PIQ Labs

AI that shows its work.

We build AI for decisions where a confident guess is expensive.

A language model produces a figure it retrieved and a figure it constructed by the same process, and presents them identically. In most software this is a nuisance. In health and in finance it is the substance of the product. We therefore do not ask these systems to exercise care; we constrain them so that constructing a figure is not an available behaviour.

Writing
Essay, September 2026
Guessing looks exactly like knowing.

Automated food-recognition systems identify meals well, up to 97% of components, then report calorie figures differing by 90 percentage points between applications. Identification and nutritional estimation are separable problems, and only the first is largely solved. A review of the measurement literature, why prompt-level instruction is insufficient, the constraints we implemented, and the limitations that remain, including a published finding unfavourable to the model we deploy.

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How we build

We do not claim to be the most accurate. That claim is unfalsifiable, it is made universally, and a user has no means of evaluating it. The narrower claim, which can be evaluated, is that every figure displays its origin.

What we build