根据前n行有条件地创建新列

时间:2019-11-20 22:11:35

标签: r dataframe dplyr duplicates

我有一个如下所示的数据框:

 df <- data.frame("id" = c(111,111,111,222,222,222,222,333,333,333,333), 
                  "Location" = c("A","B","A","A","C","B","A","B","A","A","A"), 
                  "Encounter" = c(1,2,3,1,2,3,4,1,2,3,4))

      id Location Encounter
1  111        A         1
2  111        B         2
3  111        A         3
4  222        A         1
5  222        C         2
6  222        B         3
7  222        A         4
8  333        B         1
9  333        A         2
10 333        B         3
11 333        A         4

我基本上是想为每个id组创建一个二进制标志,该标志位于先前的Encounter中。看起来像这样:

    id Location Encounter Flag
1  111        A         1    0
2  111        B         2    0
3  111        A         3    1
4  222        A         1    0
5  222        C         2    0
6  222        B         3    0
7  222        A         4    1
8  333        B         1    0
9  333        A         2    0
10 333        B         3    1
11 333        A         4    1

我试图弄清楚如何执行if语句:

library(dplyr)

df$Flag <- case_when((df$id - lag(df$id)) == 0 ~ 
                case_when(df$Location == lag(df$Location, 1) | 
                          df$Location == lag(df$Location, 2) | 
                          df$Location == lag(df$Location, 3) ~ 1, T ~ 0), T ~ 0)

    id Location Flag
1  111        A    0
2  111        B    0
3  111        A    1
4  222        A    0
5  222        C    0
6  222        B    0
7  222        A    1
8  333        B    0
9  333        A    1
10 333        B    1
11 333        A    1

但是,这有个问题,第9行被错误地分配为1,在实际数据中遇到15次以上的情况,因此变得非常麻烦。我希望找到一种方法来做

lag(df$Location, 1:df$Encounter)

但是我知道lag()的k需要一个整数,因此该特定命令将不起作用。

5 个答案:

答案 0 :(得分:6)

带有duplicated

的选项
library(dplyr)
df %>% 
  group_by(id) %>% 
  mutate(Flag = +(duplicated(Location)))
# A tibble: 11 x 4
# Groups:   id [3]
#      id Location Encounter  Flag
#   <dbl> <fct>        <dbl> <int>
# 1   111 A                1     0
# 2   111 B                2     0
# 3   111 A                3     1
# 4   222 A                1     0
# 5   222 C                2     0
# 6   222 B                3     0
# 7   222 A                4     1
# 8   333 B                1     0
# 9   333 A                2     0
#10   333 A                3     1
#11   333 A                4     1

答案 1 :(得分:4)

使用data.table

library(data.table)

dt[, flag:=1]
dt[, flag:=cumsum(flag), by=.(id,Location)]
dt[, flag:=ifelse(flag>1,1,0)]

数据:

dt <- data.table("id" = c(111,111,111,222,222,222,222,333,333,333,333), 
                 "Location" = c("A","B","A","A","C","B","A","B","A","A","A"),
                 "Encounter" = c(1,2,3,1,2,3,4,1,2,3,4))

答案 2 :(得分:4)

更通用的data.table解决方案将使用.Nrowid

library(data.table)

setDT(dt)[, Flag := +(rowid(id, Location)>1)][]

setDT(df)[, Flag := +(seq_len(.N)>1), .(id, Location)][]
#>      id Location  Encounter Flag
#> 1:  111        A         1    0
#> 2:  111        B         2    0
#> 3:  111        A         3    1
#> 4:  222        A         1    0
#> 5:  222        C         2    0
#> 6:  222        B         3    0
#> 7:  222        A         4    1
#> 8:  333        B         1    0
#> 9:  333        A         2    0
#> 10: 333        A         3    1
#> 11: 333        A         4    1

答案 3 :(得分:4)

在基数R中,我们可以使用aveid分组的Location并将所有值从组的第二行转到1。

df$Flag <- as.integer(with(df, ave(Encounter, id, Location, FUN = seq_along) > 1))
df

#    id Location Encounter Flag
#1  111        A         1    0
#2  111        B         2    0
#3  111        A         3    1
#4  222        A         1    0
#5  222        C         2    0
#6  222        B         3    0
#7  222        A         4    1
#8  333        B         1    0
#9  333        A         2    0
#10 333        A         3    1
#11 333        A         4    1

使用dplyr

library(dplyr)

df %>%  group_by(id, Location) %>%  mutate(Flag = as.integer(row_number() > 1))

答案 4 :(得分:0)

您还可以使用此:

library(data.table)
setDT(df)[,flag:=ifelse(1:.N>1,1,0),by=.(id,Location)]