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2026-01-06 23:22 UTC · cs.CV · cs.CV, cs.LG

Experimental Comparison of Light-Weight and Deep CNN Models Across Diverse Datasets

Md. Hefzul Hossain Papon, Shadman Rabby

Our results reveal that a well-regularized shallow architecture can serve as a highly competitive baseline across heterogeneous domains - from smart-city surveillance to agricultural variety classification - without requiring large GPUs or specialized pre-trained models. This work establishes a unified, reproducible benchmark for multiple Bangladeshi vision datasets and highlights the practical value of lightweight CNNs for real-world deployment in low-resource settings.
arXiv abstractPDF

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