4 Commits

Author SHA1 Message Date
b5b3e1a926 Bound the receiver rate limit per client IP across /webhook/* (closes #139)
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The receiver limiter keyed buckets on (client IP, request path). The
route pattern /webhook/{uuid} matches any single segment, so a client
that invented a fresh path per request minted a fresh bucket per
request and never refilled one: its aggregate rate against the only
unauthenticated, internet-exposed endpoint was unbounded, and every
one of those requests reached an entrypoint lookup before it 404ed.

Put a second limiter in front of it, keyed on the client IP alone and
covering the whole route at ten times the configured per-entrypoint
limit (1200/min by default). The per-entrypoint limit is unchanged and
still wanted; it just bounds nothing in aggregate on its own. Ten
entrypoints' worth of headroom lets one sender address drive several
entrypoints at full rate while still capping what one address costs
the receiver. The multiplication saturates rather than wrapping, since
nothing bounds RECEIVER_RATE_LIMIT from above and a negative limit
would reject every request.

Move the handler's INFO line for an incoming webhook below the
entrypoint lookup. The UUID is attacker-controlled path text, so
logging it first let a client write an INFO line per invented path; a
miss is already logged at DEBUG and the request is already in the
access log.
2026-08-12 10:37:58 +00:00
543005c0c2 Update TODO.md for the completed 1.0.0 milestone
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Records the trusted-proxy gating, hop cap and bounded scan, and corrects the Workflow section, which still described branching from main and committing TODO.md alongside the work.
2026-08-12 12:20:34 +02:00
9bfd033a29 Bound X-Forwarded-For scanning allocation to the hop cap (closes #133)
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check / check (push) Superseded by a newer commit; never tested
forwardedClientAddr now walks the header values in reverse with strings.LastIndexByte instead of joining and splitting, so allocation is bounded by the 64-hop cap rather than by header length: 1.6 MB per call becomes 16 bytes for a 1 MB chain. Semantics are unchanged, verified by differential testing against the previous implementation.
2026-08-12 12:19:14 +02:00
fd6397154a Cap the X-Forwarded-For hop walk at 64 entries (closes #124)
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The walk now keeps only the rightmost 64 hops, so an attacker-supplied chain cannot burn unbounded CPU in the rate-limit key function. Running off the end of the truncated slice falls back to the peer address, the same fail-closed direction the rest of the function takes. Also corrects the unparseable-RemoteAddr comment, which overclaimed about Unix-socket peers.
2026-08-12 11:53:48 +02:00
9 changed files with 367 additions and 144 deletions

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@@ -94,7 +94,7 @@ TTY detection, and security headers are always applied.
| `METRICS_PASSWORD` | Basic auth password for `/metrics` | `""` |
| `SENTRY_DSN` | Sentry error reporting DSN | `""` |
| `SESSION_IDLE_TIMEOUT` | Idle session timeout (Go duration) | `24h` |
| `RECEIVER_RATE_LIMIT` | Receiver requests/minute per IP per entrypoint | `120` |
| `RECEIVER_RATE_LIMIT` | Receiver requests/minute per IP per entrypoint (10x that per IP across the route) | `120` |
| `TRUSTED_PROXIES` | CIDRs whose forwarded headers are trusted | `""` (none) |
#### Trusted proxies
@@ -851,6 +851,20 @@ legitimate webhook senders). Requests over the limit receive HTTP 429
with a `Retry-After` header. A set-but-invalid `RECEIVER_RATE_LIMIT`
value aborts startup rather than silently falling back to the default.
A second limit sits in front of that one, keyed on the client IP alone
and covering the whole route at ten times `RECEIVER_RATE_LIMIT` requests
per minute (default 1200). The per-entrypoint limit needs it: the route
pattern matches any single path segment, so a client that invents a
fresh path per request gets a fresh per-entrypoint bucket every time and
would otherwise have no aggregate limit at all — while each of those
requests still costs an entrypoint lookup before it 404s. The aggregate
limit leaves room for one address to drive several entrypoints at their
full rate, and it is not configurable separately.
Requests to a `/webhook/` path that names no entrypoint are logged at
`DEBUG` only, since the path is attacker-controlled; the request itself
still appears in the access log.
Every limiter here — receiver, login, and password change — identifies
the client the same way, through one shared key function: the
connection's own address, unless the peer is listed in

59
TODO.md
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@@ -1,31 +1,62 @@
# Workflow
* branch (from `main`)
* do the work in Next Step
* move Next Step to the top of Completed Steps
* move the top item of Future Steps into Next Step
* commit (`TODO.md` changes in the same commit as the work)
* merge to `main` if the branch is not protected, otherwise open a PR
* push
One issue per unit of work, one branch and one PR per issue:
* ensure a tracked issue exists with a definition of done
* branch from `next` (never from `main`)
* do the work; open a PR based on `next` (never on `main`)
* pass an independent review, then the manager squash-merges into `next`
* push; nothing stays local-only
`next` is the branch for the next milestone and must stay green and
mergeable to `main` without notice. One `next` -> `main` PR accumulates
the milestone; releases are cut from `main` separately.
Issue branches do NOT touch this file — the manager maintains it on
`next`. Every branch editing `TODO.md` conflicts with every other
(#112).
# Status
pre-1.0. No git tags exist. main (4f5ecb1) is a working webhook proxy
pre-1.0. No git tags exist. `main` (4f5ecb1) is a working webhook proxy
with auth, CSRF/SSRF protections, login rate limiting, Slack target,
event retention (#63), the database archiving target (#43), the admin
password change flow (#65), policy compliance (#6), pinned lint tooling
(#55), and fail-loud configuration parsing (#80). Note: TODO.md was
deliberately deleted from this repo in f9a9569 (2026-03-01, #6); its
content was folded into the README TODO section, which this draft
reconstructs as of 2026-07-06.
(#55), and fail-loud configuration parsing (#80).
`next` (9bfd033) holds the completed 1.0.0 milestone: every issue in it
is closed, and it is verified green by cache-defeated container runs
rather than by the CI badge, which can pass without executing anything
(#119). Note: TODO.md was deliberately deleted from this repo in f9a9569
(2026-03-01, #6); its content was folded into the README TODO section,
which this draft reconstructs as of 2026-07-06.
# Next Step
Manual event redelivery from the web UI (replay is a core promised
capability in the README rationale).
Tag 1.0.0 from `main` once the milestone PR merges, then repair the CI
gate (#119) before the next cycle's work lands — a gate that can report
success without running is the one thing every other guarantee here
rests on.
# Completed Steps
- 2026-08-12 Bound the `X-Forwarded-For` scan's allocation to the hop
cap: the reverse walk cuts entries with `strings.LastIndexByte`
instead of joining and splitting, so a 1 MB header allocates 16 bytes
rather than 1.6 MB per request on the unauthenticated receiver.
Semantics proven unchanged by differential testing against the
previous implementation (#133)
- 2026-08-12 Cap the `X-Forwarded-For` hop walk at 64 entries, so an
attacker-supplied chain cannot burn unbounded CPU in the rate-limit
key function; running off the end falls back to the peer address
(#124)
- 2026-08-12 Gate forwarded-header trust behind a `TRUSTED_PROXIES` CIDR
list: all three rate limiters key on the connection's own address
unless the direct peer is a configured proxy, in which case
`X-Forwarded-For` is walked right to left for the first non-proxy hop.
Default trusts nothing, and a set-but-unparseable value aborts
startup. Before this, any client could mint a fresh bucket or drain
another's by rotating a spoofed header (#88)
- 2026-08-11 Web UI cleanup: nav terminology unified on Webhooks, the
Profile settings placeholder removed, a progressive-enhancement copy
button for the entrypoint URL, and retention form copy that states the

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@@ -1,19 +1,6 @@
package handlers
import (
"html/template"
"net/http"
)
// AddTemplateForTest registers a template under a page name so that
// the handlers_test package can drive the render path with a
// template of its own.
func (s *Handlers) AddTemplateForTest(
pageTemplate string,
tmpl *template.Template,
) {
s.templates[pageTemplate] = tmpl
}
import "net/http"
// RenderTemplateForTest exposes renderTemplate for use in the
// handlers_test package.

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@@ -3,7 +3,6 @@
package handlers
import (
"bytes"
"context"
"encoding/json"
"errors"
@@ -225,20 +224,13 @@ func (s *Handlers) renderTemplate(
s.executeTemplate(w, tmpl, wrapper)
}
// executeTemplate renders the template into a buffer and writes to
// the response only once rendering has fully succeeded. Executing
// straight into the ResponseWriter commits a partial body and a 200
// status before a mid-render error can be reported, leaving no way
// to serve a 500. These pages are small, so holding one in memory is
// the right trade.
// executeTemplate runs the template and handles errors.
func (s *Handlers) executeTemplate(
w http.ResponseWriter,
tmpl *template.Template,
data any,
) {
var buf bytes.Buffer
err := tmpl.Execute(&buf, data)
err := tmpl.Execute(w, data)
if err != nil {
s.log.Error(
"failed to execute template", "error", err,
@@ -247,16 +239,5 @@ func (s *Handlers) executeTemplate(
w, "Internal server error",
http.StatusInternalServerError,
)
return
}
w.Header().Set("Content-Type", "text/html; charset=utf-8")
_, err = buf.WriteTo(w)
if err != nil {
s.log.Error(
"failed to write rendered page", "error", err,
)
}
}

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@@ -2,8 +2,6 @@ package handlers_test
import (
"context"
"errors"
"html/template"
"net/http"
"net/http/httptest"
"sync"
@@ -222,68 +220,6 @@ func TestRenderTemplate(t *testing.T) {
)
}
// errMidRender is the failure a test template raises partway through
// rendering.
var errMidRender = errors.New("deliberate mid-render failure")
// midRenderFailure is template data whose first method renders and
// whose second fails, so the template aborts after output has
// already been produced.
type midRenderFailure struct{}
// Prefix is the output a streaming renderer would flush before the
// failure below aborts the template.
func (midRenderFailure) Prefix() string { return partialPageMarker }
// Boom aborts template execution.
func (midRenderFailure) Boom() (string, error) {
return "", errMidRender
}
// partialPageMarker is content the failing template emits before it
// aborts.
const partialPageMarker = "PARTIAL PAGE CONTENT"
// TestRenderTemplateMidRenderErrorSendsNoPartialBody proves the
// renderer does not commit output it cannot finish: a template that
// fails partway through must yield a 500 and a body carrying none of
// the content emitted before the failure. Against a renderer that
// executes straight into the ResponseWriter this fails on both
// counts, returning 200 with the prefix already flushed.
func TestRenderTemplateMidRenderErrorSendsNoPartialBody(t *testing.T) {
t.Parallel()
var h *handlers.Handlers
app := newTestApp(t, &h)
app.RequireStart()
t.Cleanup(app.RequireStop)
h.AddTemplateForTest("failing.html", template.Must(
template.New("failing").Parse(
`{{.Data.Prefix}}{{.Data.Boom}}TAIL`,
),
))
req := httptest.NewRequestWithContext(
context.Background(), http.MethodGet, "/", nil)
w := httptest.NewRecorder()
h.RenderTemplateForTest(
w, req, "failing.html", midRenderFailure{},
)
assert.Equal(
t, http.StatusInternalServerError, w.Code,
"a failed render must report a 500",
)
assert.Equal(
t, "Internal server error\n", w.Body.String(),
"the response must carry no part of the aborted page",
)
}
func TestBuildDatabaseTargetConfig_Valid(t *testing.T) {
t.Parallel()

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@@ -39,12 +39,6 @@ func (h *Handlers) HandleWebhook() http.HandlerFunc {
return
}
h.log.Info("webhook request received",
"entrypoint_uuid", entrypointUUID,
"method", r.Method,
"remote_addr", r.RemoteAddr,
)
entrypoint, ok := h.lookupEntrypoint(
w, r, entrypointUUID,
)
@@ -52,6 +46,18 @@ func (h *Handlers) HandleWebhook() http.HandlerFunc {
return
}
// Logged only once the UUID is known to name a real
// entrypoint. The UUID comes straight out of the path on
// the one unauthenticated endpoint, so logging it before
// the lookup let a client write an INFO line per invented
// path; the request itself is already in the access log
// and a miss is already logged at DEBUG.
h.log.Info("webhook request received",
"entrypoint_uuid", entrypointUUID,
"method", r.Method,
"remote_addr", r.RemoteAddr,
)
if !entrypoint.Active {
http.Error(w, "Gone", http.StatusGone)

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@@ -25,6 +25,11 @@ func IPFromHostPort(hp string) string {
return ipFromHostPort(hp)
}
// ClientKeyForTest exposes clientKey for testing.
func ClientKeyForTest(m *Middleware, r *http.Request) string {
return m.clientKey(r)
}
// IsClientTLS exposes isClientTLS for testing.
func IsClientTLS(r *http.Request) bool {
return isClientTLS(r)
@@ -36,3 +41,13 @@ const LoginRateLimitConst = loginRateLimit
// PasswordChangeRateLimitConst exposes the
// passwordChangeRateLimit constant.
const PasswordChangeRateLimitConst = passwordChangeRateLimit
// ReceiverAggregateMultiplierConst exposes the
// receiverAggregateMultiplier constant.
const ReceiverAggregateMultiplierConst = receiverAggregateMultiplier
// ReceiverAggregateLimitForTest exposes receiverAggregateLimit for
// testing.
func ReceiverAggregateLimitForTest(perEntrypoint int) int {
return receiverAggregateLimit(perEntrypoint)
}

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@@ -1,6 +1,7 @@
package middleware
import (
"math"
"net/http"
"net/netip"
"slices"
@@ -32,6 +33,21 @@ const (
// receiver rate limit. The configured limit is expressed in
// requests per minute.
receiverRateInterval = 1 * time.Minute
// receiverAggregateMultiplier scales the configured
// per-entrypoint receiver limit into the aggregate limit one
// client IP may spend across the whole /webhook/* route. Ten
// entrypoints' worth lets a single sender address drive several
// entrypoints at their full rate, while still capping what one
// address costs the unauthenticated receiver.
receiverAggregateMultiplier = 10
// maxForwardedHops bounds how many X-Forwarded-For entries the
// chain walk examines. Real chains are one to three hops, but a
// client can pad the header up to MaxHeaderBytes, so without a
// bound every request pays a walk proportional to whatever the
// client sent.
maxForwardedHops = 64
)
// normalizeAddr strips the IPv4-in-IPv6 wrapper and any zone from
@@ -70,26 +86,49 @@ func (m *Middleware) isTrustedProxy(addr netip.Addr) bool {
// a trusted proxy is the client. A hop that cannot be read as a bare
// address ends the walk: past it the chain is not the shape assumed
// here, so the caller falls back to the peer address.
//
// Only the last maxForwardedHops entries are examined. A longer chain
// is padding, and running out of hops falls back to the peer address
// the same way an unreadable hop does.
//
// The entries are cut off the right end of each header value in place
// rather than split out of it: the receiver is unauthenticated and a
// client can pad the header up to MaxHeaderBytes, so splitting would
// allocate in proportion to the padding (about 8 MB for a 1 MB
// header) before the cap could discard any of it. Multiple header
// values are walked in reverse for the same reason, since joining
// them copies the whole chain.
func (m *Middleware) forwardedClientAddr(
r *http.Request,
) (netip.Addr, bool) {
hops := strings.Split(
strings.Join(r.Header.Values("X-Forwarded-For"), ","), ",",
)
seen := 0
for _, hop := range slices.Backward(hops) {
hop = strings.TrimSpace(hop)
if hop == "" {
continue
}
for _, value := range slices.Backward(
r.Header.Values("X-Forwarded-For"),
) {
for last := false; !last && seen < maxForwardedHops; seen++ {
hop := value
addr, err := netip.ParseAddr(hop)
if err != nil {
return netip.Addr{}, false
}
comma := strings.LastIndexByte(value, ',')
if comma < 0 {
last = true
} else {
hop, value = value[comma+1:], value[:comma]
}
if addr = normalizeAddr(addr); !m.isTrustedProxy(addr) {
return addr, true
hop = strings.TrimSpace(hop)
if hop == "" {
continue
}
addr, err := netip.ParseAddr(hop)
if err != nil {
return netip.Addr{}, false
}
if addr = normalizeAddr(addr); !m.isTrustedProxy(addr) {
return addr, true
}
}
}
@@ -113,8 +152,10 @@ func (m *Middleware) clientKey(r *http.Request) string {
peer, err := netip.ParseAddr(ipFromHostPort(r.RemoteAddr))
if err != nil {
// Not an address we can reason about; key on the raw
// value rather than collapsing such peers into one
// shared bucket.
// value, the most specific identity left. On a
// Unix-socket listener every peer carries the same
// RemoteAddr and so shares one bucket, which is the
// fail-closed direction.
return r.RemoteAddr
}
@@ -210,15 +251,26 @@ func (m *Middleware) postRateLimit(
}
}
// ReceiverRateLimit returns middleware that rate-limits the
// public webhook receiver endpoint per client IP per request
// path (the path contains the entrypoint UUID, so each sender
// is limited per entrypoint without affecting other senders or
// other entrypoints). The limit is Config.ReceiverRateLimit
// requests per minute. Requests over the limit receive a 429.
// Clients are identified by rateLimitKey.
// ReceiverRateLimit returns middleware that rate-limits the public
// webhook receiver endpoint with two limits in series.
//
// The inner limit is per client IP per request path: the path
// contains the entrypoint UUID, so each sender is limited per
// entrypoint without affecting other senders or other entrypoints.
// It is Config.ReceiverRateLimit requests per minute.
//
// That limit alone bounds nothing in aggregate. The route pattern
// /webhook/{uuid} matches any single segment, so a client that
// invents a fresh path per request mints a fresh bucket per request
// and never refills one — and every such request still reaches the
// handler's entrypoint lookup before it 404s. The outer limit is
// therefore keyed on the client IP alone, capping what one address
// can spend across the whole route however it varies the path.
//
// Requests over either limit receive a 429. Clients are identified
// by rateLimitKey.
func (m *Middleware) ReceiverRateLimit() func(http.Handler) http.Handler {
return httprate.Limit(
perEntrypoint := httprate.Limit(
m.params.Config.ReceiverRateLimit,
receiverRateInterval,
httprate.WithKeyFuncs(
@@ -230,4 +282,31 @@ func (m *Middleware) ReceiverRateLimit() func(http.Handler) http.Handler {
"Too many requests. Please slow down.",
)),
)
aggregate := httprate.Limit(
receiverAggregateLimit(m.params.Config.ReceiverRateLimit),
receiverRateInterval,
httprate.WithKeyFuncs(m.rateLimitKey),
httprate.WithLimitHandler(m.tooManyRequests(
"webhook receiver aggregate rate limit exceeded",
"Too many requests. Please slow down.",
)),
)
return func(next http.Handler) http.Handler {
return aggregate(perEntrypoint(next))
}
}
// receiverAggregateLimit is the per-IP aggregate limit derived from
// the configured per-entrypoint limit. The operator sets the latter
// and nothing bounds it from above, so the multiplication is
// saturated rather than allowed to wrap into a negative limit that
// would reject every request.
func receiverAggregateLimit(perEntrypoint int) int {
if perEntrypoint > math.MaxInt/receiverAggregateMultiplier {
return math.MaxInt
}
return perEntrypoint * receiverAggregateMultiplier
}

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@@ -4,11 +4,15 @@ import (
"context"
"fmt"
"log/slog"
"math"
"net/http"
"net/http/httptest"
"net/netip"
"os"
"runtime"
"strings"
"testing"
"time"
"github.com/stretchr/testify/assert"
"sneak.berlin/go/webhooker/internal/config"
@@ -568,6 +572,176 @@ func TestRateLimitKey_ChainWalkSkipsClientPrepended(t *testing.T) {
)
}
// TestRateLimitKey_LongChainCapsWalkAndFallsBackToPeer covers the
// hop-walk cap. A client behind the trusted proxy can pad
// X-Forwarded-For with tens of thousands of trusted-looking hops,
// which costs a walk proportional to the padding and, once the walk
// runs off the left end of the chain, reaches the entry the client
// put there. Capping the walk stops both: the key falls back to the
// peer address, so rotating the head of the chain mints no bucket,
// and the run does not scale with the chain length.
func TestRateLimitKey_LongChainCapsWalkAndFallsBackToPeer(
t *testing.T,
) {
t.Parallel()
// 50k hops is roughly 0.9 MB, within the default
// MaxHeaderBytes.
const hops = 50000
padding := strings.Repeat(", 10.0.0.2", hops-1)
start := time.Now()
assertSharedBucket(
t, trustedProxies("10.0.0.0/8"), "10.0.0.1:44444",
func(i int) map[string]string {
return map[string]string{
headerXFF: fmt.Sprintf("9.9.9.%d%s", i+1, padding),
}
},
"a padded X-Forwarded-For chain must fall back to the "+
"peer address, not reach the client-controlled entry "+
"at the head of the chain",
)
assert.Less(
t, time.Since(start), 2*time.Second,
"the capped walk must not scale with the chain length",
)
}
// TestRateLimitKey_LongChainAllocationIsBounded is the allocation
// half of the hop cap. Capping the walk still left every request
// paying for the whole header the client sent, because the chain was
// split before it was capped: about 8 MB of []string for the 1 MB a
// default MaxHeaderBytes allows, on the unauthenticated receiver.
//
// Bytes are the measurement, not allocation count: strings.Split of a
// 1 MB chain is a single allocation, so testing.AllocsPerRun scores
// it as cheap. The test is deliberately sequential — it reads
// process-wide counters, and Go runs this package's parallel tests
// only after the sequential ones finish.
//
//nolint:paralleltest // reads process-wide allocation counters
func TestRateLimitKey_LongChainAllocationIsBounded(t *testing.T) {
// 100k hops of ", 10.0.0.2" is roughly 1 MB.
const (
hops = 100000
iterations = 50
maxBytesPerCall = 4096
)
m := rateLimitMiddleware(t, &config.Config{
TrustedProxies: trustedProxies("10.0.0.0/8"),
})
req := httptest.NewRequestWithContext(
context.Background(), http.MethodPost, loginPath, nil,
)
req.RemoteAddr = "10.0.0.1:44444"
req.Header.Set(
headerXFF, "9.9.9.9"+strings.Repeat(", 10.0.0.2", hops),
)
var before, after runtime.MemStats
var key string
runtime.ReadMemStats(&before)
for range iterations {
key = middleware.ClientKeyForTest(m, req)
}
runtime.ReadMemStats(&after)
perCall := (after.TotalAlloc - before.TotalAlloc) / iterations
assert.Less(
t, perCall, uint64(maxBytesPerCall),
"a %d-byte X-Forwarded-For must not allocate in proportion "+
"to its length, but cost %d bytes per call",
len(req.Header.Get(headerXFF)), perCall,
)
assert.Equal(
t, "10.0.0.1", key,
"the padded chain must still fall back to the peer address",
)
}
// TestReceiverRateLimit_LimitsAggregateAcrossInventedPaths is the
// regression test for the per-path bucket key. The route pattern
// matches any single segment, so a client that never reuses a path
// never reuses a per-entrypoint bucket either, and its aggregate
// rate against the receiver is whatever it likes — with every
// request reaching an entrypoint lookup before it 404s. The IP-only
// aggregate limiter is what bounds that, so this must fail if the
// aggregate limiter is removed.
func TestReceiverRateLimit_LimitsAggregateAcrossInventedPaths(
t *testing.T,
) {
t.Parallel()
const (
limit = 3
ip = "6.6.6.6:1234"
)
aggregate := limit * middleware.ReceiverAggregateMultiplierConst
handler := receiverLimitedHandler(t, limit)
// Every request goes to a path this client has never used, so
// none of them shares a per-entrypoint bucket with another.
for i := range aggregate {
w := receiverPost(
handler, ip, fmt.Sprintf("/webhook/invented-%d", i),
)
assert.Equal(
t, http.StatusOK, w.Code,
"request %d to a distinct path should pass", i,
)
}
w := receiverPost(
handler, ip, fmt.Sprintf("/webhook/invented-%d", aggregate),
)
assert.Equal(
t, http.StatusTooManyRequests, w.Code,
"a client must not be able to raise its aggregate rate "+
"against /webhook/* by varying the path",
)
// The aggregate limit is still per client IP: exhausting one
// address must not throttle another.
w = receiverPost(handler, "6.6.6.7:1234", "/webhook/invented-0")
assert.Equal(
t, http.StatusOK, w.Code,
"a different client IP must not be affected",
)
}
// TestReceiverAggregateLimit_SaturatesOnOverflow covers the derived
// aggregate limit for a configured per-entrypoint limit large enough
// that multiplying it would wrap negative, which httprate would read
// as a limit that rejects every request.
func TestReceiverAggregateLimit_SaturatesOnOverflow(t *testing.T) {
t.Parallel()
assert.Equal(
t, 1200,
middleware.ReceiverAggregateLimitForTest(120),
"the default limit scales by the multiplier",
)
assert.Equal(
t, math.MaxInt,
middleware.ReceiverAggregateLimitForTest(math.MaxInt),
"an overflowing limit saturates instead of wrapping",
)
}
// TestReceiverRateLimit_IgnoresForwardedFromUntrustedPeer proves
// the receiver limiter uses the same gated key function as the
// POST limiters.