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Nikita Durasov

6 accepted papers

2025

IT$^3$: Idempotent Test-Time Training

ICML 2025poster

Deep learning models often struggle when deployed in real-world settings due to distribution shifts between training and test data. While existing approaches like domain adaptation and test-time training (TTT) offer partial solutions, they typically require additional data or domain-specific auxilia…

Cited by 0SourcePDFScholar
2024

Enabling Uncertainty Estimation in Iterative Neural Networks

ICML 2024poster

Turning pass-through network architectures into iterative ones, which use their own output as input, is a well-known approach for boosting performance. In this paper, we argue that such architectures offer an additional benefit: The convergence rate of their successive outputs is highly correlated w…

2023

How to Boost Face Recognition with StyleGAN?

ICCV 2023poster

State-of-the-art face recognition systems require huge amounts of labeled training data. Given the priority of privacy in face recognition applications, the data is limited to celebrity web crawls, which have issues such as skewed distributions of ethnicities and limited numbers of identities. On th…

Cited by 20PDFcodeScholar
2019

Double Refinement Network for Efficient Monocular Depth Estimation

IROS 2019poster

Monocular depth estimation is the task of obtaining a measure of distance for each pixel using a single image. It is an important problem in computer vision and is usually solved using neural networks. Though recent works in this area have shown significant improvement in accuracy, the state-of-the-…

Cited by 15SourceScholar