我有一个数据集data
,其中包含一个时间戳和一组其他变量,每个时间戳都带有值。我正在尝试在ddply
中使用plyr
创建一个新的数据框,它是组日的变量摘要(例如平均值)。
我怎样才能让ddply按天分组?或者,如何在时间戳内的日期(%d)创建组或分组变量?
结果数据框将包含data
中每天的平均每日值。
library(plyr)
data <- read.csv("data.csv", header=T)
data$TIMESTAMP <- strptime(data$TIMESTAMP, "%m/%d/%Y %H:%M")
ddply(data,.(DAY),summarise, V1 = mean(P), V2 = max(WS)) # I know that day is wrong here
# dput of data
data <- structure(list(TIMESTAMP = structure(list(sec = c(0, 0, 0, 0,
0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0), min = c(0L, 0L, 0L, 0L, 0L,
0L, 0L, 0L, 0L, 0L, 0L, 0L, 0L, 0L, 0L), hour = c(11L, 12L, 13L,
14L, 15L, 11L, 12L, 13L, 14L, 15L, 11L, 12L, 13L, 14L, 15L),
mday = c(1L, 1L, 1L, 1L, 1L, 2L, 2L, 2L, 2L, 2L, 7L, 7L,
7L, 7L, 7L), mon = c(0L, 0L, 0L, 0L, 0L, 0L, 0L, 0L, 0L,
0L, 3L, 3L, 3L, 3L, 3L), year = c(112L, 112L, 112L, 112L,
112L, 112L, 112L, 112L, 112L, 112L, 112L, 112L, 112L, 112L,
112L), wday = c(0L, 0L, 0L, 0L, 0L, 1L, 1L, 1L, 1L, 1L, 6L,
6L, 6L, 6L, 6L), yday = c(0L, 0L, 0L, 0L, 0L, 1L, 1L, 1L,
1L, 1L, 97L, 97L, 97L, 97L, 97L), isdst = c(0L, 0L, 0L, 0L,
0L, 0L, 0L, 0L, 0L, 0L, 1L, 1L, 1L, 1L, 1L)), .Names = c("sec",
"min", "hour", "mday", "mon", "year", "wday", "yday", "isdst"
), class = c("POSIXlt", "POSIXt")), P = c(992.4, 992.4, 992.4,
992.4, 992.4, 992.4, 992.4, 992.4, 992.4, 992.4, 239, 239, 239,
239, 239), WS = c(4.023, 3.576, 4.023, 6.259, 4.47, 3.576, 3.576,
2.682, 4.023, 3.576, 2.682, 3.129, 2.682, 2.235, 2.682), WD = c(212L,
200L, 215L, 213L, 204L, 304L, 276L, 273L, 307L, 270L, 54L, 24L,
304L, 320L, 321L), AT = c(16.11, 18.89, 20, 20, 19.44, 10.56,
11.11, 11.67, 12.22, 11.11, 17.22, 18.33, 19.44, 20.56, 21.11
), FT = c(17.22, 22.22, 22.78, 22.78, 20, 11.11, 15.56, 17.22,
17.78, 15.56, 24.44, 25.56, 29.44, 30.56, 29.44), H = c(50L,
38L, 38L, 39L, 48L, 24L, 19L, 18L, 16L, 18L, 23L, 20L, 18L, 17L,
15L), B = c(1029L, 1027L, 1026L, 1024L, 1023L, 1026L, 1025L,
1024L, 1023L, 1023L, 1034L, 1033L, 1032L, 1031L, 1030L), FM = c(14.9,
14.4, 14, 13.7, 13.6, 13.1, 12.8, 12.3, 12, 11.7, 12.8, 12, 11.4,
10.9, 10.4), GD = c(204L, 220L, 227L, 222L, 216L, 338L, 311L,
326L, 310L, 273L, 62L, 13L, 312L, 272L, 281L), MG = c(8.047,
9.835, 10.28, 13.41, 11.18, 9.388, 8.941, 8.494, 9.835, 10.73,
6.706, 7.153, 8.047, 8.047, 7.6), SR = c(522L, 603L, 604L, 526L,
248L, 569L, 653L, 671L, 616L, 487L, 972L, 1053L, 1061L, 1002L,
865L), WS2 = c(2.235, 3.576, 4.47, 4.47, 5.364, 4.023, 2.682,
3.576, 3.576, 4.023, 3.129, 3.129, 3.576, 2.682, 3.129), WD2 = c(200L,
201L, 206L, 210L, 211L, 319L, 315L, 311L, 302L, 290L, 49L, 39L,
15L, 348L, 329L)), .Names = c("TIMESTAMP", "P", "WS", "WD", "AT",
"FT", "H", "B", "FM", "GD", "MG", "SR", "WS2", "WD2"), row.names = c(NA,
-15L), class = "data.frame")
答案 0 :(得分:3)
您可以使用format
来提取日期
dat$DAY <- as.factor(format(dat$TIMESTAMP,'%d'))
[1] 01 01 01 01 01 02 02 02 02 02 07 07 07 07 07
Levels: 01 02 07
由于某些原因,如果我不删除第一列,我会收到错误(正如我在写这篇文章的评论中所述)
ddply(data[,-1],.(DAY),summarise, V1 = mean(P), V2 = max(WS))
DAY V1 V2
1 01 992.4 6.259
2 02 992.4 4.023
3 07 239.0 3.129
将TIMESTAMP转换为POSIXct
似乎可以解决问题
dat$TIMESTAMP <- as.POSIXct(dat$TIMESTAMP)
ddply(dat,.(DAY),summarise, V1 = mean(P), V2 = max(WS))
DAY V1 V2
1 01 992.4 6.259
2 02 992.4 4.023
3 07 239.0 3.129
编辑无需使用格式
由于您的TIMESTAMP列是POSIXlt
,因此很容易从中检索日期部分,您可以这样做:
dat$TIMESTAMP$mday
[1] 1 1 1 1 1 2 2 2 2 2 7 7 7 7 7