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Ravishankar Iyer

3 accepted papers

2022

EZNAS: Evolving Zero-Cost Proxies For Neural Architecture Scoring

NeurIPS 2022accept

Neural Architecture Search (NAS) has significantly improved productivity in the design and deployment of neural networks (NN). As NAS typically evaluates multiple models by training them partially or completely, the improved productivity comes at the cost of significant carbon footprint. To alleviat…

Cited by 14SourcePDFScholar
2020

Inductive-bias-driven Reinforcement Learning For Efficient Schedules in Heterogeneous Clusters

ICML 2020poster

The problem of scheduling of workloads onto heterogeneous processors (e.g., CPUs, GPUs, FPGAs) is of fundamental importance in modern data centers. Current system schedulers rely on application/system-specific heuristics that have to be built on a case-by-case basis. Recent work has demonstrated ML…

Cited by 16SourcePDFScholar
2017

EEG-GRAPH: A Factor-Graph-Based Model for Capturing Spatial, Temporal, and Observational Relationships in Electroencephalograms

NeurIPS 2017poster

This paper presents a probabilistic-graphical model that can be used to infer characteristics of instantaneous brain activity by jointly analyzing spatial and temporal dependencies observed in electroencephalograms (EEG). Specifically, we describe a factor-graph-based model with customized factor-fu…

Cited by 29SourcePDFScholar