Files
msd-core/gsd-core/workflows/secure-phase.md
Tom Boucher 207d8f1697 fix(#1626): make the security gate severity-aware via per-threat severity (#1635)
workflow.security_block_on was documented as the minimum threat severity
that blocks advancement, but threats carried no severity and the auditor's
threats_open count (the SECURITY.md gate field) counted every open threat
regardless of severity — so the threshold had no effect, and the auditor's
block_on vocabulary (open/unregistered/none) did not even match the config
enum (critical/high/medium/low/none).

- planner: add a Severity column to the STRIDE threat register; assign
  severity per threat.
- auditor: read severity; reconcile the <config> block_on domain to the
  severity enum; redefine threats_open as the count of OPEN threats whose
  severity is at or above block_on (none => 0). Below-threshold opens are
  reported as non-blocking and excluded from threats_open.
- SECURITY.md template + planning-config.md reconciled.

No gate-check site changed: threats_open == 0 stays the gate everywhere;
only its computation is now severity-filtered.

Co-authored-by: Claude Opus 4.8 <noreply@anthropic.com>
2026-06-23 19:04:13 -04:00

13 KiB
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Verify threat mitigations for a completed phase. Confirm PLAN.md threat register dispositions are resolved. Update SECURITY.md.

<required_reading> @~/.claude/gsd-core/references/ui-brand.md </required_reading>

<available_agent_types> Valid GSD subagent types (use exact names — do not fall back to 'general-purpose'):

  • gsd-security-auditor — Verifies threat mitigation coverage </available_agent_types>

0. Initialize

_GSD_SHIM_NAME="gsd-tools.cjs"; _GSD_RUNTIME_ROOT="${RUNTIME_DIR:-$(git rev-parse --show-toplevel 2>/dev/null || pwd)}"; GSD_TOOLS="${_GSD_RUNTIME_ROOT}/gsd-core/bin/${_GSD_SHIM_NAME}"; if [ -f "$GSD_TOOLS" ]; then gsd_run() { node "$GSD_TOOLS" "$@"; }; elif [ -f "${_GSD_RUNTIME_ROOT}/.claude/gsd-core/bin/${_GSD_SHIM_NAME}" ]; then GSD_TOOLS="${_GSD_RUNTIME_ROOT}/.claude/gsd-core/bin/${_GSD_SHIM_NAME}"; gsd_run() { node "$GSD_TOOLS" "$@"; }; elif [ -f "${_GSD_RUNTIME_ROOT}/.codex/gsd-core/bin/${_GSD_SHIM_NAME}" ]; then GSD_TOOLS="${_GSD_RUNTIME_ROOT}/.codex/gsd-core/bin/${_GSD_SHIM_NAME}"; gsd_run() { node "$GSD_TOOLS" "$@"; }; elif command -v gsd-tools >/dev/null 2>&1; then GSD_TOOLS="$(command -v gsd-tools)"; gsd_run() { "$GSD_TOOLS" "$@"; }; elif [ -f "$HOME/.claude/gsd-core/bin/${_GSD_SHIM_NAME}" ]; then GSD_TOOLS="$HOME/.claude/gsd-core/bin/${_GSD_SHIM_NAME}"; gsd_run() { node "$GSD_TOOLS" "$@"; }; elif [ -f "${HERMES_HOME:-$HOME/.hermes}/gsd-core/bin/${_GSD_SHIM_NAME}" ]; then GSD_TOOLS="${HERMES_HOME:-$HOME/.hermes}/gsd-core/bin/${_GSD_SHIM_NAME}"; gsd_run() { node "$GSD_TOOLS" "$@"; }; elif [ -f "${CURSOR_CONFIG_DIR:-$HOME/.cursor}/gsd-core/bin/${_GSD_SHIM_NAME}" ]; then GSD_TOOLS="${CURSOR_CONFIG_DIR:-$HOME/.cursor}/gsd-core/bin/${_GSD_SHIM_NAME}"; gsd_run() { node "$GSD_TOOLS" "$@"; }; elif [ -f "${CODEX_HOME:-$HOME/.codex}/gsd-core/bin/${_GSD_SHIM_NAME}" ]; then GSD_TOOLS="${CODEX_HOME:-$HOME/.codex}/gsd-core/bin/${_GSD_SHIM_NAME}"; gsd_run() { node "$GSD_TOOLS" "$@"; }; elif [ -f "${GEMINI_CONFIG_DIR:-$HOME/.gemini}/gsd-core/bin/${_GSD_SHIM_NAME}" ]; then GSD_TOOLS="${GEMINI_CONFIG_DIR:-$HOME/.gemini}/gsd-core/bin/${_GSD_SHIM_NAME}"; gsd_run() { node "$GSD_TOOLS" "$@"; }; elif [ -f "${COPILOT_CONFIG_DIR:-$HOME/.copilot}/gsd-core/bin/${_GSD_SHIM_NAME}" ]; then GSD_TOOLS="${COPILOT_CONFIG_DIR:-$HOME/.copilot}/gsd-core/bin/${_GSD_SHIM_NAME}"; gsd_run() { node "$GSD_TOOLS" "$@"; }; elif [ -f "${WINDSURF_CONFIG_DIR:-$HOME/.codeium/windsurf}/gsd-core/bin/${_GSD_SHIM_NAME}" ]; then GSD_TOOLS="${WINDSURF_CONFIG_DIR:-$HOME/.codeium/windsurf}/gsd-core/bin/${_GSD_SHIM_NAME}"; gsd_run() { node "$GSD_TOOLS" "$@"; }; elif [ -f "${AUGMENT_CONFIG_DIR:-$HOME/.augment}/gsd-core/bin/${_GSD_SHIM_NAME}" ]; then GSD_TOOLS="${AUGMENT_CONFIG_DIR:-$HOME/.augment}/gsd-core/bin/${_GSD_SHIM_NAME}"; gsd_run() { node "$GSD_TOOLS" "$@"; }; elif [ -f "${TRAE_CONFIG_DIR:-$HOME/.trae}/gsd-core/bin/${_GSD_SHIM_NAME}" ]; then GSD_TOOLS="${TRAE_CONFIG_DIR:-$HOME/.trae}/gsd-core/bin/${_GSD_SHIM_NAME}"; gsd_run() { node "$GSD_TOOLS" "$@"; }; elif [ -f "${QWEN_CONFIG_DIR:-$HOME/.qwen}/gsd-core/bin/${_GSD_SHIM_NAME}" ]; then GSD_TOOLS="${QWEN_CONFIG_DIR:-$HOME/.qwen}/gsd-core/bin/${_GSD_SHIM_NAME}"; gsd_run() { node "$GSD_TOOLS" "$@"; }; elif [ -f "${CODEBUDDY_CONFIG_DIR:-$HOME/.codebuddy}/gsd-core/bin/${_GSD_SHIM_NAME}" ]; then GSD_TOOLS="${CODEBUDDY_CONFIG_DIR:-$HOME/.codebuddy}/gsd-core/bin/${_GSD_SHIM_NAME}"; gsd_run() { node "$GSD_TOOLS" "$@"; }; elif [ -f "${CLINE_CONFIG_DIR:-$HOME/.cline}/gsd-core/bin/${_GSD_SHIM_NAME}" ]; then GSD_TOOLS="${CLINE_CONFIG_DIR:-$HOME/.cline}/gsd-core/bin/${_GSD_SHIM_NAME}"; gsd_run() { node "$GSD_TOOLS" "$@"; }; elif [ -f "${GROK_AGENTS_HOME:-$HOME/.agents}/gsd-core/bin/${_GSD_SHIM_NAME}" ]; then GSD_TOOLS="${GROK_AGENTS_HOME:-$HOME/.agents}/gsd-core/bin/${_GSD_SHIM_NAME}"; gsd_run() { node "$GSD_TOOLS" "$@"; }; elif [ -f "${ANTIGRAVITY_CONFIG_DIR:-$HOME/.gemini/antigravity}/gsd-core/bin/${_GSD_SHIM_NAME}" ]; then GSD_TOOLS="${ANTIGRAVITY_CONFIG_DIR:-$HOME/.gemini/antigravity}/gsd-core/bin/${_GSD_SHIM_NAME}"; gsd_run() { node "$GSD_TOOLS" "$@"; }; elif [ -f "${OPENCODE_CONFIG_DIR:-${XDG_CONFIG_HOME:-$HOME/.config}/opencode}/gsd-core/bin/${_GSD_SHIM_NAME}" ]; then GSD_TOOLS="${OPENCODE_CONFIG_DIR:-${XDG_CONFIG_HOME:-$HOME/.config}/opencode}/gsd-core/bin/${_GSD_SHIM_NAME}"; gsd_run() { node "$GSD_TOOLS" "$@"; }; elif [ -f "${KILO_CONFIG_DIR:-${XDG_CONFIG_HOME:-$HOME/.config}/kilo}/gsd-core/bin/${_GSD_SHIM_NAME}" ]; then GSD_TOOLS="${KILO_CONFIG_DIR:-${XDG_CONFIG_HOME:-$HOME/.config}/kilo}/gsd-core/bin/${_GSD_SHIM_NAME}"; gsd_run() { node "$GSD_TOOLS" "$@"; }; else echo "ERROR: gsd-tools.cjs not found at $GSD_TOOLS and gsd-tools is not on PATH. Run: npx -y @opengsd/gsd-core@latest --claude --local" >&2; exit 1; fi; if [ -n "${CLAUDE_ENV_FILE:-}" ] && [ -n "${GSD_TOOLS:-}" ]; then printf "export PATH='%s':\"\$PATH\"\n" "${GSD_TOOLS%/*}" >> "$CLAUDE_ENV_FILE" 2>/dev/null || true; fi
INIT=$(gsd_run query init.phase-op "${PHASE_ARG}")
if [[ "$INIT" == @file:* ]]; then INIT=$(cat "${INIT#@file:}"); fi
AGENT_SKILLS_AUDITOR=$(gsd_run query agent-skills gsd-security-auditor)

Parse: phase_dir, phase_number, phase_name, phase_slug, padded_phase.

AUDITOR_MODEL=$(gsd_run query resolve-model gsd-security-auditor --raw)
VERIFY_POST_HOOKS_JSON=$(gsd_run loop render-hooks verify:post --raw)
SECURITY_ASVS=$(gsd_run query config-get workflow.security_asvs_level --raw 2>/dev/null || echo "1")
SECURITY_BLOCK_ON=$(gsd_run query config-get workflow.security_block_on --raw 2>/dev/null || echo "high")

Resolve active step hooks from VERIFY_POST_HOOKS_JSON where kind == "step" and ref.skill == "secure-phase".

If no active secure-phase step hook exists: exit with "Security enforcement disabled. Enable via /gsd:settings."

Display banner: GSD > SECURE PHASE {N}: {name}

1. Detect Input State

SECURITY_FILE=$(ls "${PHASE_DIR}"/*-SECURITY.md 2>/dev/null | head -1)
PLAN_FILES=$(ls "${PHASE_DIR}"/*-PLAN.md 2>/dev/null)
SUMMARY_FILES=$(ls "${PHASE_DIR}"/*-SUMMARY.md 2>/dev/null)
  • State A (SECURITY_FILE non-empty): Audit existing
  • State B (SECURITY_FILE empty, PLAN_FILES and SUMMARY_FILES non-empty): Run from artifacts
  • State C (SUMMARY_FILES empty): Exit — "Phase {N} not executed. Run /gsd:execute-phase {N} first."

2. Discovery

2a. Read Phase Artifacts

Read PLAN.md — extract <threat_model> block: trust boundaries, STRIDE register (threat_id, category, component, severity, disposition, mitigation_plan).

2b. Read Summary Threat Flags

Read SUMMARY.md — extract ## Threat Flags entries.

2c. Build Threat Register

Per threat: { threat_id, category, component, severity, disposition, mitigation_pattern, files_to_check }

Also set register_authored_at_plan_time: true if at least one PLAN file contained a parseable <threat_model> block; false if no PLAN files had any <threat_model> block (legacy phase authored before formal threat modelling was standard).

3. Threat Classification

Classify each threat:

Status Criteria
CLOSED mitigation found OR accepted risk documented in SECURITY.md OR transfer documented
OPEN none of the above

Build: { threat_id, category, component, severity, disposition, status, evidence }

Short-circuit rule:

  • If threats_open: 0 AND register_authored_at_plan_time: true AND asvs_level == 1 → skip to Step 6 directly. No open threats at or above the block threshold remain (threats_open: 0); below-threshold open threats may remain and are non-blocking. L1 grep-depth is sufficient; no deeper verification required.
  • If threats_open: 0 AND register_authored_at_plan_time: true AND asvs_level >= 2 → do NOT skip. The preliminary threat classification is grep-level (L1 depth) and is insufficient for L2/L3. Proceed to Step 5 (spawn the auditor) so that L2 boundary-placement checks and L3 end-to-end trace checks are performed. Skipping the auditor here would defeat ASVS level scaling for "clean" phases.
  • If threats_open: 0 AND register_authored_at_plan_time: false → do NOT skip. Empty-by-no-planning must not rubber-stamp a clean SECURITY.md. Proceed to Step 5 in retroactive-STRIDE mode — the auditor builds a register from implementation files first, then verifies mitigations.
  • If threats_open > 0 → proceed to Step 4 (present threat plan to user).

4. Present Threat Plan

Text mode (workflow.text_mode: true in config or --text flag): Set TEXT_MODE=true if --text is present in $ARGUMENTS OR text_mode from init JSON is true. When TEXT_MODE is active, replace every AskUserQuestion call with a plain-text numbered list and ask the user to type their choice number. This is required for non-Claude runtimes (OpenAI Codex, Gemini CLI, etc.) where AskUserQuestion is not available. Call AskUserQuestion with threat table and options:

  1. "Verify all open threats" → Step 5
  2. "Accept all open — document in accepted risks log" → add to SECURITY.md accepted risks, set all CLOSED, Step 6
  3. "Cancel" → exit

5. Spawn gsd-security-auditor

Auditor constraint — varies by register origin:

  • register_authored_at_plan_time: true — Verify mitigations exist — do not scan for new threats. The register is complete; verify each threat's mitigation is present in the implementation.
  • register_authored_at_plan_time: false (retroactive-STRIDE mode) — Retroactive-STRIDE: build a STRIDE register from implementation files first, then verify mitigations. The phase was authored before formal threat modelling; the auditor must construct the register from scratch before verifying.

Substitute {SECURITY_ASVS} with the value of $SECURITY_ASVS and {SECURITY_BLOCK_ON} with the value of $SECURITY_BLOCK_ON resolved in Step 0 via config-get.

Print: ◆ Spawning security auditor... (runs in a subagent — no output until it returns, ~1–5 min; expected, not a freeze)

Agent(
  prompt="Read ~/.claude/agents/gsd-security-auditor.md for instructions.\n\n" +
    "<files_to_read>{PLAN, SUMMARY, impl files, SECURITY.md}</files_to_read>" +
    "<threat_register>{threat register}</threat_register>" +
    "<config>asvs_level: {SECURITY_ASVS}, block_on: {SECURITY_BLOCK_ON}</config>" +
    "<constraints>Never modify implementation files. Verify mitigations exist — do not scan for new threats. Escalate implementation gaps.</constraints>" +
    "${AGENT_SKILLS_AUDITOR}",
  subagent_type="gsd-security-auditor",
  model="{AUDITOR_MODEL}",
  description="Verify threat mitigations for Phase {N}"
)

ORCHESTRATOR RULE — CODEX RUNTIME: After calling Agent() above, stop working on this task immediately. Do not read more files, edit code, or run tests related to this task while the subagent is active. Wait for the subagent to return its result. This prevents duplicate work, conflicting edits, and wasted context. Only resume when the subagent result is available.

Handle return:

  • ## SECURED → record closures → Step 6
  • ## OPEN_THREATS → record closed + open, present user with accept/block choice → Step 6
  • ## ESCALATE → present to user → Step 6

6. Write/Update SECURITY.md

State B (create):

  1. Read template from ~/.claude/gsd-core/templates/SECURITY.md
  2. Fill: frontmatter, threat register, accepted risks, audit trail
  3. Write to ${PHASE_DIR}/${PADDED_PHASE}-SECURITY.md

State A (update):

  1. Update threat register statuses, append to audit trail:
## Security Audit {date}
| Metric | Count |
|--------|-------|
| Threats found | {N} |
| Closed | {M} |
| Open | {K} |

ENFORCING GATE: If threats_open > 0 after all options exhausted (user did not accept, not all verified closed):

GSD > PHASE {N} SECURITY BLOCKED
{K} blocking threats open — phase advancement blocked until threats_open: 0
▶ Fix mitigations then re-run: /gsd:secure-phase {N}
▶ Or document accepted risks in SECURITY.md and re-run.

Do NOT emit next-phase routing. Stop here.

7. Commit

gsd_run query commit "docs(phase-${PHASE}): add/update security threat verification"

8. Results + Routing

Secured (threats_open: 0):

GSD > PHASE {N} THREAT-SECURE
threats_open: 0 — no blocking threats remain (threats_open: 0).
▶ /gsd:validate-phase {N}    validate test coverage
▶ /gsd:verify-work {N}       run UAT

Display /clear reminder.

<success_criteria>

  • Security enforcement checked — exit if false
  • Input state detected (A/B/C) — state C exits cleanly
  • PLAN.md threat model parsed, register built
  • SUMMARY.md threat flags incorporated
  • threats_open: 0 AND register_authored_at_plan_time: true AND asvs_level == 1 → skip directly to Step 6 (L1 grep-depth sufficient)
  • threats_open: 0 AND register_authored_at_plan_time: true AND asvs_level >= 2 → do NOT skip; auditor spawned for L2/L3 deep verification
  • threats_open: 0 AND register_authored_at_plan_time: false → retroactive-STRIDE mode (Step 5), not skipped
  • User gate with threat table presented
  • Auditor spawned with complete context
  • All three return formats (SECURED/OPEN_THREATS/ESCALATE) handled
  • SECURITY.md created or updated
  • threats_open > 0 BLOCKS advancement (no next-phase routing emitted)
  • Results with routing presented on success </success_criteria>