I am trying to count the number of cells greater than 0 by group, and I need help as to how to approach this.
My data looks like this:
Group Number of Shoes
1 0
1 1
1 2
2 0
2 NA
2 1
3 1
3 2
3 2
And I want this:
Group Shoe owners
1 2
2 1
3 3
You can do this simply with:
aggregate(Number.of.Shoes ~ Group, df, function(x) sum(x > 0, na.rm = TRUE))
The result:
Group Number.of.Shoes
1 1 2
2 2 1
3 3 3
This can also be done with dplyr package:
library(dplyr)
df %>%
group_by(Group) %>%
summarise(counts = sum(Number.of.Shoes > 0, na.rm = TRUE))
we can also use data.table
library(data.table)
setDT(df1)[Number.of.Shoes >0, .(Shoe.Owners = .N), Group]
# Group Shoe.Owners
#1: 1 2
#2: 2 1
#3: 3 3
Related
I have the following dataframe:
df <-read.table(header=TRUE, text="id code
1 A
1 B
1 C
2 A
2 A
2 A
3 A
3 B
3 A")
Per id, I would love to find those individuals that have at least 2 conditions, namely:
conditionA = "A"
conditionB = "B"
conditionC = "C"
and create a new colum with "index", 1 if there are two or more conditions met and 0 otherwise:
df_output <-read.table(header=TRUE, text="id code index
1 A 1
1 B 1
1 C 1
2 A 0
2 A 0
2 A 0
3 A 1
3 B 1
3 A 1")
So far I have tried the following:
df_output = df %>%
group_by(id) %>%
mutate(index = ifelse(grepl(conditionA|conditionB|conditionC, code), 1, 0))
and as you can see I am struggling to get the threshold count into the code.
You can create a vector of conditions, and then use %in% and sum to count the number of occurrences in each group. Use + (or ifelse) to convert logical into 1 and 0:
conditions = c("A", "B", "C")
df %>%
group_by(id) %>%
mutate(index = +(sum(unique(code) %in% conditions) >= 2))
id code index
1 1 A 1
2 1 B 1
3 1 C 1
4 2 A 0
5 2 A 0
6 2 A 0
7 3 A 1
8 3 B 1
9 3 A 1
You could use n_distinct(), which is a faster and more concise equivalent of length(unique(x)).
df %>%
group_by(id) %>%
mutate(index = +(n_distinct(code) >= 2)) %>%
ungroup()
# # A tibble: 9 × 3
# id code index
# <int> <chr> <int>
# 1 1 A 1
# 2 1 B 1
# 3 1 C 1
# 4 2 A 0
# 5 2 A 0
# 6 2 A 0
# 7 3 A 1
# 8 3 B 1
# 9 3 A 1
You can check conditions using intersect() function and check whether resulting list is of minimal (eg- 2) length.
conditions = c('A', 'B', 'C')
df_output2 =
df %>%
group_by(id) %>%
mutate(index = as.integer(length(intersect(code, conditions)) >= 2))
How can I run a loop over multiple columns changing consecutive values to true values?
For example, if I have a dataframe like this...
Time Value Bin Subject_ID
1 6 1 1
3 10 2 1
7 18 3 1
8 20 4 1
I want to show the binned values...
Time Value Bin Subject_ID
1 6 1 1
2 4 2 1
4 8 3 1
1 2 4 1
Is there a way to do it in a loop?
I tried this code...
for (row in 2:nrow(df)) {
if(df[row - 1, "Subject_ID"] == df[row, "Subject_ID"]) {
df[row,1:2] = df[row,1:2] - df[row - 1,1:2]
}
}
But the code changed it line by line and did not give the correct values for each bin.
If you still insist on using a for loop, you can use the following solution. It's very simple but you have to first create a copy of your data set as your desired output values are the difference of values between rows of the original data set. In order for this to happen we move DF outside of the for loop so the values remain intact, otherwise in every iteration values of DF data set will be replaced with the new values and the final output gives incorrect results:
df <- read.table(header = TRUE, text = "
Time Value Bin Subject_ID
1 6 1 1
3 10 2 1
7 18 3 1
8 20 4 1")
DF <- df[, c("Time", "Value")]
for(i in 2:nrow(df)) {
df[i, c("Time", "Value")] <- DF[i, ] - DF[i-1, ]
}
df
Time Value Bin Subject_ID
1 1 6 1 1
2 2 4 2 1
3 4 8 3 1
4 1 2 4 1
The problem with the code in the question is that after row i is changed the changed row is used in calculating row i+1 rather than the original row i. To fix that run the loop in reverse order. That is use nrow(df):2 in the for statement. Alternately try one of these which do not use any loops and also have the advantage of not overwriting the input -- something which makes the code easier to debug.
1) Base R Use ave to perform Diff by group where Diff uses diff to actually perform the differencing.
Diff <- function(x) c(x[1], diff(x))
transform(df,
Time = ave(Time, Subject_ID, FUN = Diff),
Value = ave(Value, Subject_ID, FUN = Diff))
giving:
Time Value Bin Subject_ID
1 1 6 1 1
2 2 4 2 1
3 4 8 3 1
4 1 2 4 1
2) dplyr Using dplyr we write the above except we use lag:
library(dplyr)
df %>%
group_by(Subject_ID) %>%
mutate(Time = Time - lag(Time, default = 0),
Value = Value - lag(Value, default = 0)) %>%
ungroup
giving:
# A tibble: 4 x 4
Time Value Bin Subject_ID
<dbl> <dbl> <int> <int>
1 1 6 1 1
2 2 4 2 1
3 4 8 3 1
4 1 2 4 1
or using across:
library(dplyr)
df %>%
group_by(Subject_ID) %>%
mutate(across(Time:Value, ~ .x - lag(.x, default = 0))) %>%
ungroup
Note
Lines <- "Time Value Bin Subject_ID
1 6 1 1
3 10 2 1
7 18 3 1
8 20 4 1"
df <- read.table(text = Lines, header = TRUE)
Here is a base R one-liner with diff in a lapply loop.
df[1:2] <- lapply(df[1.2], function(x) c(x[1], diff(x)))
df
# Time Value Bin Subject_ID
#1 1 1 1 1
#2 2 2 2 1
#3 4 4 3 1
#4 1 1 4 1
Data
df <- read.table(text = "
Time Value Bin Subject_ID
1 6 1 1
3 10 2 1
7 18 3 1
8 20 4 1
", header = TRUE)
dplyr one liner
library(dplyr)
df %>% mutate(across(c(Time, Value), ~c(first(.), diff(.))))
#> Time Value Bin Subject_ID
#> 1 1 6 1 1
#> 2 2 4 2 1
#> 3 4 8 3 1
#> 4 1 2 4 1
I am trying to expand on the answer to this problem that was solved, Take Sum of a Variable if Combination of Values in Two Other Columns are Unique
but because I am new to stack overflow, I can't comment directly on that post so here is my problem:
I have a dataset like the following but with about 100 columns of binary data as shown in "ani1" and "bni2" columns.
Locations <- c("A","A","A","A","B","B","C","C","D", "D","D")
seasons <- c("2", "2", "3", "4","2","3","1","2","2","4","4")
ani1 <- c(1,1,1,1,0,1,1,1,0,1,0)
bni2 <- c(0,0,1,1,1,1,0,1,0,1,1)
df <- data.frame(Locations, seasons, ani1, bni2)
Locations seasons ani1 bni2
1 A 2 1 0
2 A 2 1 0
3 A 3 1 1
4 A 4 1 1
5 B 2 0 1
6 B 3 1 1
7 C 1 1 0
8 C 2 1 1
9 D 2 0 0
10 D 4 1 1
11 D 4 0 1
I am attempting to sum all the columns based on the location and season, but I want to simplify so I get a total column for column #3 and after for each unique combination of location and season.
The problem is not all the columns have a 1 value for every combination of location and season and they all have different names.
I would like something like this:
Locations seasons ani1 bni2
1 A 2 2 0
2 A 3 1 1
3 A 4 1 1
4 B 2 0 1
5 B 3 1 1
6 C 1 1 0
7 C 2 1 1
8 D 2 0 0
9 D 4 1 2
Here is my attempt using a for loop:
df2 <- 0
for(i in 3:length(df)){
testdf <- data.frame(t(apply(df[1:2], 1, sort)), df[i])
df2 <- aggregate(i~., testdf, FUN=sum)
}
I get the following error:
Error in model.frame.default(formula = i ~ ., data = testdf) :
variable lengths differ (found for 'X1')
Thank you!
You can use dplyr::summarise and across after group_by.
library(dplyr)
df %>%
group_by(Locations, seasons) %>%
summarise(across(starts_with("ani"), ~sum(.x, na.rm = TRUE))) %>%
ungroup()
Another option is to reshape the data to long format using functions from the tidyr package. This avoids the issue of having to select columns 3 onwards.
library(dplyr)
library(tidyr)
df %>%
pivot_longer(cols = -c(Locations, seasons)) %>%
group_by(Locations, seasons, name) %>%
summarise(Sum = sum(value, na.rm = TRUE)) %>%
ungroup() %>%
pivot_wider(names_from = "name", values_from = "Sum")
Result:
# A tibble: 9 x 4
Locations seasons ani1 ani2
<chr> <int> <int> <int>
1 A 2 2 0
2 A 3 1 1
3 A 4 1 1
4 B 2 0 1
5 B 3 1 1
6 C 1 1 0
7 C 2 1 1
8 D 2 0 0
9 D 4 1 2
I have a data with about 1000 groups each group is ordered from 1-100(can be any number within 100).
As I was looking through the data. I found that some groups had bad orders, i.e., it would order to 100 then suddenly a 24 would show up.
How can I delete all of these error data
As you can see from the picture above(before -> after), I would like to find all rows that don't follow the order within the group and just delete it.
Any help would be great!
lag will compute the difference between the current value and the previous value, diff will be used to select only positive difference i.e. the current value is greater than the previous value. min is used as lag give the first value NA. I keep the helper column diff to check, but you can deselect using %>% select(-diff)
library(dplyr)
df1 %>% group_by(gruop) %>% mutate(diff = order-lag(order)) %>%
filter(diff >= 0 | order==min(order))
# A tibble: 8 x 3
# Groups: gruop [2]
gruop order diff
<int> <int> <int>
1 1 1 NA
2 1 3 2
3 1 5 2
4 1 10 5
5 2 1 NA
6 2 4 3
7 2 4 0
8 2 8 4
Data
df1 <- read.table(text="
gruop order
1 1
1 3
1 5
1 10
1 2
2 1
2 4
2 4
2 8
2 3
",header=T, stringsAsFactors = F)
Assuming the order column increments by 1 every time we can use ave where we remove those rows which do not have difference of 1 with the previous row by group.
df[!ave(df$order, df$group, FUN = function(x) c(1, diff(x))) != 1, ]
# group order
#1 1 1
#2 1 2
#3 1 3
#4 1 4
#6 2 1
#7 2 2
#8 2 3
#9 2 4
EDIT
For the updated example, we can just change the comparison
df[ave(df$order, df$group, FUN = function(x) c(1, diff(x))) >= 0, ]
Playing with data.table:
library(data.table)
setDT(df1)[, diffo := c(1, diff(order)), group][diffo == 1, .(group, order)]
group order
1: 1 1
2: 1 2
3: 1 3
4: 1 4
5: 2 1
6: 2 2
7: 2 3
8: 2 4
Where df1 is:
df1 <- data.frame(
group = rep(1:2, each = 5),
order = c(1:4, 2, 1:4, 3)
)
EDIT
If you only need increasing order, and not steps of one then you can do:
df3 <- transform(df1, order = c(1,3,5,10,2,1,4,7,9,3))
setDT(df3)[, diffo := c(1, diff(order)), group][diffo >= 1, .(group, order)]
group order
1: 1 1
2: 1 3
3: 1 5
4: 1 10
5: 2 1
6: 2 4
7: 2 7
8: 2 9
I need to fill $Year with missing values of the sequence by the factor of $Country. The $Count column can just be padded out with 0's.
Country Year Count
A 1 1
A 2 1
A 4 2
B 1 1
B 3 1
So I end up with
Country Year Count
A 1 1
A 2 1
A 3 0
A 4 2
B 1 1
B 2 0
B 3 1
Hope that's clear guys, thanks in advance!
This is a dplyr/tidyr solution using complete and full_seq:
library(dplyr)
library(tidyr)
df %>% group_by(Country) %>% complete(Year=full_seq(Year,1),fill=list(Count=0))
Country Year Count
<chr> <dbl> <dbl>
1 A 1 1
2 A 2 1
3 A 3 0
4 A 4 2
5 B 1 1
6 B 2 0
7 B 3 1
library(data.table)
# d is your original data.frame
setDT(d)
foo <- d[, .(Year = min(Year):max(Year)), Country]
res <- merge(d, foo, all.y = TRUE)[is.na(Count), Count := 0]
Similar to #PoGibas' answer:
library(data.table)
# set default values
def = list(Count = 0L)
# create table with all levels
fullDT = setkey(DT[, .(Year = seq(min(Year), max(Year))), by=Country])
# initialize to defaults
fullDT[, names(def) := def ]
# overwrite from data
fullDT[DT, names(def) := mget(sprintf("i.%s", names(def))) ]
which gives
Country Year Count
1: A 1 1
2: A 2 1
3: A 3 0
4: A 4 2
5: B 1 1
6: B 2 0
7: B 3 1
This generalizes to having more columns (besides Count). I guess similar functionality exists in the "tidyverse", with a name like "expand" or "complete".
Another base R idea can be to split on Country, use setdiff to find the missing values from the seq(max(Year)), and rbind them to original data frame. Use do.call to rbind the list back to a data frame, i.e.
d1 <- do.call(rbind, c(lapply(split(df, df$Country), function(i){
x <- rbind(i, data.frame(Country = i$Country[1],
Year = setdiff(seq(max(i$Year)), i$Year),
Count = 0));
x[with(x, order(Year)),]}), make.row.names = FALSE))
which gives,
Country Year Count
1 A 1 1
2 A 2 1
3 A 3 0
4 A 4 2
5 B 1 1
6 B 2 0
7 B 3 1
> setkey(DT,Country,Year)
> DT[setkey(DT[, .(min(Year):max(Year)), by = Country], Country, V1)]
Country Year Count
1: A 1 1
2: A 2 1
3: A 3 NA
4: A 4 2
5: B 1 1
6: B 2 NA
7: B 3 1
Another dplyr and tidyr solution.
library(dplyr)
library(tidyr)
dt2 <- dt %>%
group_by(Country) %>%
do(data_frame(Country = unique(.$Country),
Year = full_seq(.$Year, 1))) %>%
full_join(dt, by = c("Country", "Year")) %>%
replace_na(list(Count = 0))
Here is an approach in base R that uses tapply, do.call, range, and seq, to calculate year sequences. Then constructs a data.frame from the named list that is returned, merges this onto the original which adds the desired rows, and finally fills in missing values.
# get named list with year sequences
temp <- tapply(dat$Year, dat$Country, function(x) do.call(seq, as.list(range(x))))
# construct data.frame
mydf <- data.frame(Year=unlist(temp), Country=rep(names(temp), lengths(temp)))
# merge onto original
mydf <- merge(dat, mydf, all=TRUE)
# fill in missing values
mydf[is.na(mydf)] <- 0
This returns
mydf
Country Year Count
1 A 1 1
2 A 2 1
3 A 3 0
4 A 4 2
5 B 1 1
6 B 2 0
7 B 3 1