github.com/sbinet/go@v0.0.0-20160827155028-54d7de7dd62b/src/regexp/syntax/simplify.go (about) 1 // Copyright 2011 The Go Authors. All rights reserved. 2 // Use of this source code is governed by a BSD-style 3 // license that can be found in the LICENSE file. 4 5 package syntax 6 7 // Simplify returns a regexp equivalent to re but without counted repetitions 8 // and with various other simplifications, such as rewriting /(?:a+)+/ to /a+/. 9 // The resulting regexp will execute correctly but its string representation 10 // will not produce the same parse tree, because capturing parentheses 11 // may have been duplicated or removed. For example, the simplified form 12 // for /(x){1,2}/ is /(x)(x)?/ but both parentheses capture as $1. 13 // The returned regexp may share structure with or be the original. 14 func (re *Regexp) Simplify() *Regexp { 15 if re == nil { 16 return nil 17 } 18 switch re.Op { 19 case OpCapture, OpConcat, OpAlternate: 20 // Simplify children, building new Regexp if children change. 21 nre := re 22 for i, sub := range re.Sub { 23 nsub := sub.Simplify() 24 if nre == re && nsub != sub { 25 // Start a copy. 26 nre = new(Regexp) 27 *nre = *re 28 nre.Rune = nil 29 nre.Sub = append(nre.Sub0[:0], re.Sub[:i]...) 30 } 31 if nre != re { 32 nre.Sub = append(nre.Sub, nsub) 33 } 34 } 35 return nre 36 37 case OpStar, OpPlus, OpQuest: 38 sub := re.Sub[0].Simplify() 39 return simplify1(re.Op, re.Flags, sub, re) 40 41 case OpRepeat: 42 // Special special case: x{0} matches the empty string 43 // and doesn't even need to consider x. 44 if re.Min == 0 && re.Max == 0 { 45 return &Regexp{Op: OpEmptyMatch} 46 } 47 48 // The fun begins. 49 sub := re.Sub[0].Simplify() 50 51 // x{n,} means at least n matches of x. 52 if re.Max == -1 { 53 // Special case: x{0,} is x*. 54 if re.Min == 0 { 55 return simplify1(OpStar, re.Flags, sub, nil) 56 } 57 58 // Special case: x{1,} is x+. 59 if re.Min == 1 { 60 return simplify1(OpPlus, re.Flags, sub, nil) 61 } 62 63 // General case: x{4,} is xxxx+. 64 nre := &Regexp{Op: OpConcat} 65 nre.Sub = nre.Sub0[:0] 66 for i := 0; i < re.Min-1; i++ { 67 nre.Sub = append(nre.Sub, sub) 68 } 69 nre.Sub = append(nre.Sub, simplify1(OpPlus, re.Flags, sub, nil)) 70 return nre 71 } 72 73 // Special case x{0} handled above. 74 75 // Special case: x{1} is just x. 76 if re.Min == 1 && re.Max == 1 { 77 return sub 78 } 79 80 // General case: x{n,m} means n copies of x and m copies of x? 81 // The machine will do less work if we nest the final m copies, 82 // so that x{2,5} = xx(x(x(x)?)?)? 83 84 // Build leading prefix: xx. 85 var prefix *Regexp 86 if re.Min > 0 { 87 prefix = &Regexp{Op: OpConcat} 88 prefix.Sub = prefix.Sub0[:0] 89 for i := 0; i < re.Min; i++ { 90 prefix.Sub = append(prefix.Sub, sub) 91 } 92 } 93 94 // Build and attach suffix: (x(x(x)?)?)? 95 if re.Max > re.Min { 96 suffix := simplify1(OpQuest, re.Flags, sub, nil) 97 for i := re.Min + 1; i < re.Max; i++ { 98 nre2 := &Regexp{Op: OpConcat} 99 nre2.Sub = append(nre2.Sub0[:0], sub, suffix) 100 suffix = simplify1(OpQuest, re.Flags, nre2, nil) 101 } 102 if prefix == nil { 103 return suffix 104 } 105 prefix.Sub = append(prefix.Sub, suffix) 106 } 107 if prefix != nil { 108 return prefix 109 } 110 111 // Some degenerate case like min > max or min < max < 0. 112 // Handle as impossible match. 113 return &Regexp{Op: OpNoMatch} 114 } 115 116 return re 117 } 118 119 // simplify1 implements Simplify for the unary OpStar, 120 // OpPlus, and OpQuest operators. It returns the simple regexp 121 // equivalent to 122 // 123 // Regexp{Op: op, Flags: flags, Sub: {sub}} 124 // 125 // under the assumption that sub is already simple, and 126 // without first allocating that structure. If the regexp 127 // to be returned turns out to be equivalent to re, simplify1 128 // returns re instead. 129 // 130 // simplify1 is factored out of Simplify because the implementation 131 // for other operators generates these unary expressions. 132 // Letting them call simplify1 makes sure the expressions they 133 // generate are simple. 134 func simplify1(op Op, flags Flags, sub, re *Regexp) *Regexp { 135 // Special case: repeat the empty string as much as 136 // you want, but it's still the empty string. 137 if sub.Op == OpEmptyMatch { 138 return sub 139 } 140 // The operators are idempotent if the flags match. 141 if op == sub.Op && flags&NonGreedy == sub.Flags&NonGreedy { 142 return sub 143 } 144 if re != nil && re.Op == op && re.Flags&NonGreedy == flags&NonGreedy && sub == re.Sub[0] { 145 return re 146 } 147 148 re = &Regexp{Op: op, Flags: flags} 149 re.Sub = append(re.Sub0[:0], sub) 150 return re 151 }