tob*_*as_ 2 datetime r posixct difftime
我有不同工作的"开始"和"结束"时间数据,按"所有者"分组:
Data <- data.frame(
job = c(1, 2, 3, 4, 5),
owner = c("name1", "name2", "name1", "name1", "name2"),
Start = as.POSIXct(c("2015-01-01 15:00:00", "2015-01-01 15:01:00", "2015-01-01 15:13:00", "2015-01-01 15:20:00", "2015-01-01 15:39:02"), format="%Y-%m-%d %H:%M:%S"),
End = as.POSIXct(c("2015-01-01 15:11:11", "2015-01-01 15:17:21", "2015-01-01 15:17:00", "2015-01-01 15:31:21", "2015-01-01 15:40:11"), format="%Y-%m-%d %H:%M:%S")
)
对于每个所有者,我想计算每个所有者的作业之间的空闲时间,即一个作业的"结束"时间与下一个作业的"开始"时间之间的差异.
如何使用difftime()不同列中的特定行和时间之间的时间差来计算?
结果应如下所示:
job, owner, idletime
1, name1, NA
2, name2, NA
3, name1, 1.816667 # End of row 1 minus Start of row 3
4, name1, 3.0 # End of row 3 minus Start of row 4
...
这是一个可能的解决方案 data.table
library(data.table) # v 1.9.5+
setDT(Data)[, idletime := difftime(Start, shift(End), units = "mins"), by = owner]
# job owner Start End idletime
# 1: 1 name1 2015-01-01 15:00:00 2015-01-01 15:11:11 NA mins
# 2: 2 name2 2015-01-01 15:01:00 2015-01-01 15:17:21 NA mins
# 3: 3 name1 2015-01-01 15:13:00 2015-01-01 15:17:00 1.816667 mins
# 4: 4 name1 2015-01-01 15:20:00 2015-01-01 15:31:21 3.000000 mins
# 5: 5 name2 2015-01-01 15:39:02 2015-01-01 15:40:11 21.683333 mins
或使用 dplyr
library(dplyr)
Data %>%
group_by(owner) %>%
mutate(idletime = difftime(Start, lag(End), units = "mins"))
# Source: local data frame [5 x 5]
# Groups: owner
#
# job owner Start End idletime
# 1 1 name1 2015-01-01 15:00:00 2015-01-01 15:11:11 NA mins
# 2 2 name2 2015-01-01 15:01:00 2015-01-01 15:17:21 NA mins
# 3 3 name1 2015-01-01 15:13:00 2015-01-01 15:17:00 1.816667 mins
# 4 4 name1 2015-01-01 15:20:00 2015-01-01 15:31:21 3.000000 mins
# 5 5 name2 2015-01-01 15:39:02 2015-01-01 15:40:11 21.683333 mins
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