Claude Skill

session-compaction-and-restore

Use when reasoning about what survives compaction/context-loss/restart/seat-refresh, designing a high-fidelity restore packet, or distinguishing native runtime resume vs fork vs artifact-backed mental-model rebuild. Covers the 4 failure modes that prevent honest restore (compacte

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Part of mvschwarz/openrig — 47 skills

Install

skills CLI npx skills add https://github.com/mvschwarz/openrig/tree/main/packages/daemon/assets/plugins/openrig-core/skills/session-compaction-and-restore
Claude Code claude plugin marketplace add https://llmmart.ai/marketplace.json && claude plugin install mvschwarz-openrig@llmmart
Git git clone https://github.com/mvschwarz/openrig.git

The skills CLI installs just this skill, for any of its supported agents. Claude Code installs the whole mvschwarz/openrig collection as a plugin from our marketplace. Git is the plain clone.

Skill manifest

Session Compaction and Restore

Preserving useful working state across compaction, context loss, restart, or seat refresh. Includes Claude compaction restore, Codex resume/fork mechanics, transcript-based mental-model rebuilds, and durable handoff packets.

Long-lived seats are valuable only if they can survive context pressure. If compaction turns a senior seat into a cold-started agent, users will avoid persistent topologies and fall back to throwaway agents.

Use this when

  • A seat is approaching compaction or just compacted
  • Designing a high-fidelity restore packet for an active workflow
  • Distinguishing native runtime resume vs fork vs artifact-backed mental-model rebuild
  • Reasoning about what should be preserved vs reconstructable
  • Auditing a restore for product-intent preservation (not just detail preservation)

Don't use this when

  • The session is fresh and has no working state to preserve
  • The intent is to create a new seat from a primed source — that's session-source-fork or agent-starters
  • The packet is a one-off snapshot for human review — restore packets are for re-entering active work

The 5 distinctions (do not collapse)

Per the cross-runtime restore/reentry packet standard:

Mode What it means Outcome literal
Native resume Continue the same managed seat with native runtime token resumed
Fork New managed seat from prior native runtime conversation; new post-fork token forked
Rebuild Fresh-launch seeded with operator-declared artifacts in trust-precedence order rebuilt
Artifact-backed mental-model rebuild Restored seat derives understanding from a packet rather than native runtime continuity (case of rebuilt)
Fresh launch New agent without prior continuity fresh

These are load-bearing distinctions. Do NOT collapse fork into artifact-backed reentry; do NOT collapse rebuild into fork.

The three mechanisms — who owns each (verified vs main d37a08ad, 2026-07-21)

The outcomes above ride on three DISTINCT mechanisms; keep them separate:

  1. Claude built-in /compact — a Claude Code HARNESS feature, not OpenRig code. OpenRig only emits the literal /compact toward the pane after a prep turn; there is no compaction algorithm in the OpenRig repo. Provider-owned.
  2. OpenRig-managed restore — the enforcer + hook bridge: a precompact hook WRITES a restore packet; a bridge READER injects exactly ONE restore directive back via the harness hook channel (hookSpecificOutput.additionalContext), seat-isolated. The OpenRig-owned half.
  3. Codex session continuity — resume/rollout tokens (codex resume <token>), a separate path from the Claude mechanisms. Never conflate with Claude restore.

Safety boundary (ties to native-session-file-lab-boundary): no supported OpenRig path EDITS provider-owned native session / auth / transcript files to inject context. Context enters ONLY through sanctioned channels: the hook additionalContext, a normal user message via rig send, or Codex resume tokens. Precise nuance: OpenRig does write ~/.codex/config.toml — but only to install OpenRig activity hooks and [features], never session or auth state. So the rule is "never edits native session/auth/transcript files," NOT "never touches any provider-owned file."

Current CLI surface (operator / kernel seats; verified vs main d37a08ad)

Managed compaction/restore is driven by five shipped verbs — pick per intent, and stay durable-substrate-first (the packet/artifacts are the truth; the CLI is the trigger):

  • rig compact <session> — guided managed compaction for ONE Claude seat (prep → /compact → restore → audit). Non-Claude seats rejected. ~180s.
  • rig compact-plan — READ-ONLY triage; does not compact. Flags --rig, --refresh, --threshold-tokens, --threshold-percent. (Codex seats flagged codex_not_managed_by_claude_compact_in_place.)
  • rig restore-check — restore-readiness probe across running rigs; read-only; exit 0/1/2. Flags --full, --ready, --rig, --no-queue, --no-hooks.
  • rig restore-packet {write,read,validate} — the cross-runtime restore packet (v0): write / read / validate the durable packet this skill's contract defines.
  • rig restore <snapshotId> --rig <rigId> — ⚠ RIG SNAPSHOT restore (infra), a DIFFERENT mechanism — NOT session-context restore. Do not conflate.

Failure modes (4)

  1. A compacted seat forgets active workflow state and drops the hot potato. Compaction without continuity preservation is silent failure.
  2. A restore packet preserves details but loses the user's product intent. Restore must preserve why this work matters, not just what was happening.
  3. A runtime resume is mistaken for a seat handover or fork. These have different continuity outcomes and provenance — don't conflate.
  4. A rebuilt seat starts with stale instructions that conflict with current workflow mode. Restore must include current state, not just historical state.

Proof standard

Proof should include a deliberate compaction/restart of a seat with active work, followed by measured recovery: identity, current workflow, next owner, relevant files, and constraints all restored without human re-briefing.

Canonical packet contract (16-field, v0)

The cross-runtime restore/reentry packet standard v0 defines:

  • Source/target identity
  • Runtimes
  • Workspace root, default repo, role pointer
  • Bounded latest transcript
  • Touched-path inventory
  • Durable work pointers
  • Current work + next owner
  • Caveats + authority boundaries
  • Omitted classes + redaction policy
  • Source-trust ranking
  • Generated-at + generator version

Plus a 6-item restored-seat acceptance checklist.

Source-trust ranking applies when restored seat ingests packet evidence: rig whoami > target rigspec > bounded latest transcript > full transcript > touched-files > restore-summary.json.

Memory surfaces consumed at restore time

A restore may consume transcripts, durable messages, startup context, checkpoints and a restore packet. Inventory the surfaces actually present for this seat, with their source, freshness and purpose. Do not infer that a named surface exists or grants write authority.

The active project/rig policy and task authorization determine what may be written. Treat provider-owned conversation records as evidence to read through supported tooling. For placement and durable context, load skills/openrig-operating-model/SKILL.md with rig context get; for the selected startup path, use skills/core/agent-startup-and-context-ingestion/SKILL.md. A packet or marker proves retained/delivered evidence, not successful provider restoration; measure the resumed seat against the proof standard above.

See also

  • claude-compaction-restore skill — the Claude Code restore SOP (PreCompact hook + JSONL restore script for post-compaction recovery)
  • mental-model-ha skill — HA-pair compaction recovery (different scenario; sister primitive)
  • session-source-fork skill — fork mode for native-runtime-continuity-based restoration
  • seat-continuity-and-handover skill — occupant-creation primitives (resume/fork/rebuild/fresh) that this primitive instantiates
  • openrig-operating-model skill — placement and authority of durable context
Files (openrig)
  • SKILL.md 8.3 KB
    ---
    name: session-compaction-and-restore
    description: Use when reasoning about what survives compaction/context-loss/restart/seat-refresh, designing a high-fidelity restore packet, or distinguishing native runtime resume vs fork vs artifact-backed mental-model rebuild. Covers the 4 failure modes that prevent honest restore (compacted seat drops hot potato; restore packet preserves details but loses product intent; runtime resume mistaken for handover or fork; rebuilt seat starts with stale instructions).
    metadata:
      cli_surfaces_referenced:
        - whoami
      openrig:
        stage: factory-approved
        sibling_skills:
          - claude-compaction-restore
          - mental-model-ha
          - scope-recovery
          - agent-startup-and-context-ingestion
          - agent-starters
          - composable-priming-packs
          - session-source-fork
          - seat-continuity-and-handover
          - retiring-and-inheriting-a-seat
          - claude-compact-in-place
          - pre-maintenance-agent-preservation
    ---
    
    # Session Compaction and Restore
    
    Preserving useful working state across **compaction, context loss,
    restart, or seat refresh.** Includes Claude compaction restore, Codex
    resume/fork mechanics, transcript-based mental-model rebuilds, and
    durable handoff packets.
    
    **Long-lived seats are valuable only if they can survive context
    pressure.** If compaction turns a senior seat into a cold-started
    agent, users will avoid persistent topologies and fall back to
    throwaway agents.
    
    ## Use this when
    
    - A seat is approaching compaction or just compacted
    - Designing a high-fidelity restore packet for an active workflow
    - Distinguishing native runtime resume vs fork vs artifact-backed mental-model rebuild
    - Reasoning about what should be preserved vs reconstructable
    - Auditing a restore for product-intent preservation (not just detail preservation)
    
    ## Don't use this when
    
    - The session is fresh and has no working state to preserve
    - The intent is to *create* a new seat from a primed source — that's `session-source-fork` or `agent-starters`
    - The packet is a one-off snapshot for human review — restore packets are for re-entering active work
    
    ## The 5 distinctions (do not collapse)
    
    Per the cross-runtime restore/reentry packet standard:
    
    | Mode | What it means | Outcome literal |
    |---|---|---|
    | **Native resume** | Continue the same managed seat with native runtime token | `resumed` |
    | **Fork** | New managed seat from prior native runtime conversation; new post-fork token | `forked` |
    | **Rebuild** | Fresh-launch seeded with operator-declared artifacts in trust-precedence order | `rebuilt` |
    | **Artifact-backed mental-model rebuild** | Restored seat derives understanding from a packet rather than native runtime continuity | (case of `rebuilt`) |
    | **Fresh launch** | New agent without prior continuity | `fresh` |
    
    These are load-bearing distinctions. **Do NOT collapse `fork` into
    artifact-backed reentry; do NOT collapse `rebuild` into fork.**
    
    ## The three mechanisms — who owns each (verified vs main d37a08ad, 2026-07-21)
    
    The outcomes above ride on three DISTINCT mechanisms; keep them separate:
    
    1. **Claude built-in `/compact`** — a Claude Code HARNESS feature, **not OpenRig
       code**. OpenRig only *emits* the literal `/compact` toward the pane after a prep
       turn; there is no compaction algorithm in the OpenRig repo. Provider-owned.
    2. **OpenRig-managed restore** — the enforcer + hook bridge: a precompact hook
       WRITES a restore packet; a bridge READER injects exactly ONE restore directive
       back via the harness hook channel (`hookSpecificOutput.additionalContext`),
       seat-isolated. The OpenRig-owned half.
    3. **Codex session continuity** — resume/rollout tokens (`codex resume <token>`),
       a separate path from the Claude mechanisms. Never conflate with Claude restore.
    
    **Safety boundary (ties to `native-session-file-lab-boundary`):** no supported
    OpenRig path EDITS provider-owned native **session / auth / transcript** files to
    inject context. Context enters ONLY through sanctioned channels: the hook
    `additionalContext`, a normal user message via `rig send`, or Codex resume tokens.
    Precise nuance: OpenRig *does* write `~/.codex/config.toml` — but only to install
    OpenRig activity **hooks** and `[features]`, never session or auth state. So the
    rule is "never edits native session/auth/transcript files," NOT "never touches any
    provider-owned file."
    
    ## Current CLI surface (operator / kernel seats; verified vs main d37a08ad)
    
    Managed compaction/restore is driven by five shipped verbs — pick per intent, and
    stay durable-substrate-first (the packet/artifacts are the truth; the CLI is the trigger):
    
    - **`rig compact <session>`** — guided managed compaction for ONE Claude seat
      (prep → `/compact` → restore → audit). Non-Claude seats rejected. ~180s.
    - **`rig compact-plan`** — READ-ONLY triage; *does not compact*. Flags `--rig`,
      `--refresh`, `--threshold-tokens`, `--threshold-percent`. (Codex seats flagged
      `codex_not_managed_by_claude_compact_in_place`.)
    - **`rig restore-check`** — restore-readiness probe across running rigs; read-only;
      exit 0/1/2. Flags `--full`, `--ready`, `--rig`, `--no-queue`, `--no-hooks`.
    - **`rig restore-packet {write,read,validate}`** — the cross-runtime restore
      packet (v0): write / read / validate the durable packet this skill's contract defines.
    - **`rig restore <snapshotId> --rig <rigId>`** — ⚠ RIG SNAPSHOT restore (infra), a
      DIFFERENT mechanism — NOT session-context restore. Do not conflate.
    
    ## Failure modes (4)
    
    1. **A compacted seat forgets active workflow state and drops the hot potato.** Compaction without continuity preservation is silent failure.
    2. **A restore packet preserves details but loses the user's product intent.** Restore must preserve *why this work matters*, not just *what was happening*.
    3. **A runtime resume is mistaken for a seat handover or fork.** These have different continuity outcomes and provenance — don't conflate.
    4. **A rebuilt seat starts with stale instructions that conflict with current workflow mode.** Restore must include current state, not just historical state.
    
    ## Proof standard
    
    Proof should include a deliberate compaction/restart of a seat with
    active work, followed by **measured recovery**: identity, current
    workflow, next owner, relevant files, and constraints all restored
    without human re-briefing.
    
    ## Canonical packet contract (16-field, v0)
    
    The cross-runtime restore/reentry packet standard v0 defines:
    
    - Source/target identity
    - Runtimes
    - Workspace root, default repo, role pointer
    - Bounded latest transcript
    - Touched-path inventory
    - Durable work pointers
    - Current work + next owner
    - Caveats + authority boundaries
    - Omitted classes + redaction policy
    - Source-trust ranking
    - Generated-at + generator version
    
    Plus a 6-item restored-seat acceptance checklist.
    
    Source-trust ranking applies when restored seat ingests packet evidence:
    **`rig whoami` > target rigspec > bounded latest transcript > full
    transcript > touched-files > `restore-summary.json`.**
    
    ## Memory surfaces consumed at restore time
    
    A restore may consume transcripts, durable messages, startup context,
    checkpoints and a restore packet. Inventory the surfaces actually present for
    this seat, with their source, freshness and purpose. Do not infer that a named
    surface exists or grants write authority.
    
    The active project/rig policy and task authorization determine what may be
    written. Treat provider-owned conversation records as evidence to read through
    supported tooling. For placement and durable context, load
    `skills/openrig-operating-model/SKILL.md` with `rig context get`; for the
    selected startup path, use `skills/core/agent-startup-and-context-ingestion/SKILL.md`.
    A packet or marker proves retained/delivered evidence, not successful provider
    restoration; measure the resumed seat against the proof standard above.
    
    ## See also
    
    - `claude-compaction-restore` skill — the Claude Code restore SOP (PreCompact hook + JSONL restore script for post-compaction recovery)
    - `mental-model-ha` skill — HA-pair compaction recovery (different scenario; sister primitive)
    - `session-source-fork` skill — `fork` mode for native-runtime-continuity-based restoration
    - `seat-continuity-and-handover` skill — occupant-creation primitives (resume/fork/rebuild/fresh) that this primitive instantiates
    - `openrig-operating-model` skill — placement and authority of durable context
    

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