Difference between two geom_smooth() lines

给你一囗甜甜゛ 提交于 2019-12-23 00:52:25

问题


I made a plot for my data and am now I would like to have the difference in y for every x that was estimated by geom_smooth(). There is a similiar question which unfortunately has no answer. For example, how to get the differences for the following plot (data below):

EDIT

Two suggestions were made but I still don't know how to calculate the differences.

First suggestion was to access the data from the ggplot object. I did so with

pb <- ggplot_build(p)
pb[["data"]][[1]]

That approach kind of works, but the data doesn't use the same x values for the groups. For example, the first x value of the first group is -3.21318853, but there is no x of -3.21318853 for the second group, hence, I can not calculate the difference in y for -3.21318853 between both groups

Second suggestion was to see what formula is used in geom_smooth(). The package description says that "loess() is used for less than 1,000 observations; otherwise mgcv::gam() is used with formula = y ~ s(x, bs = "cs")". My N is more than 60,000, hence, gam is used by default. I am not familiar with gam; can anyone provide a short answer how to calculate the difference between the two lines considering the things just described?

R Code

library("ggplot2") # library ggplot
set.seed(1) # make example reproducible
n <- 5000 # set sample size
df <- data.frame(x= rnorm(n), g= factor(rep(c(0,1), n/2))) # generate data
df$y <- NA # include y in df
df$y[df$g== 0] <- df$x[df$g== 0]**2 + rnorm(sum(df$g== 0))*5 # y for group g= 0
df$y[df$g== 1] <-2 + df$x[df$g== 1]**2 + rnorm(sum(df$g== 1))*5 # y for g= 1 (with intercept 2)
ggplot(df, aes(x, y, col= g)) + geom_smooth() + geom_point(alpha= .1) # make a plot

回答1:


As I mentioned in the comments above, you really are better off doing this outside of ggplot and instead do it with a full model of the two smooths from which you can compute uncertainties on the difference, etc.

This is basically a short version of a blog post that I wrote a year or so back.

OP's exmaple data

set.seed(1) # make example reproducible
n <- 5000 # set sample size
df <- data.frame(x= rnorm(n), g= factor(rep(c(0,1), n/2))) # generate data
df$y <- NA # include y in df
df$y[df$g== 0] <- df$x[df$g== 0]**2 + rnorm(sum(df$g== 0))*5 # y for group g= 0
df$y[df$g== 1] <-2 + df$x[df$g== 1]**2 + rnorm(sum(df$g== 1))*5 # y for g= 1 (with intercept 2)

Start by fitting the model for the example data:

library("mgcv")
m <- gam(y ~ g + s(x, by = g), data = df, method = "REML")

Here I'm fitting a GAM with a factor-smooth interaction (the by bit) and for this model we need to also include g as a parametric effect as the group-specific smooths are both centred about 0 so we need to include the group means in the parametric part of the model.

Next we need a grid of data along the x variable at which we will estimate the difference between the two estimated smooths:

pdat <- with(df, expand.grid(x = seq(min(x), max(x), length = 200),
                            g = c(0,1)))
pdat <- transform(pdat, g = factor(g))

then we use this prediction data to generate the Xp matrix, which is a matrix that maps values of the covariates to values of the basis expansion for the smooths; we can manipulate this matrix to get the difference smooth that we want:

xp <- predict(m, newdata = pdat, type = "lpmatrix")

Next some code to identify which rows and columns in xp belong to the smooths for the respective levels of g; as there are only two levels and only a single smooth term in the model, this is entirely trivial but for more complex models this is needed and it is important to get the smooth component names right for the grep() bits to work.

## which cols of xp relate to splines of interest?
c1 <- grepl('g0', colnames(xp))
c2 <- grepl('g1', colnames(xp))
## which rows of xp relate to sites of interest?
r1 <- with(pdat, g == 0)
r2 <- with(pdat, g == 1)

Now we can difference the rows of xp for the pair of levels we are comparing

## difference rows of xp for data from comparison
X <- xp[r1, ] - xp[r2, ]

As we focus on the difference, we need to zero out all the column not associated with the selected pair of smooths, which includes any parametric terms.

## zero out cols of X related to splines for other lochs
X[, ! (c1 | c2)] <- 0
## zero out the parametric cols
X[, !grepl('^s\\(', colnames(xp))] <- 0

(In this example, these two lines do exactly the same thing, but in more complex examples both are needed.)

Now we have a matrix X which contains the difference between the two basis expansions for the pair of smooths we're interested in, but to get this in terms of fitted values of the response y we need to multiply this matrix by the vector of coefficients:

## difference between smooths
dif <- X %*% coef(m)

Now dif contains the difference between the two smooths.

We can use X again and covariance matrix of the model coefficients to compute the standard error of this difference and thence a 95% (in this case) confidence interval for the estimate difference.

## se of difference
se <- sqrt(rowSums((X %*% vcov(m)) * X))

## confidence interval on difference
crit <- qt(.975, df.residual(m))
upr <- dif + (crit * se)
lwr <- dif - (crit * se)

Note that here with the vcov() call we're using the empirical Bayesian covariance matrix but not the one corrected for having chosen the smoothness parameters. The function I show shortly allows you to account for this additional uncertainty via argument unconditional = TRUE.

Finally we gather the results and plot:

res <- data.frame(x = with(df, seq(min(x), max(x), length = 200)),
                  dif = dif, upr = upr, lwr = lwr)

ggplot(res, aes(x = x, y = dif)) +
  geom_ribbon(aes(ymin = lwr, ymax = upr, x = x), alpha = 0.2) +
  geom_line()

This produces

Which is consistent with an assessment that shows the model with the group-level smooths doesn't provide substantially better fit than a model with different group means but only single common smoother in x:

r$> m0 <- gam(y ~ g + s(x), data = df, method = "REML")

r$> AIC(m0, m)
         df      AIC
m0  9.68355 30277.93
m  14.70675 30285.02

r$> anova(m0, m, test = 'F')
Analysis of Deviance Table

Model 1: y ~ g + s(x)
Model 2: y ~ g + s(x, by = g)
  Resid. Df Resid. Dev     Df Deviance      F Pr(>F)
1    4990.1     124372                              
2    4983.9     124298 6.1762   73.591 0.4781 0.8301

Wrapping up

The blog post I mentioned has a function which wraps the steps above into a simple function, smooth_diff():

smooth_diff <- function(model, newdata, f1, f2, var, alpha = 0.05,
                        unconditional = FALSE) {
    xp <- predict(model, newdata = newdata, type = 'lpmatrix')
    c1 <- grepl(f1, colnames(xp))
    c2 <- grepl(f2, colnames(xp))
    r1 <- newdata[[var]] == f1
    r2 <- newdata[[var]] == f2
    ## difference rows of xp for data from comparison
    X <- xp[r1, ] - xp[r2, ]
    ## zero out cols of X related to splines for other lochs
    X[, ! (c1 | c2)] <- 0
    ## zero out the parametric cols
    X[, !grepl('^s\\(', colnames(xp))] <- 0
    dif <- X %*% coef(model)
    se <- sqrt(rowSums((X %*% vcov(model, unconditional = unconditional)) * X))
    crit <- qt(alpha/2, df.residual(model), lower.tail = FALSE)
    upr <- dif + (crit * se)
    lwr <- dif - (crit * se)
    data.frame(pair = paste(f1, f2, sep = '-'),
               diff = dif,
               se = se,
               upper = upr,
               lower = lwr)
}

Using this function we can repeat the entire analysis and plot the difference with:

out <- smooth_diff(m, pdat, '0', '1', 'g')
out <- cbind(x = with(df, seq(min(x), max(x), length = 200)),
             out)

ggplot(out, aes(x = x, y = diff)) +
  geom_ribbon(aes(ymin = lower, ymax = upper, x = x), alpha = 0.2) +
  geom_line()

I won't show the plot here as it is identical to that shown above except for the axis labels.




回答2:


Hi and welcome on Stack Overflow,

The first suggestion is good. To make the x-sequences match, you can interpolate the values in between using the approx function (in stats).

library("ggplot2") # library ggplot
set.seed(1) # make example reproducible
n <- 5000 # set sample size
df <- data.frame(x= rnorm(n), g= factor(rep(c(0,1), n/2))) # generate data
df$y <- NA # include y in df
df$y[df$g== 0] <- df$x[df$g== 0]**2 + rnorm(sum(df$g== 0))*5 # y for group g= 0
df$y[df$g== 1] <-2 + df$x[df$g== 1]**2 + rnorm(sum(df$g== 1))*5 # y for g= 1 (with intercept 2)

p <- ggplot(df, aes(x, y, col= g)) + geom_smooth() + geom_point(alpha= .1) # make a plot
pb <- ggplot_build(p) # Get computed data

data.of.g1 <- pb[['data']][[1]][pb[['data']][[1]]$group == 1, ] # Extract info for group 1
data.of.g2 <- pb[['data']][[1]][pb[['data']][[1]]$group == 2, ] # Extract info for group 2

xlimit.inf <- max(min(data.of.g1$x), min(data.of.g2$x)) # Get the minimum X the two smoothed data have in common
xlimit.sup <- min(max(data.of.g1$x), max(data.of.g2$x)) # Get the maximum X
xseq <- seq(xlimit.inf, xlimit.sup, 0.01) # Sequence of X value (you can use bigger/smaller step size)

# Based on data from group 1 and group 2, interpolates linearly for all the values in `xseq`
y.g1 <- approx(x = data.of.g1$x, y = data.of.g1$y, xout = xseq)
y.g2 <- approx(x = data.of.g2$x, y = data.of.g2$y, xout = xseq)

difference <- data.frame(x = xseq, dy = abs(y.g1$y - y.g2$y)) # Compute the difference
ggplot(difference, aes(x = x, y = dy)) + geom_line() # Make the plot

Output:



来源:https://stackoverflow.com/questions/56322590/difference-between-two-geom-smooth-lines

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