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Benjamin Coleman

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How to Train Data-Efficient LLMs

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Feb 15, 2024
Noveen Sachdeva, Benjamin Coleman, Wang-Cheng Kang, Jianmo Ni, Lichan Hong, Ed H. Chi, James Caverlee, Julian McAuley, Derek Zhiyuan Cheng

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Adaptive Sampling for Deep Learning via Efficient Nonparametric Proxies

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Nov 22, 2023
Shabnam Daghaghi, Benjamin Coleman, Benito Geordie, Anshumali Shrivastava

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CAPS: A Practical Partition Index for Filtered Similarity Search

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Aug 29, 2023
Gaurav Gupta, Jonah Yi, Benjamin Coleman, Chen Luo, Vihan Lakshman, Anshumali Shrivastava

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CARAMEL: A Succinct Read-Only Lookup Table via Compressed Static Functions

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May 26, 2023
Benjamin Coleman, David Torres Ramos, Vihan Lakshman, Chen Luo, Anshumali Shrivastava

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Unified Embedding: Battle-Tested Feature Representations for Web-Scale ML Systems

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May 20, 2023
Benjamin Coleman, Wang-Cheng Kang, Matthew Fahrbach, Ruoxi Wang, Lichan Hong, Ed H. Chi, Derek Zhiyuan Cheng

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BOLT: An Automated Deep Learning Framework for Training and Deploying Large-Scale Neural Networks on Commodity CPU Hardware

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Mar 30, 2023
Nicholas Meisburger, Vihan Lakshman, Benito Geordie, Joshua Engels, David Torres Ramos, Pratik Pranav, Benjamin Coleman, Benjamin Meisburger, Shubh Gupta, Yashwanth Adunukota, Tharun Medini, Anshumali Shrivastava

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Efficient Inference via Universal LSH Kernel

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Jun 21, 2021
Zichang Liu, Benjamin Coleman, Anshumali Shrivastava

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Density Sketches for Sampling and Estimation

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Feb 24, 2021
Aditya Desai, Benjamin Coleman, Anshumali Shrivastava

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Bloom Origami Assays: Practical Group Testing

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Jul 21, 2020
Louis Abraham, Gary Becigneul, Benjamin Coleman, Bernhard Scholkopf, Anshumali Shrivastava, Alexander Smola

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STORM: Foundations of End-to-End Empirical Risk Minimization on the Edge

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Jun 25, 2020
Benjamin Coleman, Gaurav Gupta, John Chen, Anshumali Shrivastava

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