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Object detection based on visual memory: a feature learning and feature imagination process
Authors:Houde Dai  Wei Jiang
Affiliation:Quanzhou Institute of Equipment Manufacturing, Haixi Institutes, Chinese Academy of Sciences, Jinjiang, Fujian Province, China
Abstract:ABSTRACT

Visual memory plays an important role for the human’s visual system to detect objects. The features of an object stored in the visual memory have much lower dimensions than the features contained within an image. We simulate the visual memory as a feature learning and feature imagination (FLFI) process to build an object detection algorithm. The method is constructed by a bottom-up feature learning and a top-down feature imagination. The proposed object detection method is tested using publicly available benchmark data sets, and the result indicates that it is fast and more robust.
Keywords:Visual memory  feature learning and feature imagination (FIFL)  object detection  top-down  bottom-up
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