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Ivan Smirnov

3 accepted papers

2025

Exploring Large Language Models for Detecting Mental Disorders

EMNLP 2025

This paper compares the effectiveness of traditional machine learning methods, encoder-based models, and large language models (LLMs) on the task of detecting depression and anxiety. Five Russian-language datasets were considered, each differing in format and in the method used to define the target

Cited by 0SourcePDFScholar
2025

Inference-Time Selective Debiasing to Enhance Fairness in Text Classification Models

NAACL 2025short

We propose selective debiasing – an inference-time safety mechanism designed to enhance the overall model quality in terms of prediction performance and fairness, especially in scenarios where retraining the model is impractical. The method draws inspiration from selective classification, where at i…

Cited by 0SourcePDFScholar
2024

Russian Learner Corpus: Towards Error-Cause Annotation for L2 Russian

COLING 2024main

Russian Learner Corpus (RLC) is a large collection of learner texts in Russian written by native speakers of over forty languages. Learner errors in part of the corpus are manually corrected and annotated. Diverging from conventional error classifications, which typically focus on isolated lexical a…