Collectionless Artificial Intelligence
Marco Gori, Stefano Melacci

TL;DR
This paper advocates for collectionless AI, emphasizing learning through environmental interaction without storing temporal data, aiming to enhance privacy, decentralization, and human-like cognitive development.
Contribution
It introduces a novel collectionless learning protocol that promotes dynamic, environment-based knowledge acquisition without data storage, challenging traditional data-centric AI methods.
Findings
Proposes a collectionless learning framework emphasizing environmental interaction.
Highlights potential for improved privacy and decentralization in AI.
Suggests new foundations for AI that do not rely on data accumulation.
Abstract
By and large, the professional handling of huge data collections is regarded as a fundamental ingredient of the progress of machine learning and of its spectacular results in related disciplines, with a growing agreement on risks connected to the centralization of such data collections. This paper sustains the position that the time has come for thinking of new learning protocols where machines conquer cognitive skills in a truly human-like context centered on environmental interactions. This comes with specific restrictions on the learning protocol according to the collectionless principle, which states that, at each time instant, data acquired from the environment is processed with the purpose of contributing to update the current internal representation of the environment, and that the agent is not given the privilege of recording the temporal stream. Basically, there is neither…
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Taxonomy
TopicsComputational Physics and Python Applications · Neural Networks and Applications · Big Data and Business Intelligence
