# portfolio-optimiser Generic, open framework on Microsoft Agent Framework (MAF): multi-agent cost-saving proposals gated by a mandatory deterministic validator, with HITL learning. [![License: MIT](https://img.shields.io/badge/License-MIT-yellow.svg)](LICENSE) [![Python](https://img.shields.io/badge/python-%E2%89%A53.10-blue.svg)](pyproject.toml) [![Built on Microsoft Agent Framework](https://img.shields.io/badge/built%20on-Microsoft%20Agent%20Framework-0078D4.svg)](https://github.com/microsoft/agent-framework) A generic, open framework — built on **Microsoft Agent Framework (MAF)** — that finds cost savings *inside* each project of a portfolio of independent projects. A swarm of agents generates candidate measures; a **mandatory deterministic validator** (solver + Monte Carlo) decides the numbers; domain experts judge the outcomes (human-in-the-loop); and the system **learns from their verdicts** across runs. ## Install Python ≥3.10, with [`uv`](https://docs.astral.sh/uv/). The package is not published to a package index — install it from source: ```bash git clone https://git.fromaitochitta.com/open/portfolio-optimiser.git cd portfolio-optimiser uv sync ``` Clone rather than install into an existing environment: the shared spec, the persona skill and the example bundles under [`shared/`](shared/README.md) are read from the working tree at run time. Verify the install by running the whole suite from the clean clone: ```bash uv run pytest ``` There is no CI runner in this organization, so nothing runs that suite automatically — the command above is the verification. ## Walk the whole chain offline Seven commands, no API key, no network, no cost. They exercise the real loop — context navigation over the knowledge base, the maker/checker debate, the deterministic validator, the verdict — with **scripted stand-ins for the agents' answers**. Every scripted invocation prints a banner saying so, because a scripted run that reads like a model run would be worse than having no offline mode at all. What this shows is that the loop closes and the gate bites; it does not show how well a given model would propose or judge. **1 — Look at the knowledge base.** It is curated markdown, not a black box: ```bash ls shared/examples/bygg-energi-mikro/ ``` **2 — Watch the learning loop close.** Two runs separated by an expert approval, with the second demonstrably informed by the first: ```bash uv run python -m portfolio_optimiser.simulation ``` Each run shows the refinement step: the proposer's first claim is falsified by the deterministic validator, and the corrected claim validates. The trace then ends with the approved verdict's marker present in Run B's prompt and absent from Run A's — knowledge crossing runs purely through the file-backed wiki (promote → re-seed → fold). **3 — Run the loop over a knowledge base, with answers you supply.** Write the stand-in replies, then point the CLI at the bundle: ```bash cat > replies.json <<'JSON' { "proposer": "{\"measure\":\"LED-retrofit\",\"affected_items\":[{\"code\":\"ENERGI-TOTAL-EL\",\"quantity\":300000,\"unit_cost\":1.0}],\"claimed_saving_nok\":30000}", "checker": "The numbers are within a feasible range. VERDICT: APPROVE" } JSON uv run python -m portfolio_optimiser.run BYGG-KONTOR-NORD \ --docs-dir shared/examples/bygg-energi-mikro \ --bundle-dir shared/examples/bygg-energi-mikro \ --scripted-replies replies.json ``` Ends in `ValidatedProposal`. Swap `--bundle-dir`/`--docs-dir` for your own bundle to run it over your own data — that is the point of this door, and the reason it is not the same thing as step 2. Your bundle needs one file the ingest layer does not write for you: `validator-input.json`, the candidate the deterministic validator judges (a bundle without it is refused, by design — see [`docs/extending.md`](docs/extending.md)). Copy the shape from `shared/examples/bygg-energi-mikro/`. **4 — Watch it say no.** Raise `claimed_saving_nok` to `250000` in `replies.json` and run the same command again. The outcome becomes `Rejection`: the deterministic validator refuses a saving the project's own numbers cannot support, no matter how confidently the proposer asserted it. This is the part of the method that carries the weight — the agents propose, and something that cannot be argued with decides. Read that summary line carefully: `Rejection (verdict id=…, decision=approved)` is not a contradiction. `Rejection` is the **validator's** outcome, while `decision=` echoes the **human's** recorded verdict — here the `--decision` default, since nobody reviewed this run. The two are deliberately separate: a machine gate that blocks, and a human judgement that approves, are different questions and are never collapsed into one field. **5 — See what it would cost with a real model**, before spending anything: ```bash uv run python -m portfolio_optimiser.costsim --projects 4 --profile local ``` Modelled upper bounds per role and model, with the source of each price quoted. `--profile local` prices the free local backend; the estimate is a ceiling, not a bill. **6 — Run the whole portfolio, and watch the gate anchor to each project separately.** The same flag works across every bundled reference project at once: ```bash cat > replies.json <<'JSON' { "proposer": "{\"measure\":\"scope_reduction\",\"affected_items\":[{\"code\":\"01.1\",\"quantity\":1,\"unit_cost\":850000}],\"claimed_saving_nok\":40000}", "checker": "Rigging and site operations can absorb this reduction. VERDICT: APPROVE" } JSON uv run python -m portfolio_optimiser.run --portfolio --scripted-replies replies.json ``` One `ValidatedProposal`, three `Rejection`. All four reference projects carry a cost line `01.1`, but at four different amounts — so a claim stated against one project's estimate is refused for the other three. Nothing about the proposal changed between them; what changed is the project's own numbers, which is the whole point of anchoring the gate to a cost baseline rather than to the proposal's internal arithmetic. The four lines quote the same `verdict id=`. That is not a bug: a verdict is keyed on the *candidate* it judges, not on the project it was judged in, so an identical proposal mints an identical id by design — that key is how a later run finds the earlier judgement. A portfolio pass reports what happened to every project. Projects that raised are printed to stderr with their error, and the command exits non-zero; the projects that completed still print their outcome, because one dead project must not discard the rest of the pass. A pass stopped because a savings goal was reached says so too. The global token cap is reported separately from a goal stop — running out of budget and hitting your target are not the same event — but note that the cap itself has no command-line flag yet: only a library caller can install one, so that line is unreachable from the CLI today. **7 — Report what has actually been realized:** ```bash uv run python -m portfolio_optimiser.run --report --ledger savings-ledger.json ``` This reads a savings ledger and prints per-project and portfolio totals with each entry's provenance. It makes no model calls and changes nothing. **The ledger is an input, and the framework will not write it for you.** It records savings that were *actually realized* — a contract was changed, an invoice came in lower — which is a fact about the world, not a conclusion the system is entitled to draw from its own proposals. A validated proposal is a claim; a ledger entry is a result. Keeping them apart is deliberate, and it is why no command here produces a ledger as a side effect. Run `--report` before creating one and it says so plainly (`run report refused: savings ledger not found`). You write entries when the saving materializes: ```python from portfolio_optimiser.ledger import LedgerEntry, SavingsLedger, to_ore ledger = SavingsLedger() ledger.add_realized( LedgerEntry( project_id="FV42-GSV-E1", dimension="rigg", candidate_identity="33fba649cade8529", amount_ore=to_ore(40000), verdict_id="33fba649cade8529", provenance="expert Kari Nordmann, 2026-08-05, realized via contract amendment", ) ) ledger.save("savings-ledger.json") ``` Amounts are held in øre as integers, and `to_ore` is the only conversion — money is quantized once, per amount, before anything is summed. > `--live-dry-run` is a different, narrower drill: it builds contracts, clients and budget against > your own configuration and **stops before the first model call**. It verifies the setup; it does > not run the loop. `--scripted-replies` runs the whole loop. The two are mutually exclusive and > passing both is refused rather than one silently winning. ## Non-goals - **Not a compliance product.** It ships the technical prerequisites — local-only operation, provenance on every proposal, no silent data egress — and stops there. Processing purpose, DPIA and risk assessment stay with the deploying organization. - **Not a portfolio-level reallocator.** It finds savings *inside* each project. Moving budget between projects, ranking projects against one another and portfolio governance sit above the method and are out of scope. - **Not autonomous decision-making.** The deterministic validator can only block; approving a measure is a domain expert's call (human-in-the-loop), and the framework implements nothing on the agents' say-so. - **Not a turnkey vertical solution.** The aim is a generic core with explicit extension points (data sources, cost models, personas) — not the last 10% of any one domain. - **Not a model benchmark.** The end-to-end proof runs offline against a scripted stand-in client: it shows that the loop closes, not how well a given LLM proposes or judges. > **Status:** the full 8-step agentic loop is wired and proven with load-bearing tests, and the > end-to-end proof is an **offline simulation** with a scripted stand-in client — no live-model > run yet. The **ingest layer** (real data sources) is implemented — file/CSV and SQL on both > stacks with bit-identical golden extractions from the shared spec, plus HTTP as a MAF-only > demonstrated extension point against a local mock — but exercised only against committed > fixtures: no bundle has yet been materialized from a live source. A sibling implementation of > the same method on the **Claude Agents SDK** is built in parallel from the same shared spec. > **Disclaimer — technical framework only.** Deploying organizations own their processing > purposes and assessments (DPIA, risk/ROS, security review). The framework ships the technical > prerequisites — local-only mode, provenance, no silent data egress — but makes no compliance > guarantees. ## Built on an LLM wiki: Karpathy's idea, Google's format The knowledge architecture is the heart of the project, and it is deliberately not ours: - **The idea** is Andrej Karpathy's **"LLM wiki"**: instead of pointing a model at documents written for people, you curate a small, versioned body of knowledge written *for the model to read* — concept files, explicit structure, explicit links. - **The format** is Google Cloud's **[Open Knowledge Format (OKF)](https://github.com/GoogleCloudPlatform/knowledge-catalog/blob/main/okf/SPEC.md)** (open spec, v0.1), which formalizes that pattern: a knowledge **bundle** is a directory of markdown files with YAML frontmatter (one required field, `type`), a reserved `index.md` entry point, and intra-bundle cross-links forming an emergent graph. Custom frontmatter fields are allowed and must be preserved — which is exactly where this project's own layers (expert verdicts, ingest provenance) live. Because OKF is open and vendor-neutral, the *same* bundles are consumed unchanged by both reference implementations (MAF and the Claude Agents SDK sibling) — the knowledge outlives any particular agent stack. **Not RAG.** Agents read a bundle by **navigating** it — `index.md` first, then its cross-links, with progressive disclosure — never by keyword retrieval or stuffing the whole bundle into a prompt. Query-time retrieval against the bundle is explicitly forbidden by the method spec: it would leak the verdict layer around the learning gate. ## AI-first, humans on top A traditional wiki is built for *people* — optimized for humans finding and reading information, with machine access bolted on afterwards. This project inverts that order, and is a concrete example of what that looks like: - The wiki (the OKF bundle) is written **for the model**: it is the agent's working memory and the substrate the learning loop reads from and promotes into. - The **human affordances are layers on top**: experts judge outcomes by dropping a plain JSON verdict file in an inbox folder; an explicit, fail-closed **promotion gate** is the only path by which an approved verdict becomes wiki knowledge; reports and reviews are rendered *from* the machine-readable layers. Humans stay decisive — nothing enters the wiki without an approval — but the primary reader of every file is the model, not a person browsing. ## How it works One run, one project, eight steps — with the learning loop closing across runs: 1. **Understand** — navigate the project's OKF bundle; fold the candidate's *prior expert verdicts* into the hypothesis prompt (ExpeL-style, retrieved structurally, never by text). 2. **Hypothesise** — one typed candidate measure (strict IR, fail-fast schema). 3. **Debate** — a maker-checker pair argues the reasoning (round-capped). 4. **Validate** — two falsifiers on the same candidate: the **deterministic validator** gates the numbers (blocking, never optional) and the **checker** gates the reasoning. The validator is anchored to the project's declared cost baseline, so a proposal cannot invent the cost lines it claims to save against. 5. **Refine** — a rejected attempt retries *informed* by the rejection reason, under hard attempt and token caps. Unbounded loops are forbidden everywhere. The falsifications that informed a later attempt are surfaced on the result (`RunResult.refinements`), so what the run corrected in response to is inspectable, not just what it ended up with. 6. **Propose or discard** — a validated proposal with risk percentiles, or a typed rejection. 7. **Expert feedback** — days later, an expert drops a verdict file in an inbox folder; a later run picks it up. Fully resumable; no live session assumed. 8. **Promote** — an *approved* verdict is lifted into the wiki as a `type: verdict` concept file, navigable by the next run. The gate is fail-closed: raw agent output never self-promotes. Every proposal carries provenance (citations into the bundle, model, validator decision, token usage). Every seam above is protected by a **load-bearing test** — a test designed to *fail* when the seam is detached, so the loop cannot silently degrade into theater. ## How it is set up - **One shared, framework-neutral core** ([`shared/`](shared/README.md), a git subtree of [`portfolio-optimiser-commons`](https://git.fromaitochitta.com/open/portfolio-optimiser-commons)): the business concept, the normative [method spec](shared/method-spec.md) and [ingest spec](shared/ingest-spec.md), the expert-reviewer persona as an Agent Skill, and an example bundle with a golden suite as the only ground truth. Both stacks implement from the spec alone. - **Per project: one OKF bundle** — the bundled examples are hand-curated; the ingest layer that materializes a bundle from a source (file catalogues/CSV + SQL, HTTP as a MAF-only demonstrated extension point) via a deterministic, schema-validated manifest that runs *before* the loop is implemented and exercised against committed fixtures — no bundle has yet been materialized from a live source. - **Run:** the `run.py` CLI has **three modes** — a documented partition, since one invocation cannot exercise every flag: - **Single-project** — `PROJECT_ID --docs-dir `, plus optional `--bundle-dir`, `--verdict-dir`, `--outbox-dir` (which requires `--run-id`), `--dimension-config`, `--semantic-retrieval`, `--decision`/`--rationale`, `--live-dry-run`, and `--scripted-replies ` (the offline whole-loop door — see [Walk the whole chain offline](#walk-the-whole-chain-offline); mutually exclusive with `--live-dry-run`, which stops before the first model call rather than answering it). - **Portfolio** — `--portfolio`, plus optional `--goals`, `--ledger`, `--dimension-config`, `--semantic-retrieval`; it stops early and prints a `goal reached: …` line when the accumulated ledger meets a goal. - **Value report (S5.4, read-only)** — `--report --ledger ` rolls up the ledger's realized savings to stdout: per-project totals, the portfolio total, flagged cross-dimension overlaps (each counted once), and per-entry provenance. Add `--json` for deterministic JSON instead of the human table. It makes **no model calls** and is mode-exclusive — only `--ledger`/`--json` are permitted alongside `--report`; `--report` requires `--ledger`, and a stray `--json` without `--report` is refused (rc 1, never silently ignored). ```bash # Single-project, offline drill (builds contracts + clients, stops before the first model call): uv run python -m portfolio_optimiser.run FV42-GSV-E1 --docs-dir --bundle-dir --live-dry-run # Portfolio run with a savings goal checked against an accumulated ledger: uv run python -m portfolio_optimiser.run --portfolio --goals goals.json --ledger ledger.json # Read-only value report over an accumulated ledger (human table; add --json for JSON): uv run python -m portfolio_optimiser.run --report --ledger ledger.json ``` `--semantic-retrieval` (S3.1) is an **opt-in** ranking change, **off by default**. Off, prior verdicts are ranked exactly as before: a structural score over the affected cost-code set, measure type and magnitude bucket, with surface text deliberately excluded. On, that score is blended with a cosine term over the *same* structural triple, which lets a prior verdict on a *different* cost-code set outrank one that ties structurally. **What this ships is the seam, not better retrieval.** The bundled `FakeEmbedder` is a deterministic sha256 projection carrying no semantics, so over a structural tie the resulting order is deterministic but arbitrary. Retrieval *quality* depends entirely on injecting a real embedder — `--embedder-config` selects one from a closed registry (never an import path; a config file can never name arbitrary code to load), and `docs/extending.md` documents the `Embedder` protocol. The embedding excludes `description`, matching the structural score and the verdict-id hash, so a flag-on run reads no surface text either. The flag is accepted in both run modes, but in single-project mode it **requires** `--bundle-dir` and `--verdict-dir`: without them it cannot take effect, and the run is refused rather than silently ignoring the flag. Nothing about a flag-off run changes, and no savings claim depends on it. A bundle may hold verdicts about **several candidates**, while its `validator-input.json` describes only one. A `type: verdict` file therefore may declare its own retrieval key in frontmatter — `affected_codes`, `measure_type`, `claimed_saving_nok` — and is keyed on that; omit them and it falls back to the bundle's candidate, exactly as before. The three are **all or nothing**: a partial declaration is refused rather than merged with the bundle candidate, since the merge would produce a key belonging to neither. `promote_verdict` writes all three, so a promoted verdict about one candidate never surfaces for another. A bundle may also ship a **`cost-baseline.json`** — the project's actual cost lines, `{code: {quantity, unit_cost}}` — and when it does, the deterministic validator reconciles every affected item of a proposal against it before anything else runs. A cost code the project does not have is rejected, and so is a real code carrying a quantity or unit cost outside the configured tolerance (5% by default, relative to the baseline value). Without it, every stage of the gate reasons only about numbers the proposal supplied itself, so an internally consistent hallucination passes. The reconciliation validates; it never repairs a proposal into the baseline. A bundle that ships no baseline is simply un-anchored and runs exactly as before, while a baseline that is present but malformed is an error rather than a silent fall-back to un-anchored. On the reference-domain (non-bundle) path the project's own cost items are the baseline, so those runs are always anchored. The **prior-verdict fold — the learning step — happens only on the `--bundle-dir` path**; a plain `--docs-dir`-only run is single-shot (no fold). `--decision`/`--rationale` apply to the single-project path only and are inert in portfolio mode. **`--outbox-dir` must differ from `--verdict-dir`**: writing the raw outbox into a folder later read as an inbox would re-ingest raw agent output past the promotion gate (self-contamination) — documented here, deliberately not CLI-enforced. Stop criteria and budget caps are required at startup. Try the offline end-to-end proof (no model, no network): `uv run python -m portfolio_optimiser.simulation`. - **A global token cap across the whole portfolio, enforced before the call.** Per-run caps alone let N projects cost N times that with no ceiling over the pass. Pass a `PortfolioMeter(PortfolioBudget(max_total_tokens=…, max_tokens_per_run=…))` to `run_portfolio` and one ledger bounds the entire pass — and, seeded from `budget.read_spend`, a *series* of passes. It bites in three places: a remainder that cannot fund one run refuses the pass at startup (`BudgetRefused`); a project that cannot be funded is **never started**, stopping the pass structurally (`budget_stop`, completed runs preserved); and a chat call the remainder cannot pay for is **refused rather than made** (the post-charge check remains, since real usage is only knowable after the response). Spend persists via `budget.write_spend`, which takes an explicit stamp and no wall-clock default, so the file is byte-deterministic. Python API only — not yet exposed on the CLI. ## What this enables The reference case is portfolio cost review (the example bundle is a building-energy measure), but the architecture is designed to generalize to any setting with the same shape — candidate measures inside independent projects, numbers a deterministic tool can check, and judgement only an expert has: - **Portfolio reviews** — cost savings, energy efficiency, maintenance and procurement measures, proposed per project and validated against the project's own data. - **Compounding organizational memory** — approved expert verdicts become navigable knowledge; the next run's hypotheses start from what experts actually decided, including realization gaps no solver can compute. - **Auditable AI** — an unbroken provenance chain from expert decision back through proposal, bundle file and text span, and (with ingest) to the source system, query, and timestamp. - **Vendor-neutral knowledge** — the same bundles drive two different agent stacks; switching frameworks does not orphan the organization's curated knowledge. ## Docs - [Bestille en kjøring](docs/bestille-en-kjoring.md) *(norsk)* — for the domain expert who COMMISSIONS a run: naming the approaches the run must evaluate (and/or asking the system for its own), stating what the run is for, and reading the announcement it prints before spending anything and the settlement it prints afterwards. The commission directs what is *evaluated*, never what is *approved*. - [Ekspert-svar](docs/ekspert-svar.md) *(norsk)* — for the domain expert who has to deliver the verdict: where a judgement goes, what an approval, an approval-with-correction and a rejection actually look like, and paste-ready examples of each. Marked throughout as AI-authored and not verified professional judgement. - [Building a knowledge base](docs/knowledge-base-recipe.md) — the team recipe (technical + domain expert) for curating a bundle, with the honest expectation that a good base takes 1–2 weeks of dedicated work. - [Target picture](docs/plan/2026-06-26-maalbilde-agentic-loop.md) — the agentic loop + OKF knowledge architecture (north star). - [Prior-art & platform research](docs/research/2026-06-23-prior-art-platform.md) (incl. implementation register §15). - [Ingest target picture](docs/plan/2026-07-03-maalbilde-ingest-lag.md) — connectors and the ingest layer (frozen 2026-07-03). ## Stack & develop Python ≥3.10 · MAF via the split GA packages (see `pyproject.toml`) · `uv`. Backend profiles: Azure/Foundry (full) + local (fallback). ```bash uv sync uv run pytest uv run ruff check . ```