Control Flow

Overview

Teaching: 45 min
Exercises: 0 min
Questions
  • How can I make data-dependent choices in R?

  • How can I repeat operations in R?

Objectives
  • Write conditional statements with if() and else().

  • Write and understand for() loops.

Often when we’re coding we want to control the flow of our actions. This can be done by setting actions to occur only if a condition or a set of conditions are met. Alternatively, we can also set an action to occur a particular number of times.

There are several ways you can control flow in R. For conditional statements, the most commonly used approaches are the constructs:

# if
if (condition is true) {
  perform action
}

# if ... else
if (condition is true) {
  perform action
} else {  # that is, if the condition is false,
  perform alternative action
}

Say, for example, that we want R to print a message if a variable x has a particular value:

x <- 8

if (x >= 10) {
  print("x is greater than or equal to 10")
}

x
[1] 8

The print statement does not appear in the console because x is not greater than 10. To print a different message for numbers less than 10, we can add an else statement.

x <- 8

if (x >= 10) {
  print("x is greater than or equal to 10")
} else {
  print("x is less than 10")
}
[1] "x is less than 10"

You can also test multiple conditions by using else if.

x <- 8

if (x >= 10) {
  print("x is greater than or equal to 10")
} else if (x > 5) {
  print("x is greater than 5, but less than 10")
} else {
  print("x is less than 5")
}
[1] "x is greater than 5, but less than 10"

Important: when R evaluates the condition inside if() statements, it is looking for a logical element, i.e., TRUE or FALSE. This can cause some headaches for beginners. For example:

x  <-  4 == 3
if (x) {
  "4 equals 3"
} else {
  "4 does not equal 3"          
}
[1] "4 does not equal 3"

As we can see, the not equal message was printed because the vector x is FALSE

x <- 4 == 3
x
[1] FALSE

Challenge 1

Use an if() statement to print a suitable message reporting whether there are any records from 2002 in the gapminder dataset. Now do the same for 2012.

Solution to Challenge 1

We will first see a solution to Challenge 1 which does not use the any() function. We first obtain a logical vector describing which element of gapminder$year is equal to 2002:

gapminder[(gapminder$year == 2002),]

Then, we count the number of rows of the data.frame gapminder that correspond to the 2002:

rows2002_number <- nrow(gapminder[(gapminder$year == 2002),])

The presence of any record for the year 2002 is equivalent to the request that rows2002_number is one or more:

rows2002_number >= 1

Putting all together, we obtain:

if(nrow(gapminder[(gapminder$year == 2002),]) >= 1){
   print("Record(s) for the year 2002 found.")
}

All this can be done more quickly with any(). The logical condition can be expressed as:

if(any(gapminder$year == 2002)){
   print("Record(s) for the year 2002 found.")
}

Did anyone get a warning message like this?

Warning in if (gapminder$year == 2012) {: the condition has length > 1 and only
the first element will be used

The if() function only accepts singular (of length 1) inputs, and therefore returns an error when you use it with a vector. The if() function will still run, but will only evaluate the condition in the first element of the vector. Therefore, to use the if() function, you need to make sure your input is singular (of length 1).

Tip: Built in ifelse() function

R accepts both if() and ifelse() statements structured as outlined above, but also statements using R’s built-in ifelse() function. This function accepts both singular and vector inputs and is structured as follows:

# ifelse function 
ifelse(condition is true, perform action, perform alternative action) 

where the first argument is the condition or a set of conditions to be met, the second argument is the statement that is evaluated when the condition is TRUE, and the third statement is the statement that is evaluated when the condition is FALSE.

 y <- -3
 ifelse(y < 0, "y is a negative number", "y is either positive or zero")
 [1] "y is a negative number"

Tip: any() and all()

The any() function will return TRUE if at least one TRUE value is found within a vector, otherwise it will return FALSE. This can be used in a similar way to the %in% operator. The function all(), as the name suggests, will only return TRUE if all values in the vector are TRUE.

Repeating operations

If you want to iterate over a set of values, when the order of iteration is important, and perform the same operation on each, a for() loop will do the job. We saw for() loops in the shell lessons earlier. This is the most flexible of looping operations, but therefore also the hardest to use correctly. In general, the advice of many R users would be to learn about for() loops, but to avoid using for() loops unless the order of iteration is important: i.e. the calculation at each iteration depends on the results of previous iterations. If the order of iteration is not important, then you should learn about vectorized alternatives, such as the purr package, as they pay off in computational efficiency.

The basic structure of a for() loop is:

for (iterator in set of values) {
  do a thing
}

For example:

for (i in 1:10) {
  print(i)
}
[1] 1
[1] 2
[1] 3
[1] 4
[1] 5
[1] 6
[1] 7
[1] 8
[1] 9
[1] 10

The 1:10 bit creates a vector on the fly; you can iterate over any other vector as well.

We can use a for() loop nested within another for() loop to iterate over two things at once.

for (i in 1:5) {
  for (j in c('a', 'b', 'c', 'd', 'e')) {
    print(paste(i,j))
  }
}
[1] "1 a"
[1] "1 b"
[1] "1 c"
[1] "1 d"
[1] "1 e"
[1] "2 a"
[1] "2 b"
[1] "2 c"
[1] "2 d"
[1] "2 e"
[1] "3 a"
[1] "3 b"
[1] "3 c"
[1] "3 d"
[1] "3 e"
[1] "4 a"
[1] "4 b"
[1] "4 c"
[1] "4 d"
[1] "4 e"
[1] "5 a"
[1] "5 b"
[1] "5 c"
[1] "5 d"
[1] "5 e"

We notice in the output that when the first index (i) is set to 1, the second index (j) iterates through its full set of indices. Once the indices of j have been iterated through, then i is incremented. This process continues until the last index has been used for each for() loop.

Rather than printing the results, we could write the loop output to a new object.

output_vector <- c()
for (i in 1:5) {
  for (j in c('a', 'b', 'c', 'd', 'e')) {
    temp_output <- paste(i, j)
    output_vector <- c(output_vector, temp_output)
  }
}
output_vector
 [1] "1 a" "1 b" "1 c" "1 d" "1 e" "2 a" "2 b" "2 c" "2 d" "2 e" "3 a" "3 b"
[13] "3 c" "3 d" "3 e" "4 a" "4 b" "4 c" "4 d" "4 e" "5 a" "5 b" "5 c" "5 d"
[25] "5 e"

This approach can be useful, but ‘growing your results’ (building the result object incrementally) is computationally inefficient, so avoid it when you are iterating through a lot of values.

Tip: don’t grow your results, preallocate!

One of the biggest things that trips up novices and experienced R users alike, is building a results object (vector, list, matrix, data frame) as your for loop progresses. Computers are very bad at handling this, so your calculations can very quickly slow to a crawl. It’s much better to define an empty results object before hand of appropriate dimensions, rather than initializing an empty object without dimensions. So if you know the end result will be stored in a matrix like above, create an empty matrix with 5 row and 5 columns, then at each iteration store the results in the appropriate location.

A better way is to define your (empty) output object before filling in the values. For this example, it looks more involved, but is still more efficient.

output_matrix <- matrix(nrow=5, ncol=5)
j_vector <- c('a', 'b', 'c', 'd', 'e')
for (i in 1:5) {
  for (j in 1:5) {
    temp_j_value <- j_vector[j]
    temp_output <- paste(i, temp_j_value)
    output_matrix[i, j] <- temp_output
  }
}
output_vector2 <- as.vector(output_matrix)
output_vector2
 [1] "1 a" "2 a" "3 a" "4 a" "5 a" "1 b" "2 b" "3 b" "4 b" "5 b" "1 c" "2 c"
[13] "3 c" "4 c" "5 c" "1 d" "2 d" "3 d" "4 d" "5 d" "1 e" "2 e" "3 e" "4 e"
[25] "5 e"

Tip: While loops

Sometimes you will find yourself needing to repeat an operation as long as a certain condition is met. You can do this with a while() loop.

while(this condition is true){
  do a thing
}

R will interpret a condition being met as “TRUE”.

As an example, here’s a while loop that generates random numbers from a uniform distribution (the runif() function) between 0 and 1 until it gets one that’s less than 0.1.

z <- 1
while(z > 0.1){
  z <- runif(1)
  cat(z, "\n")
}

while() loops will not always be appropriate. You have to be particularly careful that you don’t end up stuck in an infinite loop because your condition is always met and hence the while statement never terminates.

Challenge 2

Compare the objects output_vector and output_vector2. Are they the same? If not, why not? How would you change the last block of code to make output_vector2 the same as output_vector?

Solution to Challenge 2

We can check whether the two vectors are identical using the all() function:

all(output_vector == output_vector2)

However, all the elements of output_vector can be found in output_vector2:

all(output_vector %in% output_vector2)

and vice versa:

all(output_vector2 %in% output_vector)

therefore, the element in output_vector and output_vector2 are just sorted in a different order. This is because as.vector() outputs the elements of an input matrix going over its column. Taking a look at output_matrix, we can notice that we want its elements by rows. The solution is to transpose the output_matrix. We can do it either by calling the transpose function t() or by inputting the elements in the right order. The first solution requires to change the original

output_vector2 <- as.vector(output_matrix)

into

output_vector2 <- as.vector(t(output_matrix))

The second solution requires to change

output_matrix[i, j] <- temp_output

into

output_matrix[j, i] <- temp_output

Challenge 3

Write a script that loops through the gapminder data by continent and prints out whether the mean life expectancy is smaller or larger than 50 years.

Solution to Challenge 3

Step 1: We want to make sure we can extract all the unique values of the continent vector

gapminder <- read.csv("data/gapminder_data.csv")
unique(gapminder$continent)

Step 2: We also need to loop over each of these continents and calculate the average life expectancy for each subset of data. We can do that as follows:

  1. Loop over each of the unique values of ‘continent’
  2. For each value of continent, create a temporary variable storing that subset
  3. Return the calculated life expectancy to the user by printing the output:
for (iContinent in unique(gapminder$continent)) {
  tmp <- gapminder[gapminder$continent == iContinent, ]   
  cat(iContinent, mean(tmp$lifeExp, na.rm = TRUE), "\n")  
  rm(tmp)
}

Step 3: The exercise only wants the output printed if the average life expectancy is less than 50 or greater than 50. So we need to add an if() condition before printing, which evaluates whether the calculated average life expectancy is above or below a threshold, and print an output conditional on the result. We need to amend (3) from above:

3a. If the calculated life expectancy is less than some threshold (50 years), return the continent and a statement that life expectancy is less than threshold, otherwise return the continent and a statement that life expectancy is greater than threshold,:

thresholdValue <- 50

for (iContinent in unique(gapminder$continent)) {
   tmp <- mean(gapminder[gapminder$continent == iContinent, "lifeExp"])
   
   if(tmp < thresholdValue){
       cat("Average Life Expectancy in", iContinent, "is less than", thresholdValue, "\n")
   }
   else{
       cat("Average Life Expectancy in", iContinent, "is greater than", thresholdValue, "\n")
        } # end if else condition
   rm(tmp)
   } # end for loop

Challenge 4

Modify the script from Challenge 3 to loop over each country. This time print out whether the life expectancy is smaller than 50, between 50 and 70, or greater than 70.

Solution to Challenge 4

We modify our solution to Challenge 3 by now adding two thresholds, lowerThreshold and upperThreshold and extending our if-else statements:

 lowerThreshold <- 50
 upperThreshold <- 70
 
for (iCountry in unique(gapminder$country)) {
    tmp <- mean(gapminder[gapminder$country == iCountry, "lifeExp"])
    
    if(tmp < lowerThreshold){
        cat("Average Life Expectancy in", iCountry, "is less than", lowerThreshold, "\n")
    }
    else if(tmp > lowerThreshold && tmp < upperThreshold){
        cat("Average Life Expectancy in", iCountry, "is between", lowerThreshold, "and", upperThreshold, "\n")
    }
    else{
        cat("Average Life Expectancy in", iCountry, "is greater than", upperThreshold, "\n")
    }
    rm(tmp)
}

Challenge 5 - Advanced

Write a script that loops over each country in the gapminder dataset, tests whether the country starts with a ‘B’, and graphs life expectancy against time as a line graph if the mean life expectancy is under 50 years.

Solution for Challenge 5

We will use the grep() command that was introduced in the Unix Shell lesson to find countries that start with “B.” Lets understand how to do this first. Following from the Unix shell section we may be tempted to try the following

grep("^B", unique(gapminder$country))

But when we evaluate this command it returns the indices of the factor variable country that start with “B.” To get the values, we must add the value=TRUE option to the grep() command:

grep("^B", unique(gapminder$country), value=TRUE)

We will now store these countries in a variable called candidateCountries, and then loop over each entry in the variable. Inside the loop, we evaluate the average life expectancy for each country, and if the average life expectancy is less than 50 we use base-plot to plot the evolution of average life expectancy using with() and subset():

thresholdValue <- 50
candidateCountries <- grep("^B", unique(gapminder$country), value=TRUE)

for (iCountry in candidateCountries) {
    tmp <- mean(gapminder[gapminder$country == iCountry, "lifeExp"])
    
    if(tmp < thresholdValue){
        cat("Average Life Expectancy in", iCountry, "is less than", thresholdValue, "plotting life expectancy graph... \n")
        
        with(subset(gapminder, country==iCountry),
                plot(year, lifeExp,
                     type="o",
                     main = paste("Life Expectancy in", iCountry, "over time"),
                     ylab = "Life Expectancy",
                     xlab = "Year"
                   ) # end plot
              ) # end with
    } # end for loop
    rm(tmp)
 }

Key Points

  • Use if and else to make choices.

  • Use for to repeat operations.