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An open workshop for practical AI experiments.

This is where real work done by people and AI together is written down: the method, the result, the time spent, the limitations and the learning, so others can understand and repeat the experiment. Including the times it fails.

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What an experiment contains

Every experiment follows the same card, so two experiments can be compared without first decoding the author's taste.

Task
The real work being attempted
Human role
Decisions, judgement, validation and accountability
AI role
Analysis, generation, automation or execution
Tools
Models, applications, code and configuration
Method
Reproducible steps
Result
Observable output, including failures
Time
Human and machine time where measurable
Limitations
Uncertainty, risks and what was not tested
Learning
What should be repeated, changed or stopped

How to read the evidence labels

Any statement that could be mistaken for a measurement carries a label. It says how firmly the statement stands, not how good the result is.

Measured
produced by a defined measurement
Observed
seen directly during the experiment
Reported
provided by another source or participant
Hypothesis
plausible but not demonstrated
Unknown
not established

A useful result

An experiment counts as useful in all of these cases, not only the first:

Latest experiments

All experiments

What aiMinds is not

Three things this site deliberately stays away from:

Who is behind this

aiMinds is published by Spekir, run by Rasmus Sloth Nielsen. Method, templates and material are public on GitHub, so an experiment can be checked without asking permission.