Peer-reviewed publications and pre-prints.
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Better schedules for low precision training of deep neural networks
Venue: published in Machine Learning Journal 2024
Keywords: low precision training, hyperparameter schedules, cyclic precision training
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Cold Start Streaming Learning for Deep Networks
Venue: currently under review
Keywords: online learning, streaming learning, neural networks, deep learning
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Current progress and open challenges for applying deep learning across the biosciences
Venue: published in Nature Communications Volume 13
Keywords: deep learning, computational biology, perspective and review
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i-SpaSP: Structured Neural Pruning via Sparse Signal Recovery
Venue: oral presentation at L4DC 2022
Keywords: neural network pruning, sparse signal recovery, non-convex optimization
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PipeGCN: Efficient Full-Graph Training of Graph Convolutional Networks with Pipelined Feature Communication
Venue: poster at ICLR 2022
Keywords: graph convolutional networks (GCNs), distributed training, pipelined communication
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How much pre-training is enough to discover a good subnetwork?
Venue: published in TMLR 2024
Keywords: lottery ticket hypothesis, neural network pruning, conditional gradient method, overparameterization
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Exceeding the Limits of Visual-Linguistic Multi-Task Learning
Venue: internship project at Salesforce
Keywords: multi-modal learning, transformers, multi-task learning, transfer learning
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REX: Revisiting Budgeted Training with an Improved Schedule
Venue: conference paper at MLSys 2022
Keywords: learning rate decay, hyperparameter schedules, efficient training
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ResIST: Layer-Wise Decomposition of ResNets for Distributed Training
Venue: poster at UAI 2022
Keywords: residual networks, distributed training, efficient training
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GIST: Distributed Training for Large-Scale Graph Convolutional Networks
Venue: published in Journal of Applied and Computational Topology 2023
Keywords: graph convolutional networks (GCNs), distributed training, overparameterization, efficient training
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Distributed Learning of Deep Neural Networks using Independent Subnet Training
Venue: published in PVLDB Volume 15
Keywords: fully-connected neural networks, distributed training, efficient training
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Demon: Momentum Decay for Improved Neural Network Training
Venue: conference paper at ICASSP 2022
Keywords: non-convex optimization, momentum, hyperparameter schedules
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E-Stitchup: Data Augmentation for Pre-Trained Embeddings
Venue: undergraduate honors thesis at UT Austin 2020
Keywords: transfer learning, mixup, confidence calibration, out-of-distribution detection
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Functional Generative Design of Mechanisms with RNNs and Novelty Search
Venue: conference paper at GECCO 2019
Keywords: genetic algorithms, novelty search, recurrent neural networks (RNNs), generative design