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{ "title": "AI Cost Watch", "subtitle": "A recurring, dated note on the unit economics of the AI buildout: whether its cost and demand assumptions are holding. Each issue states a falsifiable forward call.", "concept_doi": "10.5281/zenodo.20541643", "orcid": "0009-0003-4213-7769", "author": "NM AI Research", ...
[ { "n": 1, "week": "Week of 2 June 2026", "pub": "4 June 2026", "doi": "10.5281/zenodo.20541644", "status": "EXPANSION", "trigger": false, "thread": "The week stayed bifurcated: spend did not roll over, while the demand and price side kept accumulating deflation evidence and the physical ...
[ { "name": "Core signal: capex-guidance down-revision", "unit": "trigger state", "note": "The one thing this series watches. A down-revision in the Big Four's forward capex guide is the trigger.", "readings": [ { "issue": 1, "value": "no trigger", "note": "guidance not t...

AI Cost Watch

Reproducible, primary-source analysis of the AI industry: whether the buildout's unit economics are holding. A recurring, dated note, where each issue states a falsifiable test for its forward call. Every figure is published with its data and a script that regenerates it, so any number can be checked at source.

What this is

The dataset behind the AI Cost Watch series. costwatch.json holds the frozen data: the series metadata, each issue with its status and developments, and the tracked indicators with their per-issue readings. build.py regenerates the interactive front-end from that JSON using only the Python standard library, so the published output cannot carry an unchecked number.

The tracked signal

The series watches one indicator: a down-revision in the Big Four hyperscalers' forward capital-expenditure guidance. That is the trigger it is built to catch. It has not fired in any issue to date.

Files

  • costwatch.json: the frozen dataset (series metadata, issues, indicators, readings).
  • build.py: standard-library reproducer that reads the JSON and writes the front-end.
  • LICENSE: Creative Commons Attribution 4.0 International.

Method

Separate an announced figure from the delivered one, tag each source by incentive, keep human judgement over the model's output, and set a falsifiable test for every forward call. Drafting is AI-assisted; the judgement is not.

Citation

NM AI Research. AI Cost Watch. Zenodo. https://doi.org/10.5281/zenodo.20541643 . Licensed CC BY 4.0.

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