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基于GA-SVR的熱源自適應(yīng)莖流檢測(cè)與調(diào)控系統(tǒng)研究
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國(guó)家重點(diǎn)研發(fā)計(jì)劃項(xiàng)目(2020YFD1100602)和陜西省重點(diǎn)研發(fā)計(jì)劃項(xiàng)目(2021ZDLNY03-02)


Study of Heat Source Adaptive Stemflow Detection System Based on GA-SVR
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    摘要:

    莖流測(cè)量是研究植物耗水規(guī)律的重要手段,現(xiàn)有莖流傳感器多基于熱平衡法進(jìn)行設(shè)計(jì),但在低溫天氣時(shí),植物蒸騰作用不明顯,莖流瞬時(shí)變化響應(yīng)不靈敏,導(dǎo)致測(cè)量結(jié)果不精確。針對(duì)上述問(wèn)題,設(shè)計(jì)了一種熱源自適應(yīng)莖流檢測(cè)與調(diào)控系統(tǒng)。綜合考慮不同因素下莖流消耗在熱源提供能量占比中變化趨勢(shì)的建模需求,設(shè)計(jì)融合外界溫度、莖流速率、橫截面積等多環(huán)境因子莖流標(biāo)定嵌套試驗(yàn)。在此基礎(chǔ)上,利用支持向量機(jī)回歸算法(Support vector regression,SVR)和遺傳算法(Genetic algorithm,GA),建立熱源功率自適應(yīng)模型。結(jié)果表明所建模型的最優(yōu)決定系數(shù)與均方根誤差分別為0.989和0.015W。基于LoRa無(wú)線傳感網(wǎng)絡(luò)構(gòu)建莖流檢測(cè)與調(diào)控系統(tǒng),實(shí)現(xiàn)多組溫度信息和熱源功率的監(jiān)測(cè),系統(tǒng)調(diào)用移植到嵌入式設(shè)備的熱源自適應(yīng)模型動(dòng)態(tài)獲取熱源功率調(diào)控目標(biāo)值,并發(fā)送至執(zhí)行控制器,控制功率調(diào)控模塊,實(shí)現(xiàn)熱源自適應(yīng)融合的功率動(dòng)態(tài)控制。精度驗(yàn)證試驗(yàn)顯示:在低溫段時(shí),本系統(tǒng)比FLOW-32KS型傳感器平均相對(duì)誤差小2.64(6℃)、2.53(11℃)、3.68個(gè)百分點(diǎn)(16℃)。在高溫段時(shí),自適應(yīng)模型修正對(duì)結(jié)果影響不大,雙系統(tǒng)相對(duì)誤差互有高低。證明本系統(tǒng)嵌入基于熱平衡法的GA-SVR算法熱源自適應(yīng)模型后,能確保莖流消耗能量Qf在輸入總能量Pin中占比穩(wěn)定,滿足提高熱平衡莖流測(cè)量精度的需求。

    Abstract:

    Existing stemflow sensors based on the thermal equilibrium method are not accurate in measurement, and the stemflow response is not sensitive to transient changes when transpiration is not significant or when the external temperature is low. Therefore, an adaptive stemflow detection system of heat source power was proposed. Taking camphor stalks as the object, a nested experiment based on the thermal equilibrium method of stemflow calibration was designed by comprehensively considering the trend of the proportional change of stemflow in heat source energy, and the sample set of stemflow rates with multi-gradient under different environmental factors such as external temperature, stemflow rate and cross-sectional area were collected. A combined prediction model of heat source power based on support vector regression (SVR) and genetic algorithm (GA) was established. The results showed that the GA-SVR had good accuracy and robustness, its root mean square error (RMSE), mean absolute error (MAE) and determination coefficient (R2) were 0.015W, 0.012W and 0.989, respectively. The accuracy verification test suggested that the average relative error of the system was 2.64 percentage points (6℃), 2.53 percentage points (11℃) and 3.68 percentage points (16℃) smaller than that of the FLOW-32KS sensor in the low-temperature section. The adaptive model had a small effect on the correction of the results in the high-temperature section which was similar to FLOW-32KS. It was demonstrated that the stemflow detection system improved the accuracy of the heat balance stemflow measurement after embedding the GA-SVR heat source power adaptive model.

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胡瑾,孫章彤,馮盼,楊永霞,盧苗,侯軍英.基于GA-SVR的熱源自適應(yīng)莖流檢測(cè)與調(diào)控系統(tǒng)研究[J].農(nóng)業(yè)機(jī)械學(xué)報(bào),2023,54(7):290-299. HU Jin, SUN Zhangtong, FENG Pan, YANG Yongxia, LU Miao, HOU Junying. Study of Heat Source Adaptive Stemflow Detection System Based on GA-SVR[J]. Transactions of the Chinese Society for Agricultural Machinery,2023,54(7):290-299.

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  • 收稿日期:2022-11-01
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  • 在線發(fā)布日期: 2023-07-10
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