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Papers/Zero-Shot Object Detection by Hybrid Region Embedding

Zero-Shot Object Detection by Hybrid Region Embedding

Berkan Demirel, Ramazan Gokberk Cinbis, Nazli Ikizler-Cinbis

2018-05-16Zero-Shot Object Detectionobject-detectionObject Detection
PaperPDFCodeCode

Abstract

Object detection is considered as one of the most challenging problems in computer vision, since it requires correct prediction of both classes and locations of objects in images. In this study, we define a more difficult scenario, namely zero-shot object detection (ZSD) where no visual training data is available for some of the target object classes. We present a novel approach to tackle this ZSD problem, where a convex combination of embeddings are used in conjunction with a detection framework. For evaluation of ZSD methods, we propose a simple dataset constructed from Fashion-MNIST images and also a custom zero-shot split for the Pascal VOC detection challenge. The experimental results suggest that our method yields promising results for ZSD.

Results

TaskDatasetMetricValueModel
Object DetectionPASCAL VOC'07mAP54.2HRE
3DPASCAL VOC'07mAP54.2HRE
2D ClassificationPASCAL VOC'07mAP54.2HRE
2D Object DetectionPASCAL VOC'07mAP54.2HRE
16kPASCAL VOC'07mAP54.2HRE

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