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Grounded QA

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Summary: Documentation and files about the Grounded QA component, as part of the GUT-AI Initiative.



The purpose of this component is to perform Grounded Question Answering (Grounded QA) by applying Grounded Cognition on QA tasks on multiple mobile robots or multiple aerial robots (drones) or a combination of them using Multimodal Learning (i.e. visuo-linguistic abilities)

  • Kourouklides, I. (2022). Bayesian Deep Multi-Agent Multimodal Reinforcement Learning for Embedded Systems in Games, Natural Language Processing and Robotics. OSF Preprints. https://doi.org/10.31219/osf.io/sjrkh

See References.

Thanks to OSF (by the Center for Open Science), the project is temporarily hosted at:

Project identifier: https://doi.org/10.17605/OSF.IO/8FRXM

This component depends on the following components of GUT-AI:

See Simulators.

See Datasets.

See Model Zoos.

If you want to do so, feel free to cite this component in your publications:

@article{kourouklides2022gqa,
  author = {Ioannis Kourouklides},
  journal = {OSF Preprints},
  title = {Grounded QA},
  year = {2022},
  doi = {10.17605/osf.io/8frxm},
  license = {Creative Commons Zero CC0 1.0}
}
License

Creative Commons Zero CC0 1.0 (Public Domain)