273

For example in this line of code I wrote, print and puts produce different results.

1.upto(1000).each { |i| print i if i % 2 == 0 }
1
390

puts adds a new line to the end of each argument if there is not one already.

print does not add a new line.


For example:

puts [[1,2,3], [4,5,nil]] Would return:

1
2
3
4
5

Whereas print [[1,2,3], [4,5,nil]] would return:

[[1,2,3], [4,5,nil]]
Notice how puts does not output the nil value whereas print does.
8
  • 90
    Actually, a newline after each argument. That's a key point and not clear from the Ruby docs (since the example has only 1 argument).
    – cdunn2001
    Jul 29 '12 at 23:49
  • 3
    There is another thing ... extend the array class and override the to_s method. puts doesn't use the new to_s for an object of your new class while print does
    – kapv89
    Oct 28 '12 at 18:30
  • 1
    using irb 0.9.5 puts("a") and puts("a\n") have exactly the same output on the REPL. Nov 5 '13 at 20:15
  • @kapv89 That's not true: I've just tried and both puts e print use the to_s method. Only p doesn't use it.
    – collimarco
    Mar 26 '14 at 13:34
  • 6
    @Fronker, that's still just one argument. The compiler concatenates adjacent strings.
    – cdunn2001
    Sep 20 '14 at 20:21
62

A big difference is if you are displaying arrays. Especially ones with NIL. For example:

print [nil, 1, 2]

gives

[nil, 1, 2]

but

puts [nil, 1, 2]

gives

1
2

Note, no appearing nil item (just a blank line) and each item on a different line.

2
  • 1
    I noticed this today, which brought me here. I'd love to know the thinking on that. It seems like a special case for puts to handle arrays like that. Wondering what the rationale was... Is it just to be analogous to other languages?
    – Dan Barron
    Jul 10 '13 at 13:49
  • It makes sense since puts will output with a new line, so you can think of it as iterating on the array and calling puts on each line... it is odd, however, that it doesn't output nil
    – Muers
    May 13 '14 at 18:40
42

print outputs each argument, followed by $,, to $stdout, followed by $\. It is equivalent to args.join($,) + $\

puts sets both $, and $\ to "\n" and then does the same thing as print. The key difference being that each argument is a new line with puts.

You can require 'english' to access those global variables with user-friendly names.

1
  • 1
    nice tip on the english lib Jul 31 '19 at 23:51
18

The API docs give some good hints:

print() → nil

print(obj, ...) → nil

Writes the given object(s) to ios. Returns nil.

The stream must be opened for writing. Each given object that isn't a string will be converted by calling its to_s method. When called without arguments, prints the contents of $_.

If the output field separator ($,) is not nil, it is inserted between objects. If the output record separator ($\) is not nil, it is appended to the output.

...

puts(obj, ...) → nil

Writes the given object(s) to ios. Writes a newline after any that do not already end with a newline sequence. Returns nil.

The stream must be opened for writing. If called with an array argument, writes each element on a new line. Each given object that isn't a string or array will be converted by calling its to_s method. If called without arguments, outputs a single newline.

Experimenting a little with the points given above, the differences seem to be:

  • Called with multiple arguments, print separates them by the 'output field separator' $, (which defaults to nothing) while puts separates them by newlines. puts also puts a newline after the final argument, while print does not.

    2.1.3 :001 > print 'hello', 'world'
    helloworld => nil 
    2.1.3 :002 > puts 'hello', 'world'
    hello
    world
     => nil
    2.1.3 :003 > $, = 'fanodd'
     => "fanodd" 
    2.1.3 :004 > print 'hello', 'world'
    hellofanoddworld => nil 
    2.1.3 :005 > puts 'hello', 'world'
    hello
    world
     => nil
  • puts automatically unpacks arrays, while print does not:

    2.1.3 :001 > print [1, [2, 3]], [4]
    [1, [2, 3]][4] => nil 
    2.1.3 :002 > puts [1, [2, 3]], [4]
    1
    2
    3
    4
     => nil
  • print with no arguments prints $_ (the last thing read by gets), while puts prints a newline:

    2.1.3 :001 > gets
    hello world
     => "hello world\n" 
    2.1.3 :002 > puts
    
     => nil 
    2.1.3 :003 > print
    hello world
     => nil
  • print writes the output record separator $\ after whatever it prints, while puts ignores this variable:

    mark@lunchbox:~$ irb
    2.1.3 :001 > $\ = 'MOOOOOOO!'
     => "MOOOOOOO!" 
    2.1.3 :002 > puts "Oink! Baa! Cluck! "
    Oink! Baa! Cluck! 
     => nil 
    2.1.3 :003 > print "Oink! Baa! Cluck! "
    Oink! Baa! Cluck! MOOOOOOO! => nil
4

puts call the to_s of each argument and adds a new line to each string, if it does not end with new line. print just output each argument by calling their to_s.

for example: puts "one two": one two

{new line}

puts "one two\n": one two

{new line} #puts will not add a new line to the result, since the string ends with a new line

print "one two": one two

print "one two\n": one two

{new line}

And there is another way to output: p

For each object, directly writes obj.inspect followed by a newline to the program’s standard output.

It is helpful to output debugging message. p "aa\n\t": aa\n\t

-1

If you would like to output array within string using puts, you will get the same result as if you were using print:

puts "#{[0, 1, nil]}":
[0, 1, nil]

But if not withing a quoted string then yes. The only difference is between new line when we use puts.

2
  • 1
    -1 for two reasons. Firstly, a lack of clarity: I don't understand what the initial "But..." here intends for this to follow on from, nor do I understand what the "yes" in the final paragraph is replying to. Secondly, for a lack of correctness: you say that using printf instead of puts in your example code will give the same result, but in fact it doesn't. The puts variant adds a newline at the end while the printf one doesn't, just like the case where there's no array interpolated into the string. (Necessarily so, since the interpolation happens when evaluating the string literal.)
    – Mark Amery
    Apr 22 '19 at 12:17
  • Aha! After reading other answers, I think I understand - you intended this to be a reply to stackoverflow.com/a/14534145/1709587? In any case, it doesn't really stand a an answer on its own.
    – Mark Amery
    Apr 22 '19 at 12:19

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