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decision-systems

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dialectical-framework

An open-source AI reasoning framework that uses dialectics, semantic graphs, and polarity management to drive LLMs toward objective synthesis and advanced human-AI collaborative decision-making.

  • Updated Sep 28, 2026
  • Python

A long-form article introducing the Twin Test: a practical standard for high-stakes machine learning where models must show nearest “twin” examples, neighborhood tightness, mixed-vs-homogeneous evidence, and “no reliable twins” abstention. Argues similarity and evidence packets beat probability scores for trust and safety.

  • Updated Dec 26, 2025

A long-form article and practical framework for designing machine learning systems that warn instead of decide. Covers regimes vs decimals, levers over labels, reversible alerts, anti-coercion UI patterns, auditability, and the “Warning Card” template, so ML preserves human agency while staying useful under uncertainty.

  • Updated Dec 20, 2025

Agent skills for designing, training, evaluating and improving application-specific decision systems. Primitive/model selection, data assembly, export/reload and bounded hill climbing. TypeSafe Jev is the default hosted exemplar; independent of TypeSafe.

  • Updated Sep 28, 2026
  • Python

Longform article reframing abstention (reject option / selective prediction) as product design, not model weakness. Covers coverage as a KPI, calibration as a prerequisite, threshold selection under review capacity and risk, queue/UX design for human-in-the-loop workflows, and anti-patterns that break safety in production.

  • Updated Apr 29, 2026

Decision Infrastructure System is an experimental platform for evaluating the governability of AI-enabled systems. It measures whether AI workflows remain influenceable, explainable, and correctable throughout execution using a presentation-driven architecture and deterministic assessment pipeline.

  • Updated Aug 3, 2026
  • Python

Product briefs for AI/deterministic systems that make consequential decisions on unstructured input in regulated environments — research data, health, finance. Each project states the decision, the constraints, the metric, and the human escalation path.

  • Updated Sep 25, 2026

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