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EXPLOITATION OF OPEN SOURCE DATASETS AND DEEP LEARNING MODELS FOR THE DETECTION OF OBJECTS IN URBAN AREAS

Citation Author(s):
Elpida Gkouvra, Thodoris Betsas, Maria Pateraki
Submitted by:
Elpida Gkouvra
Last updated:
17 November 2024 - 10:35am
Document Type:
Presentation Slides
Document Year:
2024
Event:
Presenters:
Elpida Gkouvra
Paper Code:
2855
 

In this work we utilize different open-source datasets and deep learning models for detecting objects from image data captured by a mobile mapping system integrating the multi-camera Ladybug 5+ in an urban area. In our experiments
we exploit sets of pre-trained models and models trained via transfer learning techniques with available open source datasets for object detection, semantic-, instance-, and panoptic segmentation. Tests with the trained models are performed with image data from the Ladybug 5+ camera.

Index Terms— open-source datasets, deep learning models, mobile mapping, transfer learning.

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