Object Detection in Pineapple Fields Drone Imagery Using Few Shot Learning and the Segment Anything Model

Fabian Fallas-Moya, Saul Calderon-Ramirez, Amir Sadovnik, Hairong Qi

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

2 Scopus citations

Abstract

Deep Learning Object Detection relies on extensive, manual annotation of datasets, a time-consuming and costly process prone to human inconsistencies. Auto-labeling using Visual Foundation Models offers a promising alternative but often falls short in object detection tasks. This research introduces a novel framework that uses the Segment Anything Model (SAM) with minimal annotated images to create an effective object detector. Despite the capabilities of Visual Foundation Models in downstream tasks, our research reveals their poor performance in object detection when operating within a different domain. Additionally, we demonstrate that with only a few labeled images, we can create a much better and simpler object detection system. We also prove that our model outperforms the best existing object detectors when it comes to analyzing drone images taken in pineapple fields.

Original languageEnglish
Title of host publicationProceedings - 22nd IEEE International Conference on Machine Learning and Applications, ICMLA 2023
EditorsM. Arif Wani, Mihai Boicu, Moamar Sayed-Mouchaweh, Pedro Henriques Abreu, Joao Gama
PublisherInstitute of Electrical and Electronics Engineers Inc.
Pages1635-1642
Number of pages8
ISBN (Electronic)9798350345346
DOIs
StatePublished - 2023
Event22nd IEEE International Conference on Machine Learning and Applications, ICMLA 2023 - Jacksonville, United States
Duration: Dec 15 2023Dec 17 2023

Publication series

NameProceedings - 22nd IEEE International Conference on Machine Learning and Applications, ICMLA 2023

Conference

Conference22nd IEEE International Conference on Machine Learning and Applications, ICMLA 2023
Country/TerritoryUnited States
CityJacksonville
Period12/15/2312/17/23

Keywords

  • few-shot
  • object detection
  • segment anything

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