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Updated: Jul 24, 2025

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Assembly and Characterization of Biomolecular Memristors Consisting of Ion Channel-doped Lipid Membranes
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SENECA: building a fully digital neuromorphic processor, design trade-offs and challenges.
Guangzhi Tang1, Kanishkan Vadivel1, Yingfu Xu1
1Imec, Eindhoven, Netherlands.
Frontiers in Neuroscience
|July 10, 2023
Summary
This study introduces SENECA, a flexible neuromorphic processor architecture. SENECA enhances energy and area efficiency for neural network algorithms through a novel hierarchical-controlling system.
Area of Science:
- Computer Engineering
- Artificial Intelligence
- Neuroscience
Background:
- Neuromorphic processors emulate brain principles for efficient, low-power computing.
- Existing designs often lack flexibility, leading to performance and memory inefficiencies with diverse neural network algorithms.
Purpose of the Study:
- To propose SENECA, a digital neuromorphic architecture balancing flexibility and efficiency.
- To demonstrate SENECA's capability for efficient mapping of various neural networks, on-device learning, and pre-post processing.
Main Methods:
- Designed SENECA with a hierarchical-controlling system featuring a flexible RISC-V controller and an optimized Loop Buffer controller.
- Implemented a flexible computational pipeline for diverse algorithmic deployments.
- Utilized a network-on-chip for scalable architecture.
Main Results:
- SENECA demonstrates improved energy and area efficiency compared to existing designs.
- A SENECA core occupies 0.47 mm² (GF-22 nm) and consumes 2.8 pJ per synaptic operation.
- Experimental results validate efficient mapping for various algorithms and highlight design trade-offs.
Conclusions:
- SENECA offers a highly efficient and programmable digital neuromorphic processor.
- The architecture effectively addresses the flexibility-efficiency trade-off in neuromorphic computing.
- The SENECA platform is available for academic research.
Keywords:
AI acceleratorSENECAarchitectural explorationbio-inspired processingevent-based neuromorphic processorspiking neural networkMore Related Videos
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