netty-incubator-codec-ohttp BinaryHttpParser: Unauthenticated CPU-exhaustion DoS via infinite loop in field-section decoding
Description
# BinaryHttpParser: Unauthenticated CPU-exhaustion DoS via infinite loop in field-section decoding
- ID: BHTTP-LOOP-001
- Severity: High
- CVSS v3.1: 7.5 —
CVSS:3.1/AV:N/AC:L/PR:N/UI:N/S:U/C:N/I:N/A:H - CWE: CWE-835 (Loop with Unreachable Exit Condition) — secondary CWE-400 (Uncontrolled Resource Consumption)
- Affected component:
codec-bhttp→io.netty.incubator.codec.bhttp.BinaryHttpParser#readFieldSection, filecodec-bhttp/src/main/java/io/netty/incubator/codec/bhttp/BinaryHttpParser.java:619-626 - Affected version: netty-incubator-codec-ohttp HEAD
d3f2b49(release0.0.22.Final+ 3 commits). The loop has existed since the parser was introduced and is present in the latest code; all published advisory fixes are already applied. - Reachable from:
io.netty.incubator.codec.ohttp.OHttpRequestResponseContext$ContentDecoder#decodeChunk(codec-ohttp/.../OHttpRequestResponseContext.java:214), i.e. the auto-wired OHTTP server and client codecs. - Confidence: High (empirically reproduced hang + thread dump against the unmodified parser).
Summary
BinaryHttpParser decodes Binary HTTP (RFC 9292) messages. An OHTTP gateway/client built on this library feeds the decrypted OHTTP body straight into BinaryHttpParser.parse(...). The field-section decoding loop terminates only on the exact condition fieldSectionLength != 0 and relies on a Java assert to guarantee forward progress. Because (a) the loop counter can be driven negative and (b) readFieldLine(...) legitimately consumes zero bytes and returns null on a truncated/over-long field line, the loop can spin forever. Assertions are disabled in any normal production JVM, so the two assert statements meant to catch this provide no protection.
A single ~17-byte Binary HTTP message — encapsulated by an unauthenticated attacker inside a normal OHTTP request, using the gateway's public key configuration — pins one Netty event-loop thread at 100% CPU permanently. A handful of such requests exhausts the entire event-loop group and takes the OHTTP gateway (or client) fully offline.
Root cause
BinaryHttpParser.java:619-626:
HeaderType lastType = HeaderType.PSEUDO_HEADER;
while (fieldSectionLength != 0) { // 619 — "!= 0", not "> 0"
int readableBytes = in.readableBytes();
lastType = readFieldLine(in, headers, lastType, trailers);
assert lastType != null; // 622 — no-op without -ea
int read = readableBytes - in.readableBytes();
assert read > 0; // 624 — no-op without -ea
fieldSectionLength -= read; // 625
}
Two cooperating defects:
- Counter can never hit zero.
fieldSectionLengthis the *declared* field-section byte length read from the wire (line 592). The loop subtracts the bytes eachreadFieldLineactually consumes. If a field line consumes more bytes than the (attacker-understated) declared length,fieldSectionLengthgoes negative and!= 0stays true forever.
- Zero-progress iterations.
readFieldLine(lines 654-707) returnsnullwithout consuming any bytes when the remaining buffer cannot hold a complete field line — at lines 656, 664, 670, and 681 (thein.skipBytes(sumBytes)that advances the reader is only reached on the success path, line 705). When it returnsnull,read == 0,fieldSectionLengthis unchanged, and the loop re-enters with identical state — a tight busy spin.
The only constructs that would have stopped either case are the assert statements on lines 622 and 624, which the JVM strips unless started with -ea. Production deployments do not run with assertions enabled.
Reachability (hop-by-hop, every guard resolved)
Attacker model: OHTTP gateways publish their HPKE key configuration so that *any* client can encrypt requests to them. The attacker therefore encrypts a malicious BHTTP body under the gateway's public key — a perfectly valid OHTTP request. HPKE decapsulation succeeds; the plaintext is attacker-chosen.
1. OHttpServerCodec.decode → OHttpRequestResponseContext.parse → chunk decode → ContentDecoder.decodeChunk. 2. OHttpRequestResponseContext.java:211 decrypts the chunk into decryptedChunk; line 212 cumulates it; line 214 calls binaryHttpParser.parse(binaryHttpCumulation, completeBodyReceived) — attacker-controlled plaintext, no application code in between. 3. parse → READ_KNOWN_LENGTH_REQUEST_HEAD → readRequestHead (line 190). 4. readRequestHead reads the control data, then at lines 445-451 slices all remaining readable bytes as the field section and calls readFieldSection(..., knownLength=true, maxFieldSectionSize). 5. Inside readFieldSection: - **Guard checkFieldSectionTooLarge(fieldSectionLength, max) (line 607):** bounds only the *declared* length, which the PoC sets to 1. Passes — not a barrier. - **Guard in.readableBytes() < sumBytes (line 609):** sumBytes is built from the *declared* length, also tiny. Passes — not a barrier. - **Guards assert (lines 622, 624): no-ops in production. Defeated by default.** - Loop entered → spins forever (defects 1 + 2).
No reachable guard bounds the *actual* consumption or forces progress. maxFieldSectionSize is irrelevant because the declared length is small and the loop is CPU-bound on a fixed, small buffer (no allocation, no memory growth to trip any size cap).
Proof of concept (executed locally, benign liveness oracle)
The real codec-bhttp sources were compiled unmodified against netty 4.1.135.Final (the version pinned in pom.xml). The harness builds a valid known-length BHTTP request whose declared field-section length (0x01) is understated relative to the actual field line, then calls parse(in, true) on a worker thread with a 6-second watchdog. No payload, no side effects — purely a timing/CPU oracle.
Malicious message (17 bytes): `` 00 01 67 01 68 01 61 01 70 01 01 61 01 62 01 63 01 │ └method g └scheme h └auth a └path p │ └hdr a:b──┘ └ partial line └ framing 0 (known-length request) └ declared field-section length = 1 ``
Observed (production default, assertions OFF): `` [*] malicious BHTTP bytes (17): 0001670168016101700101610162016301 [!!] HANG CONFIRMED: parse() still running after 6000 ms [!!] worker thread CPU time: 6029 ms (≈100% of one core => busy spin) [!!] worker stack (top frames): at io.netty.incubator.codec.bhttp.BinaryHttpParser.readFieldSection(BinaryHttpParser.java:626) at io.netty.incubator.codec.bhttp.BinaryHttpParser.readRequestHead(BinaryHttpParser.java:451) at io.netty.incubator.codec.bhttp.BinaryHttpParser.parse(BinaryHttpParser.java:190) ``
CPU time ≈ wall time ⇒ a busy spin (RUNNABLE), not a blocked wait.
Controls: - **Same input with -ea:** parse() throws AssertionError at readFieldSection:624 immediately — proving the assertion is the only would-be guard and is absent in production. - Well-formed request (declared length matches): parse() returns DefaultBinaryHttpRequest promptly — proving the harness does not hang on valid input.
PoC sources: findings/netty-incubator-codec-ohttp/raw/Poc.java (hang + control 1) and raw/Poc2.java (negative control).
Impact
Unauthenticated, pre-business-logic remote denial of service. Each malicious request permanently consumes one Netty event-loop thread at 100% CPU. Netty event-loop groups have a small fixed thread count (default 2 × cores); a handful of requests exhausts every I/O thread, after which the gateway/client accepts no further connections and serves no traffic — a complete, persistent DoS that survives until process restart. Availability impact High; no confidentiality/integrity impact.
Adversarial re-reading (attempts to refute)
- *"
maxFieldSectionSizecaps it."* No — the declared length in the PoC is1; the cap (line 607) checks the declared value only. The spin happens on a 17-byte buffer with no allocation. Refutation fails. - *"An upstream HTTP size limit /
HttpObjectAggregatorblocks it."* No — the bug is CPU-bound, not memory-bound. The whole malicious message is tiny and well within any size limit. Refutation fails. - *"This is just CVE-2024-40642 (absent input validation)."* No — that advisory was about missing validation of method/scheme/authority/path enabling injection; that fix (the
ALLOWED_TOKEN/ALLOWED_SCHEMEvalidators, lines 76-122/461-466) is present and unrelated. This is a control-flow/termination defect in field-section length accounting. Distinct class, distinct code. - *"The hang might be a harness artifact."* No — the thread dump pinpoints
readFieldSection:626; CPU≈wall confirms a spin; the-eacontrol throws at the exact assert; the well-formed control returns. The hang is for the claimed reason. - *"
completeBodyReceivedmust be true."* Not required — the loop is insidereadFieldSection, reached viareadRequestHeadonce the control data is present, independent of that flag. The flag only affects a branch taken *after*readRequestHeadreturnsnull, which never happens here.
No concrete blocker survived. Verdict: CONFIRMED.
Remediation
- Change the loop exit condition to
while (fieldSectionLength > 0)so an overshoot (negative counter) terminates. - Treat a
null/ zero-progress return fromreadFieldLinewhilefieldSectionLength > 0as a hard framing error — throwCorruptedFrameException("truncated or over-long field line")instead of re-looping. - Reject any field line whose consumed byte count would drive
fieldSectionLengthbelow 0 (the declared length must be consumed exactly, per RFC 9292 §3.6). - Do not rely on
assertfor wire-format invariants on attacker-controlled input; assertions are disabled in production. Promote lines 622/624 to explicit exceptions.
Example: ``java while (fieldSectionLength > 0) { int readableBytes = in.readableBytes(); lastType = readFieldLine(in, headers, lastType, trailers); int read = readableBytes - in.readableBytes(); if (lastType == null || read <= 0) { throw new CorruptedFrameException("truncated or over-long field line"); } if (read > fieldSectionLength) { throw new CorruptedFrameException("field line exceeds declared field-section length"); } fieldSectionLength -= read; } ``
Notes
- The indeterminate-length field-section path (framing indicators 2/3) shares the same loop and the same
!= 0/ zero-progress structure; the fix above should cover both. A dedicated trace ofgetIndeterminateLength(lines 538-566) under non-defaultmaxFieldSectionSizeis recorded separately as a lead. - Default
maxFieldSectionSizefor the OHTTP codecs is8 * 1024(OHttpCodecBuilder.DEFAULT_MAX_FIELD_SECTION_SIZE), and is irrelevant to this CPU-bound spin.
Affected products
1- Range: 0.0.22.Final + 3 commits
Patches
Vulnerability mechanics
References
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