Discriminative Semantic Feature Pyramid Network with Guided Anchoring for Logo Detection
Baisong Zhang, Weiqing Min, Jing Wang, Sujuan Hou, Qiang Hou, Yuanjie, Zheng, Shuqiang Jiang

TL;DR
This paper introduces DSFP-GA, a novel logo detection method that enhances semantic features for small objects and generates adaptive anchor boxes for large aspect ratio logos, improving detection accuracy.
Contribution
The paper proposes a new framework combining Discriminative Semantic Feature Pyramid and Guided Anchoring to address challenges in small and large aspect ratio logo detection.
Findings
Improved detection accuracy on four benchmark datasets.
Enhanced performance for small logo objects.
Effective large aspect ratio anchor box generation.
Abstract
Recently, logo detection has received more and more attention for its wide applications in the multimedia field, such as intellectual property protection, product brand management, and logo duration monitoring. Unlike general object detection, logo detection is a challenging task, especially for small logo objects and large aspect ratio logo objects in the real-world scenario. In this paper, we propose a novel approach, named Discriminative Semantic Feature Pyramid Network with Guided Anchoring (DSFP-GA), which can address these challenges via aggregating the semantic information and generating different aspect ratio anchor boxes. More specifically, our approach mainly consists of Discriminative Semantic Feature Pyramid (DSFP) and Guided Anchoring (GA). Considering that low-level feature maps that are used to detect small logo objects lack semantic information, we propose the DSFP,…
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Taxonomy
TopicsAdvanced Image and Video Retrieval Techniques · Visual Attention and Saliency Detection · Image Retrieval and Classification Techniques
MethodsGenetic Algorithms · Guided Anchoring
