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5篇 您的检索式:作者名="Arnoni C"
    题名 作者 年代 出处 被引量
1Randomized trial onthe ef- fect of sevoflurance on polypropylene membrane oxygenator perfor- mance显示文摘Nigro Neto C Arnoni R Rida BS 2013J Cardiothorac Vasc Anesth2013,27,5:1
2Rubella vaccination and transitory false-positive test results for human immunodeficiency virus Type 1in blood donors显示文摘Araujo PR Albertoni G Arnoni C 2009Transfusion2009,49,11:1
3Randomized trial onthe effect of sevoflu- rane on polypropylene membrane oxygen- ator performance显示文摘Nigro Nero C Arnoni R Rida BS 2013J Cardiothorac Vasc Anesth2013,27,5:1
4Risk factors associated with cardiac surgery during pregnancy显示文摘Arnoni R T Arnoni A S Bonini R C 2003Ann Thorac Surg2003,76,5:1
5Understanding bark thickness variations for Araucaria angustifolia in southern Brazil显示文摘This study aimed to understand bark thickness variations of Araucaria angustifolia(Bertol.)Kuntze trees growing in natural forest remnants in southern Brazil,and their relationship with quantitative and qualitative attributes.Bark thickness must be accurately estimated in order to determine timber volume stocks.This is an important variable for the sustainable management and conservation of araucaria forests.In spite of its importance and visibility,bark thickness variations have not been evaluated for this key species in southern Brazil.A total of 104 trees were selected,and their qualitative and quantitative attributes such as diameter at breast height(D_(BH)),height(H),crown base height(C_(BH)),crown length(C_(L)),social position(S_(P)),stoniness(S_(T)),position on the relief(P_(R)),vitality(V_T)and branch arrangement(B_(A))were measured.The trees were categorized into two groups:red bark or gray bark.Regression analysis and artificial neural networks(ANN)were used for modelling bark thickness.The results indicate that:(1)bark thickness showed good correlation to D_(BH),with 0.76 as coefficient of determination(RS_P),0.540 as Mean Absolute Error(M_(AE))and 22.4 root-meansquare error in percentage(R_(MSE%));(2)the trend changed according to bark colour,with significant differences for the intersection(_0–Pr>F:p=0.0124)and slope(β_(1)–Pr>F:p=0.0126)of bark thickness curves between groups;(3)the highest correlation of bark thickness was found with:D_(BH)(ρ=0.88),H(ρ=0.58),C_(BH)(ρ=0.46),S_(P)(ρ=-0.52),and B_(A)(ρ=-0.32);(4)modelling with ANN confirmed high adjustment(R^(2)=0.99)and accuracy(R_(MSE%)=3.0)of the estimates.ANN is an efficient and robust technique for the modelling of various qualitative and quantitative attributes commonly used in forest mensuration.The effective use of ANN to estimate araucaria bark in natural forests reinforces its potential,besides the possibility of application for other forest species.Emanuel Arnoni Costa Veraldo Liesenberg César Augusto Guimaraes Finger AndréFelipe Hess Cristine Tagliapietra Schons 2021Journal of Forestry Research2021,32,3:0
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