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基于VGG-UNet的食用菌菌絲體表型參數(shù)自動(dòng)測(cè)量方法
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廣西科學(xué)研究與技術(shù)開(kāi)發(fā)計(jì)劃項(xiàng)目(桂科AA20302002-3),、廣西創(chuàng)新驅(qū)動(dòng)發(fā)展專項(xiàng)資金項(xiàng)目(桂科AA0302012-1)和財(cái)政部和農(nóng)業(yè)農(nóng)村部:國(guó)家現(xiàn)代農(nóng)業(yè)產(chǎn)業(yè)技術(shù)體系建設(shè)項(xiàng)目(CARS-20)


Automated Measurement Method of Phenotypic Parameters of Edible Mushroom Mycelium Based on VGG-UNet
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    摘要:

    食用菌菌絲體表型特征是食用菌種質(zhì)資源評(píng)價(jià)和科學(xué)育種的重要依據(jù),。針對(duì)傳統(tǒng)閾值分割方法提取菌絲體區(qū)域易受到光照不均,、菌絲體不規(guī)則生長(zhǎng)和培養(yǎng)皿內(nèi)產(chǎn)生代謝物等因素干擾的問(wèn)題,,制作食用菌菌絲體圖像數(shù)據(jù)集,并提出一種基于深度學(xué)習(xí)的食用菌菌絲體表型參數(shù)自動(dòng)測(cè)量方法,。將U-Net網(wǎng)絡(luò)編碼器部分替換為VGG16的前13個(gè)卷積層,,引入預(yù)訓(xùn)練權(quán)重,構(gòu)建適用于菌絲體分割的VGG-UNet模型,。測(cè)試集上對(duì)比實(shí)驗(yàn)表明,,該模型的平均交并比達(dá)到98.18%,比原始U-Net模型高0.93個(gè)百分點(diǎn),。經(jīng)該模型獲取菌絲體分割圖像后,,利用OpenCV相關(guān)函數(shù)計(jì)算菌絲體的半徑、周長(zhǎng),、面積,、覆蓋度、圓整度這5個(gè)表型參數(shù),。將人工測(cè)量方法與本文方法進(jìn)行線性回歸分析,,得出菌絲體半徑、周長(zhǎng),、面積和覆蓋度的決定系數(shù)分別為0.9795,、0.9915,、0.9750和0.9750,均方根誤差分別為2.20mm,、4.73mm,、176.74mm2和3.16%。經(jīng)測(cè)試,,本文方法能準(zhǔn)確地完成食用菌菌絲體表型參數(shù)自動(dòng)測(cè)量任務(wù),,為食用菌表型分析研究提供理論基礎(chǔ)。

    Abstract:

    Mycelium phenotypic characteristics of edible mushroom are an important basis for the evaluation of edible mushroom germplasm resources and scientific breeding. To address the problems of traditional threshold segmentation method to extract mycelium regions which are easily disturbed by uneven light, irregular growth of mycelium and metabolites produced in the petri dishes, an image dataset of edible mycelium was made and a deep learning-based automatic measurement method for edible mycelium phenotype parameters was proposed. The U-Net network encoder was partially replaced with the first 13 convolutional layers of VGG16, and pre-training weights were introduced to construct a VGG-UNet model applicable to mycelium segmentation. The average cross-merge ratio of this model reached 98.18%, which was 0.93 percentage points higher than that of the original U-Net model. After obtaining mycelium segmentation images by this model, the five phenotypic parameters of radius, perimeter, area, coverage, and roundness of mycelium were calculated by using OpenCV correlation functions. A linear regression analysis was performed between the manual measurement method, and the R2 of mycelium radius, perimeter, area and coverage were 0.9795, 0.9915, 0.9750 and 0.9750, respectively, and the RMSE were 2.20mm, 4.73mm, 176.74mm2 and 3.16%, respectively. The method was tested to accurately accomplish the task of automatic measurement of phenotypic parameters of edible mycelium, which provided a theoretical basis for the study of phenotypic analysis of edible mushrooms.

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陳燕,陸嘉豪,胡小春,祁亮亮.基于VGG-UNet的食用菌菌絲體表型參數(shù)自動(dòng)測(cè)量方法[J].農(nóng)業(yè)機(jī)械學(xué)報(bào),2024,55(1):233-240. CHEN Yan, LU Jiahao, HU Xiaochun, QI Liangliang. Automated Measurement Method of Phenotypic Parameters of Edible Mushroom Mycelium Based on VGG-UNet[J]. Transactions of the Chinese Society for Agricultural Machinery,2024,55(1):233-240.

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  • 收稿日期:2023-06-30
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  • 在線發(fā)布日期: 2023-07-17
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