我在互联网上看了一眼,但我没有找到一个简单而干净的解决方案。
这是我的df:
structure(list(ID = structure(c(12L, 12L, 12L, 12L, 12L, 12L,
12L, 12L, 12L, 12L), .Label = c("B0F", "B12T", "B1T", "B21T",
"B22F", "B26T", "B2F", "B33F", "B3F", "B4F", "B7F", "P1", "P21",
"P24", "P25", "P27", "P28", "P29"), class = "factor"), Data = structure(c(9646,
9836, 9938, 10043, 10134, 10203, 10302, 10354, 10421, 10528), class = "Date"),
T = c(11.3, 9.7, 9.8, 10.5, 9.9, 10, 10, 10.1, 10, 10), ph = c(6.8,
6.9, 7.1, 6.9, 7, 6.93, 7.01, 6.9, 7.01, 6.84), EC = c(1840L,
1060L, 940L, 760L, 820L, 1038L, 1035L, 839L, 767L, 433L)), .Names = c("ID",
"Data", "T", "ph", "EC"), row.names = c(NA, 10L), class = "data.frame")
这些是变量:
str(df)
'data.frame': 10 obs. of 5 variables:
$ ID : Factor w/ 18 levels "B0F","B12T","B1T",..: 12 12 12 12 12 12 12 12 12 12
$ Data: Date, format: "1996-05-30" "1996-12-06" "1997-03-18" ...
$ T : num 11.3 9.7 9.8 10.5 9.9 10 10 10.1 10 10
$ ph : num 6.8 6.9 7.1 6.9 7 6.93 7.01 6.9 7.01 6.84
$ EC : int 1840 1060 940 760 820 1038 1035 839 767 433
我需要的是一个新的df,其中包含数值列的原始值(因此T,pH和EC)。我知道这可以通过简单的列提取(new_df=df[,3:5])来完成,但我有很多df应该在这个操作上完成。
由于
答案 0 :(得分:8)
怎么样
new_df <- df[sapply(df,is.numeric)]