Abdul Gafar Manuel Meque
2025
TechExperts(IPN) at GenAI Detection Task 1: Detecting AI-Generated Text in English and Multilingual Contexts
Gull Mehak
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Amna Qasim
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Abdul Gafar Manuel Meque
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Nisar Hussain
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Grigori Sidorov
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Alexander Gelbukh
Proceedings of the 1stWorkshop on GenAI Content Detection (GenAIDetect)
The ever-increasing spread of AI-generated text, driven by the considerable progress in large language models, entails a real problem for all digital platforms: how to ensure con tent authenticity. The team TechExperts(IPN) presents a method for detecting AI-generated content in English and multilingual contexts, using the google/gemma-2b model fine-tuned for COLING 2025 shared task 1 for English and multilingual. Training results show peak F1 scores of 97.63% for English and 97.87% for multilingual detection, highlighting the model’s effectiveness in supporting content integrity across platforms.
2022
CIC NLP at SMM4H 2022: a BERT-based approach for classification of social media forum posts
Atnafu Lambebo Tonja
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Olumide Ebenezer Ojo
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Mohammed Arif Khan
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Abdul Gafar Manuel Meque
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Olga Kolesnikova
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Grigori Sidorov
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Alexander Gelbukh
Proceedings of The Seventh Workshop on Social Media Mining for Health Applications, Workshop & Shared Task
This paper describes our submissions for the Social Media Mining for Health (SMM4H) 2022 shared tasks. We participated in 2 tasks: a) Task 4: Classification of Tweets self-reporting exact age and b) Task 9: Classification of Reddit posts self-reporting exact age. We evaluated the two( BERT and RoBERTa) transformer based models for both tasks. For Task 4 RoBERTa-Large achieved an F1 score of 0.846 on the test set and BERT-Large achieved an F1 score of 0.865 on the test set for Task 9.
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Co-authors
- Alexander Gelbukh 2
- Grigori Sidorov 2
- Nisar Hussain 1
- Mohammed Arif Khan 1
- Olga Kolesnikova 1
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