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Squeeze Every Bit of Insight: Leveraging Few-shot Models with a Compact Support Set for Domain Transfer in Object Detection from Pineapple Fields

  • University of Costa Rica
  • Costa Rica Institute of Technology

Research output: Chapter in Book/Report/Conference proceedingConference contributionpeer-review

Abstract

Object detection (OD) typically demands large annotated datasets and substantial computational resources. To address these challenges, we propose a novel two-stage pipeline that integrates Visual Foundation Models (VFMs) for object proposal generation with few-shot learning models enhanced by Mahalanobis distance-based classification. Our approach improves upon traditional Euclidean-based methods by incorporating data covariance through support and context prototypes. We specifically focus on scenarios with only just a few annotated images, reflecting real-world limitations where large-scale labeling is not feasible. Validated on pineapple detection from drone imagery, our method outperforms state-of-The-Art (SOTA) few-shot models using minimal labeled data. Extensive experiments show that FastSAM, when combined with a Mahalanobis distance variant that applies singular value decomposition (SVD) and diagonal loading for regularization, achieves the highest mean average precision (mAP), offering a practical and effective tool for crop monitoring and management.

Original languageEnglish
Title of host publicationProceedings - 2025 51st Latin American Computer Conference, CLEI 2025
PublisherInstitute of Electrical and Electronics Engineers Inc.
ISBN (Electronic)9798331594534
DOIs
StatePublished - 2025
Event51st Latin American Computer Conference, CLEI 2025 - Valparaiso, Chile
Duration: 27 Oct 202531 Oct 2025

Publication series

NameProceedings - 2025 51st Latin American Computer Conference, CLEI 2025

Conference

Conference51st Latin American Computer Conference, CLEI 2025
Country/TerritoryChile
CityValparaiso
Period27/10/2531/10/25

Keywords

  • agriculture
  • few-shot
  • mahalanobis
  • object detection

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