R中的指数回归

时间:2014-10-20 21:34:59

标签: r regression exponential-distribution

我有一些看起来像对数曲线的点。我试图获得的曲线如下:y = a * exp(-b * x)+ c

我的代码:

x <- c(1.564379666,1.924250092,2.041559879,2.198696382,2.541267447,2.666400433,2.922534874,2.965726615,3.009969443,3.248480245,3.32927682,3.371404563,3.423759668,3.713001284,3.841419166,3.847632349,3.947993339,4.024541136,4.030779671,4.118849343,4.154008445,4.284232251,4.491359108,4.585182188,4.643299476,4.643299476,4.643299476,4.684369939,4.84424144,4.867973977,5.144490521,5.324298915,5.324298915,5.988637637,6.146599422,6.674937463)
y <- c(25600,23800,11990,14900,15400,19000,9850,7500,10000,12500,11400,8950,10900,3600,11500,9990,4000,3500,4000,3000,8000,5500,6000,7900,2800,2800,2800,2950,4990,4999,3500,6001,6000,1100,1200,6000)

df <- data.frame(x, y)
m <- nls(y ~ I(a*exp(-b*x)+c), data=df, start=list(a=max(y), b=0, c=10), trace=T)

输出:

Error en nlsModel(formula, mf, start, wts) : 
    singular gradient matrix at initial parameter estimates

我做错了什么?

2 个答案:

答案 0 :(得分:2)

我认为在b = 0的情况下,nls不能计算相对于a和c的梯度,因为b = 0从等式中除去x。从不同的b值开始(oops,我看到上面的评论)。这是一个例子......

m <- nls(y ~ I(a*exp(-b*x)+c), data=df, start=list(a=max(y), b=1, c=10), trace=T)
y_est<-predict(m,df$x)
plot(x,y)
lines(x,y_est)
summary(m)

Formula: y ~ I(a * exp(-b * x) + c)

Parameters:
   Estimate Std. Error t value Pr(>|t|)    
a 6.519e+04  1.761e+04   3.702 0.000776 ***
b 6.646e-01  1.682e-01   3.952 0.000385 ***
c 1.896e+03  1.834e+03   1.034 0.308688    
---
Signif. codes:  0 ‘***’ 0.001 ‘**’ 0.01 ‘*’ 0.05 ‘.’ 0.1 ‘ ’ 1

Residual standard error: 2863 on 33 degrees of freedom

Number of iterations to convergence: 5 
Achieved convergence tolerance: 5.832e-06

enter image description here

答案 1 :(得分:0)

你没有错,但有时需要改变初始值(踢)来解决方程式。