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Samiul Alam

5 accepted papers

2025

Position: Benchmarking is Broken - Don't Let AI be Its Own Judge

NeurIPS 2025poster

The meteoric rise of Artificial Intelligence (AI), with its rapidly expanding market capitalization, presents both transformative opportunities and critical challenges. Chief among these is the urgent need for a new, unified paradigm for trustworthy evaluation, as current benchmarks increasingly rev…

Cited by 0SourceScholar
2025

Reading Recognition in the Wild

NeurIPS 2025poster

To enable egocentric contextual AI in always-on smart glasses, it is crucial to be able to keep a record of the user's interactions with the world, including during reading. In this paper, we introduce a new task of reading recognition to determine when the user is reading. We first introduce the fi…

Cited by 0SourceScholar
2025

SVD-LLM V2: Optimizing Singular Value Truncation for Large Language Model Compression

NAACL 2025long

Despite significant advancements, the practical deployment of Large Language Models (LLMs) is often hampered by their immense sizes, highlighting the need for effective compression techniques. Singular Value Decomposition (SVD) emerges as a promising method for compressing LLMs. However, existing SV…

2023

FedAudio: A Federated Learning Benchmark for Audio Tasks

ICASSP 2023accepted

Federated learning (FL) has gained substantial attention in recent years due to data privacy concerns related to the pervasiveness of consumer devices that continuously collect data from users. While a number of FL benchmarks have been developed to facilitate FL research, none of them include audio…

Cited by 33SourceScholar
2022

FedRolex: Model-Heterogeneous Federated Learning with Rolling Sub-Model Extraction

NeurIPS 2022accept

Most cross-device federated learning (FL) studies focus on the model-homogeneous setting where the global server model and local client models are identical. However, such constraint not only excludes low-end clients who would otherwise make unique contributions to model training but also restrains…