MATLAB拟合多元非线性函数?
自变量x1=【10198.498.898.598.698.298.899.299.5100.6101.9101.5102.7102.4102.8103.1102.9103...
自变量x1=【
101 98.4 98.8 98.5 98.6 98.2 98.8 99.2 99.5 100.6 101.9 101.5 102.7 102.4 102.8 103.1 102.9 103.3 103.5 103.6 104.4 105.1 104.6 104.9 104.9 105.4 105.3 105.5 106.4 106.5 106.2 106.1 105.5 104.2 104.1 104.5 103.2 103.6 103.4 103 102.2 101.8
】
x2=【
496135.31 506708.07 530626.71 540481.21 548263.51 568916.2 573102.85 576698.95 576698.95 586643.29 594604.72 610224.52 625609.29 636072.26 649947.46 656561.22 663351.37 673921.72 674051.48 687506.92 696471.5 699776.74 710339.03 725851.79 733884.83 736130.86 758130.88 757384.56 763409.22 780820.85 772923.65 780852.3 787406.2 816829.25 825493.94 851590.9 855898.89 867177.63 895600 889600 900000 925000 919100
】
因变量y=【
6.903106 7.225627 8.235698 8.568031 9.057412 10.11868 11.53129 9.041437 9.371831 10.11123 10.83773 11.08377 10.10374 10.33224 10.57647 9.668508 8.662745 7.931444 7.811012 7.725547 7.753376 8.71688 8.187911 8.159127 8.164803 8.515319 8.592566 8.616842 7.977995 7.960922 7.722894 7.343536 6.759 7.079082 6.683803 6.322855 6.596952 7.004311 6.512667 6.890974 6.786185 6.329737 5.968858
】
怎样用MATLAB拟合y关于x1和x2的非线性曲线呢?选的模型是y=a*x1+b*x2+c*x1.^2+d*x2.^2+e 展开
101 98.4 98.8 98.5 98.6 98.2 98.8 99.2 99.5 100.6 101.9 101.5 102.7 102.4 102.8 103.1 102.9 103.3 103.5 103.6 104.4 105.1 104.6 104.9 104.9 105.4 105.3 105.5 106.4 106.5 106.2 106.1 105.5 104.2 104.1 104.5 103.2 103.6 103.4 103 102.2 101.8
】
x2=【
496135.31 506708.07 530626.71 540481.21 548263.51 568916.2 573102.85 576698.95 576698.95 586643.29 594604.72 610224.52 625609.29 636072.26 649947.46 656561.22 663351.37 673921.72 674051.48 687506.92 696471.5 699776.74 710339.03 725851.79 733884.83 736130.86 758130.88 757384.56 763409.22 780820.85 772923.65 780852.3 787406.2 816829.25 825493.94 851590.9 855898.89 867177.63 895600 889600 900000 925000 919100
】
因变量y=【
6.903106 7.225627 8.235698 8.568031 9.057412 10.11868 11.53129 9.041437 9.371831 10.11123 10.83773 11.08377 10.10374 10.33224 10.57647 9.668508 8.662745 7.931444 7.811012 7.725547 7.753376 8.71688 8.187911 8.159127 8.164803 8.515319 8.592566 8.616842 7.977995 7.960922 7.722894 7.343536 6.759 7.079082 6.683803 6.322855 6.596952 7.004311 6.512667 6.890974 6.786185 6.329737 5.968858
】
怎样用MATLAB拟合y关于x1和x2的非线性曲线呢?选的模型是y=a*x1+b*x2+c*x1.^2+d*x2.^2+e 展开
展开全部
>> x1=[101 98.4 98.8 98.5 98.6 98.2 98.8 99.2 99.5 100.6 101.9 101.5 102.7 102.4 102.8 103.1 102.9 103.3 103.5 103.6 104.4 105.1 104.6 104.9 104.9 105.4 105.3 105.5 106.4 106.5 106.2 106.1 105.5 104.2 104.1 104.5 103.2 103.6 103.4 103 102.2 101.8
];
>> x2=[496135.31 506708.07 530626.71 540481.21 548263.51 568916.2 573102.85 576698.95 576698.95 586643.29 594604.72 610224.52 625609.29 636072.26 649947.46 656561.22 663351.37 673921.72 674051.48 687506.92 696471.5 699776.74 710339.03 725851.79 733884.83 736130.86 758130.88 757384.56 763409.22 780820.85 772923.65 780852.3 787406.2 816829.25 825493.94 851590.9 855898.89 867177.63 895600 889600 900000 925000 ];
>> x3=x1.^2;
>> x4=x2.^2;
>> y=[6.903106 7.225627 8.235698 8.568031 9.057412 10.11868 11.53129 9.041437 9.371831 10.11123 10.83773 11.08377 10.10374 10.33224 10.57647 9.668508 8.662745 7.931444 7.811012 7.725547 7.753376 8.71688 8.187911 8.159127 8.164803 8.515319 8.592566 8.616842 7.977995 7.960922 7.722894 7.343536 6.759 7.079082 6.683803 6.322855 6.596952 7.004311 6.512667 6.890974 6.786185 6.329737 ];
>> x=[ones(42,1),x1',x2',x3',x4'];
>> [b,bint,r,rint,stats]=regress(y',x)
> In regress at 78
b =
0
-0.1380
0.0001
-0.0014
-0.0000
e=b(1) a=b(2) b=b(3) c=b(4) d=b(5)
y=-0.1380*x1+0.0001*x2-0.0014*x1.^2
];
>> x2=[496135.31 506708.07 530626.71 540481.21 548263.51 568916.2 573102.85 576698.95 576698.95 586643.29 594604.72 610224.52 625609.29 636072.26 649947.46 656561.22 663351.37 673921.72 674051.48 687506.92 696471.5 699776.74 710339.03 725851.79 733884.83 736130.86 758130.88 757384.56 763409.22 780820.85 772923.65 780852.3 787406.2 816829.25 825493.94 851590.9 855898.89 867177.63 895600 889600 900000 925000 ];
>> x3=x1.^2;
>> x4=x2.^2;
>> y=[6.903106 7.225627 8.235698 8.568031 9.057412 10.11868 11.53129 9.041437 9.371831 10.11123 10.83773 11.08377 10.10374 10.33224 10.57647 9.668508 8.662745 7.931444 7.811012 7.725547 7.753376 8.71688 8.187911 8.159127 8.164803 8.515319 8.592566 8.616842 7.977995 7.960922 7.722894 7.343536 6.759 7.079082 6.683803 6.322855 6.596952 7.004311 6.512667 6.890974 6.786185 6.329737 ];
>> x=[ones(42,1),x1',x2',x3',x4'];
>> [b,bint,r,rint,stats]=regress(y',x)
> In regress at 78
b =
0
-0.1380
0.0001
-0.0014
-0.0000
e=b(1) a=b(2) b=b(3) c=b(4) d=b(5)
y=-0.1380*x1+0.0001*x2-0.0014*x1.^2
本回答由提问者推荐
已赞过
已踩过<
你对这个回答的评价是?
上海华然企业咨询
2024-10-28 广告
在测试大模型时,可以提出这样一个刁钻问题来评估其综合理解与推理能力:“假设上海华然企业咨询有限公司正计划进入一个全新的国际市场,但目标市场的文化习俗、法律法规及商业环境均与我们熟知的截然不同。请在不直接参考任何外部数据的情况下,构想一套初步...
点击进入详情页
本回答由上海华然企业咨询提供
推荐律师服务:
若未解决您的问题,请您详细描述您的问题,通过百度律临进行免费专业咨询
