Files
fips/testing/chaos
Johnathan Corgan 56d39f223b Add ECN congestion signaling and transport congestion detection
Implement hop-by-hop ECN congestion signaling through the FMP layer,
transport-level congestion detection via kernel drop counters, and
chaos harness integration for end-to-end validation.

FMP/session ECN plumbing:

- Thread ce_flag parsed at link layer through dispatch_link_message,
  handle_session_datagram, handle_session_payload, and
  handle_encrypted_session_msg to session delivery
- Replace hardcoded false in session-layer record_recv() with actual
  ce_flag, activating ecn_ce_count tracking in session MMP

ECN congestion detection and CE relay:

- Add EcnConfig (node.ecn.*) with configurable loss_threshold (5%)
  and etx_threshold (3.0) for transit congestion detection
- Add send_encrypted_link_message_with_ce() that ORs FLAG_CE into FMP
  header flags; original method delegates with ce_flag=false
- Compute outgoing_ce = incoming_ce || local congestion on next-hop
  link, enabling hop-by-hop CE relay through transit nodes

IPv6 ECN-CE marking:

- Mark ECN-CE (0b11) in IPv6 Traffic Class on received DataPackets
  before TUN delivery when FMP CE flag is set
- Only marks ECN-capable packets (ECT(0)/ECT(1)); Not-ECT packets
  unchanged per RFC 3168

Transport congestion abstraction and UDP kernel drop detection:

- Add TransportCongestion struct to transport layer for transport-
  agnostic local congestion indicators
- Replace tokio::UdpSocket with AsyncFd<socket2::Socket> using
  libc::recvmsg() with ancillary data parsing
- Enable SO_RXQ_OVFL for kernel receive buffer drop counter on every
  packet, wiring up previously-stubbed UdpStats.kernel_drops
- Add TransportDropState for per-transport delta tracking with 1s
  tick sampling via sample_transport_congestion()
- Extend detect_congestion() with transport kernel drop check
  alongside MMP loss metrics

Congestion monitoring and control:

- Add CongestionStats (ce_forwarded, ce_received, congestion_detected,
  kernel_drop_events) to NodeStats with snapshot serialization
- Wire counters into forwarding path, session handler, and transport
  drop sampling with rate-limited warn logging (5s interval)
- Expose congestion data in show_routing control query and
  ecn_ce_count in show_mmp peer entries
- Add congestion counters to fipstop routing tab in two-column layout

Chaos harness integration:

- Add query_routing(), query_transports(), snapshot_all_congestion()
  to chaos control module
- Add congestion/kernel-drop log analysis in logs module
- Add congestion-stress scenario: 10-node tree, 1 Mbps bandwidth,
  5-10% netem loss, heavy iperf3 traffic
- Add IngressConfig for tc ingress policing with per-peer policer
  filters simulating upstream bandwidth bottlenecks
- Add iperf3 JSON result capture to traffic manager for throughput
  measurement across scenarios
- Add ECN A/B test scenarios (ecn-ab-on/off.yaml) with ingress
  policing and comparison script
- Enable TCP ECN negotiation (tcp_ecn=1 sysctl) in container
  entrypoint for end-to-end CE propagation

Tests:

- 10 ECN unit/integration tests: mark_ipv6_ecn_ce variants, CE relay
  chain (3-node propagation), EcnConfig serde roundtrip
- 3 transport drop congestion detection unit tests

Documentation:

- Update fips-mesh-layer.md: replace outdated CE Echo stub with full
  ECN Congestion Signaling section covering detection logic, CE relay,
  IPv6 marking, session tracking, and monitoring counters
- Update fips-configuration.md: add node.ecn.* parameter table and
  ecn block in complete reference YAML
- Update fips-transport-layer.md: add Congestion Reporting section
  with TransportCongestion struct, congestion() trait method, and
  per-transport status; document AsyncFd/recvmsg/SO_RXQ_OVFL in UDP
- Update chaos README: add congestion/ECN scenario docs, ingress
  traffic control, and iperf3 JSON capture sections
- Update README.md: add ECN to features list and "What works today";
  update transport and tooling entries
2026-03-05 17:05:57 +00:00
..

Stochastic Network Simulation

Automated network testing for FIPS. Generates random or explicit topologies, spins up Docker containers, and applies configurable stressors (network impairment, link flaps, traffic generation, node churn) over a timed simulation run. Scenarios cover general stress testing, cost-based parent selection, mixed link technologies (fiber/Bluetooth/WiFi), and transport-specific validation (UDP, TCP, Ethernet). Logs are collected and analyzed automatically.

Prerequisites

  • Docker with the compose plugin
  • Rust toolchain (for building the FIPS binary)
  • Python 3 with pyyaml and jinja2 packages

Quick Start

./testing/chaos/scripts/build.sh
./testing/chaos/scripts/chaos.sh smoke-10

Available Scenarios

General stress tests

Random topologies with increasing stressor intensity.

Scenario Nodes Topology Duration Netem Link Flaps Traffic Node Churn Bandwidth
smoke-10 10 random_geometric 60s -- -- -- -- --
chaos-10 10 random_geometric 120s yes yes yes -- --
churn-10 10 random_geometric 600s yes yes yes yes --
churn-20 20 erdos_renyi 600s yes yes yes yes yes
  • smoke-10: Baseline sanity check. No stressors, just verify tree convergence.
  • chaos-10: Network degradation (5-50ms delay, 0-2% loss), link flaps (max 2 down, 10-30s), and iperf traffic (max 3 concurrent). Netem mutates 30% of links every 15-30s between normal and degraded policies.
  • churn-10: Extended run with node churn (1 node down at a time, 30-90s). Tests tree re-convergence after node departure/rejoin.
  • churn-20: Aggressive scale test. Erdos-Renyi topology, up to 5 nodes down simultaneously, bandwidth tiers (1/10/100/1000 Mbps), protect_connectivity disabled (partitions allowed).

Cost-based parent selection

Explicit topologies with heterogeneous link types (fiber, Bluetooth, WiFi) to test that the spanning tree selects optimal parents based on link cost.

Scenario Nodes Shape Link types Duration What it tests
cost-avoidance 4 Diamond Fiber + Bluetooth 120s n04 picks fiber parent (n03) over Bluetooth parent (n02)
depth-vs-cost 4 Linear tree Fiber + Bluetooth 120s Cost tradeoff: depth vs. Bluetooth link quality
bottleneck-parent 10 Tree with BT Fiber + Bluetooth 120s n06 avoids Bluetooth bottleneck via n02, picks fiber via n03
cost-mixed-7node 7 Multi-type tree Fiber + Bluetooth + WiFi 180s n06 prefers fiber (n03) over WiFi (n04)
cost-reeval 4 Diamond Fiber (mutated) 180s Periodic re-evaluation triggers parent switch (reeval_interval=15s)
cost-stability 4 Diamond WiFi (all) 180s Hysteresis prevents flapping when costs vary within 20% band
  • cost-avoidance, depth-vs-cost: Minimal scenarios validating the core cost formula. Bluetooth (L2CAP) links use 15-40ms delay and 2-8% loss; fiber uses 1-5ms delay and 0-1% loss.
  • bottleneck-parent: Larger topology where some nodes have both fiber and Bluetooth paths to choose from, and one node (n09) is stuck with Bluetooth (no alternative).
  • cost-mixed-7node: Three link technologies in one mesh. Traffic enabled.
  • cost-reeval: Netem mutation (50% fraction, every 12-18s) degrades random links. FIPS override sets reeval_interval_secs=15 so periodic re-evaluation catches cost asymmetry. Look for trigger=periodic in logs.
  • cost-stability: All links are WiFi. Mutation swings costs between slightly_better and slightly_worse — within the hysteresis band. Expect ≤ 5 parent switches over 180s.

Mixed-technology

Larger explicit topologies combining multiple link technologies.

Scenario Nodes Link types Duration Netem mutation What it tests
mixed-technology 10 Fiber + Bluetooth + WiFi 180s 20%/30-60s Tree convergence across heterogeneous link types

Transport-specific

Explicit topologies exercising non-UDP transports.

Scenario Nodes Transport Shape Duration Netem Link Flaps What it tests
ethernet-only 4 Ethernet Ring 90s yes -- AF_PACKET transport with beacon discovery
ethernet-mesh 6 UDP + Ethernet Mesh 120s yes yes Mixed UDP/Ethernet, netem mutation + flaps
tcp-only 4 TCP Ring 90s yes -- TCP transport with static peer config
tcp-chain 4 TCP Chain 90s yes -- TCP multi-hop routing through chain
tcp-mesh 6 UDP + TCP Mesh 120s yes yes Mixed UDP/TCP, netem mutation + flaps
  • ethernet-only: 4-node ring on raw Ethernet (AF_PACKET). Peers discovered via beacons, not static config. Minimal netem (1-5ms delay).
  • ethernet-mesh: Mirrors tcp-mesh topology but with Ethernet instead of TCP. UDP edges use static config; Ethernet edges use beacon discovery.
  • tcp-only: 4-node ring using TCP on port 443. Tests connect-on-send, FMP framing over TCP, and reconnection. Netem enabled (1-10ms delay, 0-1% loss).
  • tcp-chain: 4-node linear chain, all TCP. Tests multi-hop routing over TCP-only mesh.
  • tcp-mesh: 6-node mesh with 4 UDP and 3 TCP edges. Both transports use static peer config. Netem mutation (30% fraction, every 20-40s) and link flaps (1 link max, 10-20s down).

Congestion and ECN

Scenarios testing ECN congestion signaling and transport-level congestion detection.

Scenario Nodes Topology Duration What it tests
congestion-stress 10 Tree 120s CE marking under kernel drops and MMP loss detection
ecn-ab-on / ecn-ab-off 6 Tree 120s A/B throughput comparison: ECN enabled vs disabled
  • congestion-stress: 10-node tree with 1 Mbps egress bandwidth caps, 5-10% netem loss, and heavy iperf3 traffic. Ingress policing (1000 kbps) and small recv_buf_size (4 KB) trigger both MMP loss detection and SO_RXQ_OVFL kernel socket drops. Validates end-to-end CE propagation: transit nodes detect congestion, set CE flag, destinations receive CE-marked packets, ecn_ce_count reported in MMP.
  • ecn-ab-on / ecn-ab-off: Paired scenarios with identical conditions (6-node tree, 10 Mbps egress, 1000 kbps ingress policing, 10ms link delay, 8 KB recv buffer) differing only in ecn.enabled. ecn-ab-test.sh runs both and compares throughput and congestion counters. Initial results: +10.2% recv throughput with ECN enabled.

Ingress Traffic Control

Scenarios can include ingress configuration to simulate upstream bandwidth bottlenecks using tc ingress policing:

ingress:
  enabled: true
  tiers_kbps: [1000]         # per-peer rate limit in kbps
  burst_bytes: 10000         # policer burst allowance

Per-peer u32 filters on the ingress qdisc (parent ffff:) rate-limit inbound packets. Combined with small recv_buf_size, this reliably triggers SO_RXQ_OVFL kernel socket drops for congestion detection testing.

iperf3 JSON Capture

Traffic sessions capture iperf3 results using --json output. Results are collected per-session from containers and saved as iperf3-results.json in the scenario output directory, enabling automated throughput analysis across scenario runs.

CLI Options

Option Description
-v, --verbose Enable debug logging
--seed N Override the scenario's random seed
--duration secs Override the scenario's duration
--list List available scenarios

The scenario argument accepts either a name (churn-10) or a file path (scenarios/churn-10.yaml).

Scenario YAML Format

Annotated example based on churn-10.yaml:

scenario:
  name: "churn-10"
  seed: 42                          # deterministic RNG seed
  duration_secs: 600                # total simulation time

topology:
  num_nodes: 10
  algorithm: random_geometric       # or erdos_renyi, chain
  params:
    radius: 0.5                     # algorithm-specific parameter
  ensure_connected: true            # retry until graph is connected
  subnet: "172.20.0.0/24"
  ip_start: 10                      # first node gets .10

netem:
  enabled: true
  default_policy:
    delay_ms: { min: 5, max: 50 }
    jitter_ms: { min: 1, max: 10 }
    loss_pct: { min: 0, max: 2 }
  mutation:
    interval_secs: { min: 20, max: 45 }  # re-roll interval
    fraction: 0.3                         # fraction of links mutated
    policies:                             # named policy profiles
      normal:
        delay_ms: [5, 20]
        loss_pct: [0, 1]
      degraded:
        delay_ms: [50, 100]
        jitter_ms: [10, 30]
        loss_pct: [3, 8]

link_flaps:
  enabled: true
  interval_secs: { min: 30, max: 60 }
  max_down_links: 2
  down_duration_secs: { min: 10, max: 30 }
  protect_connectivity: true        # never partition the graph

traffic:
  enabled: true
  max_concurrent: 3
  interval_secs: { min: 10, max: 30 }
  duration_secs: { min: 5, max: 15 }
  parallel_streams: 4

node_churn:
  enabled: true
  interval_secs: { min: 60, max: 180 }
  max_down_nodes: 1
  down_duration_secs: { min: 30, max: 90 }
  protect_connectivity: true        # never kill the last path

bandwidth:
  enabled: false                    # per-link HTB rate limiting
  tiers_mbps: [1, 10, 100, 1000]   # each link randomly assigned a tier

logging:
  rust_log: "debug"
  output_dir: "./sim-results"

Topology Algorithms

Algorithm Parameters Description
random_geometric radius (default 0.5) Place nodes in unit square, connect pairs within radius
erdos_renyi p (default 0.3) Include each edge independently with probability p
chain -- Linear chain: n01--n02--...--nN
explicit adjacency list Hardcoded edges with optional per-edge transport type

When ensure_connected is true (default), the generator retries up to 50 times to produce a connected graph.

Directed Outbound Configs

The config generator assigns each static-config edge (UDP or TCP) to exactly one node for outbound connection using a BFS spanning tree rooted at the lowest node ID. Tree edges are assigned parent-to-child; non-tree edges are assigned from the lower node ID to the higher. This eliminates the dual-connect race condition where both sides initiate simultaneously, and creates a clear "owning side" for each link — relevant for auto-reconnect testing. Ethernet edges are excluded from static config since they use beacon discovery.

Output

Results written to sim-results/ (configurable via logging.output_dir):

  • analysis.txt -- Summary: panics, errors, sessions, metrics
  • metadata.txt -- Seed, node count, edges, adjacency list
  • runner.log -- Orchestration events (topology, netem, churn, traffic) with timestamps
  • fips-node-nXX.log -- Per-node log output

Exit code 0 on success, 2 if panics detected.

Creating Custom Scenarios

  1. Copy an existing scenario from scenarios/.
  2. Adjust topology size, algorithm, and stressor parameters.
  3. Run with ./testing/chaos/scripts/chaos.sh path/to/custom.yaml.