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基于并聯(lián)卷積神經(jīng)網(wǎng)絡(luò )的無(wú)人機遙感影像建筑區域測量
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廣西工業(yè)職業(yè)技術(shù)學(xué)院

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廣西高校中青年教師科研基礎能力提升項目2020KY39020《BIM技術(shù)在區域復雜地質(zhì)條件下基坑工程施工管理應用研究》


Building Area Measurement of Uav Remote Sensing Image Based on Parallel Convolution Neural Network
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    摘要:

    無(wú)人機遙感影像覆蓋范圍廣,難以區分建筑區域與背景區域,所以研究基于并聯(lián)卷積神經(jīng)網(wǎng)絡(luò )的無(wú)人機遙感影像建筑區域測量方法。獲取無(wú)人機遙感影像,通過(guò)靜態(tài)輸出、圖像融合、去霧等環(huán)節完成遙感影像預處理。構建并聯(lián)卷積神經(jīng)網(wǎng)絡(luò ),通過(guò)網(wǎng)絡(luò )訓練傳播提取無(wú)人機遙感影像建筑區域邊緣特征,經(jīng)過(guò)特征匹配實(shí)現無(wú)人機遙感影像中建筑區域識別,結合面積計算結果獲取建筑區域的測量結果。經(jīng)過(guò)精度性能測試實(shí)驗得出結論,在有霧和無(wú)霧環(huán)境下所提方法與傳統區域測量方法相比的建筑區域測量誤差分別降低了0.505km2和0.305km2,說(shuō)明該方法的測量結果可靠性更高。

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    The coverage of drone remote sensing images is wide, making it difficult to distinguish between building areas and background areas. Therefore, a measurement method for building areas using drone remote sensing images based on parallel convolutional neural networks is studied. Obtain drone remote sensing images and complete remote sensing image preprocessing through static output, image fusion, defogging, and other processes. Construct a parallel convolutional neural network, extract the edge features of the building area in drone remote sensing images through network training propagation, and recognize the building area in drone remote sensing images through feature matching. Combined with the area calculation results, obtain the measurement results of the building area. After precision performance testing experiments, it was concluded that the proposed method reduced the measurement errors of building areas by 0.505km2 and 0.305km2 respectively compared to traditional area measurement methods in foggy and non foggy environments, indicating that the measurement results of this method are more reliable.

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黃艷暉,向環(huán)麗,余榮春.基于并聯(lián)卷積神經(jīng)網(wǎng)絡(luò )的無(wú)人機遙感影像建筑區域測量計算機測量與控制[J].,2024,32(3):44-49.

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  • 收稿日期:2023-04-24
  • 最后修改日期:2023-05-26
  • 錄用日期:2023-05-26
  • 在線(xiàn)發(fā)布日期: 2024-04-01
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