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Adaptive multi-modal detection and fusion in videos via classification-based-learning

机译:通过基于分类的学习对视频进行自适应多模式检测和融合

摘要

Described is a system for object detection using classification-based learning. A fusion method is selected, then a video sequence is processed to generate detections for each frame, wherein a detection is a representation of an object candidate. The detections are fused to generate a set of fused detections for each frame. The classification module generates a classification score labeling each fused detection based on a predetermined classification threshold. Otherwise, a token indicating that the classification module has abstained from generating a classification score is generated. The scoring module produces a confidence score for each fused detection based on a set of learned parameters from the learning module and the set of fused detections. The set of fused detections are filtered by the accept-reject module based on one of the classification score or the confidence score. Finally, a set of final detections representing an object is output.
机译:描述了一种用于使用基于分类的学习的对象检测的系统。选择融合方法,然后处理视频序列以生成每个帧的检测,其中检测是对象候选的表示。融合检测以为每个帧生成一组融合检测。分类模块基于预定分类阈值生成标记每个融合检测的分类分数。否则,生成指示分类模块已经放弃生成分类得分的令牌。计分模块基于来自学习模块的一组学习参数和该组融合检测为每个融合检测生成置信度得分。接受检测-拒绝模块基于分类得分或置信度得分之一过滤融合检测的集合。最后,输出代表对象的一组最终检测结果。

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