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    Home » Google at ICLR 2023 – Ztoog
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    Google at ICLR 2023 – Ztoog

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    Google at ICLR 2023 – Ztoog
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    Posted by Catherine Armato, Program Manager, Google

    The Eleventh International Conference on Learning Representations (ICLR 2023) is being held this week as a hybrid occasion in Kigali, Rwanda. We are proud to be a Diamond Sponsor of ICLR 2023, a premier convention on deep studying, the place Google researchers contribute at all ranges. This 12 months we’re presenting over 100 papers and are actively concerned in organizing and internet hosting a variety of totally different occasions, together with workshops and interactive classes.

    If you’re registered for ICLR 2023, we hope you’ll go to the Google sales space to be taught extra concerning the thrilling work we’re doing throughout subjects spanning illustration and reinforcement studying, concept and optimization, social influence, security and privateness, and purposes from generative AI to speech and robotics. Continue under to search out the various methods wherein Google researchers are engaged at ICLR 2023, together with workshops, papers, posters and talks (Google affiliations in daring).

    Board and Organizing Committee

    Board Members embody: Shakir Mohamed, Tara Sainath

    Senior Program Chairs embody: Been Kim

    Workshop Chairs embody: Aisha Walcott-Bryant, Rose Yu

    Diversity, Equity & Inclusion Chairs embody: Rosanne Liu

    Outstanding Paper awards

    Emergence of Maps within the Memories of Blind Navigation Agents

    Erik Wijmans, Manolis Savva, Irfan Essa, Stefan Lee, Ari S. Morcos, Dhruv Batra

    DreamFusion: Text-to-3D Using 2D Diffusion

    Ben Poole, Ajay Jain, Jonathan T. Barron, Ben Mildenhall

    Keynote speaker

    Learned Optimizers: Why They’re the Future, Why They’re Hard, and What They Can Do Now


    Jascha Sohl-Dickstein

    Workshops

    Kaggle@ICLR 2023: ML Solutions in Africa

    Organizers embody: Julia Elliott, Phil Culliton, Ray Harvey

    Facilitators: Julia Elliot, Walter Reade

    Reincarnating Reinforcement Learning (Reincarnating RL)

    Organizers embody: Rishabh Agarwal, Ted Xiao, Max Schwarzer

    Speakers embody: Sergey Levine

    Panelists embody: Marc G. Bellemare, Sergey Levine

    Trustworthy and Reliable Large-Scale Machine Learning Models

    Organizers embody: Sanmi Koyejo

    Speakers embody: Nicholas Carlini

    Physics for Machine Learning (Physics4ML)

    Speakers embody: Yasaman Bahri

    AI for Agent-Based Modelling Community (AI4ABM)

    Organizers embody: Pablo Samuel Castro

    Mathematical and Empirical Understanding of Foundation Models (ME-FoMo)

    Organizers embody: Mathilde Caron, Tengyu Ma, Hanie Sedghi

    Speakers embody: Yasaman Bahri, Yann Dauphin

    Neurosymbolic Generative Models 2023 (NeSy-GeMs)

    Organizers embody: Kevin Ellis

    Speakers embody: Daniel Tarlow, Tuan Anh Le

    What Do We Need for Successful Domain Generalization?

    Panelists embody: Boqing Gong

    The 4th Workshop on Practical ML for Developing Countries: Learning Under Limited/Low Resource Settings

    Keynote Speaker: Adji Bousso Dieng

    Machine Learning for Remote Sensing

    Speakers embody: Abigail Annkah

    Multimodal Representation Learning (MRL): Perks and Pitfalls

    Organizers embody: Petra Poklukar

    Speakers embody: Arsha Nagrani

    Pitfalls of Limited Data and Computation for Trustworthy ML

    Organizers embody: Prateek Jain

    Speakers embody: Nicholas Carlini, Praneeth Netrapalli

    Sparsity in Neural Networks: On Practical Limitations and Tradeoffs Between Sustainability and Efficiency

    Organizers embody: Trevor Gale, Utku Evci

    Speakers embody: Aakanksha Chowdhery, Jeff Dean

    Time Series Representation Learning for Health

    Speakers embody: Katherine Heller

    Deep Learning for Code (DL4C)

    Organizers embody: Gabriel Orlanski

    Speakers embody: Alex Polozov, Daniel Tarlow

    Affinity Workshops

    Tiny Papers Showcase Day (a DEI initiative)

    Organizers embody: Rosanne Liu

    Papers

    Evolve Smoothly, Fit Consistently: Learning Smooth Latent Dynamics for Advection-Dominated Systems


    Zhong Yi Wan
    , Leonardo Zepeda-Nunez, Anudhyan Boral, Fei Sha

    Quantifying Memorization Across Neural Language Models


    Nicholas Carlini
    , Daphne Ippolito, Matthew Jagielski, Katherine Lee, Florian Tramer, Chiyuan Zhang

    Emergence of Maps within the Memories of Blind Navigation Agents (Outstanding Paper Award)


    Erik Wijmans
    , Manolis Savva, Irfan Essa, Stefan Lee, Ari S. Morcos, Dhruv Batra

    Offline Q-Learning on Diverse Multi-task Data Both Scales and Generalizes (see weblog submit)

    Aviral Kumar
    , Rishabh Agarwal, Xingyang Geng, George Tucker, Sergey Levine

    ReAct: Synergizing Reasoning and Acting in Language Models (see weblog submit)

    Shunyu Yao
    *, Jeffrey Zhao, Dian Yu, Nan Du, Izhak Shafran, Karthik R. Narasimhan, Yuan Cao

    Prompt-to-Prompt Image Editing with Cross-Attention Control


    Amir Hertz
    , Ron Mokady, Jay Tenenbaum, Kfir Aberman, Yael Pritch, Daniel Cohen-Or

    DreamFusion: Text-to-3D Using 2D Diffusion (Outstanding Paper Award)


    Ben Poole
    , Ajay Jain, Jonathan T. Barron, Ben Mildenhall

    A System for Morphology-Task Generalization through Unified Representation and Behavior Distillation


    Hiroki Furuta
    , Yusuke Iwasawa, Yutaka Matsuo, Shixiang Shane Gu

    Sample-Efficient Reinforcement Learning by Breaking the Replay Ratio Barrier


    Pierluca D’Oro
    , Max Schwarzer, Evgenii Nikishin, Pierre-Luc Bacon, Marc G Bellemare, Aaron Courville

    Dichotomy of Control: Separating What You Can Control from What You Cannot


    Sherry Yang
    , Dale Schuurmans, Pieter Abbeel, Ofir Nachum

    Fast and Precise: Adjusting Planning Horizon with Adaptive Subgoal Search


    Michał Zawalski
    , Michał Tyrolski, Konrad Czechowski, Tomasz Odrzygóźdź, Damian Stachura, Piotr Piekos, Yuhuai Wu, Łukasz Kucinski, Piotr Miłos

    The Trade-Off Between Universality and Label Efficiency of Representations from Contrastive Learning


    Zhenmei Shi
    , Jiefeng Chen, Kunyang Li, Jayaram Raghuram, Xi Wu, Yingyu Liang, Somesh Jha

    Sparsity-Constrained Optimal Transport


    Tianlin Liu
    *, Joan Puigcerver, Mathieu Blondel

    Unmasking the Lottery Ticket Hypothesis: What’s Encoded in a Winning Ticket’s Mask?


    Mansheej Paul
    , Feng Chen, Brett W. Larsen, Jonathan Frankle, Surya Ganguli, Gintare Karolina Dziugaite

    Extreme Q-Learning: MaxEnt RL with out Entropy


    Divyansh Garg
    , Joey Hejna, Matthieu Geist, Stefano Ermon

    Draft, Sketch, and Prove: Guiding Formal Theorem Provers with Informal Proofs


    Albert Qiaochu Jiang
    , Sean Welleck, Jin Peng Zhou, Timothee Lacroix, Jiacheng Liu, Wenda Li, Mateja Jamnik, Guillaume Lample, Yuhuai Wu

    SimPer: Simple Self-Supervised Learning of Periodic Targets


    Yuzhe Yang
    , Xin Liu, Jiang Wu, Silviu Borac, Dina Katabi, Ming-Zher Poh, Daniel McDuff

    Socratic Models: Composing Zero-Shot Multimodal Reasoning with Language


    Andy Zeng
    , Maria Attarian, Brian Ichter, Krzysztof Marcin Choromanski, Adrian Wong, Stefan Welker, Federico Tombari, Aveek Purohit, Michael S. Ryoo, Vikas Sindhwani, Johnny Lee, Vincent Vanhoucke, Pete Florence

    What Learning Algorithm Is In-Context Learning? Investigations with Linear Models


    Ekin Akyurek
    *, Dale Schuurmans, Jacob Andreas, Tengyu Ma*, Denny Zhou

    Preference Transformer: Modeling Human Preferences Using Transformers for RL


    Changyeon Kim
    , Jongjin Park, Jinwoo Shin, Honglak Lee, Pieter Abbeel, Kimin Lee

    Iterative Patch Selection for High-Resolution Image Recognition


    Benjamin Bergner
    , Christoph Lippert, Aravindh Mahendran

    Open-Vocabulary Object Detection upon Frozen Vision and Language Models


    Weicheng Kuo
    , Yin Cui, Xiuye Gu, AJ Piergiovanni, Anelia Angelova

    (Certified!!) Adversarial Robustness for Free!


    Nicholas Carlini
    , Florian Tramér, Krishnamurthy (Dj) Dvijotham, Leslie Rice, Mingjie Sun, J. Zico Kolter

    REPAIR: REnormalizing Permuted Activations for Interpolation Repair


    Keller Jordan
    , Hanie Sedghi, Olga Saukh, Rahim Entezari, Behnam Neyshabur

    Discrete Predictor-Corrector Diffusion Models for Image Synthesis


    José Lezama
    , Tim Salimans, Lu Jiang, Huiwen Chang, Jonathan Ho, Irfan Essa

    Feature Reconstruction From Outputs Can Mitigate Simplicity Bias in Neural Networks


    Sravanti Addepalli
    , Anshul Nasery, Praneeth Netrapalli, Venkatesh Babu R., Prateek Jain

    An Exact Poly-time Membership-Queries Algorithm for Extracting a Three-Layer ReLU Network


    Amit Daniely
    , Elad Granot

    Language Models Are Multilingual Chain-of-Thought Reasoners


    Freda Shi
    , Mirac Suzgun, Markus Freitag, Xuezhi Wang, Suraj Srivats, Soroush Vosoughi, Hyung Won Chung, Yi Tay, Sebastian Ruder, Denny Zhou, Dipanjan Das, Jason Wei

    Scaling Forward Gradient with Local Losses


    Mengye Ren
    *, Simon Kornblith, Renjie Liao, Geoffrey Hinton

    Treeformer: Dense Gradient Trees for Efficient Attention Computation


    Lovish Madaan
    , Srinadh Bhojanapalli, Himanshu Jain, Prateek Jain

    LilNetX: Lightweight Networks with EXtreme Model Compression and Structured Sparsification


    Sharath Girish
    , Kamal Gupta, Saurabh Singh, Abhinav Shrivastava

    DiffusER: Diffusion through Edit-Based Reconstruction


    Machel Reid
    , Vincent J. Hellendoorn, Graham Neubig

    Leveraging Unlabeled Data to Track Memorization


    Mahsa Forouzesh
    , Hanie Sedghi, Patrick Thiran

    A Mixture-of-Expert Approach to RL-Based Dialogue Management


    Yinlam Chow
    , Aza Tulepbergenov, Ofir Nachum, Dhawal Gupta, Moonkyung Ryu, Mohammad Ghavamzadeh, Craig Boutilier

    Easy Differentially Private Linear Regression


    Kareem Amin
    , Matthew Joseph, Monica Ribero, Sergei Vassilvitskii

    KwikBucks: Correlation Clustering with Cheap-Weak and Expensive-Strong Signals


    Sandeep Silwal
    *, Sara Ahmadian, Andrew Nystrom, Andrew McCallum, Deepak Ramachandran, Mehran Kazemi

    Massively Scaling Heteroscedastic Classifiers


    Mark Collier
    , Rodolphe Jenatton, Basil Mustafa, Neil Houlsby, Jesse Berent, Effrosyni Kokiopoulou

    The Lazy Neuron Phenomenon: On Emergence of Activation Sparsity in Transformers


    Zonglin Li
    , Chong You, Srinadh Bhojanapalli, Daliang Li, Ankit Singh Rawat, Sashank J. Reddi, Ke Ye, Felix Chern, Felix Yu, Ruiqi Guo, Sanjiv Kumar

    Compositional Semantic Parsing with Large Language Models


    Andrew Drozdov
    , Nathanael Scharli, Ekin Akyurek, Nathan Scales, Xinying Song, Xinyun Chen, Olivier Bousquet, Denny Zhou

    Extremely Simple Activation Shaping for Out-of-Distribution Detection


    Andrija Djurisic
    , Nebojsa Bozanic, Arjun Ashok, Rosanne Liu

    Long Range Language Modeling through Gated State Spaces


    Harsh Mehta
    , Ankit Gupta, Ashok Cutkosky, Behnam Neyshabur

    Investigating Multi-task Pretraining and Generalization in Reinforcement Learning


    Adrien Ali Taiga
    , Rishabh Agarwal, Jesse Farebrother, Aaron Courville, Marc G. Bellemare

    Learning Low Dimensional State Spaces with Overparameterized Recurrent Neural Nets


    Edo Cohen-Karlik
    , Itamar Menuhin-Gruman, Raja Giryes, Nadav Cohen, Amir Globerson

    Weighted Ensemble Self-Supervised Learning


    Yangjun Ruan
    *, Saurabh Singh, Warren Morningstar, Alexander A. Alemi, Sergey Ioffe, Ian Fischer, Joshua V. Dillon

    Calibrating Sequence Likelihood Improves Conditional Language Generation


    Yao Zhao
    , Misha Khalman, Rishabh Joshi, Shashi Narayan, Mohammad Saleh, Peter J. Liu

    SMART: Sentences as Basic Units for Text Evaluation


    Reinald Kim Amplayo
    , Peter J. Liu, Yao Zhao, Shashi Narayan

    Leveraging Importance Weights in Subset Selection


    Gui Citovsky
    , Giulia DeSalvo, Sanjiv Kumar, Srikumar Ramalingam, Afshin Rostamizadeh, Yunjuan Wang*

    Proto-Value Networks: Scaling Representation Learning with Auxiliary Tasks

    Jesse Farebrother, Joshua Greaves, Rishabh Agarwal, Charline Le Lan, Ross Goroshin, Pablo Samuel Castro, Marc G. Bellemare

    An Extensible Multi-modal Multi-task Object Dataset with Materials


    Trevor Standley
    , Ruohan Gao, Dawn Chen, Jiajun Wu, Silvio Savarese

    Measuring Forgetting of Memorized Training Examples


    Matthew Jagielski
    , Om Thakkar, Florian Tramér, Daphne Ippolito, Katherine Lee, Nicholas Carlini, Eric Wallace, Shuang Song, Abhradeep Thakurta, Nicolas Papernot, Chiyuan Zhang

    Bidirectional Language Models Are Also Few-Shot Learners


    Ajay Patel
    , Bryan Li, Mohammad Sadegh Rasooli, Noah Constant, Colin Raffel, Chris Callison-Burch

    Is Attention All That NeRF Needs?


    Mukund Varma T.
    , Peihao Wang, Xuxi Chen, Tianlong Chen, Subhashini Venugopalan, Zhangyang Wang

    Automating Nearest Neighbor Search Configuration with Constrained Optimization


    Philip Sun
    , Ruiqi Guo, Sanjiv Kumar

    Static Prediction of Runtime Errors by Learning to Execute Programs with External Resource Descriptions


    David Bieber
    , Rishab Goel, Daniel Zheng, Hugo Larochelle, Daniel Tarlow

    Composing Ensembles of Pre-trained Models through Iterative Consensus


    Shuang Li
    , Yilun Du, Joshua B. Tenenbaum, Antonio Torralba, Igor Mordatch

    Λ-DARTS: Mitigating Performance Collapse by Harmonizing Operation Selection Among Cells


    Sajad Movahedi
    , Melika Adabinejad, Ayyoob Imani, Arezou Keshavarz, Mostafa Dehghani, Azadeh Shakery, Babak N. Araabi

    Blurring Diffusion Models


    Emiel Hoogeboom
    , Tim Salimans

    Part-Based Models Improve Adversarial Robustness


    Chawin Sitawarin
    , Kornrapat Pongmala, Yizheng Chen, Nicholas Carlini, David Wagner

    Learning in Temporally Structured Environments


    Matt Jones
    , Tyler R. Scott, Mengye Ren, Gamaleldin ElSayed, Katherine Hermann, David Mayo, Michael C. Mozer

    SlotFormer: Unsupervised Visual Dynamics Simulation with Object-Centric Models


    Ziyi Wu
    , Nikita Dvornik, Klaus Greff, Thomas Kipf, Animesh Garg

    Robust Algorithms on Adaptive Inputs from Bounded Adversaries


    Yeshwanth Cherapanamjeri
    , Sandeep Silwal, David P. Woodruff, Fred Zhang, Qiuyi (Richard) Zhang, Samson Zhou

    Agnostic Learning of General ReLU Activation Using Gradient Descent


    Pranjal Awasthi
    , Alex Tang, Aravindan Vijayaraghavan

    Analog Bits: Generating Discrete Data Using Diffusion Models with Self-Conditioning


    Ting Chen
    , Ruixiang Zhang, Geoffrey Hinton

    Any-Scale Balanced Samplers for Discrete Space


    Haoran Sun
    *, Bo Dai, Charles Sutton, Dale Schuurmans, Hanjun Dai

    Augmentation with Projection: Towards an Effective and Efficient Data Augmentation Paradigm for Distillation


    Ziqi Wang
    *, Yuexin Wu, Frederick Liu, Daogao Liu, Le Hou, Hongkun Yu, Jing Li, Heng Ji

    Beyond Lipschitz: Sharp Generalization and Excess Risk Bounds for Full-Batch GD


    Konstantinos E. Nikolakakis
    , Farzin Haddadpour, Amin Karbasi, Dionysios S. Kalogerias

    Causal Estimation for Text Data with (Apparent) Overlap Violations


    Lin Gui
    , Victor Veitch

    Contrastive Learning Can Find an Optimal Basis for Approximately View-Invariant Functions


    Daniel D. Johnson
    , Ayoub El Hanchi, Chris J. Maddison

    Differentially Private Adaptive Optimization with Delayed Preconditioners


    Tian Li
    , Manzil Zaheer, Ziyu Liu, Sashank Reddi, Brendan McMahan, Virginia Smith

    Distributionally Robust Post-hoc Classifiers Under Prior Shifts


    Jiaheng Wei
    *, Harikrishna Narasimhan, Ehsan Amid, Wen-Sheng Chu, Yang Liu, Abhishek Kumar

    Human Alignment of Neural Network Representations


    Lukas Muttenthaler
    , Jonas Dippel, Lorenz Linhardt, Robert A. Vandermeulen, Simon Kornblith

    Implicit Bias in Leaky ReLU Networks Trained on High-Dimensional Data


    Spencer Frei
    , Gal Vardi, Peter Bartlett, Nathan Srebro, Wei Hu

    Koopman Neural Operator Forecaster for Time-Series with Temporal Distributional Shifts


    Rui Wang
    *, Yihe Dong, Sercan Ö. Arik, Rose Yu

    Latent Variable Representation for Reinforcement Learning


    Tongzheng Ren
    , Chenjun Xiao, Tianjun Zhang, Na Li, Zhaoran Wang, Sujay Sanghavi, Dale Schuurmans, Bo Dai

    Least-to-Most Prompting Enables Complex Reasoning in Large Language Models


    Denny Zhou
    , Nathanael Scharli, Le Hou, Jason Wei, Nathan Scales, Xuezhi Wang, Dale Schuurmans, Claire Cui, Olivier Bousquet, Quoc Le, Ed Chi

    Mind’s Eye: Grounded Language Model Reasoning Through Simulation


    Ruibo Liu
    , Jason Wei, Shixiang Shane Gu, Te-Yen Wu, Soroush Vosoughi, Claire Cui, Denny Zhou, Andrew M. Dai

    MOAT: Alternating Mobile Convolution and Attention Brings Strong Vision Models


    Chenglin Yang
    *, Siyuan Qiao, Qihang Yu, Xiaoding Yuan, Yukun Zhu, Alan Yuille, Hartwig Adam, Liang-Chieh Chen

    Novel View Synthesis with Diffusion Models


    Daniel Watson
    , William Chan, Ricardo Martin-Brualla, Jonathan Ho, Andrea Tagliasacchi, Mohammad Norouzi

    On Accelerated Perceptrons and Beyond


    Guanghui Wang
    , Rafael Hanashiro, Etash Guha, Jacob Abernethy

    On Compositional Uncertainty Quantification for Seq2seq Graph Parsing


    Zi Lin
    *, Du Phan, Panupong Pasupat, Jeremiah Liu, Jingbo Shang

    On the Robustness of Safe Reinforcement Learning Under Observational Perturbations


    Zuxin Liu
    , Zijian Guo, Zhepeng Cen, Huan Zhang, Jie Tan, Bo Li, Ding Zhao

    Online Low Rank Matrix Completion


    Prateek Jain
    , Soumyabrata Pal

    Out-of-Distribution Detection and Selective Generation for Conditional Language Models


    Jie Ren
    , Jiaming Luo, Yao Zhao, Kundan Krishna*, Mohammad Saleh, Balaji Lakshminarayanan, Peter J. Liu

    PaLI: A Jointly-Scaled Multilingual Language-Image Model


    Xi Chen
    , Xiao Wang, Soravit Changpinyo, AJ Piergiovanni, Piotr Padlewski, Daniel Salz, Sebastian Goodman, Adam Grycner, Basil Mustafa, Lucas Beyer, Alexander Kolesnikov, Joan Puigcerver, Nan Ding, Keran Rong, Hassan Akbari, Gaurav Mishra, Linting Xue, Ashish V. Thapliyal, James Bradbury, Weicheng Kuo, Mojtaba Seyedhosseini, Chao Jia, Burcu Karagol Ayan, Carlos Riquelme Ruiz, Andreas Peter Steiner, Anelia Angelova, Xiaohua Zhai, Neil Houlsby, Radu Soricut

    Phenaki: Variable Length Video Generation from Open Domain Textual Descriptions


    Ruben Villegas
    , Mohammad Babaeizadeh, Pieter-Jan Kindermans, Hernan Moraldo, Han Zhang, Mohammad Taghi Saffar, Santiago Castro*, Julius Kunze*, Dumitru Erhan

    Promptagator: Few-Shot Dense Retrieval from 8 Examples


    Zhuyun Dai
    , Vincent Y. Zhao, Ji Ma, Yi Luan, Jianmo Ni, Jing Lu, Anton Bakalov, Kelvin Guu, Keith B. Hall, Ming-Wei Chang

    Pushing the Accuracy-Group Robustness Frontier with Introspective Self-Play


    Jeremiah Zhe Liu
    , Krishnamurthy Dj Dvijotham, Jihyeon Lee, Quan Yuan, Balaji Lakshminarayanan, Deepak Ramachandran

    Re-Imagen: Retrieval-Augmented Text-to-Image Generator

    Wenhu Chen
    , Hexiang Hu, Chitwan Saharia, William W. Cohen

    Recitation-Augmented Language Models


    Zhiqing Sun
    , Xuezhi Wang, Yi Tay, Yiming Yang, Denny Zhou

    Regression with Label Differential Privacy


    Badih Ghazi
    , Pritish Kamath, Ravi Kumar, Ethan Leeman, Pasin Manurangsi, Avinash Varadarajan, Chiyuan Zhang

    Revisiting the Entropy Semiring for Neural Speech Recognition


    Oscar Chang
    , Dongseong Hwang, Olivier Siohan

    Robust Active Distillation


    Cenk Baykal
    , Khoa Trinh, Fotis Iliopoulos, Gaurav Menghani, Erik Vee

    Score-Based Continuous-Time Discrete Diffusion Models


    Haoran Sun
    *, Lijun Yu, Bo Dai, Dale Schuurmans, Hanjun Dai

    Self-Consistency Improves Chain of Thought Reasoning in Language Models


    Xuezhi Wang
    , Jason Wei, Dale Schuurmans, Quoc Le, Ed H. Chi, Sharan Narang, Aakanksha Chowdhery, Denny Zhou

    Self-Supervision Through Random Segments with Autoregressive Coding (RandSAC)


    Tianyu Hua
    , Yonglong Tian, Sucheng Ren, Michalis Raptis, Hang Zhao, Leonid Sigal

    Serving Graph Compression for Graph Neural Networks


    Si Si
    , Felix Yu, Ankit Singh Rawat, Cho-Jui Hsieh, Sanjiv Kumar

    Sequential Attention for Feature Selection


    Taisuke Yasuda
    *, MohammadHossein Bateni, Lin Chen, Matthew Fahrbach, Gang Fu, Vahab Mirrokni

    Sparse Upcycling: Training Mixture-of-Experts from Dense Checkpoints


    Aran Komatsuzaki
    *, Joan Puigcerver, James Lee-Thorp, Carlos Riquelme, Basil Mustafa, Joshua Ainslie, Yi Tay, Mostafa Dehghani, Neil Houlsby

    Spectral Decomposition Representation for Reinforcement Learning


    Tongzheng Ren
    , Tianjun Zhang, Lisa Lee, Joseph Gonzalez, Dale Schuurmans, Bo Dai

    Spotlight: Mobile UI Understanding Using Vision-Language Models with a Focus (see weblog submit)

    Gang Li
    , Yang Li

    Supervision Complexity and Its Role in Knowledge Distillation


    Hrayr Harutyunyan
    *, Ankit Singh Rawat, Aditya Krishna Menon, Seungyeon Kim, Sanjiv Kumar

    Teacher Guided Training: An Efficient Framework for Knowledge Transfer


    Manzil Zaheer
    , Ankit Singh Rawat, Seungyeon Kim, Chong You, Himanshu Jain, Andreas Veit, Rob Fergus, Sanjiv Kumar

    TEMPERA: Test-Time Prompt Editing through Reinforcement Learning


    Tianjun Zhang
    , Xuezhi Wang, Denny Zhou, Dale Schuurmans, Joseph E. Gonzalez

    UL2: Unifying Language Learning Paradigms


    Yi Tay
    , Mostafa Dehghani, Vinh Q. Tran, Xavier Garcia, Jason Wei, Xuezhi Wang, Hyung Won Chung, Dara Bahri, Tal Schuster, Steven Zheng, Denny Zhou, Neil Houlsby, Donald Metzler


    * Work carried out whereas at Google

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