Hardware Implementation and comparative evaluation of LIF Neuron Models on FPGA for Neuromorphic Computing
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报告开始:2026年07月31日 14:55(Asia/Kolkata)

报告时间:15min

所在会场:[S6] Artificial Intelligence Use Cases [S6-6] Artificial Intelligence Use Cases

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摘要
Neuromorphic computing is an emerging paradigm for developing energy-efficient artificial intelligence (AI) systems that can perform real-time processing on resource-constrained hardware platforms. The leaky integrate-and-fire (LIF) neuron provides a good balance between biological plausibility and computational simplicity, making it well suited for FPGA-based accelerators. This paper presents a comparative analysis of three neuron architectures: quantized LIF (QLIF), piecewise linear LIF (PWL-LIF) and event-driven refractory LIF (REF-LIF) through FPGA implementation and hardware analysis. The neuron models were assessed in terms of FPGA resource utilization, functional correctness, timing performance, and power consumption. The results show that the QLIF model requires the least hardware resources. REF-LIF provides the best efficiency with measured on-chip power consumption of 0.536 W, and PWL-LIF model provides a balanced trade-off between performance and implementation cost. By comparing the neuron architectures, the study demonstrates the impact of neuron model on FPGA implementation efficiency and practical recommendations for selecting appropriate neuron models for scalable and low-power neuromorphic accelerators in real-time edge AI applications.
关键词
Neuromorphic computing, Spike neural network (SNN), Artificial neural network(ANN), FPGA, LUT
报告人
BODOLLA RAHUL YADAV
RESEARCH SCHOLAR J B Institute of Engineering and Technology, Hyderabad, India-500075

稿件作者
BODOLLA RAHUL YADAV J B Institute of Engineering and Technology, Hyderabad, India-500075
M. JAHNAVI LAKSHMI J B Institute of Engineering and Technology, Hyderabad, India-500075
RALLAPALLI S VINITHA J B Institute of Engineering and Technology, Hyderabad, India-500075
D. NARESH J B Institute of Engineering and Technology, Hyderabad, India-500075
K.V.V. SATYA SAI J B Institute of Engineering and Technology, Hyderabad, India-500075
KIRAN PAKMODE J B Institute of Engineering and Technology, Hyderabad, India-500075
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重要日期
  • 会议日期

    07月30日

    2026

    08月01日

    2026

  • 07月28日 2026

    注册截止日期

  • 07月30日 2026

    初稿截稿日期

主办单位
The United Societies of Science
承办单位
Kongunadu College of Engineering and Technology
协办单位
IEEE Section
IEEE Madras Section
历届会议
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