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基于深度學(xué)習的弱紋理圖像關(guān)鍵目標點(diǎn)識別定位方法
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浙江郵電職業(yè)技術(shù)學(xué)院

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國家自然基金項目( 61875168)、重慶市自然科學(xué)基金 cstc2019jcyj-msxm2550、浙江省高等教育教學(xué)改革研究項目(jg20180873)


Method for identifying and locating key target points in weak texture images based on deep learning
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    摘要:

    為提高弱紋理圖像關(guān)鍵目標點(diǎn)的檢測識別能力,提出基于深度學(xué)習的弱紋理圖像關(guān)鍵目標點(diǎn)識別定位方法。構建低光照強度弱紋理圖像關(guān)鍵目標點(diǎn)的拓撲特征分布模型,采用透射率作為檢測系數,結合亮通道的先驗知識,建立像素大數據分布集,采用暗原色融合和RGB像素分解方法實(shí)現對低光照強度弱紋理圖像的信息自適應增強處理;根據透射區域噪點(diǎn)融合匹配結果,采用交叉組合濾波檢測和深度學(xué)習算法,實(shí)現對低光照強度弱紋理圖像降噪和信息增強,據此實(shí)現對低光照強度弱紋理圖像關(guān)鍵目標點(diǎn)檢測識別。仿真結果表明,采用該方法定位識別的精度較高,平均為0.93,圖像輸出質(zhì)量較好,峰值信噪比平均為32.87,通過(guò)準確率-召回率曲線(xiàn)的對比也表明性能較為優(yōu)越。

    Abstract:

    In order to improve the detection and recognition ability of key target points in weak texture images, a method of identifying and locating key target points in weak texture images based on deep learning is proposed. The topological feature distribution model of key target points of weak texture images with low light intensity is constructed. The transmittance is used as the detection coefficient, and the pixel big data distribution set is established by combining the prior knowledge of bright channels. The dark primary color fusion and RGB pixel decomposition methods are used to realize the information adaptive enhancement processing of weak texture images with low light intensity. According to the results of noise fusion and matching in the transmission area, the cross combination filter detection and deep learning algorithm are adopted to realize the noise reduction and information enhancement of the weak texture image with low light intensity, thus realizing the key target point detection and recognition of the weak texture image with low light intensity. Simulation results show that this method has high positioning recognition accuracy, with an average of 0.93, and good image output quality, with an average peak signal-to-noise ratio of 32.87. By comparing the accuracy-recall curve, the performance of this method is superior.

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徐浙君,陳善雄.基于深度學(xué)習的弱紋理圖像關(guān)鍵目標點(diǎn)識別定位方法計算機測量與控制[J].,2022,30(2):186-191.

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歷史
  • 收稿日期:2021-07-21
  • 最后修改日期:2021-08-30
  • 錄用日期:2021-08-30
  • 在線(xiàn)發(fā)布日期: 2022-02-22
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