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I wrote a Ruby code to get max and min values from an array. The code prints the max value (8) correct but it's not printing the minimum value (2). Please let me know what went wrong in my code.

class MaxMinArray
  def MaxMinMethod()
    array = [4,2,8,3,5]
    maxNo = array[0]
    minNo = array[0]
    arrayLength = array.length
    for i in 1..arrayLength
      if array[i].to_i > maxNo
        maxNo = array[i]
      end
      if array[i].to_i < minNo
        minNo = array[i]
      end
    end
    puts "Maximum no. in the given array: " + maxNo.to_s
    puts "Minimum no. in the given array: " + minNo.to_s
  end
end

MaxiMinArrayObj = MaxMinArray.new
MaxiMinArrayObj.MaxMinMethod()
share|improve this question
    
See Enumerable#max and #min .. even if you can't use these, a max/min is trivial to write in terms of a fold (#reduce) much more elegantly than a Java-style loop xD – user2864740 Jun 14 '14 at 3:00
    
In Ruby we don't use CamelCase for method names, instead we use snake_case. MaxMinMethod should be max_min_method. Also it's obvious it's a method, so simply call it max_min. But, as others mentioned, Ruby already has minmax implemented, so instead of writing your own take advantage of the pre-written one. – the Tin Man Jun 14 '14 at 7:27
    
In the if array[i].to_i > maxNo and if array[i].to_i < minNo you use conversion to integer. In the maxNo = array[i] and minNo = array[i] you don't use it that (to_i). That's kind of error might be hard to find. I would write something like this: for i in 1...array.length; candidate = array[i].to_i; if candidate > maxNo; # and the rest of the code. Sawa talked about something similar: stackoverflow.com/a/24216271/2597260 – Darek Nędza Jun 14 '14 at 11:40
    
Did any of the answers solved your problem? – Jorge de los Santos Jun 25 '14 at 17:08

It is the combination of two things.

  • First, you iterated over for i in 1..arrayLength, which iterates past the last element in array. After the last element, array[i] is nil.
  • Second, you have the condition if array[i].to_i < minNo, which can be satisfied even if array[i] is not a number.

Because of that, the nil returned by array[i] after the last element satisfies the condition due to nil.to_i being 0, and that nil is assigned to minNo.

share|improve this answer

It's not a good practice to print inside methods as long as you might want to use the results for something else.

Also Ruby comes with all sorts of magic methods to get the maximum and minimum of an array:

results = [5, 23, 43, 2, 3, 0].minmax
puts "Maximum no. in the given array: " + results[1]
puts "Minimum no. in the given array: " + results[0]
share|improve this answer
7  
Ruby has an even more "magic" method: min, max = [1,2,3].minmax. – Michael Kohl Jun 14 '14 at 4:34

You should iterate from 1 to arrayLength - 1 (it's an index of the last element). You can use three dots for this:

for i in 1...arrayLength
share|improve this answer
    
(Why use an index at all?) – user2864740 Jun 14 '14 at 3:05
    
The bug you were hitting involved the i value going 1 past the array bounds. Thus array[i].to_i would = 0 which is less than any value in your array. Then in the next line you assign nil to the minNo variable. – Christopher Bradford Jun 14 '14 at 3:06
1  
Your explanation fixed the bug, I just wanted to supply some additional information. – Christopher Bradford Jun 14 '14 at 3:08
    
I wrote the same code in Java as well but it worked without adding -1 to the array length. – ChnMys Jun 14 '14 at 3:15
    
You have i = 1; i < ArrLength that equivalent to exactly 1...ArrLength. .. includes boundary values. – zishe Jun 14 '14 at 3:20

If I were not allowed to used Ruby's minmax method, than I would do it probably like this:

array = [4,2,8,3,5]

min, max = nil, nil
array.each do |element|
  min = element if min.nil? || element < min
  max = element if max.nil? || max < element
end

puts [min, max]
# => [2, 8]
share|improve this answer

I realize you're trying to learn how to code, but, as you do so, it's also important to learn to take advantage of pre-existing solutions. Reinventing wheels will waste your time debugging code.

I'd write the code like:

def max_min(ary)
  [ary.max, ary.min]
end

max_min([1,2,4]) # => [4, 1]

But, then again, Ruby already has a good minmax method:

[1,2,4].minmax # => [1, 4]

so use it and focus your energy on more interesting things.

If you have to see the values in the opposite order, use:

[1,2,4].minmax.reverse # => [4, 1]

A more verbose/old-school way of doing it is:

FIXNUM_MAX = (2 ** (0.size * 8 - 2) - 1)
FIXNUM_MIN = -(2 ** (0.size * 8 - 2))

def max_min(ary)
  return [nil, nil] if ary.empty?
  minval = FIXNUM_MAX
  maxval = FIXNUM_MIN
  ary.each do |i|
    minval = i if i < minval
    maxval = i if i > maxval
  end
  [maxval, minval]
end

max_min([1,2,4]) # => [4, 1]
[1,2,4].minmax.reverse # => [4, 1]

That simply loops over the array, checks each value to see if it's either smaller or larger than the last minimum or maximum value, and, if so, remembers it. Once the array is exhausted the values are returned. It's a lot more concise because using each removes a lot of the hassle of trying to walk the array using index values. We almost never use for in Ruby, especially to walk through an array.

(Technically Ruby can hold values well beyond 4611686018427387903 and -4611686018427387904, which are what FIXNUM_MAX and FIXNUM_MIN are, but those suffice for most things we want to do.)

share|improve this answer
1  
Your verbose method returns a wrong result when ary is empty. I don't see why you need to use FIXNUM_MAX and FIXNUM_MIN at all. – sawa Jun 14 '14 at 9:13
1  
As I said, that's how we'd do it in the old days; Languages had maximum/minimum values for integers because they were tied to what the CPU supported, and didn't change precision like Ruby can. We had to know the boundaries and would use those to seed the min/max, using the opposite end of the spectrum. As for returning values for an empty array, that's an easy fix. – the Tin Man Jun 16 '14 at 15:11

In the simplest way you can use max and min method of array.

:001 > [1,4,1,3,4,5].max
 => 5 
:002 > [1,4,1,3,4,5].min
 => 1 

And if your array may contain nil the first compact it the use min max

For example

:003 > [1,4,1,3,4,5,nil].compact
=> [1, 4, 1, 3, 4, 5]

:004 > [1,4,1,3,4,5].max
 => 5 

:005 > [1,4,1,3,4,5].min
 => 1 
share|improve this answer

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