International Journal For Multidisciplinary Research

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A Widely Indexed Open Access Peer Reviewed Multidisciplinary Bi-monthly Scholarly International Journal

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Underwater Marine Life Study using Yolo V8

Author(s) PALAK SAINI, DEEPALI YADAV, NEHA SINGH
Country India
Abstract Abstract: Underwater target detection, object classification, and image segmentation play an important role in ocean exploration and marine life studies for which the improvement of relevant technology is of much practical significance. Although existing target detection, image classification, and segmentation algorithms have achieved excellent performance on land they often fail to achieve satisfactory outcomes of detection and classification when in the underwater environment. In this paper, one of the most advanced target detection algorithms, YOLO v8 (You Only Look Once), was first applied in the underwater environment before being improved by combining it with some
methods characteristic of the underwater environment. The state-of-the-art backbone and neck architectures and TC-YOLO/SAM were treated as the basic backbone network of YOLO v8, which makes the network suitable for underwater images.
Field Computer > Data / Information
Published In Volume 5, Issue 6, November-December 2023
Published On 2023-12-19
Cite This Underwater Marine Life Study using Yolo V8 - PALAK SAINI, DEEPALI YADAV, NEHA SINGH - IJFMR Volume 5, Issue 6, November-December 2023. DOI 10.36948/ijfmr.2023.v05i06.10565
DOI https://doi.org/10.36948/ijfmr.2023.v05i06.10565
Short DOI https://doi.org/gs9k3f

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