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Andrei Spiridonov

4 accepted papers

2026

Asynchronous Policy Gradient Aggregation for Efficient Distributed Reinforcement Learning

ICLR 2026poster

We study distributed reinforcement learning (RL) with policy gradient methods under asynchronous and parallel computations and communications. While non-distributed methods are well understood theoretically and have achieved remarkable empirical success, their distributed counterparts remain less ex…

Cited by 0SourceScholar
2026

BREPS: Bounding-Box Robustness Evaluation of Promptable Segmentation

AAAI 2026technical

Promptable segmentation models such as SAM have established a powerful paradigm, enabling strong generalization to unseen objects and domains with minimal user input, including points, bounding boxes, and text prompts. Among these, bounding boxes stand out as particularly effective, often outperform

Cited by 0SourcePDFScholar
2023

Building the Bridge of Schrödinger: A Continuous Entropic Optimal Transport Benchmark

NeurIPS 2023poster

Over the last several years, there has been significant progress in developing neural solvers for the Schrödinger Bridge (SB) problem and applying them to generative modelling. This new research field is justifiably fruitful as it is interconnected with the practically well-performing diffusion mode…

2023

FIANCEE: Faster Inference of Adversarial Networks via Conditional Early Exits

CVPR 2023poster

Generative DNNs are a powerful tool for image synthesis, but they are limited by their computational load. On the other hand, given a trained model and a task, e.g. faces generation within a range of characteristics, the output image quality will be unevenly distributed among images with different c…

Cited by 8SourcePDFScholar