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Main Authors: Bajaj, Goonmeet, Parthasarathy, Srinivasan, Shalin, Valerie L., Sheth, Amit
Format: Preprint
Published: 2024
Subjects:
Online Access:https://arxiv.org/abs/2402.13290
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author Bajaj, Goonmeet
Parthasarathy, Srinivasan
Shalin, Valerie L.
Sheth, Amit
author_facet Bajaj, Goonmeet
Parthasarathy, Srinivasan
Shalin, Valerie L.
Sheth, Amit
contents Grounding is a challenging problem, requiring a formal definition and different levels of abstraction. This article explores grounding from both cognitive science and machine learning perspectives. It identifies the subtleties of grounding, its significance for collaborative agents, and similarities and differences in grounding approaches in both communities. The article examines the potential of neuro-symbolic approaches tailored for grounding tasks, showcasing how they can more comprehensively address grounding. Finally, we discuss areas for further exploration and development in grounding.
format Preprint
id arxiv_https___arxiv_org_abs_2402_13290
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Grounding from an AI and Cognitive Science Lens
Bajaj, Goonmeet
Parthasarathy, Srinivasan
Shalin, Valerie L.
Sheth, Amit
Artificial Intelligence
Grounding is a challenging problem, requiring a formal definition and different levels of abstraction. This article explores grounding from both cognitive science and machine learning perspectives. It identifies the subtleties of grounding, its significance for collaborative agents, and similarities and differences in grounding approaches in both communities. The article examines the potential of neuro-symbolic approaches tailored for grounding tasks, showcasing how they can more comprehensively address grounding. Finally, we discuss areas for further exploration and development in grounding.
title Grounding from an AI and Cognitive Science Lens
topic Artificial Intelligence
url https://arxiv.org/abs/2402.13290