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please help me to make method named hash_string so that it takes the hash and make a string from its key/value pairs. Example:

hash_string({id: 8, name: 'marry'}) # should return "id = 8, name = marry"

I've tried same way before, they are:

def hash_string(hash)
  hash.to_s
end

and

def hash_string(hash)
  set_value = hash.each {|key, value| puts "#{key} = #{value}" }
  # set_value.join(",")
end

but they did not work. Will you please explain me, how can i do that?

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3 Answers 3

up vote 1 down vote accepted

Replace each with map, return the value instead of outputting it, and you're done.

def hash_string(hash)
  set_value = hash.map {|key, value| "#{key} = #{value}" }
  set_value.join(",")
end
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oh! yess. thank you. :) is there any other way to do that? –  Rabby Aug 18 at 3:24
def hash_string(hash); hash.map{|e| e.join(" = ")}.join(", ") end

When map applies to a hash, to_a is applied, which gives key-value pairs. Each pair is captured by a single block variable e, to which join applies.

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Perhaps you could explain why that works? –  andrewdotnich Aug 18 at 4:25
    
Sawa,thanks for your explanation. Now i clearly understand how it works. –  Rabby Aug 18 at 11:03

Is there another way? (You did ask.) I think this should work. Counterexample, anyone?

h = {:id=>8, name: "marry", "age"=>25, 7=>4}
  #=> {:id=>8, :name=>"marry", "age"=>25, 7=>4}

h.to_s[1..-2].gsub(/:?([^:]+?)=>/,'\1 = ').gsub('"', '')
  #=> "id = 8, name = marry, age = 25, 7 = 4"
  • h.to_s[1..-2] converts the hash to a string and strips off the first ({) and last (}) characters.
  • :? consumes a : if one is present immediately before the capture group that follows.
  • ([^:]+?) is capture group #1, which captures one or more characters other than :, non-greedily (signified by ?) and is followed by =>. Alternatively, one could have /:?([^:=>]+)=>/.
  • The match, if there is one, is replaced by '\1 = ', which is the contents of the capture group, followed by " = ". This could instead be written with double-quotes ("\\1 = ").

Let's walk through an example:

h = {:id=>8, "name"=>"mary"}             #=>  {:id=>8, "name"=>"mary"}
str0 = h.to_s                            #=> "{:id=>8, \"name\"=>\"mary\"}"
str1 = str0[1..-2]                       #=>  ":id=>8, \"name\"=>\"mary\""
str2 = str1.gsub(/:?([^:]+?)=>/,'\1 = ') #=>   "id = 8, \"name\" = \"mary\""
str2.gsub('"', '')                       #=>   "id = 8, name = mary"

Now let's have a closer look at the penultimate statement.

gsub is looking for substrings of:

":id=>8, \"name\"=>\"mary\""

that match the regex:

/:?([^:]+?)=>/

Whenever it finds one, it replaces it with \1 =, where \1 denotes the contents of the regex's one and only capture group.

In :?, the ? means "match a : if one is present. It finds one, before id. It now moves on to the "capture group" (capture group #1), designated by the parenthesis: ([^:]+?). [^:]+? captures one or more characters other than :.

As the capture group is followed by =>, it will capture matching characters until it reaches =>. But which pair, the one in id=>8 or the one in \"name\"=>\"mary\"? Regex's are naturally "greedy", so if the capture group were ([^:]+), it would match the last one, capturing id=>8, \"name\". To prevent that from happening, we add the ? to make the match on [^:]+? "non-greedy", this is, stopped by the first => it encounters, causing it to match just id.

gsub has matched :id=>, of which id is the contents of the capture group, which can be reference in a string by \1. It therefore replaces :id=> with \1 = => id =.

Wait a minute. The capture group does not match :, so why do we need :? at the beginning of the regex? Let's try without that:

str2 = str1.gsub(/([^:]+?)=>/,'\1 = ') #=> ":id = 8, \"name\" = \"mary\""

As you see, the first : was not removed. That's because it was not part of the match that gsub replaced with \1 =. Hence the need for :?.

The last statement merely converts each " to an empty string (i.e., removes the double quotes).

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Since you seem to be looking for a counterexample: h = {"=>" => "foo"} gives " = = foo". –  sawa Aug 18 at 6:42
    
@Cary Swoveland, Although I've read the document link, I did not understand that (.gsub) method . Would you please explain to me, how it works? –  Rabby Aug 18 at 11:28
    
Rabby, your wish is my command. Note that the elaboration of my explanation is meant to give you a better understanding of how regex's work, and not so much about your question. –  Cary Swoveland Aug 18 at 18:06
    
Thanks, @sawa. I figured there could be a few. I did not mean this to be a serious option (what I meant by "You did ask"), but thought it might have some educational value. I see { ":"=>"foo" } => " = foo" is problematic as well. –  Cary Swoveland Aug 18 at 18:10

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