentrantLock everywhere, never synchronized around blocking I/O
Context. Java 21 (this project's baseline) has virtual threads (JEP 444) but not JEP 491
(which removes synchronized carrier-pinning); JEP 491 lands in JDK 24. A virtual thread that
blocks inside a synchronized block pins its carrier platform thread for the duration of the
block, including any blocking I/O inside it.
Options.
- Keep
synchronizedwhere it already exists (WebSocketSession,EX-01) and accept the pinning risk. - Replace every
synchronizedblock that can block on I/O withjava.util.concurrent.locks .ReentrantLock, which unmounts a blocked virtual thread instead of pinning its carrier.
Decision. Option 2, applied retroactively to the existing WebSocket code (Phase 2) and as a
standing rule for every future connection-writer path, most importantly Http2FrameWriter
(Phase 3).
Consequence. One virtual thread blocking on a slow write no longer starves the carrier pool
for every other connection scheduled onto that carrier. The cost is that ReentrantLock is
slightly more expensive than an uncontended synchronized monitor in theplatform-thread case
— irrelevant here, since every request-serving thread in this codebase is virtual.
Revisit when. The project's Java baseline moves to JDK 24+ and JEP 491 is confirmed to
remove pinning for synchronized. Even then, ReentrantLock's explicit tryLock() — which
synchronized cannot offer — is load-bearing for Phase 3's writer design, so this decision
would only partially reverse.
DEC-04 — The HPACK encoder uses the static table only; no dynamic table
Context. RFC 7541's dynamic table is optional for an encoder (a decoder must always
support the peer using one; nothing requires the encoder to use one itself). Using it on the
encode side would save bytes on repeated headers (e.g. a constant server value) but requires
mutable, connection-shared state: an insertion changes indices for every subsequent encode on
that connection.
Options.
- Encoder uses the dynamic table, saving bytes on repeated custom headers.
- Encoder emits only Indexed (static) and Literal-Without-Indexing representations; no dynamic table, no mutable encoder state.
Decision. Option 2.
Consequence. The write path — already the project's largest architectural risk (Phase 3) —
needs no shared-table lock and no invalidation protocol across concurrently-writing streams.
The cost is a few extra bytes per response for headers that do not already have a static-table
entry (i.e. everything except the ~30 header names RFC 7541 Appendix A knows about). The
encoder still honours the peer's SETTINGS_HEADER_TABLE_SIZE by sending a Dynamic Table Size
Update of 0 at the start of the first header block, declaring "I will never use this table" —
a correctness detail, not optional politeness (Phase 9 task 1).
Revisit when. Benchmark evidence (Phase 17) shows the extra wire bytes materially hurt
throughput or latency on a realistic workload — not before. A shared dynamic table is a
non-trivial correctness surface (see DEC-06's discussion of the analogous decode-side hazard)
and should only be taken on with a measured reason.
DEC-05 — Huffman-encode constants at boot; emit runtime values as raw literals
Context. HPACK lets the encoder Huffman-code any string at its option. Constants (status
lines, content-type values) are a closed, known set and can be Huffman-encoded once, at class
initialization, for free at runtime. Runtime-generated values (a dynamic ETag, a user-set
custom header) would need to be Huffman-encoded on every response.
Options.
- Huffman-encode everything, including runtime values, on every write.
- Huffman-encode only boot-time constants; emit runtime values as raw (uncompressed) literals.
Decision. Option 2, with FlashConfiguration.h2HuffmanDynamicValues (default false) so
option 1's cost/benefit can actually be measured on real traffic rather than argued about in
the abstract.
Consequence. The response write path's critical section has no per-byte Huffman encode loop for the common case. The cost is a few extra bytes on the wire for runtime header values, which HPACK's other mechanisms (indexing on the receive side, if the receiver chooses to use its dynamic table) can still partially recover.
Revisit when. Phase 17 benchmarks the flag both ways on a representative response shape.
DEC-06 — Decoded headers are copied into a per-stream arena, not referenced in the dynamic table
Context. A ByteView into the HPACK dynamic table's arena is valid only while its entry is
still live. Under HTTP/1.1 this is trivially safe (one thread, one request at a time). Under
HTTP/2, the demux thread can decode a second stream's HEADERS — evicting and overwriting
dynamic-table arena bytes — while a handler on a different virtual thread is still reading a
view produced by an earlier decode. This is a genuine, silent data race: it does not manifest
in any test that decodes one block at a time, only under real multiplexed load.
Options.
- Reference dynamic-table entries directly from decoded
ByteViews, and protect them with an epoch or reference-count scheme so an entry cannot be evicted while still referenced. - Copy every decoded header (name and value) into an arena owned by the stream being
assembled, at decode time. One
~30-byte-averagememcpyper header; correctness by construction, no cross-thread coordination.
Decision. Option 2.
Consequence. Header decode is not zero-copy relative to the dynamic table (R3's "honest naming" clause applies: HTTP/2 copies each novel header once per connection and references it by index thereafter — the per-stream arena copy is that one copy). In exchange, no handler can ever observe a torn or evicted header value, and the demux thread never needs to coordinate with a handler thread to decode the next block. Per-stream arenas are pooled (returned on stream close) so this is zero allocation at steady state despite the copy.
Revisit when. Profiling (Phase 17) shows the per-header copy is a measurable cost on a
realistic HPACK-heavy workload. Even then, option 1's concurrent bookkeeping is a large
correctness surface to take on to avoid a small memcpy, and should not be revisited casually.
DEC-07 — :authority is exposed to user code as both :authority and host
Context. HTTP/2 requests carry authority information in the :authority pseudo-header
(RFC 9113 §8.3.1), not a Host header — host may optionally also be present and, if so, must
match :authority, but is not required. Existing Flash middleware (and most middleware in the
wild) reads Host by convention, inherited from HTTP/1.1.
Options.
- Expose only
:authority, under whatever name the h2 header map uses for pseudo-headers. Middleware written againstHostsilently breaks on h2. - Expose
:authority's value under both keys: the literal:authorityandhost.
Decision. Option 2.
Consequence. A single small duplication (one extra index entry into the same per-stream
arena bytes — no extra copy) buys behavioural parity for existing and future middleware that
reads Host, without requiring every middleware author to special-case h2. Documented in
flash/docs/http2/STREAMS.md.
Revisit when. Not planned to be revisited; this is a compatibility shim with negligible cost, not a design compromise under pressure.
DEC-08 — Flash ships HTTP/2, not a gRPC codec
Context. gRPC is one of the strongest motivations for HTTP/2 support (Pathway's upstream use case), and it is tempting to let that motivation expand scope into shipping gRPC framing, proto codecs, or a service-definition layer.
Options.
- Ship a gRPC codec/framework alongside HTTP/2 transport support.
- Ship HTTP/2 transport only; validate gRPC compatibility with an interop test, not a feature.
Decision. Option 2.
Consequence. Phase 12's GrpcInteropTest proves that the protocol features gRPC actually
needs — trailers, content-type: application/grpc, te: trailers, half-close, streaming — are
present and correct, using a real gRPC client against a hand-written Flash handler that speaks
the wire format directly. Flash does not gain a dependency on any gRPC/protobuf library, and
users who want a gRPC service framework build it on top of Flash rather than being handed one.
Revisit when. Not planned to be revisited; this is a scope boundary, not a temporary limitation.
DEC-09 — The chosen Http2FrameWriter design, with its benchmark numbers
Context. Phase 3 is a GO/NO-GO gate: build and benchmark the connection-level serialized
frame writer, the one genuinely novel architectural risk in this codebase's HTTP/2 work (see
Part I's "one thread owns the socket" framing). Three candidate designs were built and compared
against the plan's numeric gate criteria: (a) plain_lock — unconditional
ReentrantLock.lock() per frame; (b) trylock_mpsc — tryLock() fast path with an intrusive
Vyukov-style MPSC queue fallback; (c) dedicated_thread — every write handed off via the same
MPSC queue to one dedicated, parked/unparked writer thread. A fourth harness,
raw_unsynchronized (no coordination at all — unsafe, not a candidate), establishes the N=1
baseline the 50 ns budget is measured against.
Options. (a), (b), (c) as above — full description, JMH methodology, and raw numbers in
flash/docs/http2/WRITER.md.
Decision. (b), trylock_mpsc — matching the plan's own proposed design. Measured against
every gate criterion (JDK 21.0.11, JMH 1.37; see WRITER.md for the complete methodology
including its two stated caveats — an in-memory counting sink rather than a real loopback
socket, and one JMH "op" being a 4 000-write burst rather than a single write):
| Criterion | Result | Verdict |
|---|---|---|
| N=1: 0 B/op | 0.0015 B/write differential vs. raw_unsynchronized, within measurement noise |
PASS |
| N=1: ≤50 ns overhead vs. raw unsynchronized | 42.6 ns point estimate, ≤47.9 ns at the 99.9% CI's worst case | PASS |
| N=64: throughput ≥60% of N=1 per-thread rate | 65.5% | PASS |
| N=64: p999 <1 ms | 11.8–14.2 µs | PASS |
No carrier pinning (-Djdk.tracePinnedThreads=full) |
none observed | PASS |
| Stress test green at every N ∈ {1,2,8,64,256}, 1000 iterations, incl. parallelism=1 | 10 000/10 000 | PASS |
plain_lock was also measured for comparison (not merely asserted inferior): it retains only
58.1% of its own N=1 throughput at N=64 (below the 60% bar trylock_mpsc clears) and its p999
latency blows up to 1.6–2.0 ms under load — unfair blocking causing tail pile-up, exactly the
failure mode a naive per-frame lock predicts. dedicated_thread has the best tail latency of the
three (1.5–6.7 µs at N=64) but pays a ~3.3× throughput penalty at N=1, because every write —
even a genuinely uncontended one — pays a full park/unpark handoff; there is no fast path for
the dominant "one active writer" case. Neither alternative is a better shipped default than
trylock_mpsc.
Consequence. Http2FrameWriter ships exactly as designed in the plan: tryLock() fast path
(one uncontended CAS on the overwhelmingly common single-writer case), intrusive MPSC fallback
under genuine contention (the WriteIntent itself is the queue node — zero allocation to
enqueue), ReentrantLock throughout (never synchronized — EX-01's carrier-pinning fix
generalized to the connection writer), and a scan-based write-timeout reaper
(Http2Limits.WRITE_TIMEOUT_MS, 30 s) rather than a per-write System.nanoTime() deadline — an
earlier revision recorded a per-write deadline and this phase's own benchmark is what caught it
costing enough to threaten the 50 ns budget, which is itself part of why the reaper's
consecutive-scan design (documented on Http2FrameWriter.WriteTimeoutReaper) exists. Phase 4 may
proceed.
Revisit when. Not expected to be revisited — the three-candidate comparison is unlikely to
change qualitatively unless the JDK's virtual-thread scheduler or ReentrantLock implementation
changes materially. If a future JDK's synchronized stops pinning carriers (JEP 491, JDK 24+),
revisit whether synchronized's simpler semantics become preferable now that its only drawback
here is removed — but ReentrantLock still uniquely offers tryLock(), which this design's fast
path depends on, so the revisit is not expected to change the outcome.
DEC-10 — Upgrade: h2c is deliberately not implemented
Context. RFC 7540 §3.2 (the original HTTP/2 RFC) defined an Upgrade: h2c mechanism to
move a plaintext HTTP/1.1 connection to HTTP/2 mid-connection. RFC 9113 (which obsoletes
RFC 7540) §3.1 removes this mechanism entirely from the current specification.
Options.
- Implement
Upgrade: h2cfor compatibility with any client that still relies on it. - Do not implement it; support cleartext HTTP/2 only via prior knowledge (RFC 9113 §3.4).
Decision. Option 2.
Consequence. Every h2c client that matters for Flash's use case (gRPC, and every modern h2c
implementation) uses prior knowledge, not the upgrade dance, so nothing is lost in practice.
Recorded explicitly so a future contributor who notices Upgrade: h2c is unhandled does not
assume it was an oversight and add it back.
Revisit when. A concrete client that requires Upgrade: h2c and cannot be changed is
identified. Not anticipated.
DEC-11 — Commit scope stays core; h2 is not added to AGENTS.md's allowed-scope list
Context. AGENTS.md (§Commit Messages) enumerates the allowed Conventional Commits scopes.
h2 is not among them. R9 leaves the choice open: either add h2 as a new scope via a
docs: commit, or use core and record the decision here.
Options.
- Add
h2as a new allowed scope, so h2-specific commits are distinguishable in history from other core work at a glance. - Use the existing
corescope for all HTTP/2 work.
Decision. Option 2.
Consequence. All HTTP/2 commits use feat(core): ... / fix(core): ... /
refactor(core): ..., consistent with the branch name (feature/core/http2) and with DEC-01
(HTTP/2 is core, not a separate concern). A reader can still find every h2-related commit via
the file paths touched (dev.relism.flash.http2/**, flash/docs/http2/**) or via the commit body,
which is no worse than a scope label and avoids growing the scope list for what is, by DEC-01,
not actually a separate module.
Revisit when. The h2 package's commit volume makes core too coarse to navigate in
git log — not expected before Phase 10 at the earliest, if ever.
DEC-12 — Phase 1 plan corrections: two missing files, one corrected limit check
Context. While implementing Phase 1, two problems in the plan document itself surfaced
(distinct from problems in the code, which is what the EX-nn registry tracks).
- Phase 1 task 8 requires "a
BufferedByteSourceowned by the connection that wraps the read buffer plus the socket and exposesreadByte(),readFully(...),skip(...)andpeek()", and task 12 depends on it for h2c preface detection — but the Phase 1 Files list never named the file. Likewise, the typed rejectionEX-02/EX-03/EX-08/EX-18all need (a specific HTTP status to respond with, as distinct fromHttpException's handler-routed semantics — seeDEC-14) was never named as a file either. - Task 4's exact wording — "Enforce
MAX_REQUEST_LINE_LENGTHagainstheaderEndIdx - basefor the request line specifically" — describes checking the length of the entire header block (headerEndIdxis where the whole header section ends), not the request line. The request line's own end isprotocolEnd(orsectionStart), notheaderEndIdx.
Decision.
- Added
flash/src/main/java/dev/relism/flash/transport/BufferedByteSource.javaandflash/src/main/java/dev/relism/flash/exceptions/MalformedRequestException.javato Phase 1's Files list (see the phase section itself, now corrected in place). - Implemented the check as
protocolEnd - base > MAX_REQUEST_LINE_LENGTH— the request line's actual span — rather than the literal (and, read literally, incorrect)headerEndIdx - base.
Consequence. None beyond the plan text now matching what was actually built and why — these are wording/omission fixes, not design trade-offs. Recorded per the plan's own rule that corrections to the plan must be explicit and tracked, never silent.
Revisit when. N/A — already resolved.
DEC-13 — BufferedByteSource's deadline is enforced by computing the exact remaining SO_TIMEOUT per underlying read, not by a fixed poll-and-retry loop
Context. EX-07 requires an absolute deadline across a sequence of socket reads (a
per-read SO_TIMEOUT alone never trips against a peer that keeps each individual read within
the window while never completing the whole message — the canonical slowloris shape). Two ways
to implement that on top of the blocking Socket/SSLSocket API, which only offers a per-read
timeout:
Options.
- Set
SO_TIMEOUTto a fixed, short polling interval (e.g. 1 s); on eachSocketTimeoutException, re-check whether the absolute deadline has actually passed, and if not, retry. Deadline precision is bounded by the poll interval (up to ~1 s of slop). - Before every underlying read, compute the exact remaining budget
(
deadlineNanos - System.nanoTime()) and hand that exact value tosetSoTimeout. ASocketTimeoutExceptionfrom that read then unambiguously means the deadline — not merely one poll cycle — has elapsed, with no retry loop needed.
Decision. Option 2.
Consequence. Deadline precision is exact (modulo OS timer granularity) rather than
poll-interval-bounded, and the implementation is simpler — no retry loop, no distinction between
"timed out this poll" and "timed out for real". The cost is one setSoTimeout syscall per
underlying fill (not per byte, not per read() call served from the buffer) — negligible, since
fills already happen at buffer granularity (up to 8 KiB at a time), not per byte.
Revisit when. Not expected to be revisited; this is strictly better than option 1 on both precision and simplicity.
DEC-14 — MalformedRequestException extends HttpException; caught separately from the per-request handler try/catch, never routed through the user's exception handler
Context. EX-02/EX-03/EX-08/EX-18 all need to reject a request with a specific HTTP
status before any handler or middleware runs. HttpException already exists in this codebase
for "carry a status code, get turned into a response" — but it is caught by
router.getExceptionHandler() inside the per-request try/catch, which is user-configurable
(e.g. flash-ext-jackson installs a JSON-formatting handler).
Options.
- Reuse
HttpExceptiondirectly, letting a malformed request flow through the same user-configurable exception handler as an application-level failure. - A new type,
MalformedRequestException extends HttpException, caught at a separate site — aroundparser.parse(in)itself, before routing — with a fixed, minimal, non-customizable response, always followed by closing the connection.
Decision. Option 2.
Consequence. A malformed or hostile request never reaches user code at all — not the
handler, not middleware, not a custom exception handler that might (reasonably, for its actual
purpose) try to look up a route, log structured JSON, or otherwise do work that assumes a
well-formed Request. The connection is always closed afterwards, never kept alive, which is
exactly the property EX-02's smuggling defense depends on. Subclassing HttpException (rather
than an unrelated new hierarchy) keeps status()/messageaccess idiomatic with the rest of the codebase's error-status convention, while the distinct type is what letsHttpServer` catch it
at the parse site specifically.
Revisit when. Not expected to be revisited.
DEC-15 — Phase 2 plan correction: the "no ThreadLocal anywhere" DoD line was inconsistent with EX-06's own phasing
Context. Phase 2's DoD stated flatly: "No ThreadLocal remains anywhere in flash core."
EX-06's registry entry — the fix this DoD line is checking — explicitly phases itself:
"Phase: 2 (introduce), 3 (h2 consumes it), 4 (router consumes it)." FastPathRouterImpl and
FastPathWsRouterImpl's ThreadLocals (MatchResult, MethodPathByteView) are the "router
consumes it" part, assigned to Phase 4 — where the router also gains the scratch-parameter (or
request-context) API surface change needed to remove them correctly, per EX-06's own fix
description ("the router now takes the scratch as a parameter or reads it from the request's
context"). Taken literally, Phase 2's DoD line would have required either doing Phase 4's router
work two phases early (undermining the reason EX-06 was split across phases in the first
place — the router-facing API change is more invasive and deserves its own phase) or leaving the
DoD unresolvable.
Options.
- Do the full router
ThreadLocalremoval now, in Phase 2, to satisfy the DoD line literally. - Correct the DoD line to match
EX-06's already-considered phasing, and record why.
Decision. Option 2.
Consequence. Phase 2 removes every ThreadLocal HttpServer itself owned (SHA1,
LONG_BUF, STREAM_RELAY_BUFFER — all now fields on ConnectionScratch). The router's two
ThreadLocals are explicitly left for Phase 4, tracked there, not silently dropped — this is
still R10-compliant (the defect is registered and scheduled, not ignored) and keeps Phase 2
scoped to what it already set out to do (kill the HttpServer god class), rather than absorbing
an unrelated API-surface change under deadline pressure.
Revisit when. N/A — resolved; Phase 4 closes the remaining EX-06 scope.
DEC-16 — No separate WebSocketFrameCodec class; the EX-11/EX-12 fixes stay inside WebSocketSession
Context. Phase 2's file list named dev.relism.flash.websocket.WebSocketFrameCodec.java,
extracted from WebSocketSession, as a Phase 2 deliverable — motivated by R6 (no god classes)
and by a forward reference in Phase 15 ("this requires abstracting its InputStream/OutputStream
pair behind a small interface — which the Phase 2 WebSocketFrameCodec extraction should already
have made possible").
Options.
- Extract a
WebSocketFrameCodecoperating on byte arrays/scratch buffers, withWebSocketSessioncalling into it for encode/decode and owning only the actual stream I/O. - Keep frame encode/decode inside
WebSocketSession, where it already lived.
Decision. Option 2, for this phase.
Consequence. WebSocketSession after the EX-01/EX-11/EX-12 fixes is ~360 lines — over
R6's soft ~250-line guidance, but R6 itself carves out exactly this case: "a 300-line class that
is one cohesive state machine ... is fine; a 150-line class doing two things is not." Frame
header decode, continuation reassembly, and masking are one state machine (RFC 6455 §5's frame
grammar), not two unrelated responsibilities glued together, so the soft guidance's exception
applies. Splitting it now, before any concrete second caller exists, risks the "artificial
split that doesn't reduce complexity" R6 also warns against implicitly — there is no code today
that would consume a standalone codec except WebSocketSession itself. Phase 15's forward
reference is noted and re-evaluated then: if RFC 8441 (WebSocket over h2) genuinely needs frame
encode/decode decoupled from a socket-backed InputStream/OutputStream pair (an h2 stream is
not one), the extraction happens at that point, with a real second shape driving the interface
instead of a speculative one.
Revisit when. Phase 15, when RFC 8441's transport requirements are concrete.
DEC-17 — FrameWriterBenchmark lives in src/jmh/java, a source root registered only inside the jmh profile, not in src/test/java
Context. The Phase 3 JMH benchmark (FrameWriterBenchmark) was first placed directly in
src/test/java/dev/relism/flash/http2/frame/, on the theory recorded in flash/pom.xml's comment
at the time: since the class carries only @Benchmark/JMH annotations and no JUnit annotations,
Surefire's JUnit-Jupiter engine would simply not select it as a test, so a plain mvn test (no
-Pjmh) would harmlessly ignore it. Verifying this assumption (mvn -pl flash -am clean test-compile, no profile) showed it is false: Surefire's junit-jupiter engine performs test
discovery by loading every class under target/test-classes, regardless of whether it
ultimately selects it as a test — and FrameWriterBenchmark cannot even compile without
jmh-core on the classpath (it imports org.openjdk.jmh.annotations.* unconditionally), so with
the jmh profile inactive the module's test-compile step failed outright: "package
org.openjdk.jmh.annotations does not exist". A plain mvn test on flash — the command every
other phase's DoD, and CI itself, uses to verify "still green" — was broken for the entire
module, not merely silently skipping the benchmark as intended. This was caught only because
this phase's resume step re-ran mvn test (via the maven-wrapper distribution under
~/.m2/wrapper/dists, not a bare mvn on PATH) without -Pjmh, rather than re-running the
-Pjmh-scoped command the prior session had been using — the same class of gap R10 exists to
catch, just in the build graph rather than the source graph.
Options.
- Keep the benchmark in
src/test/java, and instead exclude it from the default Surefire test set via<excludes>in themaven-surefire-pluginconfiguration, re-including it only when-Pjmhis active. This still leaves it on the defaulttest-compileclasspath, so the compile failure would remain — excludes only affect which already-compiled tests Surefire runs, not what the compiler plugin compiles. Rejected: does not fix the actual failure. - Move it to its own source root,
src/jmh/java, and register that root as a test-source directory (build-helper-maven-plugin'sadd-test-sourcegoal) only inside thejmhprofile's<build>. With the profile inactive, the file is not handed to the compiler at all, under any goal — nottest-compile, not IDE indexing driven by the effective POM. This is also what the plan itself already suggested (Phase 3's Files list:flash/src/jmh/ java/dev/relism/flash/http2/FrameWriterBenchmark.java (or a flash-bench submodule...)) — the prior session's placement insrc/test/javawas itself a deviation from the plan's own suggested layout, not a considered alternative. - A separate
flash-benchsubmodule, depending onflashand always pulling in JMH. The plan's own text offers this as the other option, rejected for the same reason ajmhprofile was chosen over it in the first place: a whole extra module (its ownpom.xml, its owngroupId:artifactId, its own place in the reactor) for one benchmark class is disproportionate machinery, and it does not obviously fix the underlying problem either —mvn testfrom the repo root still touches every reactor module and would still need the module's own default build to not require JMH.
Decision. Option 2 — matching the plan's original suggestion, which is exactly what should have been done the first time.
Consequence. mvn -pl flash -am test (no profile) compiles and runs the ordinary unit/stress
tests only, exactly as every other phase's DoD assumes, and never touches JMH. mvn -Pjmh -pl flash test-compile (or any goal at generate-test-sources or later, with the profile active)
additionally compiles src/jmh/java into target/test-classes, exactly where
FrameWriterBenchmark's own Javadoc's run instructions already expected it, so that Javadoc
needed no change. build-helper-maven-plugin (${build.helper.plugin.version}, 3.6.0) is a
new build-time-only dependency of the flash module, added to the root pom.xml's
<properties> alongside jmh.version, consistent with how every other plugin version in this
reactor is centralized. No production code changed; this is a build-graph correction only.
Revisit when. Not expected to be revisited.
DEC-18 — Phase 17 gains a second, explicitly non-gating category of benchmark: application-level, real-HttpServer, showcase/literature-only
Context. Raised while wrapping up Phase 3, after reviewing FrameWriterBenchmark's results
with the project owner. Phase 3's benchmark is deliberately narrow — it exercises only
Http2FrameWriter against an in-memory CountingSink, isolating the writer's own lock/queue
cost from network variance (see WRITER.md's stated caveats). That narrowness is correct for a
GO/NO-GO component gate, but it means nothing in the plan yet produces end-to-end, real-
HttpServer numbers — realistic traffic shapes, or deliberately extreme ones (thousands of
streams on one connection, pathological header blocks, slow/bursty clients, mixed h1+h2 on one
listener) — of the kind that make a project's performance claims concrete rather than asserted.
The project owner wants exactly this: benchmark-driven development as an ongoing practice,
not only a one-time gate, with results available for showcase and literature purposes
(illustrating real behavior under real and extreme conditions) independent of whether they pass
or fail anything.
Options.
- Fold this into Phase 17's existing JMH suite (task 1) and its allocation/latency gates (tasks 2–3), i.e. make these new benchmarks part of the same pass/fail pipeline as the rest of Phase 17.
- Add it as a distinct, explicitly non-gating task within Phase 17 — same
src/jmhsource root as the Phase 3 writer benchmark, same JMH tooling, but no threshold, no CI wiring, output meant to be read by a human (or quoted in a doc/blog post), not consumed by a pass/fail check.
Decision. Option 2, recorded now as a scoped goal for Phase 17 (Phase 17's own Tasks list, new task 8) — not implemented as part of Phase 3 or this decision. Phase 4 begins immediately after this entry with a clean, unrelated scope.
Consequence. Phase 17, when it lands, produces two categories of benchmark under src/jmh,
and both must stay distinguishable at a glance (by class name, by package, or by a doc-comment
banner — decided when Phase 17 is actually implemented): (a) the gating suite — allocation-rate
and latency-regression checks that fail CI, matching this phase's existing tasks 1–3, run against
narrow, isolated scenarios exactly like FrameWriterBenchmark; and (b) the showcase suite —
real, end-to-end HttpServer/h2-connection scenarios, including deliberately extreme ones, that
only print results and never gate anything. Keeping (b) non-gating is deliberate: an "extreme
case" benchmark (e.g. 10 000 streams on one connection) is valuable precisely because it shows
how the system behaves under stress, including graceful degradation — turning that into a
pass/fail threshold would either be meaningless (no natural "correct" number for a pathological
case) or would quietly narrow what counts as an "extreme case" down to whatever currently passes.
Revisit when. Phase 17 is actually started — at that point this entry's task 8 becomes concrete work with its own scenario list, harness design, and output format, rather than a recorded intention.
DEC-19 — EX-06's router half is fixed with an opaque, caller-owned per-connection scratch object, not by extending ConnectionScratch
Context. EX-06's registry entry phases itself: "Phase 2 (introduce), Phase 3 (h2 consumes
it), Phase 4 (router consumes it)" — Phase 4 is where FastPathRouterImpl's and
FastPathWsRouterImpl's ThreadLocal<MatchResult>/ThreadLocal<MethodPathByteView> (unbounded
under virtual threads, one per connection with no upper bound and no pooling — exactly the
failure mode ConnectionScratch exists to avoid for every other per-connection buffer) get
removed. ConnectionScratch's own class Javadoc (written in Phase 2, in anticipation) already
commits to a specific mechanism: "Extended in Phase 4 with the router's reusable
{@code MatchResult}/path-view fields."
Attempting that literally surfaced a real problem: ConnectionScratch lives in
dev.relism.flash.transport; the router lives in dev.relism.flash.routing (and
dev.relism.flash.routing.routers.fastpathrouter). Today transport depends on routing
(ConnectionContext holds AbstractRouter/AbstractWsRouter) but routing has zero imports
of transport anywhere in this codebase (verified by grep, not assumed) — a clean one-way
dependency. Adding the router's scratch fields to ConnectionScratch and passing it into
route() would require routing's classes to import transport.ConnectionScratch, creating the
first reverse edge and a genuine package cycle where none exists today.
Options.
- Extend
ConnectionScratchas its own Javadoc already describes, accepting the newrouting → transportedge (and the resulting cycle with the existingtransport → routingedge). AbstractRouter/AbstractWsRoutergain anewScratch()method (defaultnull) that each router implementation overrides to return an opaque, implementation-specific object (kept as a package-private nested class —FastPathRouterImpl.RouteScratch,FastPathWsRouterImpl.RouteScratch— never a new public type). The connection driver (Http1Connection.run) callsnewScratch()once per connection, exactly the same "created once, held by the loop, reused across every request" shape already used there forRequestParser, and passes the opaque result into everyroute(request, scratch)call for that connection's lifetime. No package outsiderouting/routing.routers.fastpathrouterever sees the concrete scratch type.
Decision. Option 2.
Consequence. Practically identical outcome to option 1 — one object per connection, created
once, reused across every request on that connection, replacing the ThreadLocals — but without
introducing routing's only dependency on transport. ConnectionScratch's own Javadoc (which
predated this decision) is corrected in the same change to describe what was actually built
rather than the mechanism it originally assumed; AbstractRouter.route's and
AbstractWsRouter.route's signatures gain an Object scratch parameter, which is the one
API-surface cost of this approach (every router implementation, and every direct caller —
Http1Connection and the handful of tests that call route() directly — must now pass one).
EX-19 (reusable PathParams/path-param arrays) piggybacks on the same RouteScratch object
for FastPathRouterImpl, since it needed an identical "created once per connection, grown to the
connection's high-water mark" lifetime — implemented together with EX-06's router half rather
than as a separate pass over the same class.
Revisit when. Not expected to be revisited — the untyped Object scratch parameter is a
minor wart, but the alternative (a generic AbstractRouter<S> type parameter propagated through
ConnectionContext, ServerHandle, and every public router-registration API) is a far larger
API-surface change for one internal implementation detail, and is not justified unless a second
router implementation actually needs a differently-shaped scratch object — none exists today.
DEC-20 — Phase 4 performance measurements: EX-04, EX-33, the router's own allocation profile, and the h1 zero-alloc contract's actual current number
Context. Phase 4's plan carries two explicit "measure, keep only if it earns its keep"
instructions (EX-04: revert if the win is negative or noise; EX-33: keep scalar if the SWAR
win is under 3%), plus a zero-alloc contract ("an h1 GET /users/{id} request that reads three
headers and one path param must be 0 B/op end to end except for the user-facing Strings the
handler explicitly asks for. Add this as a JMH allocation test now"). All three measured together
(JDK 21.0.11, JMH 1.37, avgt mode, -prof gc, flash/src/jmh/java) rather than as separate
passes, since they share the same request/route fixtures.
Measurements.
EX-33 — SWAR vs. scalar \r\n\r\n scan, realistic ~330-byte request (ByteScanBenchmark):
| ns/op | |
|---|---|
headerEndScan_scalar |
134.921 ± 5.558 |
headerEndScan_swar |
87.116 ± 1.411 |
SWAR is 35.4 % faster (47.8 ns absolute) — far above the 3 % keep-threshold. Kept.
EX-04 — the longAt/ByteCompare mechanism in isolation, and the real router
(FastPathRouterBenchmark):
| ns/op | B/op | |
|---|---|---|
byteCompare_byteAtATime (useLong=false) |
22.281 ± 1.021 | ≈0 |
byteCompare_longPath (useLong=true) |
15.146 ± 1.090 | ≈0 |
router_staticRoute (real FastPathRouterImpl.route) |
143.409 ± 14.992 | 0.001 |
router_parametricRoute (real FastPathRouterImpl.route, 1 param extracted) |
284.433 ± 31.510 | 0.002 |
The long path is 32.1 % faster (7.1 ns) than the byte-at-a-time comparison it replaces, at
the mechanism level — a clear, real win, confirming EX-04 is worth keeping. Honest caveat,
not a failure of the measurement but a finding in its own right: router_staticRoute/
router_parametricRoute do not exercise this win today, because the actual value
FastPathRouterImpl.route passes to router.match() is always a
FastPathViews.MethodPathByteView — a deliberate composite of method bytes + path view, which
(per EX-04's own registry text) correctly keeps supportsLong() == false, since a word-at-a-
time read across two independent sources is unsound, not merely unoptimized. EX-04's win will
apply once a future phase (HPACK static-table matching, frame validation — Phase 5+) compares
two genuinely-contiguous array-backed ranges directly, which is exactly the shape
byteCompare_longPath measures. Kept — implemented correctly, verified correct
(FastPathViewsLongAtTest), and measured worthwhile for its actual future consumers; it was
never going to show up in today's router-benchmark numbers, and the plan's own text already
predicted this by excluding MethodPathByteView from the fix.
Separately: both router benchmarks show ≈0 B/op — confirms EX-06/EX-19's scratch reuse
(the RouteScratch object, its reused MatchResult, MethodPathByteView, and path-param
arrays/PathParams instance) is genuinely zero-allocation in practice, including on a
parametric route that extracts a param.
The h1 zero-alloc contract, end to end (RequestPipelineBenchmark):
| ns/op | B/op | |
|---|---|---|
parseAndRoute (parse + route only, no header/param access) |
1135.125 ± 68.888 | 120.008 |
parseRouteAndExtractThreeFields (+ 1 path param, 2 headers read) |
1335.965 ± 57.378 | 304.009 |
Not literally 0 B/op — and this is expected, not a Phase 4 regression: the 120.008 B/op in
parseAndRoute (which touches no header or path-param API at all) is entirely attributable to
Request/RequestBody/RequestLine construction, still allocated fresh per request. That is
EX-21/EX-22's scope, explicitly assigned to Phase 6 ("Request/Response model refactor"),
not Phase 4's. The delta to parseRouteAndExtractThreeFields — 304.009 − 120.008 = 184.001
B/op for exactly three explicit String reads (one path param, two headers) — is precisely the
"user-facing Strings the handler explicitly asks for" the contract's own text carves out as
acceptable, and confirms that reading those three fields (the header index lookup, the pooled
slice, the path-param array read) itself adds no allocation beyond the unavoidable String
objects themselves.
Decision. EX-33: keep the SWAR scan. EX-04: keep the longAt/supportsLong
implementation as built — correct, tested, and measured worthwhile for the array-backed
comparisons it was designed for, independent of whether today's single call site
(MethodPathByteView) happens to use it. The h1 zero-alloc DoD item is recorded as: Phase 4's
own scope (EX-05/EX-09/EX-19/EX-25/EX-26/EX-33) is verified zero-allocation
(router_staticRoute/router_parametricRoute's ≈0 B/op, HeaderMapIndexTest's identity-based
allocation check); the remaining 120.008 B/op is Request/RequestBody/RequestLine
construction, out of scope until Phase 6, and is not silently hidden — this benchmark now exists
specifically so Phase 6 has a "before" number to compare against and a regression gate once
Phase 17 wires -prof gc into CI.
Consequence. No code changes from this entry — it is a measurement record. Three new
benchmark classes ship under src/jmh/java: ByteScanBenchmark, FastPathRouterBenchmark,
RequestPipelineBenchmark — all component-level and gate-relevant (unlike the DEC-18 showcase
category, these exist to answer the plan's own explicit measurement instructions, not for
literature/demo purposes).
Revisit when. RequestPipelineBenchmark's parseAndRoute number should drop close to 0 B/op
once Phase 6 lands Request/RequestBody pooling — re-run this exact benchmark then and update
this entry (or add a new one) with the "after" number, closing the loop Phase 4 opened.
DEC-21 — Phase 5's zero-alloc contract, measured
Context. Phase 5's plan states: "Reading, validating and discarding a frame: 0 B/op ...
Writing a frame header: 0 B/op." Measured with JMH -prof gc (JDK 21.0.11, JMH 1.37,
FrameLayerBenchmark, src/jmh/java) rather than left as an unverified assertion, per this
project's own standing practice of measuring every stated performance/allocation claim
(DEC-09, DEC-20).
Measurement. readValidateAndDiscard (Http2FrameReader.readFrame +
FrameValidator.validate + one byte read from the payload + consumeFrame, against a warm,
already-grown buffer, matching real keep-alive-connection steady state): 299.846 ± 19.722 ns/op,
0.002 B/op — indistinguishable from zero (compare DEC-20's harness-floor discussion: even
this near-zero figure is most plausibly measurement noise around the true 0, not a real
allocation, since nothing in the read/validate/consume path can be shown by inspection to
allocate on the warm path). writeFrame (FrameWriteBuffer.beginFrame + one writeBytes call +
endFrame, against an already-grown ByteWriter): 14.262 ± 1.084 ns/op, ≈10⁻⁴ B/op —
likewise indistinguishable from zero.
Decision. Contract verified as stated; no design change required. Both numbers are recorded here as the baseline Phase 17's eventual CI allocation gate should hold this component to.
Consequence. None beyond the recorded numbers — this entry exists so a future regression (e.g. a later phase accidentally introducing an allocation on this path while adding HPACK or stream-state integration) has a concrete "was 0, now isn't" baseline to diff against, per this project's standing insistence that every non-obvious performance claim trace to an actual number.
Revisit when. Not expected to be revisited; re-measure if FrameHeader, Http2FrameReader,
or FrameWriteBuffer are ever modified in a way that could plausibly affect their allocation
profile.
DEC-22 — HeaderMap splits into HeaderView (interface) + Http1HeaderMap (impl, staying in models, not moving to http1)
Context. Phase 6 task 1 requires splitting the concrete HeaderMap class into a
protocol-neutral read contract (so a future Http2HeaderMap can implement it) plus the existing
h1 byte-buffer-backed implementation, and explicitly asks for two decisions to be recorded:
whether the public-facing name stays HeaderMap or moves to the interface, and (implicitly, via
the plan's own Files list) whether the concrete class moves to dev.relism.flash.http1.
Decision 1 — naming. Checked whether HeaderMap is actually part of Request's public
surface first, since the task's hard constraint is "the public API of Request must not
change": Request's own methods (header, headers, param, query) return String/
List<String>, never a HeaderMap/HeaderView — the only exposure is the transitive,
Javadoc'd-as-"Internal" Request.getRequestLine().getHeaders() path. Concluded the type name
itself is not public API in the sense the constraint cares about, so took the plan's Files list
literally: new interface named HeaderView (the read contract), concrete implementation renamed
Http1HeaderMap. RequestLine.headers (and its Lombok-generated getHeaders()) is now typed
HeaderView.
Decision 2 — package placement. The plan's Files list suggests http1/Http1HeaderMap.java.
Verified first (as DEC-19 did for the same class of question): RequestParser, which owns and
resets the one Http1HeaderMap instance per connection, lives in the root dev.relism.flash
package, not http1. http1 already depends on root (Http1Connection imports
RequestParser); moving the header-map implementation into http1 would require root to import
back from http1 for RequestParser to construct one — the same reverse-edge problem DEC-19
found and avoided for routing/transport. Kept Http1HeaderMap in models instead, alongside
HeaderView — deviating from the plan's literal suggested path, not from its intent.
Consequence. HeaderView is the new protocol-neutral interface (first, all, view,
valueEqualsIgnoreCase, contains, count, forEach); contains/count did not exist on the
old HeaderMap and were added to satisfy the interface's stated method list. Http1HeaderMap
carries the full EX-09/EX-05 implementation unchanged, just renamed and re-typed against the
interface. Every call site across main and test sources updated (RequestParser, test files
constructing header maps directly); HeaderMapTest/HeaderMapIndexTest renamed to
Http1HeaderMapTest/Http1HeaderMapIndexTest to match. 449/449 tests green, unchanged count —
this was a pure rename/re-type, no behavior change.
Revisit when. Phase 10, when Http2HeaderMap is built — confirms whether HeaderView's
method list is actually sufficient for an HPACK-backed implementation, or needs extending.
DEC-23 — Phase 6 closes DEC-20's revisit loop: the h1 zero-alloc contract, re-measured after Request/RequestBody/RequestLine/Response pooling, plus one more allocation found and fixed (EX-42)
Context. DEC-20 (Phase 4) measured RequestPipelineBenchmark.parseAndRoute at 120.008 B/op
and attributed it entirely to Request/RequestBody/RequestLine construction, explicitly
deferring the fix to Phase 6 and asking for a re-run once that pooling landed. Phase 6 tasks 2–7
(EX-20–EX-24) did that pooling; this entry is the promised re-run (same JDK 21.0.11, JMH 1.37,
avgt mode, -prof gc, flash/src/jmh/java, same fixture: GET /users/12345 HTTP/1.1 with
Host/Accept/Authorization).
First re-run, after EX-20–EX-24 alone:
| ns/op | B/op | |
|---|---|---|
parseAndRoute |
1194.105 ± 944.469 | 48.008 |
parseRouteAndExtractThreeFields |
1324.679 ± 296.883 | 232.009 |
Down from 120.008 to 48.008 B/op — real progress, but not the 0 B/op the phase's own DoD text
requires for parseAndRoute (no header/param access). Investigated rather than accepted: reading
RequestParser.parse line by line turned up three new FastPathViews.RequestByteView(...)
allocations (path, query when present, protocol) on every call — pre-existing since at least Phase
4, just smaller than the Request/RequestBody/RequestLine cost DEC-20 measured and therefore
invisible until this phase's pooling removed the larger cost sitting on top of it. Registered as
EX-42 and fixed the same way every other per-connection object in this codebase already is:
RequestByteView gained a reset(byte[], int, int), RequestParser now owns one pooled instance
per role instead of allocating fresh ones.
Second re-run, after EX-42:
| ns/op | B/op | |
|---|---|---|
parseAndRoute |
1111.260 ± 104.692 | 0.008 |
parseRouteAndExtractThreeFields |
1301.840 ± 228.068 | 184.009 |
parseAndRoute — 0.008 B/op is JMH's noise floor (a -prof gc sampling artifact, not a real
allocation); this is the 0 B/op the contract asks for. parseRouteAndExtractThreeFields dropped
from 232.009 to 184.009 B/op — the exact 48 bytes EX-42 removed, confirming the fix's accounting
and leaving only the "user-facing Strings the handler explicitly asks for" the contract's own
text carves out (one path param, two headers — three String allocations plus their backing
byte[]s).
Decision. The h1 zero-alloc contract is met: parseAndRoute (parse + route with a parametric
match) is 0 B/op; the residual cost in parseRouteAndExtractThreeFields is entirely the explicit
String reads the DoD text itself exempts. DEC-20's revisit item is closed.
Consequence. RequestByteView's public 3-arg constructor is unchanged (still used for
one-shot views by tests, AbstractWsRouter, ErrorPagesTest, etc.) — only RequestParser's three
call sites moved to the pooled reset() path. queryView is only reset and wired into
RequestLine when a query string is actually present, preserving
RequestLine.getQuery()'s existing null-means-absent contract — verified by
RequestParserTest.samePooledParser_secondRequestWithoutQuery_doesNotLeakFirstRequestsQuery, the
pooling-leak class of test this codebase writes for every pooled object (RequestPoolingTest,
ResponsePoolingTest, RequestBodyTest's new pooling tests). 500/500 tests green.
Revisit when. Never expected to — this closes the loop DEC-20 opened. If a future phase adds
a fourth per-request view (e.g. an h2 equivalent), extend this same pooled-reset() pattern rather
than reintroducing a fresh allocation.
DEC-24 — Compact the HPACK arena and copy decoded headers into stream-owned storage
Context. Dynamic-table entries must be contiguous for cheap indexed lookup, but FIFO eviction leaves holes at the front of a bounded arena. Views into that arena also cannot outlive later decodes on a multiplexed connection.
Decision. Compact live dynamic entries when the free tail cannot hold an insertion. Do not use
SegmentedByteView for wrapped entries or CONTINUATION fragments. At the decoder boundary,
HpackHeaderBlock copies fields into a reusable arena owned by the stream.
Consequence. Compaction is occasionally O(table size), bounded by the advertised table size, while all ordinary lookups and consumer copies remain contiguous. Stream handlers never observe dynamic-table eviction or compaction. The JMH decode benchmark remains at the allocation noise floor (0.001 B/op).
Revisit when. Profiling shows compaction is material under realistic dynamic-table churn.
DEC-25 — Keep response-dependent h2spec gates with the phases that own the response path
Context. The Phase 8 checklist names whole h2spec sections 4 and 6.9, but several tests in those sections require a successful response HEADERS/DATA sequence or per-stream flow-control state. Those mechanisms are explicitly introduced in Phases 9–11. Making the whole sections green now would require a temporary response/stream implementation in the connection state machine and then deleting it immediately.
Decision. Phase 8 closes on every connection-owned h2spec case plus the complete unit, integration, curl and allocation gates. Response- and stream-dependent cases remain visibly unchecked and move with their owning Phase 9–11 gates. No placeholder response path is added.
Consequence. The connection layer stays cohesive: it validates frames and HPACK composition but does not acquire a second, short-lived implementation of response or stream semantics. The ledger records the partial external gate rather than claiming whole-section conformance prematurely.
Revisit when. Close the remaining h2spec section 4 and 6.9 cases as Phases 9–11 land, then rerun the combined selection without skips.