Dynamic Reliability Management in Neuromorphic Computing
Shihao Song, Jui Hanamshet, Adarsha Balaji, Anup Das, Jeffrey L., Krichmar, Nikil D. Dutt, Nagarajan Kandasamy, Francky Catthoor

TL;DR
This paper introduces NCRTM, an intelligent run-time manager that dynamically manages aging-related reliability issues in neuromorphic computing hardware, improving longevity with minimal performance impact.
Contribution
It presents a novel architectural technique for real-time, adaptive de-stressing of neuromorphic circuits based on short-term aging, unlike prior fixed-interval methods.
Findings
NCRTM significantly enhances hardware reliability.
The approach causes minimal performance degradation.
Effective aging mitigation during machine learning workloads.
Abstract
Neuromorphic computing systems uses non-volatile memory (NVM) to implement high-density and low-energy synaptic storage. Elevated voltages and currents needed to operate NVMs cause aging of CMOS-based transistors in each neuron and synapse circuit in the hardware, drifting the transistor's parameters from their nominal values. Aggressive device scaling increases power density and temperature, which accelerates the aging, challenging the reliable operation of neuromorphic systems. Existing reliability-oriented techniques periodically de-stress all neuron and synapse circuits in the hardware at fixed intervals, assuming worst-case operating conditions, without actually tracking their aging at run time. To de-stress these circuits, normal operation must be interrupted, which introduces latency in spike generation and propagation, impacting the inter-spike interval and hence, performance,…
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Taxonomy
TopicsAdvanced Memory and Neural Computing · Ferroelectric and Negative Capacitance Devices · Semiconductor materials and devices
