578 lines
30 KiB
Markdown
578 lines
30 KiB
Markdown
# Enodia Sentinel
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A Linux IDS/IPS/EDR platform: intrusion detection, explicit prevention and
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containment workflows, endpoint detection and response, file/package integrity,
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anti-rootkit cross-checks, tamper-evidence, forensic snapshots, push alerts, and
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a read-only operator console.
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The current daemon continuously runs detectors over live system state —
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processes, sockets, file descriptors, the SUID inventory, sensitive files, the
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package database, and rootkit-hiding artifacts — then writes a detailed forensic
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snapshot (text **and** JSON) with incident-response guidance the moment a known
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attack signature appears.
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Think of it as the security counterpart to a performance watchdog: instead of
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"I/O pressure spiked, here's the kernel state," it's *"a shell just wired itself
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to a socket — here's the process tree, the peer, what changed on disk, whether
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the package database was tampered with, and what to do next."*
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## Product direction
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Enodia Sentinel is an IDS, IPS, and EDR system. IDS-style signatures identify
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suspicious host behavior, IPS workflows turn those findings into explicit
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containment/prevention plans, and EDR features preserve evidence for triage,
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investigation, and recovery. Automatic inline blocking is intentionally gated
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behind reviewed response workflows rather than silent remediation.
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| Function | Current capability | Direction |
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| Detect | Poll detectors + eBPF exec/syscall rules | More event sources and correlation |
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| Prevent | Posture checks + dry-run containment plans | Audited, explicit `--apply` workflows |
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| Verify | FIM, package DB anchor, signed-package checks | External anchors and signed evidence |
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| Investigate | Text/JSON snapshots, incidents, dashboard, triage | Richer timelines and evidence export |
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| Respond | Persisted dry-run response plans | Audited containment and recovery execution |
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| Assure | Heartbeat, watchdog, self-integrity, rootcheck | Fleet health and attestation-ready anchors |
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Project docs:
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- [Specification](docs/SPECIFICATION.md) — product model, current scope, target
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platform shape, data model, and acceptance criteria.
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- [Roadmap](docs/ROADMAP.md) — phased work from local sensor to incident,
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response, fleet, and assurance layers.
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- [Operations guide](docs/OPERATIONS.md) — install checks, health checks, alert
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workflow, baseline hygiene, and evidence export.
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- [IR runbooks](docs/RUNBOOKS.md) — confirm/preserve/contain/recover playbooks
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per alert: reverse shells, persistence, trojaned binaries, rootkits, tampering.
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> **Two implementations, on purpose.** The project began as a bash prototype
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> (`src/sentinel.sh`, kept as the regression **oracle**) and was re-architected
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> into a zero-dependency Python package with a unit-test suite, structured
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> detectors, and JSON output. The bash version and the Python version share one
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> red-team harness, so every signature is exercised against both.
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## Why these detectors
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Every detector keys on a behavior that is **cheap to observe** and **expensive
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for an attacker to avoid** — the high-signal, low-false-positive heuristics real
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EDRs are built on:
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| Signature | What it catches | Why it's hard to evade |
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|---|---|---|
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| `reverse_shell` | An interpreter with a **network socket on fd 0/1/2** | Interactive shells get a pty and daemons get unix sockets — a *network* socket on stdio is `nc -e` / `bash -i >& /dev/tcp/...` |
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| `ld_preload` | Non-empty `/etc/ld.so.preload`, or `LD_PRELOAD` into a writable dir | Injecting into processes needs the library to exist somewhere |
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| `deleted_exe` | A process running from a **deleted / `memfd:`** binary | Fileless malware deletes its dropper; the kernel still names the inode `(deleted)` |
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| `input_snooper` | A non-allowlisted process holding `/dev/input`, `/dev/uinput`, or HID raw devices open | Keyloggers have to read keystroke/event devices somewhere; expected compositors/remappers are tunable |
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| `credential_access` | A non-allowlisted process with shadow files, private SSH keys, browser stores, or secret profiles open | Credential harvesters have to open the material they steal; legitimate auth/keyring/browser readers are tunable |
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| `stealth_network` | Raw, SCTP, DCCP, packet, MPTCP, TIPC, XDP, or vsock activity | Covert channels often avoid ordinary TCP/UDP paths; expected network managers/sniffers are tunable |
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| `memory_obfuscation` | Executable anonymous/memfd/deleted mappings, RWX pages, or mapped process-hiding libraries | Encrypted/packed payloads still need executable memory after decrypting; hide libraries must be mapped to hook tools |
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| `new_listener` | A listening port absent from the startup baseline | Bind shells/backdoors have to listen somewhere |
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| `new_suid` | A new SUID/SGID binary (critical in a writable dir) | A SUID `/tmp` binary is a textbook privesc trick |
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| `persistence` | Changes to cron, systemd units, `authorized_keys`, rc files | Persistence has to write somewhere that survives reboot |
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| `egress` | An interpreter with an established connection to a public IP | C2 beacons and exfil have to phone home |
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Every detection carries a stable **`sid`** and a **`classtype`** (à la
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Snort/Suricata), so it can be referenced, tuned, and tracked across revisions.
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## Event-driven detection (eBPF + a Snort-style rule engine)
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Polling has a blind spot: a process that runs and exits between two sweeps is
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invisible to it. The event layer closes that gap. An eBPF probe (loaded with
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`bcc`) fires on every `execve` and hands each event to a **declarative rule
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engine** — the host-event analogue of Snort matching packets:
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```toml
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# a rule is data, not code — sid, msg, classtype, severity + conditions
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sid = 100002
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msg = "Reverse-shell command pattern in execve arguments"
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severity = "CRITICAL"
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classtype = "c2-reverse-shell"
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argv_regex = "/dev/(tcp|udp)/| -i\\b| -e\\b| pty\\.spawn"
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```
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Shipped exec rules cover fileless execution from world-writable dirs
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(`sid 100001`), reverse-shell argv patterns (`100002`), web/DB services
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spawning a shell — webshell/RCE (`100003`), and `curl|sh`-style ingress tool
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transfer (`100004`). The syscall stream adds short-lived memory/anti-analysis
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coverage for RWX `mprotect`/`mmap` (`100060`/`100061`), `memfd_create`
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(`100062`), sensitive `ptrace` (`100063`), seccomp hardening (`100064`),
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cross-process memory access (`100065`), and memory locking (`100066`).
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Operators add custom exec rules via `exec_rules_file` without touching code.
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The layer is **fail-safe**: if `bcc`/root/BTF aren't available it logs the
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reason and the daemon runs poll-only — a broken probe can never take detection
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down. Lineage: the rule-driven engine + SIDs come from **Snort**; the host-IDS
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framing (and the queued FIM / hidden-process checks) from **OSSEC**.
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## Architecture
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```
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enodia_sentinel/
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├── cli.py run / check / baseline / list-detectors
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├── daemon.py sweep loop · cooldown dedup · backgrounded SUID scan
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├── system.py SystemState — one cached snapshot of /proc + ss per sweep
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├── snapshot.py forensic text+JSON capture · response guidance · retention
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├── config.py dataclass config (TOML + env overrides)
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├── netutil.py public-IP / CIDR logic (stdlib ipaddress)
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├── alert.py Alert / Severity (with Snort-style sid + classtype)
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├── web.py HTTPS read-only management console + JSON API + auth
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├── static/ the self-contained dashboard SPA
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├── fim.py file integrity monitoring (hash baseline + pacman verify)
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├── pkgdb.py package-DB integrity + signed-package verification
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├── rootcheck.py anti-rootkit cross-view, module names, kernel/module taint
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├── selfprotect.py self-integrity footprint + dead-man's-switch heartbeat
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├── triage.py false-positive classification
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├── provenance.py package-ownership lookups (pacman/dpkg/rpm)
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├── detectors/ poll detectors — one module per signature, each a pure
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│ function: detect(state, cfg) -> Iterable[Alert]
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├── notify/ outbound push — ntfy / Pushover / webhook backends
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└── events/ event-driven layer (eBPF)
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├── bcc_source.py real eBPF execve probe loaded via bcc
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├── bcc_syscall_source.py real eBPF syscall telemetry probe
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├── exec_event.py the ExecEvent type
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├── syscall_event.py the SyscallEvent type
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├── rules.py Snort-style ExecRule engine + default rules
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├── syscall_rules.py memory/anti-analysis SyscallRule engine
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└── monitor.py runs the probe on a thread, routes events → rules
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```
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Three complementary detection paths feed one Alert → snapshot pipeline:
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- **Poll** — every few seconds, sweep `/proc`/`ss` (catches anything lingering).
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- **Event** — eBPF fires on every `execve`, matched against the rule engine
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(catches processes that exit *between* sweeps).
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- **Syscall event** — optional eBPF telemetry catches short-lived memory and
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anti-analysis actions such as RWX mappings, `memfd_create`, `ptrace`,
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seccomp, cross-process memory access, and memory locking.
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The loop is deliberately the same control flow as the bash prototype, but the
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state lives in real objects:
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```
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every sample_interval seconds:
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state = SystemState() # /proc + ss gathered once, cached
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alerts = run_all(detectors, state, cfg)
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fresh = drop alerts still within cooldown
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if fresh:
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snapshot.capture(fresh) # on a worker thread
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```
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Two design choices keep it fast and unobtrusive:
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- **One `SystemState` per sweep.** Detectors read shared, cached `/proc`/`ss`
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data instead of each shelling out — a sweep costs ~200 ms regardless of how
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many detectors run.
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- **The filesystem-wide SUID scan runs off the loop thread** on a slow cadence,
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so the multi-second walk never stalls live detection.
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Everything in `SystemState` is **injectable**, which is what makes the detectors
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unit-testable without root or a live system (see `tests/`).
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## Quick start
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```bash
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sudo make install
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sudo make enable # start + enable the systemd service
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# prove it works — in one terminal:
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sudo tail -f /var/log/enodia-sentinel/events.log
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# in another:
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sentinel-redteam # safe, self-cleaning attack simulations
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```
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You'll watch the drills trip the core poll signatures in real time, each
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producing a `.log` + `.json` snapshot with response guidance.
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Output lives in `/var/log/enodia-sentinel/`:
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- `events.log` — one line per alert
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- `alert-YYYYMMDD-HHMMSS.log` — human-readable forensic snapshot
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- `alert-YYYYMMDD-HHMMSS.json` — same data, structured (SIEM-ready)
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### Without installing
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```bash
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make test # run the unit suite
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python3 -m enodia_sentinel.cli baseline # establish baselines
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python3 -m enodia_sentinel.cli check # run every detector once, print findings
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```
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No pip, no virtualenv, no dependencies — it's stdlib-only and installs as a
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plain package directory plus a launcher wrapper.
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## The red-team harness
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`sentinel-redteam` is the demo and the integration test in one. It simulates
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each threat with **safe, clearly-labeled stand-ins** (everything tagged
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`enodia-drill`, auto-cleaned on exit), using a local Python TCP listener so no
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traffic ever leaves the host:
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```bash
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sentinel-redteam --list # list drills
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sentinel-redteam reverse_shell new_suid # run specific ones
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HOLD=30 sentinel-redteam # keep artifacts alive 30s
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```
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It never touches your real dotfiles or `/etc/ld.so.preload`; the LD_PRELOAD
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drill only sets the env var on a throwaway process.
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## Testing
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```bash
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make test # stdlib unittest suite, no runtime deps
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```
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Detectors are pure functions over an injectable `SystemState`, so tests build
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fake processes/sockets and assert on the alerts — no root, no `/proc`, no `ss`:
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```python
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proc = FakeProc(pid=100, comm="bash", _stdio_inode=999)
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sock = Socket("ESTAB", "127.0.0.1:55", "9.9.9.9:443", 999, "bash", 100)
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state = SystemState(processes=[proc], sockets=[sock])
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assert list(reverse_shell.detect(state, Config()))[0].signature == "reverse_shell"
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```
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## Configuration
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Edit `/etc/enodia-sentinel.toml`, then `sudo systemctl restart
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enodia-sentinel.service`. Every key is optional. Highlights:
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| Key | Default | Purpose |
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| `sample_interval` | 4 | seconds between sweeps |
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| `cooldown` | 60 | min seconds before re-alerting a signature |
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| `detectors` | all 11 | the enabled detector list |
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| `interpreters` | bash sh … | process names treated as shells |
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| `egress_allow_cidrs` | [] | trusted public ranges (won't trip egress) |
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| `input_snooper_allow_comms` | desktop input stack | comm names allowed to hold input devices |
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| `credential_access_allow_comms` | auth/keyring/browsers | comm names allowed to read credential stores |
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| `credential_access_extra_paths` | [] | extra exact paths or directory prefixes treated as secrets |
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| `stealth_network_allow_comms` | network managers/sniffers | comm names allowed to own special protocol sockets |
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| `stealth_network_allow_kinds` | [] | socket families to ignore entirely |
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| `memory_obfuscation_allow_comms` | JIT runtimes/browsers | comm names allowed to own JIT-like executable anonymous mappings |
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| `memory_obfuscation_allow_paths` | [] | mapped path prefixes allowed for suspicious map shapes |
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| `suid_hot_dirs` | /tmp … | dirs where a SUID binary is CRITICAL |
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| `suid_scan_extra_dirs` | /tmp … | writable mounts always scanned (tmpfs-safe) |
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| `capture_execve_bpftrace` | false | add a bpftrace execve trace to snapshots |
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| `ebpf_exec_monitor` | true | optional execve event monitor |
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| `ebpf_syscall_monitor` | true | optional memory/anti-analysis syscall monitor |
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| `notify_users` | [] | desktop notify-send targets |
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| `pkgdb_pkgverify` | false | verify on-disk files against signed cache packages |
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| `pkgdb_pkgverify_sample` | 40 | packages verified per pass (rotates over time) |
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| `rootcheck_enabled` | true | run the anti-rootkit cross-view sweep |
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| `rootcheck_interval` | 300 | seconds between cross-view sweeps |
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## Web dashboard
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A read-only HTTPS management console, served by the stdlib `http.server` (no
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Flask, no JS framework, no CDN — one self-contained page):
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```bash
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enodia-sentinel web # serves on the Tailscale IP by default
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# or as a service:
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sudo systemctl enable --now enodia-sentinel-web
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```
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- **Bound to your Tailscale interface** by default (auto-detected), so it's
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reachable from your phone/laptop on the tailnet but not the LAN or internet.
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- **TLS is mandatory.** If `web_tls_cert` / `web_tls_key` are unset, Sentinel
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auto-generates a self-signed certificate under `log_dir`. Add a browser
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exception for now, or point config at a local/private CA certificate.
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- **Bearer-token auth** (constant-time check); the token is auto-generated and
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saved on first run and printed in the startup line. Open
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`https://<tailscale-ip>:8787/?token=…`.
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- **Read-only management**: incidents, timelines, alert inventory, posture
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findings, event tail, and dry-run response plans. No commands are executed
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from the browser. JSON
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API at `/api/status`, `/api/incidents`, `/api/respond/plan/<id>`,
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`/api/posture`, `/api/alerts`, `/api/alerts/<id>`, `/api/events`.
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CLI-generated response plans are saved for handoff/review under
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`<log_dir>/response-plans/`, with a JSONL trail in
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`<log_dir>/response-audit.log`. Dashboard plan previews stay read-only and do
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not create artifacts.
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## Phone push notifications
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When an alert at/above `notify_min_severity` fires, Sentinel pushes to whichever
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backends you've configured (all via stdlib `urllib`, no SDKs):
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| Backend | Enable by setting | Notes |
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| **ntfy** | `notify_ntfy_url` + `notify_ntfy_topic` | open-source, self-hostable, free apps |
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| **Pushover** | `notify_pushover_token` + `_user` | polished, reliable |
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| **Webhook** | `notify_webhook_url` | generic JSON POST (Discord/Slack/your own) |
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Severity maps to each service's priority (a CRITICAL is an urgent ntfy push / a
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high-priority Pushover). Sends happen on worker threads and swallow their own
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errors — a flaky notifier never stalls detection.
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```toml
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notify_min_severity = "HIGH"
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notify_ntfy_url = "https://ntfy.sh"
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notify_ntfy_topic = "enodia-7Hq2x" # keep this secret — it's the access control
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```
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## Tamper-evidence & self-protection
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An attacker's first move against a sensor is to disable or blind it — and on a
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box where they have root, *any* purely-local defense is ultimately defeatable
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(they share your privileges). Sentinel doesn't pretend otherwise. The goal is to
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make tampering **evident** by anchoring trust where the attacker has less
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control, and to make going silent *loud*.
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**Package-DB integrity.** `pacman -Qkk` trusts the local package database — so a
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root attacker can modify `/usr/bin/ssh` *and* rewrite its stored checksum, and
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verification passes. Sentinel guards the DB itself: a legitimate change only
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happens during a logged transaction, so it anchors a fingerprint of
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`/var/lib/pacman/local` (refreshed *only* by the pacman hook) and cross-checks
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`pacman.log`. A DB change with **no corresponding transaction** is flagged
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`pkgdb_tamper` (CRITICAL, `sid 100021`) — directly catching the "overwrite the
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hashes" attack.
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**Self-integrity.** Sentinel's own binaries, config, systemd units, and pacman
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hook are always in the FIM watch set, so tampering with the watchdog trips the
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watchdog.
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**Dead-man's switch.** The daemon writes a heartbeat every loop; the dashboard
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exposes its age. Run an external watcher on another host (over Tailscale) and
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*silence becomes the alarm*:
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```bash
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# on a SEPARATE machine — alerts you if the sensor or the whole box goes dark
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enodia-sentinel watchdog --url https://100.x.x.x:8787 --token <T> --max-age 120 --insecure-tls
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```
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**Hardening (the layers beyond on-box detection):**
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1. **Immutability** — `chattr +i` Sentinel's binaries, config, baselines, and
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the pacman hook so even root must visibly clear the flag first.
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2. ✅ **Cryptographic anchor (done)** — verify on-disk files against the *signed*
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package in the cache rather than the mutable DB; a maintainer's PGP signature
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is a root of trust the attacker doesn't hold. See *Signed-package verification*
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below.
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3. **External anchor (next)** — mirror the DB/FIM fingerprints off-box so a
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local attacker can't refresh the anchor to cover their tracks.
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> On "anti-rootkit": the robust version isn't stealth (fragile, and a genuine
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> dual-use rootkit technique) — it's tamper-*evidence*. Don't hide; be
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> un-hideable. The durable defenses move the trust anchor below or outside the
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> attacker: signatures, external monitors, and ultimately the kernel (the eBPF
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> roadmap) rather than userland the attacker can rewrite.
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### Signed-package verification (the independent anchor)
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Layer 1 (above) catches an *out-of-band* DB edit. But a root attacker can do the
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full job: modify `/usr/bin/sshd`, rewrite its hash in the local DB, **and** run
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`fim-update` to re-anchor — defeating both `pacman -Qkk` and the DB-fingerprint
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check, because every reference they're checked against is one they can rewrite.
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The one reference they *can't* forge is the distro's signing key. Packages in
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the cache are signed, and each carries a `.MTREE` manifest of per-file SHA-256
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hashes. Layer 2 extracts that manifest from the **cached package** and compares
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the on-disk files to it — a reference independent of the local DB:
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```bash
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enodia-sentinel pkgdb-verify # verify a rotating sample of packages
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enodia-sentinel pkgdb-verify --sample 200 # verify more per run
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```
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A divergence is `pkg_signature_mismatch` (CRITICAL, `sid 100027`) — a trojaned
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binary that a rewritten checksum DB would have hidden. It also flags a
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`SigLevel` downgrade in `pacman.conf` (`pacman_siglevel_disabled`, CRITICAL,
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`sid 100026`), since disabling signature checking is how an attacker would slip
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an unsigned package past the anchor in the first place.
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Verifying every package each pass is expensive (untar + hash every file), so it
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runs on its own slow cadence (`pkgdb_pkgverify_interval`) and checks a **rotating
|
|
sample** (`pkgdb_pkgverify_sample`) per pass — over enough passes the whole
|
|
installed set is covered, and any single mismatch fires immediately. It's
|
|
off by default (needs the package cache populated); enable with `pkgdb_pkgverify
|
|
= true`.
|
|
|
|
## Anti-rootkit (cross-view detection)
|
|
|
|
A rootkit hides by lying to one view of the system — but the technique that
|
|
hides it is also how you catch it: **ask the same question two different ways and
|
|
compare the answers.** A discrepancy is the hiding artifact.
|
|
|
|
| Cross-check | Hidden thing it surfaces | `sid` |
|
|
|---|---|---|
|
|
| `kill(pid, 0)` for every PID vs the `/proc` listing | a process the kernel schedules but `/proc` omits | 100022 |
|
|
| `/proc` process listing vs `ps -e` | a process visible to the kernel but hidden from normal process tools | 100038 |
|
|
| `/sys/module` (initstate=live) vs `/proc/modules` | a loaded LKM hidden from the module list | 100023 |
|
|
| `/proc/net/tcp` vs `ss` | a listening port a hooked `ss` won't report | 100024 |
|
|
| `/sys/class/net/*/flags` | an interface in promiscuous mode (a sniffer) | 100025 |
|
|
| known LKM rootkit module names | Diamorphine/Reptile/Adore-style module artifacts | 100028 |
|
|
| `/sys/module/*/taint` | out-of-tree/proprietary/unsigned loaded modules needing review | 100029 |
|
|
| `/proc/sys/kernel/tainted` | global kernel taint: forced loads/unloads, unsigned modules, warnings | 100030 |
|
|
| `/proc/net/udp` vs `ss -u` | a UDP socket a hooked `ss` won't report | 100031 |
|
|
| `/proc/net/raw` vs `ss -w` | a raw socket protocol a hooked `ss` won't report | 100034 |
|
|
| `/proc/net/raw` ICMP protocols | persistent raw ICMP sockets used by knockers/sniffers | 100035 |
|
|
| `/proc/net` special families vs `ss` | SCTP/DCCP/packet/TIPC/XDP sockets a hooked `ss` won't report | 100037 |
|
|
|
|
```bash
|
|
enodia-sentinel rootcheck # one-shot cross-view scan
|
|
```
|
|
|
|
The daemon runs it on a slow background cadence (`rootcheck_interval`) and routes
|
|
any finding into the normal alert/snapshot/push pipeline. If you intentionally
|
|
run tainted vendor/DKMS modules, add exact names to `rootcheck_module_allow`.
|
|
Known rootkit module names are never suppressed by that allowlist.
|
|
|
|
**Honest limits:** this
|
|
runs in user space, so it reliably catches userland (`LD_PRELOAD`) rootkits and
|
|
the common `/proc`-hiding LKMs, but a kernel rootkit that hooks *every* path
|
|
consistently can still evade it. It raises the bar and catches the common cases;
|
|
it is not a guarantee against a bespoke ring-0 implant — pair it with the off-box
|
|
dead-man's switch. (Lineage: OSSEC's rootcheck / `chkrootkit`'s cross-view idea.)
|
|
|
|
## File integrity monitoring (Tripwire-style)
|
|
|
|
Detects tampering with binaries and critical configs by **content hash**, so it
|
|
catches a malicious swap even when the timestamp is preserved (the weakness of
|
|
mtime-based checks). Two engines, split by who owns the file:
|
|
|
|
- **Package verification** — `pacman -Qkk` checks package-owned binaries against
|
|
the distro's *own signed checksums*. No baseline to maintain, and it's
|
|
implicitly current because the package DB updates on every `pacman -Syu`. A
|
|
trojaned `/usr/bin/ssh` surfaces as a checksum mismatch (CRITICAL, `sid 100020`).
|
|
- **Hash baseline** — a SHA-256 baseline of the files pacman *doesn't* track
|
|
(`/usr/local`, `/etc` configs, systemd units, SSH keys). A pacman
|
|
`PostTransaction` **hook** runs `fim-update` after every upgrade, so legitimate
|
|
package changes never alert — no manual `tripwire --update` ritual.
|
|
|
|
```bash
|
|
enodia-sentinel fim-baseline # establish the baseline
|
|
enodia-sentinel fim-check # report changes vs baseline
|
|
enodia-sentinel fim-check --packages # also verify package-owned files
|
|
```
|
|
|
|
The baseline is **only** refreshed by `fim-update` / the pacman hook — a flagged
|
|
change stays flagged until you acknowledge it, exactly like Tripwire. The daemon
|
|
runs the scan on a slow background cadence (`fim_scan_interval`) and routes any
|
|
change into the normal alert/snapshot/push pipeline (`fim_modified` `sid 100017`,
|
|
`fim_added` `100018`, `fim_removed` `100019`).
|
|
|
|
## False positives & triage
|
|
|
|
An EDR that cries wolf gets ignored, so Sentinel ships explicit tooling to
|
|
separate benign noise from real findings — built on **provenance**: a binary
|
|
shipped by your package manager (`pacman`/`dpkg`/`rpm`) is overwhelmingly likely
|
|
to be legitimate (the same idea behind OSSEC's rootcheck and AIDE).
|
|
|
|
```bash
|
|
enodia-sentinel triage # classify captured alerts, suggest allowlist entries
|
|
```
|
|
|
|
```
|
|
12 distinct detections — 11 likely false-positive, 1 to review.
|
|
|
|
[FP ] new_listener x99 listener binary is package-owned (qbittorrent)
|
|
[FP ] new_listener x1 loopback-only listener (not externally reachable)
|
|
[REVIEW] new_listener x1 unrecognized listener *:1740 (?)
|
|
...
|
|
To suppress the false positives, add to your config:
|
|
# listener_allow_comms += "qbittorrent"
|
|
```
|
|
|
|
Triage is deliberately conservative: `reverse_shell`, `egress`, and the eBPF
|
|
exec rules are **always** flagged review (provenance can't clear a network
|
|
shell), and any listener it *can't* attribute to a process is reviewed rather
|
|
than cleared. Suppression is never automatic — you choose what to allowlist.
|
|
|
|
Knobs to quiet known-good activity:
|
|
|
|
| Config | Effect |
|
|
|---|---|
|
|
| `listener_allow_comms` | never alert on listeners owned by these apps |
|
|
| `listener_allow_ports` | never alert on these ports |
|
|
| `suppress_package_owned_listeners` | drop `new_listener` when the binary is package-owned (best single knob for a desktop/seedbox) |
|
|
| `egress_allow_cidrs` | trusted public ranges for the egress detector |
|
|
| `suid_hot_dirs` / `exec_rules_file` | tune SUID criticality / add custom exec rules |
|
|
|
|
## Security model
|
|
|
|
Sentinel runs as root because it must read every process's `/proc`, the full
|
|
socket table, and root-owned files like `authorized_keys`. The systemd unit
|
|
constrains that power: `ProtectSystem=strict` with the log dir as the only
|
|
writable path, `ProtectHome=read-only`, `NoNewPrivileges`,
|
|
`MemoryDenyWriteExecute`, `RestrictNamespaces`, and a minimal capability set
|
|
(`CAP_SYS_PTRACE`, `CAP_DAC_READ_SEARCH`). It only ever **reads** the system and
|
|
**writes** to its own log directory.
|
|
|
|
## Enabling the eBPF monitor
|
|
|
|
The event layer needs `python-bpfcc` and privileges the hardened unit
|
|
deliberately withholds (bcc JIT-compiles its programs, so it needs write+exec
|
|
memory and `CAP_BPF`/`CAP_PERFMON`/`CAP_SYS_ADMIN`). Under the default unit the
|
|
monitor simply fails closed and the daemon runs poll-only. To turn it on:
|
|
|
|
```bash
|
|
sudo pacman -S python-bpfcc
|
|
sudo install -Dm644 systemd/enodia-sentinel-ebpf.conf \
|
|
/etc/systemd/system/enodia-sentinel.service.d/ebpf.conf
|
|
sudo systemctl daemon-reload && sudo systemctl restart enodia-sentinel
|
|
# confirm:
|
|
grep 'eBPF exec monitor' /var/log/enodia-sentinel/events.log
|
|
grep 'eBPF syscall monitor' /var/log/enodia-sentinel/events.log
|
|
```
|
|
|
|
The drop-in relaxes `MemoryDenyWriteExecute` and widens the capability set — a
|
|
conscious tradeoff documented in the file itself.
|
|
|
|
## Roadmap
|
|
|
|
The short version: Enodia grows from a local IDS/IPS/EDR agent into a host
|
|
security platform: incident grouping, posture checks, response planning, richer
|
|
eBPF telemetry, fleet health, external anchors, and eventually attestation-ready
|
|
assurance.
|
|
|
|
See [docs/ROADMAP.md](docs/ROADMAP.md) for the release tracks and phased plan.
|
|
The polling daemon isn't throwaway — it's the **oracle**: every signature is a
|
|
test case the event layer must reproduce, and `sentinel-redteam` is the shared
|
|
regression suite for both.
|
|
|
|
## Project status
|
|
|
|
v0.8-dev — expands security monitoring for Gonzalo/Peopleswar-style samples:
|
|
`input_snooper` catches direct keyboard/HID event access, `credential_access`
|
|
catches live credential harvesting against shadow files, SSH keys, browser
|
|
stores, and secret profiles, `stealth_network` watches SCTP/DCCP/raw/packet and
|
|
other special protocol families, and rootcheck now covers raw ICMP plus hidden
|
|
SCTP/DCCP/packet-family sockets. Process-hiding coverage now includes `/proc`
|
|
vs `ps` cross-view checks and memory-map scanning for mapped hide libraries,
|
|
RWX/executable anonymous memory, and executable memfd/deleted mappings.
|
|
|
|
v0.7 — closes the tamper-evidence loop with the **independent anchor**:
|
|
signed-package verification (compares on-disk files to the `.MTREE` in the signed
|
|
cache package, surviving a rewritten checksum DB) plus a `SigLevel`-downgrade
|
|
check, and an **anti-rootkit cross-view** layer (hidden processes, modules,
|
|
TCP/UDP sockets, promiscuous interfaces, known LKM rootkit names, and
|
|
kernel/module taint — each caught by asking independent views and diffing the
|
|
answers).
|
|
|
|
v0.6 — adds **tamper-evidence**: out-of-band package-DB integrity
|
|
(catches rewritten checksums), self-integrity of Sentinel's own footprint, and a
|
|
dead-man's-switch heartbeat with an external watchdog.
|
|
|
|
v0.5 — adds **file integrity monitoring** (SHA-256 baseline + `pacman -Qkk`
|
|
verification, auto-refreshed by a pacman hook) and **false-positive triage**
|
|
via package-ownership provenance.
|
|
|
|
v0.4 — adds a read-only **web dashboard** (stdlib server, Tailscale-bound,
|
|
token-auth; now HTTPS-only) and **phone push** (ntfy / Pushover / webhook),
|
|
both zero-dependency.
|
|
|
|
v0.3 — adds the event-driven **eBPF layer**: a real `bcc` execve probe feeding a
|
|
Snort-style declarative rule engine (4 default rules), stable signature IDs +
|
|
classtypes on every detection, fail-safe degradation to poll-only, and an
|
|
opt-in hardening drop-in. Inspired by Snort (rule engine, SIDs) and OSSEC (HIDS
|
|
framing; FIM + hidden-process checks are next).
|
|
|
|
v0.2 — Python re-architecture of the bash prototype: 7 detectors, text+JSON
|
|
forensic snapshots, backgrounded SUID scanning, 25-test unit suite, red-team
|
|
harness, hardened systemd unit, Arch packaging. Zero runtime dependencies.
|
|
Built and tested on Arch Linux.
|
|
|
|
## License
|
|
|
|
GPL-3.0-or-later — see [LICENSE](LICENSE).
|