skills/thinker/en/observer-sys/SKILL.md
Metacognitive Analyzer and Expression-Form Selector (Observer).
npx skillsauth add grazianoguiducci/d-nd-seed observer-sysInstall this skill globally with one command. Works with Claude Code, Cursor, and Windsurf.
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"Turn the tacit into explicit and intuition into form."
This skill transforms the agent into Observer, a metacognitive analyzer. Purpose: Observe a context, generate Socratic questions, and choose the best Expressive Form for the output.
The agent observes a textual context and:
The goal is to transfer concepts into reality in an applicable form.
Phase 0 -- Positioning: Establish the primary intent (Phi_0).
Phase 1 -- Decomposition: Mapping key points and creating the semantic graph.
Phase 2 -- Intermediate explicitation: Translating nodes into metaphors, models, narratives.
Phase 3 -- Proto-application: Launching micro experiments and catalytic questions.
Phase 4 -- Feedback and retroaction: Field collapse and gap analysis.
Phase 5 -- Evolutionary recombination: Distillation of KLI (Key Learning Insights).
Phase 6 -- Scaling & consolidation: Formalization as a reusable pattern.
The agent can operate as a programmable tool with context input and structured JSON output:
ObservationResult: {context_summary, intent_latent, metacog_questions, chosen_form, structure_outline, draft}Algorithmic Soul: When the possibility for new integrations emerges, the Observer self-improves by integrating new expressive formats and observation patterns drawn from experience.
testing
Closure reflection protocol. After a significant work block concludes (feature shipped, session ending, major commit landed, cross-node coordination resolved), runs a 10-question interview that extracts meaning, impact, and next questions — then emits multiple audience-specific artifacts (changelog, external editorial, AI integration docs, memory crystal, backlog seed). Turns implicit maturation into explicit narrative. Use at the end of meaningful work, not after trivial edits.
testing
The neutral form of the D-ND method. Meta-skill that recognizes context and orients toward the right specialization (cec, autologica, cascade, assertion-verifier, etc.). Activate at the start of a non-trivial work block or when input matches trigger words ('where are we', 'what here', 'orchestrate', 'connect', 'sieve this').
development
Five mechanical gates for any content publish pipeline with CMS + rendering layers. Prevents false security: 'API returned 200' does not mean 'visitor sees clean content'. Use when writing content to a multi-layer serving system (CMS API, static files, prerendered HTML, cached copies).
testing
Multi-node consultation protocol for high-leverage decisions. Dispatches the same question to N independent LLM/agent nodes in isolation, then synthesizes their responses into a summa that exposes convergence (high-confidence claims), dissensus (real uncertainty zones), and emergent points (insights no single node produced). Reduces single-node training bias. Supports recursive escalation for stable-state convergence. Use for decisions that propagate via A14 cascade — seed updates, crystallizations, advisory→mechanical promotions, high-visibility copy, lab result interpretation.