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I want to write an algorithm in ruby that returns true if the sentence can be deleted and returns false if it cannot.

For example: string_that_can_be_deleted = Where is my key? by = Where is my

In this case, the string should not be deleted because by is not a complete sentence.

My progress till now

def deletable?(string, by:)
  return false if string.length == by.length

  arr = by.split.map(&:downcase).map do |word|
    string.downcase.scan(word)
  end.flatten

  if string.length > by.length
    string.split.map(&:downcase).all? { |ele| arr.include?(ele) }
  else
    arr.all? { |ele| by.split.map(&:downcase).include?(ele) }
  end
end

Usage:

deletable?("Where is my key?", by: "Where is my")

=> false

Here are a couple of test cases:

string_that_can_be_deleted = `Where`
by = `Where is Finland`

=> true
string_that_can_be_deleted = `Howis my friend` # not a typo
by = `How is my friend, just asking`

=> true
string_that_can_be_deleted = `Is it raining outside?`
by = `Is it raining inside?`

=> false
string_that_can_be_deleted = `tunisia is good`
by = `tunisia is cool, but ok`

=> false

With my current implementation except for the last, everything passes.

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  • These quotation marks are not what you think they are. They are backticks, and ruby asks windows or Linux or whatever to execute anything inside them. Possibly very dangerous. – steenslag Apr 13 at 17:05
  • Yes, just made a typo while pasting the tests. – Abeid Ahmed Apr 15 at 8:39
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Looks like the problem just requires to strip all non letter characters and check if by starts with string. This code worked for all of your test cases

def deletable?(string, by:)
  clean_str = string.delete("^a-zA-Z")
  clean_by = by.delete("^a-zA-Z")
  clean_by.start_with?(clean_str)
end

Bonus: it might be good to downcase all characters so comparison is not case sensitive.

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  • How to do this for every character. Like numbers, words, punctuations, etc? – Abeid Ahmed Apr 13 at 16:27
  • 1
    You can change regex to only get rid of chars that should be ignored. If you requirement is to keep numbers and punctuation, and only get rid of white space, then use delete("\s") – Iuri G. Apr 13 at 16:31

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