Published May 21, 2026 | Version v2
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World Machine - Data & Report - Toy1D - Experiment 2 Best Long

  • 1. ROR icon Universidade Estadual de Campinas (UNICAMP)

Description

In the previous experiment, Experiment 1 Configuration Test, we found the best model configuration for a World Machine trained on the Toy1D dataset. However, a question that arises after that is: what is the maximum performance we can achieve with this configuration? In this experiment, we investigate what happens when we train the model for longer. Also, we took this opportunity to explore the effect of the learning rate scheduler used, Cosine Annealing with Warmup.

 

World Machine is a research project that investigates the concept and creation of computational world models. These AI systems create internal representations to understand and make predictions about the external world. See the project page for more information. The project is part of the H.IAAC, the Hub for Artificial Intelligence and Cognitive Architecture, located at the Universidade Estadual de Campinas (UNICAMP), Brazil.

 

The files in this registry are organized by file extension. Each extension contains:

  • json: metrics and logits metadata
  • memmap: logits data
  • pt: trained models
  • png: plots
  • svg: figures with experiment pipelines
  • final_results: specific files of the final results
  • txt: verification files

Other

Update: Corrected incorrect metric scaling.

Files that do not correspond to ".json", ".png", and "final_results" in the previous version have not been changed. Please use the previous version to access these files.

Files

toy1d_experiment2_best_long_final_results.zip

Files (41.4 MB)

Name Size Download all
md5:1a2cde3a76eebee54a75a47ecbdec0c5
980.2 kB Preview Download
md5:1d4cbe565cd58308d5b01b4cb2e01918
1.4 MB Preview Download
md5:13089d4de1c603e900edf7391f029600
37.3 MB Preview Download
md5:2fbcd631e643158f9c91066cfcb0f07c
1.7 MB Preview Download

Additional details

Funding

Ministry of Science, Technology and Innovation
Arquitetura Cognitiva (Fase 3) 01245.003479/2024-10

Software

Repository URL
https://github.com/H-IAAC/WorldMachine
Programming language
Python
Development Status
Active