Embodied Neuromorphic Artificial Intelligence for Robotics: Perspectives, Challenges, and Research Development Stack
Rachmad Vidya Wicaksana Putra, Alberto Marchisio, Fakhreddine Zayer,, Jorge Dias, Muhammad Shafique

TL;DR
This paper explores the potential of neuromorphic AI, based on spiking neural networks, to enable embodied intelligence in robotics, addressing current challenges and proposing a comprehensive research development framework.
Contribution
It provides a detailed perspective on integrating neuromorphic AI into robotics, highlighting key challenges and proposing strategies for development and deployment.
Findings
Neuromorphic AI can enhance robotic adaptability and efficiency.
Cross-layer optimization is crucial for energy-efficient neuromorphic systems.
Benchmarking and safety are vital for real-world applications.
Abstract
Robotic technologies have been an indispensable part for improving human productivity since they have been helping humans in completing diverse, complex, and intensive tasks in a fast yet accurate and efficient way. Therefore, robotic technologies have been deployed in a wide range of applications, ranging from personal to industrial use-cases. However, current robotic technologies and their computing paradigm still lack embodied intelligence to efficiently interact with operational environments, respond with correct/expected actions, and adapt to changes in the environments. Toward this, recent advances in neuromorphic computing with Spiking Neural Networks (SNN) have demonstrated the potential to enable the embodied intelligence for robotics through bio-plausible computing paradigm that mimics how the biological brain works, known as "neuromorphic artificial intelligence (AI)".…
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Taxonomy
TopicsAdvanced Memory and Neural Computing · Modular Robots and Swarm Intelligence
