external/anthropic-cybersecurity-skills/skills/implementing-bgp-security-with-rpki/SKILL.md
Implement RPKI-based BGP route origin validation by creating Route Origin Authorizations (ROAs) at RIRs (ARIN, RIPE, APNIC, AFRINIC, LACNIC), deploying validator software (Routinator, FORT, OctoRPKI), and configuring RPKI-to-Router protocol and ROV accept/reject policies on Cisco IOS-XE and Juniper Junos routers. Use when hardening BGP against route hijacking or leaks, or when configuring ROV filtering policy on production routers.
npx skillsauth add seikaikyo/dash-skills implementing-bgp-security-with-rpkiInstall this skill globally with one command. Works with Claude Code, Cursor, and Windsurf.
3 of 9 scanners reported clean
Some scanners were skipped, did not run, or reported a non-clean status. Review each row below.
Resource Public Key Infrastructure (RPKI) provides cryptographic validation of BGP route origins to prevent route hijacking and accidental route leaks. RPKI enables network operators to create Route Origin Authorizations (ROAs) that declare which Autonomous Systems (ASes) are authorized to originate specific IP prefixes. BGP routers validate received route announcements against RPKI data through Route Origin Validation (ROV), rejecting routes with invalid origins. This skill covers creating ROAs through Regional Internet Registries (RIRs), deploying RPKI validator software, configuring ROV on Cisco IOS-XE and Juniper Junos routers, and implementing BGP filtering policies based on RPKI validation state.
┌──────────────────────────────────────────────┐
│ Regional Internet Registries │
│ (ARIN, RIPE, APNIC, AFRINIC, LACNIC) │
│ │
│ ┌─────────────────────────────────────────┐ │
│ │ Trust Anchor (Root CA Certificate) │ │
│ │ ├── CA Certificate (ISP/Organization) │ │
│ │ │ ├── ROA: AS64512 → 198.51.100.0/24 │ │
│ │ │ └── ROA: AS64512 → 2001:db8::/32 │ │
│ │ └── CA Certificate (Another Org) │ │
│ │ └── ROA: AS64513 → 203.0.113.0/24 │ │
│ └─────────────────────────────────────────┘ │
└──────────────────────────────────────────────┘
│ rsync/RRDP
▼
┌──────────────────────┐
│ RPKI Validator/Cache │ (Routinator, FORT, OctoRPKI)
│ Validates ROAs │
│ Serves VRPs to RTR │
└──────────────────────┘
│ RTR Protocol (TCP 8323)
▼
┌──────────────────────┐
│ BGP Router │
│ Performs ROV │
│ Applies policy: │
│ Valid → Accept │
│ Invalid → Reject │
│ NotFound → Accept │
└──────────────────────┘
| State | Meaning | Recommended Action | |-------|---------|-------------------| | Valid | ROA exists, origin AS and prefix match | Accept route (prefer) | | Invalid | ROA exists, but origin AS or prefix length mismatch | Reject route | | NotFound | No ROA covers this prefix | Accept (but lower preference) |
A ROA is a signed object that states:
ARIN (North America):
RIPE NCC (Europe):
# Install Routinator on Ubuntu
sudo apt install -y routinator
# Or install via Cargo (Rust)
curl --proto '=https' --tlsv1.2 -sSf https://sh.rustup.rs | sh
cargo install routinator
# Initialize Routinator (accept TALs)
routinator init --accept-arin-rpa
# Start Routinator in RTR server mode
routinator server \
--rtr 0.0.0.0:8323 \
--http 0.0.0.0:8080 \
--refresh 600 \
--retry 60 \
--expire 7200
# Run as systemd service
cat > /etc/systemd/system/routinator.service << 'SYSTEMD'
[Unit]
Description=Routinator RPKI Validator
After=network.target
[Service]
Type=simple
User=routinator
ExecStart=/usr/bin/routinator server --rtr 0.0.0.0:8323 --http 0.0.0.0:8080
Restart=always
RestartSec=10
[Install]
WantedBy=multi-user.target
SYSTEMD
sudo systemctl enable routinator
sudo systemctl start routinator
# Verify Routinator is serving data
curl http://localhost:8080/api/v1/status
curl http://localhost:8080/api/v1/validity/AS64512/198.51.100.0/24
# View Validated ROA Payloads (VRPs)
routinator vrps --format json | head -50
! Configure RPKI cache server connection
router bgp 64512
bgp rpki server tcp 10.0.5.50 port 8323 refresh 600
! Verify RPKI session
show bgp rpki server
show bgp rpki table
! Create route-map for RPKI-based filtering
route-map RPKI-FILTER permit 10
match rpki valid
set local-preference 200
route-map RPKI-FILTER permit 20
match rpki not-found
set local-preference 100
route-map RPKI-FILTER deny 30
match rpki invalid
! Apply to BGP neighbors
router bgp 64512
address-family ipv4 unicast
neighbor 198.51.100.1 route-map RPKI-FILTER in
neighbor 203.0.113.1 route-map RPKI-FILTER in
address-family ipv6 unicast
neighbor 2001:db8::1 route-map RPKI-FILTER in
! Verify ROV operation
show bgp ipv4 unicast rpki validation
show bgp ipv4 unicast 198.51.100.0/24
show ip bgp rpki table
show ip bgp neighbors 198.51.100.1 rpki state
# Configure RPKI cache connection
set routing-options validation group RPKI-VALIDATORS session 10.0.5.50 port 8323
set routing-options validation group RPKI-VALIDATORS session 10.0.5.50 refresh-time 600
set routing-options validation group RPKI-VALIDATORS session 10.0.5.50 hold-time 7200
set routing-options validation group RPKI-VALIDATORS session 10.0.5.50 record-lifetime 7200
# Create validation policy
set policy-options policy-statement RPKI-POLICY term valid from validation-database valid
set policy-options policy-statement RPKI-POLICY term valid then validation-state valid
set policy-options policy-statement RPKI-POLICY term valid then local-preference 200
set policy-options policy-statement RPKI-POLICY term valid then accept
set policy-options policy-statement RPKI-POLICY term invalid from validation-database invalid
set policy-options policy-statement RPKI-POLICY term invalid then validation-state invalid
set policy-options policy-statement RPKI-POLICY term invalid then reject
set policy-options policy-statement RPKI-POLICY term unknown from validation-database unknown
set policy-options policy-statement RPKI-POLICY term unknown then validation-state unknown
set policy-options policy-statement RPKI-POLICY term unknown then local-preference 100
set policy-options policy-statement RPKI-POLICY term unknown then accept
# Apply to BGP peers
set protocols bgp group TRANSIT import RPKI-POLICY
set protocols bgp group PEERS import RPKI-POLICY
# Verify
show validation session
show validation database
show validation statistics
show route validation-state invalid
#!/usr/bin/env python3
"""Monitor RPKI ROV deployment health and coverage statistics."""
import json
import sys
import urllib.request
class RPKIMonitor:
def __init__(self, routinator_url: str = "http://localhost:8080"):
self.routinator_url = routinator_url
def get_status(self) -> dict:
"""Get Routinator server status."""
url = f"{self.routinator_url}/api/v1/status"
try:
with urllib.request.urlopen(url) as resp:
return json.loads(resp.read())
except Exception as e:
print(f"Error connecting to Routinator: {e}")
return {}
def check_validity(self, asn: int, prefix: str) -> dict:
"""Check RPKI validity of a prefix/origin pair."""
url = f"{self.routinator_url}/api/v1/validity/AS{asn}/{prefix}"
try:
with urllib.request.urlopen(url) as resp:
return json.loads(resp.read())
except Exception as e:
return {"error": str(e)}
def get_vrp_count(self) -> int:
"""Get total number of Validated ROA Payloads."""
status = self.get_status()
return status.get("vrpsCount", 0)
def report(self, prefixes_to_check: list):
"""Generate RPKI monitoring report."""
status = self.get_status()
print(f"\n{'='*60}")
print("RPKI MONITORING REPORT")
print(f"{'='*60}")
print(f"\nRoutinator Status:")
print(f" Version: {status.get('version', 'Unknown')}")
print(f" VRPs Total: {status.get('vrpsCount', 'N/A')}")
print(f" Last Update: {status.get('lastUpdateDone', 'N/A')}")
if prefixes_to_check:
print(f"\nPrefix Validity Checks:")
for asn, prefix in prefixes_to_check:
result = self.check_validity(asn, prefix)
validity = result.get("validated_route", {}).get(
"validity", {}).get("state", "error")
print(f" AS{asn} -> {prefix}: {validity.upper()}")
if __name__ == "__main__":
monitor = RPKIMonitor()
# Check own prefixes
own_prefixes = [
(64512, "198.51.100.0/24"),
]
monitor.report(own_prefixes)
tools
Conduct comprehensive GDPR compliance assessments by evaluating data processing activities against EU Regulation 2016/679, including Article 30 records of processing, lawful basis validation, data subject rights implementation, Data Protection Impact Assessments (DPIAs) under Article 35, breach notification procedures, international transfer safeguards (SCCs, adequacy decisions), and technical/organizational measures under Article 32. Use when processing personal data of EU residents, preparing for supervisory authority audits, implementing privacy-by-design for new systems, scoping compliance gaps for M&A due diligence, assessing third-party processors, or responding to data subject access requests at scale. Incorporates 2026 guidance from ICO, EDPB, and post-Data (Use and Access) Act 2025 UK-GDPR considerations. Do not use for implementing specific Article 32 controls — use implementing-gdpr-data-protection-controls; or for DSAR automation — use implementing-gdpr-data-subject-access-request.
tools
Parse Windows forensic artifacts—$MFT/$J (MFTECmd), Prefetch (PECmd), registry hives (RECmd), shellbags, and Amcache—into normalized CSV/JSON with Eric Zimmerman's EZ Tools, then load results into Timeline Explorer for analysis. Use during DFIR/incident-response investigations, after triage collection (e.g. with KAPE), to establish program execution, file/folder access, and persistence evidence from acquired forensic images.
development
Build automated multi-turn adversarial attacks against conversational LLM targets using Microsoft PyRIT's RedTeamingOrchestrator, CrescendoOrchestrator (gradual escalation), and TreeOfAttacksWithPruningOrchestrator (adaptive branching), with scorer feedback loops and persisted conversation memory. Use when single-shot LLM scanning is insufficient and you need multi-turn, scorer-driven AI red-team campaigns against a chatbot or agent.
testing
Stand up MISP, enable and cache curated threat feeds (CIRCL, abuse.ch, Feodo Tracker), apply warninglists to suppress false positives, query indicators with PyMISP, and export attributes as auto-generated Suricata/Sigma/Wazuh detection rules. Use when maturing a MISP instance to actively drive detection, curating threat feeds with quality controls, or automating IOC-to-detection pipelines for the SIEM/IDS.