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Sometimes I want a variable to always be an array, whether its a scalar or already an array.

So I normally do:


which is compatible with ruby-1.8.5, 1.8.7, 1.9.x.

With this method when variable is a string (variable = "asdf"), it gives me ["asdf"]. If it's already an array (variable = ["asdf","bvcx"]), it gives me: ["asdf","bvcx"].

Does anyone have a better way? "Better" meaning more readable, more performant, succinct or more effective in other ways.

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2 Answers 2

up vote 11 down vote accepted

The way I do, and think is the standard way, is using [*...]:

variable1 = "string"
variable2 = ["element1", "element2"]

[*variable1] #=> ["string"]
[*variable2] #=> ["element1", "element2"]
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I didn't know lucapette's way, and that seems to work, but the way I show above works at about twice the speed. – sawa Mar 11 '12 at 13:22
On which implementation? YARV? – Andrew Grimm Mar 11 '12 at 20:53
@AndrewGrimm Yes. YARV in Ruby 1.9.3. – sawa Mar 11 '12 at 22:10
I've confirmed the performance for this one is better, but both this and the Array(foo) method are good. – Ken Barber Mar 11 '12 at 22:28
Note that this method will always return a new Array. Kernal#Array will return the same object if it is given an Array. – Wizard of Ogz Nov 9 at 22:45

should do the trick. It uses the little known Kernel#Array method.

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