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Zhe Dong

6 accepted papers

2023

SamToNe: Improving Contrastive Loss for Dual Encoder Retrieval Models with Same Tower Negatives

ACL 2023findings

Dual encoders have been used for retrieval tasks and representation learning with good results. A standard way to train dual encoders is using a contrastive loss with in-batch negatives. In this work, we propose an improved contrastive learning objective by adding queries or documents from the same…

Cited by 6SourcePDFScholar
2022

Exploring Dual Encoder Architectures for Question Answering

EMNLP 2022main

Dual encoders have been used for question-answering (QA) and information retrieval (IR) tasks with good results. There are two major types of dual encoders, Siamese Dual Encoders (SDE), with parameters shared across two encoders, and Asymmetric Dual Encoder (ADE), with two distinctly parameterized e…

Cited by 20SourcePDFScholar
2022

SKILL: Structured Knowledge Infusion for Large Language Models

NAACL 2022long

Large language models (LLMs) have demonstrated human-level performance on a vast spectrum of natural language tasks. However, it is largely unexplored whether they can better internalize knowledge from a structured data, such as a knowledge graph, or from text. In this work, we propose a method to i…

Cited by 100SourcePDFScholar
2020

Collapsed Amortized Variational Inference for Switching Nonlinear Dynamical Systems

ICML 2020poster

We propose an efficient inference method for switching nonlinear dynamical systems. The key idea is to learn an inference network which can be used as a proposal distribution for the continuous latent variables, while performing exact marginalization of the discrete latent variables. This allows us…

Cited by 33SourcePDFScholar