Paper proposes a new approach for agents to explore environments efficiently.
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Improved RL algorithm stabilizes unknown linear systems with polynomial regret.
Abstract MDPs enable strategic exploration and fast reward transfer in complex environments.
A new HRL algorithm learns and exploits multiple subgoals for faster exploration.
Paper explores fast adversarial training to improve robustness with less computation.
Traditionally, the field of computational Bayesian statistics has been divided into two main subfields: variational methods and Markov chain Monte Carlo (MCMC). In recent years, however, several methods have been proposed based on combining variational Bayesian inference and MCMC simulation in order to improve their ov…
New method speeds up image denoising models without sacrificing performance.
For high dimensional data, some of the standard statistical techniques do not work well. So modification or further development of statistical methods are necessary. In this paper, we explore these modifications. We start with the important problem of estimating high dimensional covariance matrix. Then we explore some …
This work explores non-negative low-rank matrix factorization based on regularized Poisson models (PF or "Poisson factorization" for short) for recommender systems with implicit-feedback data. The properties of Poisson likelihood allow a shortcut for very fast computations over zero-valued inputs, and oftentimes result…
Fast classification for sparse models, even with correlated features.
This paper proposes an exploration method for deep reinforcement learning based on parameter space noise. Recent studies have experimentally shown that parameter space noise results in better exploration than the commonly used action space noise. Previous methods devised a way to update the diagonal covariance matrix o…
The performance of an organic photovoltaic device is intricately connected to its active layer morphology. This connection between the active layer and device performance is very expensive to evaluate, either experimentally or computationally. Hence, designing morphologies to achieve higher performances is non-trivial …
Study shows fast rates for inverse reinforcement learning with linear rewards.
Efficiently simulates slow dynamics of high-dimensional stochastic systems.
Plan2Explore learns new tasks efficiently through self-supervised planning.
This thesis explores fast algorithms for large matrices and data augmentation to improve model efficiency.
An explorative data analysis system should be aware of what the user already knows and what the user wants to know of the data: otherwise the system cannot provide the user with the most informative and useful views of the data. We propose a principled way to do exploratory data analysis, where the user's background kn…
New exploration bonuses improve reinforcement learning efficiency.
In this paper, we propose an information-theoretic exploration strategy for stochastic, discrete multi-armed bandits that achieves optimal regret. Our strategy is based on the value of information criterion. This criterion measures the trade-off between policy information and obtainable rewards. High amounts of policy …
Neural networks trained with backpropagation often struggle to identify classes that have been observed a small number of times. In applications where most class labels are rare, such as language modelling, this can become a performance bottleneck. One potential remedy is to augment the network with a fast-learning non…
Fast emulators built with neural search accelerate expensive scientific simulations.
Efficient trainable front-end for neural speech enhancement.
EQO uses a simple bonus term for efficient exploration in tabular RL.
Latent space models are effective tools for statistical modeling and exploration of network data. These models can effectively model real world network characteristics such as degree heterogeneity, transitivity, homophily, etc. Due to their close connection to generalized linear models, it is also natural to incorporat…
New guarantees for ERM with adaptively collected data.
New methods for efficient exploration under unknown linear constraints in bandits.
Improved exploration methods for reinforcement learning with reduced sample complexity.
We propose a plan online and learn offline (POLO) framework for the setting where an agent, with an internal model, needs to continually act and learn in the world. Our work builds on the synergistic relationship between local model-based control, global value function learning, and exploration. We study how local traj…
We use Karhunen-Loève expansion for efficient pricing of exotic derivatives.
SFPO optimizes LLM reasoning by repositioning before updating, improving stability and efficiency.
Paper explores variable skipping to speed up range density estimation.
Entropy regularization improves MFG learning efficiency and stability.
A new algorithm speeds up neural network training with less data.
This paper uses deep learning to value derivatives. The approach is broadly applicable, and we use a call option on a basket of stocks as an example. We show that the deep learning model is accurate and very fast, capable of producing valuations a million times faster than traditional models. We develop a methodology t…
SkMM selects data for finetuning by balancing bias and variance.
Inference is typically intractable in high-treewidth undirected graphical models, making maximum likelihood learning a challenge. One way to overcome this is to restrict parameters to a tractable set, most typically the set of tree-structured parameters. This paper explores an alternative notion of a tractable set, nam…
BO algorithms improve binary and preferential optimization by distinguishing between types of uncertainty.
Novel RL-based NPG improves multi-objective NAS efficiency and performance.
Fast pricing of American-style options has been a difficult problem since it was first introduced to financial markets in 1970s, especially when the underlying stocks' prices follow some jump-diffusion processes. In this paper, we propose a new algorithm to generate tight upper bounds on the Bermudan option price witho…
Paper proposes efficient sample collection strategy for RL.
Many machine learning techniques sacrifice convenient computational structures to gain estimation robustness and modeling flexibility. However, by exploring the modeling structures, we find these "sacrifices" do not always require more computational efforts. To shed light on such a "free-lunch" phenomenon, we study the…
DANCE optimizes neural network and accelerator design for faster, more efficient DNN execution.
Optimal Transport has recently gained interest in machine learning for applications ranging from domain adaptation, sentence similarities to deep learning. Yet, its ability to capture frequently occurring structure beyond the "ground metric" is limited. In this work, we develop a nonlinear generalization of (discrete) …
A novel efficient method for computing the Knowledge-Gradient policy for Continuous Parameters (KGCP) for deterministic optimization is derived. The differences with Expected Improvement (EI), a popular choice for Bayesian optimization of deterministic engineering simulations, are explored. Both policies and the Upper …
To understand the structural dynamics of a large-scale social, biological or technological network, it may be useful to discover behavioral roles representing the main connectivity patterns present over time. In this paper, we propose a scalable non-parametric approach to automatically learn the structural dynamics of …
Integrates Fourier features for faster Gaussian process regression.
A growing interest has been witnessed recently from both academia and industry in building nearest neighbor search (NNS) solutions on top of full-text search engines. Compared with other NNS systems, such solutions are capable of effectively reducing main memory consumption, coherently supporting multi-model search and…
Paper uses deep learning to improve thermal-hydraulic simulations.