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Suhas S Kowshik

4 accepted papers

2024

CorrSynth - A Correlated Sampling Method for Diverse Dataset Generation from LLMs

EMNLP 2024main

Large language models (LLMs) have demonstrated remarkable performance in diverse tasks using zero-shot and few-shot prompting. Even though their capabilities of data synthesis have been studied well in recent years, the generated data suffers from a lack of diversity, less adherence to the prompt, a…

Cited by 1SourcePDFScholar
2023

Multi-User Reinforcement Learning with Low Rank Rewards

ICML 2023poster

We consider collaborative multi-user reinforcement learning, where multiple users have the same state-action space and transition probabilities but different rewards. Under the assumption that the reward matrix of the $N$ users has a low-rank structure -- a standard and practically successful assump…

Cited by 1SourcePDFScholar
2021

Near-optimal Offline and Streaming Algorithms for Learning Non-Linear Dynamical Systems

NeurIPS 2021spotlight

We consider the setting of vector valued non-linear dynamical systems $X_{t+1} = \phi(A^{*} X_t) + \eta_t$, where $\eta_t$ is unbiased noise and $\phi : \mathbb{R} \to \mathbb{R}$ is a known link function that satisfies certain {\em expansivity property}. The goal is to learn $A^{*}$ from a single t…

Cited by 39SourcePDFScholar
2021

Streaming Linear System Identification with Reverse Experience Replay

NeurIPS 2021poster

We consider the problem of estimating a linear time-invariant (LTI) dynamical system from a single trajectory via streaming algorithms, which is encountered in several applications including reinforcement learning (RL) and time-series analysis. While the LTI system estimation problem is well-studie…

Cited by 21SourcePDFScholar