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	use assert_not instead of refute, unless required minitest directly. * test/test_prime.rb (TestPrime::sieve.Integer): ditto. git-svn-id: svn+ssh://ci.ruby-lang.org/ruby/trunk@30859 b2dd03c8-39d4-4d8f-98ff-823fe69b080e
		
			
				
	
	
		
			174 lines
		
	
	
	
		
			4.2 KiB
		
	
	
	
		
			Ruby
		
	
	
	
	
	
			
		
		
	
	
			174 lines
		
	
	
	
		
			4.2 KiB
		
	
	
	
		
			Ruby
		
	
	
	
	
	
require 'test/unit'
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require 'prime'
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require 'stringio'
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require 'timeout'
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class TestPrime < Test::Unit::TestCase
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  # The first 100 prime numbers
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  PRIMES = [
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    2, 3, 5, 7, 11, 13, 17, 19, 23, 29, 31, 37,
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    41, 43, 47, 53, 59, 61, 67, 71, 73, 79, 83,
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    89, 97, 101, 103, 107, 109, 113, 127, 131,
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    137, 139, 149, 151, 157, 163, 167, 173, 179,
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    181, 191, 193, 197, 199, 211, 223, 227, 229,
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    233, 239, 241, 251, 257, 263, 269, 271, 277,
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    281, 283, 293, 307, 311, 313, 317, 331, 337,
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    347, 349, 353, 359, 367, 373, 379, 383, 389,
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    397, 401, 409, 419, 421, 431, 433, 439, 443,
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    449, 457, 461, 463, 467, 479, 487, 491, 499,
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    503, 509, 521, 523, 541,
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  ]
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  def test_each
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    primes = []
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    Prime.each do |p|
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      break if p > 541
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      primes << p
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    end
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    assert_equal PRIMES, primes
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  end
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  def test_each_by_prime_number_theorem
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    3.upto(15) do |i|
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      max = 2**i
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      primes = []
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      Prime.each do |p|
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        break if p >= max
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        primes << p
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      end
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      # Prime number theorem
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      assert primes.length >= max/Math.log(max)
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      delta = 0.05
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      li = (2..max).step(delta).inject(0){|sum,x| sum + delta/Math.log(x)}
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      assert primes.length <= li
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    end
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  end
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  def test_each_without_block
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    enum = Prime.each
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    assert enum.respond_to?(:each)
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    assert enum.kind_of?(Enumerable)
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    assert enum.respond_to?(:with_index)
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    assert enum.respond_to?(:next)
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    assert enum.respond_to?(:succ)
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    assert enum.respond_to?(:rewind)
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  end
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  def test_new
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    orig_stderr, orig_verbose = $stderr, $VERBOSE
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    $stderr = buf = StringIO.new('', 'w')
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    $VERBOSE = false
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    enum = Prime.new
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    assert_match("obsolete", buf.string)
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    assert enum.respond_to?(:each)
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    assert enum.kind_of?(Enumerable)
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    assert enum.respond_to?(:succ)
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    assert Prime === enum
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  ensure
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    $stderr = orig_stderr
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    $VERBOSE = orig_verbose
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  end
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  def test_enumerator_succ
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    enum = Prime.each
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    assert_equal PRIMES[0, 50], 50.times.map{ enum.succ }
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    assert_equal PRIMES[50, 50], 50.times.map{ enum.succ }
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    enum.rewind
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    assert_equal PRIMES[0, 100], 100.times.map{ enum.succ }
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  end
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  def test_enumerator_with_index
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    enum = Prime.each
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    last = -1
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    enum.with_index do |p,i|
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      break if i >= 100
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      assert_equal last+1, i
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      assert_equal PRIMES[i], p
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      last = i
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    end
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  end
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  def test_default_instance_does_not_have_compatibility_methods
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    assert !Prime.instance.respond_to?(:succ)
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    assert !Prime.instance.respond_to?(:next)
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  end
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  class TestInteger < Test::Unit::TestCase
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    def test_prime_division
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      pd = PRIMES.inject(&:*).prime_division
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      assert_equal PRIMES.map{|p| [p, 1]}, pd
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      pd = (-PRIMES.inject(&:*)).prime_division
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      assert_equal [-1, *PRIMES].map{|p| [p, 1]}, pd
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    end
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    def test_from_prime_division
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      assert_equal PRIMES.inject(&:*), Integer.from_prime_division(PRIMES.map{|p| [p,1]})
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      assert_equal(-PRIMES.inject(&:*), Integer.from_prime_division([[-1, 1]] + PRIMES.map{|p| [p,1]}))
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    end
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    def test_prime?
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      # zero and unit
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      assert !0.prime?
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      assert !1.prime?
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      # small primes
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      assert 2.prime?
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      assert 3.prime?
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      # squared prime
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      assert !4.prime?
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      assert !9.prime?
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      # mersenne numbers
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      assert((2**31-1).prime?)
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      assert !(2**32-1).prime?
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      # fermat numbers
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      assert((2**(2**4)+1).prime?)
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      assert !(2**(2**5)+1).prime? # Euler!
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      # large composite
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      assert !((2**13-1) * (2**17-1)).prime?
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      # factorial
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      assert !(2...100).inject(&:*).prime?
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      # negative
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      assert !-1.prime?
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      assert(-2.prime?)
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      assert(-3.prime?)
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      assert !-4.prime?
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    end
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  end
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  def test_eratosthenes_works_fine_after_timeout
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    sieve = Prime::EratosthenesSieve.instance
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    sieve.send(:initialize)
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    begin
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      # simulates that Timeout.timeout interrupts Prime::EratosthenesSieve#extend_table
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      def sieve.Integer(n)
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        n = super(n)
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        sleep 10 if /extend_table/ =~ caller.first
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        return n
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      end
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      begin
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	Timeout.timeout(0.5) { Prime.each(7*37){} }
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	flunk("timeout expected")
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      rescue Timeout::Error
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      end
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    ensure
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      class << sieve
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        remove_method :Integer
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      end
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    end
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    assert_not_include Prime.each(7*37).to_a, 7*37, "[ruby-dev:39465]"
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  end
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end
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