Run the following code,
a = [1, 2, 3, 4, 5]
head, *tail = a
p head
p tail
You will get the result
1
[2, 3, 4, 5]
Who can help me to explain the statement head,*tail = a
, Thanks!
head, *tail = a
means to assign the first element of the array a
to head
, and assign the rest of the elements to tail
.
*
, sometimes called the "splat operator," does a number of things with arrays. When it's on the left side of an assignment operator (=
), as in your example, it just means "take everything left over."
If you omitted the splat in that code, it would do this instead:
head, tail = [1, 2, 3, 4, 5]
p head # => 1
p tail # => 2
But when you add the splat to tail
it means "Everything that didn't get assigned to the previous variables (head
), assign to tail
."
First, it is a parallel assignment. In ruby you can write
a,b = 1,2
and a will be 1 and b will be 2. You can also use
a,b = b,a
to swap values (without the typical temp-variable needed in other languages).
The star * is the pack/unpack operator. Writing
a,b = [1,2,3]
would assign 1 to a and 2 to b. By using the star, the values 2,3 are packed into an array and assigned to b:
a,*b = [1,2,3]
I don't know Ruby at all, but my guess is that the statement is splitting the list a
into a head (first element) and the rest (another list), assigning the new values to the variables head
and tail
.
This mechanism is usually referred (at least in Erlang) as pattern matching.
来源:https://stackoverflow.com/questions/3618697/what-does-this-mean-in-ruby-language