Human Brain Inspired Artificial Intelligence Neural Networks

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Abstract

It is becoming increasingly evident that Artificial intelligence (AI) development draws inspiration from the architecture and functions of the human brain. This manuscript examines the alignment between key brain regions—such as the brainstem, sensory cortices, basal ganglia, thalamus, limbic system, and prefrontal cortex—and AI paradigms, including generic AI, machine learning, deep learning, and artificial general intelligence (AGI). By mapping these neural and computational architectures, I herein highlight how AI models progressively mimic the brain’s complexity, from basic pattern recognition and association to advanced reasoning. Current challenges, such as overcoming learning limitations and achieving comparable neuroplasticity, are addressed alongside emerging innovations like neuromorphic computing. Given the rapid pace of AI advancements in recent years, this work underscores the importance of continuously reassessing our understanding as technology evolves exponentially.

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APA

Theotokis, P. (2025). Human Brain Inspired Artificial Intelligence Neural Networks. Journal of Integrative Neuroscience, 24(4). https://doi.org/10.31083/JIN26684

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