14

Consider the following R input:

if(TRUE){1}else{0} + if(TRUE){1}else{0}

The result is 1, but I was expecting 2. If I enclose each if-else statement in parentheses,

(if(TRUE){1}else{0}) + (if(TRUE){1}else{0})

then the result is 2.

Can someone explain this behaviour?

1
  • 2
    The second if clause is never evaluated... According to help("if"), if returns the expression evaluated, and that's it (after returning a value, an expression is done, conisder: if(TRUE){1}else{0} + if(TRUE){print("test")}else{0})
    – dario
    Dec 8 '21 at 8:35
12

The else clause doesn't end till R can identify the end of the expression. In R the {} aren't part of the syntax for if/else statements. The {} can be used anywhere you want to possibly put multiple statements. You can also do

if(TRUE) 1 else 0 + if(TRUE) 1 else 0 

The {} aren't really meaningful. And since

 0 + if(TRUE) 1 else 0 

is a valid expression, R just assumes you wanted all of that for your else clause. Normally R will end the else clause when it encounters a newline after a completed expression. This means that

if(TRUE){1}else{0} + 
   if(TRUE){1}else{0}

will also return the same value because the + at the end of the first line indicates that there's more to come because a valid expression can't end in +.

Note you can see how the expression is turned into the abstract syntax tree with the help of the lobstr package if you are really curious.

#lobstr::ast(if(TRUE){1}else{0} + if(TRUE){1}else{0})
o-`if` 
+-TRUE 
+-o-`{` 
| \-1 
\-o-`+` 
  +-o-`{` 
  | \-0 
  \-o-`if` 
    +-TRUE 
    +-o-`{` 
    | \-1 
    \-o-`{` 
      \-0 

Here we see that everything is nested in the first if. The + is not the main operator.

As you've done, you can use () or {} to end the expression blocks explicitly

{if(TRUE){1}else{0}} + {if(TRUE){1}else{0}}

Consider also the case of

x <- 5
if(FALSE) x+1 else x+2
# [1] 7
if(FALSE) x+1 else {x}+{2}
# [1] 7

Note how the x+2 is taken all together for the else expression. It doesn't end at the first symbol x.

2
  • 1
    Now I understand, I was giving the braces more meaning than they really had. Thank you!
    – pglpm
    Dec 8 '21 at 8:41
  • 6
    @pglpm And, to be fair, that's how braces act in many other languages. That's just not the case with R.
    – MrFlick
    Dec 8 '21 at 8:41
5

Is has something to to with operator affinity which determines the order of evaluation. Like math, parenthesis have a higher priority than multiplications with have a higher priority than plus and minus. The second part of the expression will never get evaluated and thus ignored resulting in 1 e.g. if(TRUE){1}else{0} + message("I'll never get printed"). Including the parenthesis will force to first evaluate both parts seperatley and then do the plus resulting in 2.

1
  • Thank you for this answer. I understand the idea, but I would expect it to apply only if I omitted the curly braces. The curly braces clearly delimit where the 'else' part finishes, so it isn't clear to me why the rest is skipped.
    – pglpm
    Dec 8 '21 at 8:38

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