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Vaden Masrani

8 accepted papers

2025

Task-Agnostic Language Model Watermarking via High Entropy Passthrough Layers

AAAI 2025technical

In the era of costly pre-training of large language models, ensuring the intellectual property rights of model owners, and insuring that said models are responsibly deployed, is becoming increasingly important. To this end, we propose model watermarking via passthrough layers, which are added to exi…

Cited by 0SourcePDFScholar
2024

GOLD: Generalized Knowledge Distillation via Out-of-Distribution-Guided Language Data Generation

NAACL 2024findings

Knowledge distillation from LLMs is essential for the efficient deployment of language models. Prior works have proposed data generation using LLMs for preparing distilled models. We argue that generating data with LLMs is prone to sampling mainly from the center of original content distribution. Th…

Cited by 4SourcePDFScholar
2022

Flexible Diffusion Modeling of Long Videos

NeurIPS 2022accept

We present a framework for video modeling based on denoising diffusion probabilistic models that produces long-duration video completions in a variety of realistic environments. We introduce a generative model that can at test-time sample any arbitrary subset of video frames conditioned on any other…

2021

q-Paths: Generalizing the geometric annealing path using power means

UAI 2021poster

Many common machine learning methods involve the geometric annealing path, a sequence of intermediate densities between two distributions of interest constructed using the geometric average. While alternatives such as the moment-averaging path have demonstrated performance gains in some settings, th…

2020

All in the Exponential Family: Bregman Duality in Thermodynamic Variational Inference

ICML 2020poster

The recently proposed Thermodynamic Variational Objective (TVO) leverages thermodynamic integration to provide a family of variational inference objectives, which both tighten and generalize the ubiquitous Evidence Lower Bound (ELBO). However, the tightness of TVO bounds was not previously known, an…

2020

Gaussian Process Bandit Optimization of the Thermodynamic Variational Objective

NeurIPS 2020poster

Achieving the full promise of the Thermodynamic Variational Objective (TVO), a recently proposed variational inference objective that lower-bounds the log evidence via one-dimensional Riemann integration, requires choosing a ``schedule'' of sorted discretization points. This paper introduces a besp…