安全检查违禁品箱包智能识别数据集
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对同一类型的违禁品图片数据进行预处理,按照统一特征值进行归类和提取,最终筛选其能够识别的典型特征归类为一个数据集。 采用端到端基于回归的目标检测和识别,将物体检测作为回归问题求解,将候选框和对象识别两个阶段整合为一个阶段,直接输入图像进行推理,同时得到图像中所有物体的位置和其所属类别及相应的置信概率。
Preprocess the image data of the same type of contraband, classify and extract them based on unified feature values, and finally screen out their recognizable typical features to form a dedicated dataset. This dataset applies an end-to-end regression-based object detection and recognition framework, which formulates object detection as a regression problem, integrates the two stages of candidate box generation and object recognition into a single stage, directly takes images as input for inference, and simultaneously outputs the positions of all objects in the image, their respective categories, and corresponding confidence probabilities.




