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基于幾何模型的綠蘿葉片外部表型參數(shù)三維估測(cè)
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國(guó)家級(jí)大學(xué)生創(chuàng)新創(chuàng)業(yè)訓(xùn)練計(jì)劃項(xiàng)目(201910307072Z)、中央高?;究蒲袠I(yè)務(wù)費(fèi)專(zhuān)項(xiàng)基金項(xiàng)目(KYZ201914,、KJQN201732)、國(guó)家自然科學(xué)基金項(xiàng)目(31601545)和江蘇省重點(diǎn)研發(fā)計(jì)劃項(xiàng)目(BE2016803)


Three-dimensional Estimation of Money Plant Leaf External Phenotypic Parameters Based on Geometric Model
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    摘要:

    為快速高效獲取葉類(lèi)植物葉片的外部表型參數(shù),、掌握植株生長(zhǎng)狀況,,以綠蘿葉片為研究對(duì)象,提出一種基于幾何模型的葉長(zhǎng),、葉寬與葉面積的三維估測(cè)方法,。利用微軟Kinect V2相機(jī),自80cm高度垂直位姿獲取綠蘿葉片局部點(diǎn)云,,并進(jìn)行直通濾波去噪與包圍盒精簡(jiǎn)等預(yù)處理,,測(cè)量得到點(diǎn)云外形參數(shù),輸入預(yù)先建立的SAE網(wǎng)絡(luò)分類(lèi)預(yù)測(cè)得到幾何模型參數(shù),,并基于曲面參數(shù)方程建立葉片幾何模型,。采用粒子群優(yōu)化算法計(jì)算幾何模型離散點(diǎn)云和局部點(diǎn)云間的空間距離,進(jìn)行空間匹配,,利用遺傳算法求解最優(yōu)匹配模型的內(nèi)部模型參數(shù),,輸出最優(yōu)匹配模型的葉長(zhǎng)、葉寬與葉面積作為估測(cè)結(jié)果,。實(shí)驗(yàn)共采集150片綠蘿葉片的局部點(diǎn)云數(shù)據(jù),,將估測(cè)結(jié)果和真實(shí)值進(jìn)行數(shù)學(xué)統(tǒng)計(jì)與線(xiàn)性回歸分析,得出葉長(zhǎng),、葉寬與葉面積估測(cè)的平均誤差分別為0.46cm,、0.41cm和3.42cm2,葉長(zhǎng)估測(cè)R2和RMSE分別為0.88和0.52cm,,葉寬R2和RMSE分別為0.88和0.52cm,葉面積R2和RMSE分別為0.95和3.60cm2,。實(shí)驗(yàn)表明,,該方法對(duì)于綠蘿葉片外形參數(shù)的估測(cè)效果較好,具有較高實(shí)用價(jià)值,。

    Abstract:

    In order to obtain the external phenotypic parameters of the leaves and grasp the growth status of the plants quickly and efficiently, a threedimensional estimation method of leaf length, leaf width and leaf area was proposed based on a geometric model by using the leaves of money plant. The Microsoft Kinect V2 camera was used to obtain the local point cloud of the leaf from the 80cm height vertical pose and perform preprocessing such as passthrough filtering, denoising and simplification of the bounding box. The shape parameters of the point cloud were measured, and the preestablished SAE network classification prediction was used to obtain the geometric model parameters. The geometric model of the blade was established based on the surface parameter equation. The particle swarm optimization algorithm was used to calculate the spatial distance between the discrete point cloud and the local point cloud of the geometric model for spatial matching. The genetic algorithm was used to solve the internal model parameters of the optimal matching model, and the leaf length, leaf width and leaf area of the optimal matching model were output, were used as the estimation result. A total of 150 point cloud data were collected from the experiments. The estimated results and real values were analyzed by mathematical statistics and linear regression analysis. The average errors of the estimated leaf length, leaf width, and leaf area were 0.46cm and 0.41cm and 3.42 cm2, respectively. The R2 and RMSE of estimated leaf length were 0.88 and 0.52cm, the R2 and RMSE of leaf width were 0.88 and 0.52cm, and the R2 and RMSE of leaf area were 0.95 and 3.60cm2, respectively. It can be known from the experimental results that this method had good estimation effect on the shape parameters of money plant leaves, and it had high practical value. 

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徐煥良,馬仕航,王浩云,胡華東,殷佳來(lái),車(chē)建華.基于幾何模型的綠蘿葉片外部表型參數(shù)三維估測(cè)[J].農(nóng)業(yè)機(jī)械學(xué)報(bào),2020,51(12):220-228. XU Huanliang, MA Shihang, WANG Haoyun, HU Huadong, YIN Jialai, CHE Jianhua. Three-dimensional Estimation of Money Plant Leaf External Phenotypic Parameters Based on Geometric Model[J]. Transactions of the Chinese Society for Agricultural Machinery,2020,51(12):220-228.

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  • 收稿日期:2020-03-02
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  • 在線(xiàn)發(fā)布日期: 2020-12-10
  • 出版日期: 2020-12-10
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