| 417 |      1 | // Main Part 3 about Regular Expression Matching
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| 430 |      2 | //==============================================
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| 153 |      3 | 
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| 403 |      4 | object M3 {
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| 249 |      5 | 
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| 221 |      6 | // Regular Expressions
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| 153 |      7 | abstract class Rexp
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|  |      8 | case object ZERO extends Rexp
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|  |      9 | case object ONE extends Rexp
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|  |     10 | case class CHAR(c: Char) extends Rexp
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| 430 |     11 | case class ALTs(rs: List[Rexp]) extends Rexp  // alternatives 
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|  |     12 | case class SEQs(rs: List[Rexp]) extends Rexp  // sequences
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|  |     13 | case class STAR(r: Rexp) extends Rexp         // star
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| 153 |     14 | 
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|  |     15 | 
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| 430 |     16 | //the usual binary choice and binary sequence can be defined 
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|  |     17 | //in terms of ALTs and SEQs
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| 403 |     18 | def ALT(r1: Rexp, r2: Rexp) = ALTs(List(r1, r2))
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| 430 |     19 | def SEQ(r1: Rexp, r2: Rexp) = SEQs(List(r1, r2))
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| 403 |     20 | 
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| 421 |     21 | // some convenience for typing in regular expressions
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| 229 |     22 | import scala.language.implicitConversions    
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|  |     23 | import scala.language.reflectiveCalls 
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|  |     24 | 
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| 153 |     25 | def charlist2rexp(s: List[Char]): Rexp = s match {
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|  |     26 |   case Nil => ONE
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|  |     27 |   case c::Nil => CHAR(c)
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|  |     28 |   case c::s => SEQ(CHAR(c), charlist2rexp(s))
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|  |     29 | }
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|  |     30 | implicit def string2rexp(s: String): Rexp = charlist2rexp(s.toList)
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|  |     31 | 
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|  |     32 | implicit def RexpOps (r: Rexp) = new {
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|  |     33 |   def | (s: Rexp) = ALT(r, s)
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|  |     34 |   def % = STAR(r)
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|  |     35 |   def ~ (s: Rexp) = SEQ(r, s)
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|  |     36 | }
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|  |     37 | 
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|  |     38 | implicit def stringOps (s: String) = new {
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|  |     39 |   def | (r: Rexp) = ALT(s, r)
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|  |     40 |   def | (r: String) = ALT(s, r)
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|  |     41 |   def % = STAR(s)
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|  |     42 |   def ~ (r: Rexp) = SEQ(s, r)
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|  |     43 |   def ~ (r: String) = SEQ(s, r)
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|  |     44 | }
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|  |     45 | 
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| 430 |     46 | // (1) 
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| 347 |     47 | def nullable (r: Rexp) : Boolean = r match {
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|  |     48 |   case ZERO => false
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|  |     49 |   case ONE => true
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| 421 |     50 |   case CHAR(_) => false
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|  |     51 |   case ALTs(rs) => rs.exists(nullable)
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| 430 |     52 |   case SEQs(rs) => rs.forall(nullable)
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| 421 |     53 |   case STAR(_) => true
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| 153 |     54 | }
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|  |     55 | 
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| 430 |     56 | // (2) 
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|  |     57 | def der(c: Char, r: Rexp) : Rexp = r match {
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| 347 |     58 |   case ZERO => ZERO
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|  |     59 |   case ONE => ZERO
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| 421 |     60 |   case CHAR(d) => if (c == d) ONE else ZERO
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|  |     61 |   case ALTs(rs) => ALTs(rs.map(der(c, _)))
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| 430 |     62 |   case SEQs(Nil) => ZERO
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|  |     63 |   case SEQs(r1::rs) => 
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|  |     64 |     if (nullable(r1)) ALT(SEQs(der(c, r1)::rs), der(c, SEQs(rs)))
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|  |     65 |     else SEQs(der(c, r1):: rs)
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| 421 |     66 |   case STAR(r1) => SEQ(der(c, r1), STAR(r1))
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| 417 |     67 | }
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|  |     68 | 
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|  |     69 | 
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| 430 |     70 | // (3) 
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|  |     71 | def denest(rs: List[Rexp]) : List[Rexp] = rs match {
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|  |     72 |   case Nil => Nil
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|  |     73 |   case ZERO::tl => denest(tl)
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|  |     74 |   case ALTs(rs1)::rs2 => rs1 ::: denest(rs2)  
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|  |     75 |   case r::rs => r :: denest(rs) 
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|  |     76 | }
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| 417 |     77 | 
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| 430 |     78 | // (4)
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|  |     79 | def flts(rs: List[Rexp], acc: List[Rexp] = Nil) : List[Rexp] = rs match {
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|  |     80 |   case Nil => acc
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|  |     81 |   case ZERO::rs => ZERO::Nil
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|  |     82 |   case ONE::rs => flts(rs, acc)
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|  |     83 |   case SEQs(rs1)::rs => flts(rs, acc ::: rs1)
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|  |     84 |   case r::rs => flts(rs, acc :+ r) 
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| 153 |     85 | }
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|  |     86 | 
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| 430 |     87 | // (5)
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|  |     88 | def ALTs_smart(rs: List[Rexp]) : Rexp = rs match {
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|  |     89 |   case Nil => ZERO
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|  |     90 |   case r::Nil => r  
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|  |     91 |   case rs => ALTs(rs)
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|  |     92 | }
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| 403 |     93 | 
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| 430 |     94 | def SEQs_smart(rs: List[Rexp]) : Rexp = rs match {
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|  |     95 |   case Nil => ONE
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|  |     96 |   case ZERO::nil => ZERO
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|  |     97 |   case r::Nil => r
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|  |     98 |   case rs => SEQs(rs) 
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|  |     99 | }
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| 421 |    100 | 
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| 430 |    101 | // (6) 
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| 403 |    102 | 
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| 347 |    103 | def simp(r: Rexp) : Rexp = r match {
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| 430 |    104 |   case ALTs(rs) => 
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|  |    105 |     ALTs_smart(denest(rs.map(simp)).distinct)
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|  |    106 |   case SEQs(rs) => 
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|  |    107 |     SEQs_smart(flts(rs.map(simp)))
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| 421 |    108 |   case r => r
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| 153 |    109 | }
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|  |    110 | 
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| 430 |    111 | //println("Simp tests")
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|  |    112 | //println(simp(ALT(ONE | CHAR('a'), CHAR('a') | ONE)))
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|  |    113 | //println(simp(((CHAR('a') | ZERO) ~ ONE) | 
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|  |    114 | //              (((ONE | CHAR('b')) | CHAR('c')) ~ (CHAR('d') ~ ZERO))))
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| 221 |    115 | 
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| 430 |    116 | 
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|  |    117 | // (7) 
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| 153 |    118 | 
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| 347 |    119 | def ders (s: List[Char], r: Rexp) : Rexp = s match {
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|  |    120 |   case Nil => r
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| 421 |    121 |   case c::s => ders(s, simp(der(c, r)))
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| 153 |    122 | }
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|  |    123 | 
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| 421 |    124 | // main matcher function
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|  |    125 | def matcher(r: Rexp, s: String) = nullable(ders(s.toList, r))
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| 417 |    126 | 
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| 430 |    127 | // (8) 
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| 421 |    128 | 
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| 347 |    129 | def size(r: Rexp): Int = r match {
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|  |    130 |   case ZERO => 1
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|  |    131 |   case ONE => 1
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| 421 |    132 |   case CHAR(_) => 1
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|  |    133 |   case ALTs(rs) => 1 + rs.map(size).sum
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| 430 |    134 |   case SEQs(rs) => 1 + rs.map(size).sum
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| 421 |    135 |   case STAR(r1) => 1 + size(r1)
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| 153 |    136 | }
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|  |    137 | 
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| 347 |    138 | 
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| 421 |    139 | 
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| 236 |    140 | // some testing data
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| 430 |    141 | /*
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|  |    142 | println(matcher(("a" ~ "b") ~ "c", "abc"))  // => true
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|  |    143 | println(matcher(("a" ~ "b") ~ "c", "ab"))   // => false
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| 229 |    144 | 
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|  |    145 | // the supposedly 'evil' regular expression (a*)* b
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| 430 |    146 | val EVIL = SEQ(STAR(STAR(CHAR('a'))), CHAR('b'))
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| 229 |    147 | 
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| 430 |    148 | println(matcher(EVIL, "a" * 1000 ++ "b"))   // => true
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|  |    149 | println(matcher(EVIL, "a" * 1000))          // => false
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| 153 |    150 | 
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|  |    151 | // size without simplifications
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| 430 |    152 | println(size(der('a', der('a', EVIL))))             // => 36
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|  |    153 | println(size(der('a', der('a', der('a', EVIL)))))   // => 83
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| 153 |    154 | 
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|  |    155 | // size with simplification
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| 430 |    156 | println(simp(der('a', der('a', EVIL))))          
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|  |    157 | println(simp(der('a', der('a', der('a', EVIL)))))
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| 421 |    158 | 
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| 430 |    159 | println(size(simp(der('a', der('a', EVIL)))))           // => 7
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|  |    160 | println(size(simp(der('a', der('a', der('a', EVIL)))))) // => 7
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| 228 |    161 | 
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| 229 |    162 | // Python needs around 30 seconds for matching 28 a's with EVIL. 
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| 221 |    163 | // Java 9 and later increase this to an "astonishing" 40000 a's in
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| 421 |    164 | // around 30 seconds.
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| 153 |    165 | //
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| 421 |    166 | // Lets see how long it takes to match strings with 
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|  |    167 | // 5 Million a's...it should be in the range of a 
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| 430 |    168 | // few seconds.
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| 153 |    169 | 
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| 421 |    170 | def time_needed[T](i: Int, code: => T) = {
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|  |    171 |   val start = System.nanoTime()
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|  |    172 |   for (j <- 1 to i) code
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|  |    173 |   val end = System.nanoTime()
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|  |    174 |   "%.5f".format((end - start)/(i * 1.0e9))
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|  |    175 | }
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| 153 |    176 | 
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| 430 |    177 | for (i <- 0 to 5000000 by 500000) {
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|  |    178 |   println(s"$i ${time_needed(2, matcher(EVIL, "a" * i))} secs.") 
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|  |    179 | }
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| 221 |    180 | 
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| 229 |    181 | // another "power" test case 
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| 430 |    182 | println(simp(Iterator.iterate(ONE:Rexp)(r => SEQ(r, ONE | ONE)).drop(100).next()) == ONE)
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| 221 |    183 | 
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|  |    184 | // the Iterator produces the rexp
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|  |    185 | //
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|  |    186 | //      SEQ(SEQ(SEQ(..., ONE | ONE) , ONE | ONE), ONE | ONE)
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|  |    187 | //
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| 430 |    188 | //    where SEQ is nested 100 times.
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|  |    189 | */ 
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| 300 |    190 | 
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| 228 |    191 | 
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| 300 |    192 | }
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| 430 |    193 | 
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