use self::Ast::*;
use self::Repeater::*;
use self::Greed::*;
use self::BuildAst::*;
use std::char;
use std::cmp;
use std::fmt;
use std::iter;
use std::num;
use unicode::regex::{UNICODE_CLASSES, PERLD, PERLS, PERLW};
static MAX_REPEAT: uint = 1000;
pub struct Error {
pub pos: uint,
pub msg: String,
}
impl fmt::Show for Error {
fn fmt(&self, f: &mut fmt::Formatter) -> fmt::Result {
write!(f, "Regex syntax error near position {}: {}",
self.pos, self.msg)
}
}
#[derive(Show, Clone)]
pub enum Ast {
Nothing,
Literal(char, Flags),
Dot(Flags),
AstClass(Vec<(char, char)>, Flags),
Begin(Flags),
End(Flags),
WordBoundary(Flags),
Capture(uint, Option<String>, Box<Ast>),
Cat(Vec<Ast>),
Alt(Box<Ast>, Box<Ast>),
Rep(Box<Ast>, Repeater, Greed),
}
#[derive(Show, PartialEq, Clone)]
pub enum Repeater {
ZeroOne,
ZeroMore,
OneMore,
}
#[derive(Show, Clone)]
pub enum Greed {
Greedy,
Ungreedy,
}
impl Copy for Greed {}
impl Greed {
pub fn is_greedy(&self) -> bool {
match *self {
Greedy => true,
_ => false,
}
}
fn swap(self, swapped: bool) -> Greed {
if !swapped { return self }
match self {
Greedy => Ungreedy,
Ungreedy => Greedy,
}
}
}
#[derive(Show)]
enum BuildAst {
Expr(Ast),
Paren(Flags, uint, String), Bar, }
impl BuildAst {
fn paren(&self) -> bool {
match *self {
Paren(_, _, _) => true,
_ => false,
}
}
fn flags(&self) -> Flags {
match *self {
Paren(flags, _, _) => flags,
_ => panic!("Cannot get flags from {}", self),
}
}
fn capture(&self) -> Option<uint> {
match *self {
Paren(_, 0, _) => None,
Paren(_, c, _) => Some(c),
_ => panic!("Cannot get capture group from {}", self),
}
}
fn capture_name(&self) -> Option<String> {
match *self {
Paren(_, 0, _) => None,
Paren(_, _, ref name) => {
if name.len() == 0 {
None
} else {
Some(name.clone())
}
}
_ => panic!("Cannot get capture name from {}", self),
}
}
fn bar(&self) -> bool {
match *self {
Bar => true,
_ => false,
}
}
fn unwrap(self) -> Result<Ast, Error> {
match self {
Expr(x) => Ok(x),
_ => panic!("Tried to unwrap non-AST item: {}", self),
}
}
}
pub type Flags = u8;
pub const FLAG_EMPTY: u8 = 0;
pub const FLAG_NOCASE: u8 = 1 << 0; pub const FLAG_MULTI: u8 = 1 << 1; pub const FLAG_DOTNL: u8 = 1 << 2; pub const FLAG_SWAP_GREED: u8 = 1 << 3; pub const FLAG_NEGATED: u8 = 1 << 4;
struct Parser<'a> {
chars: Vec<char>,
chari: uint,
stack: Vec<BuildAst>,
flags: Flags,
caps: uint,
names: Vec<String>,
}
pub fn parse(s: &str) -> Result<Ast, Error> {
Parser {
chars: s.chars().collect(),
chari: 0,
stack: vec!(),
flags: FLAG_EMPTY,
caps: 0,
names: vec!(),
}.parse()
}
impl<'a> Parser<'a> {
fn parse(&mut self) -> Result<Ast, Error> {
if self.chars.len() == 0 {
return Ok(Nothing);
}
loop {
let c = self.cur();
match c {
'?' | '*' | '+' => try!(self.push_repeater(c)),
'\\' => {
let ast = try!(self.parse_escape());
self.push(ast)
}
'{' => try!(self.parse_counted()),
'[' => match self.try_parse_ascii() {
None => try!(self.parse_class()),
Some(class) => self.push(class),
},
'(' => {
if self.peek_is(1, '?') {
try!(self.expect('?'));
try!(self.parse_group_opts());
} else {
self.caps += 1;
self.stack.push(Paren(self.flags,
self.caps,
"".to_string()))
}
}
')' => {
let catfrom = try!(
self.pos_last(false, |x| x.paren() || x.bar()));
try!(self.concat(catfrom));
let altfrom = try!(self.pos_last(false, |x| x.paren()));
let (cap, cap_name, oldflags) = {
let paren = &self.stack[altfrom-1];
(paren.capture(), paren.capture_name(), paren.flags())
};
try!(self.alternate(altfrom));
self.flags = oldflags;
if cap.is_some() {
let ast = try!(self.pop_ast());
self.push(Capture(cap.unwrap(), cap_name, box ast));
}
}
'|' => {
let catfrom = try!(
self.pos_last(true, |x| x.paren() || x.bar()));
try!(self.concat(catfrom));
self.stack.push(Bar);
}
_ => try!(self.push_literal(c)),
}
if !self.next_char() {
break
}
}
if self.stack.iter().any(|x| x.paren()) {
return self.err("Unclosed parenthesis.")
}
let catfrom = try!(self.pos_last(true, |x| x.bar()));
try!(self.concat(catfrom));
try!(self.alternate(0));
assert!(self.stack.len() == 1);
self.pop_ast()
}
fn noteof(&mut self, expected: &str) -> Result<(), Error> {
match self.next_char() {
true => Ok(()),
false => {
self.err(format!("Expected {} but got EOF.",
expected).as_slice())
}
}
}
fn expect(&mut self, expected: char) -> Result<(), Error> {
match self.next_char() {
true if self.cur() == expected => Ok(()),
true => self.err(format!("Expected '{}' but got '{}'.",
expected, self.cur()).as_slice()),
false => {
self.err(format!("Expected '{}' but got EOF.",
expected).as_slice())
}
}
}
fn next_char(&mut self) -> bool {
self.chari += 1;
self.chari < self.chars.len()
}
fn pop_ast(&mut self) -> Result<Ast, Error> {
match self.stack.pop().unwrap().unwrap() {
Err(e) => Err(e),
Ok(ast) => Ok(ast),
}
}
fn push(&mut self, ast: Ast) {
self.stack.push(Expr(ast))
}
fn push_repeater(&mut self, c: char) -> Result<(), Error> {
if self.stack.len() == 0 {
return self.err(
"A repeat operator must be preceded by a valid expression.")
}
let rep: Repeater = match c {
'?' => ZeroOne, '*' => ZeroMore, '+' => OneMore,
_ => panic!("Not a valid repeater operator."),
};
match self.peek(1) {
Some('*') | Some('+') =>
return self.err(
"Double repeat operators are not supported."),
_ => {},
}
let ast = try!(self.pop_ast());
match ast {
Begin(_) | End(_) | WordBoundary(_) =>
return self.err(
"Repeat arguments cannot be empty width assertions."),
_ => {}
}
let greed = try!(self.get_next_greedy());
self.push(Rep(box ast, rep, greed));
Ok(())
}
fn push_literal(&mut self, c: char) -> Result<(), Error> {
let flags = self.flags;
match c {
'.' => {
self.push(Dot(flags))
}
'^' => {
self.push(Begin(flags))
}
'$' => {
self.push(End(flags))
}
_ => {
self.push(Literal(c, flags))
}
}
Ok(())
}
fn parse_class(&mut self) -> Result<(), Error> {
let negated =
if self.peek_is(1, '^') {
try!(self.expect('^'));
FLAG_NEGATED
} else {
FLAG_EMPTY
};
let mut ranges: Vec<(char, char)> = vec!();
let mut alts: Vec<Ast> = vec!();
while self.peek_is(1, '-') {
try!(self.expect('-'));
ranges.push(('-', '-'))
}
loop {
try!(self.noteof("a closing ']' or a non-empty character class)"));
let mut c = self.cur();
match c {
'[' =>
match self.try_parse_ascii() {
Some(AstClass(asciis, flags)) => {
alts.push(AstClass(asciis, flags ^ negated));
continue
}
Some(ast) =>
panic!("Expected Class AST but got '{}'", ast),
None => {},
},
'\\' => {
match try!(self.parse_escape()) {
AstClass(asciis, flags) => {
alts.push(AstClass(asciis, flags ^ negated));
continue
}
Literal(c2, _) => c = c2, Begin(_) | End(_) | WordBoundary(_) =>
return self.err(
"\\A, \\z, \\b and \\B are not valid escape \
sequences inside a character class."),
ast => panic!("Unexpected AST item '{}'", ast),
}
}
']' if ranges.len() > 0 || alts.len() > 0 => {
if ranges.len() > 0 {
let flags = negated | (self.flags & FLAG_NOCASE);
let mut ast = AstClass(combine_ranges(ranges), flags);
for alt in alts.into_iter() {
ast = Alt(box alt, box ast)
}
self.push(ast);
} else if alts.len() > 0 {
let mut ast = alts.pop().unwrap();
for alt in alts.into_iter() {
ast = Alt(box alt, box ast)
}
self.push(ast);
}
return Ok(())
}
_ => {}
}
if self.peek_is(1, '-') && !self.peek_is(2, ']') {
try!(self.expect('-'));
try!(self.noteof("not a ']'"));
let mut c2 = self.cur();
if c2 == '\\' {
match try!(self.parse_escape()) {
Literal(c3, _) => c2 = c3, ast =>
return self.err(format!("Expected a literal, but got {}.",
ast).as_slice()),
}
}
if c2 < c {
return self.err(format!("Invalid character class \
range '{}-{}'",
c,
c2).as_slice())
}
ranges.push((c, self.cur()))
} else {
ranges.push((c, c))
}
}
}
fn try_parse_ascii(&mut self) -> Option<Ast> {
if !self.peek_is(1, ':') {
return None
}
let closer =
match self.pos(']') {
Some(i) => i,
None => return None,
};
if self.chars[closer-1] != ':' {
return None
}
if closer - self.chari <= 3 {
return None
}
let mut name_start = self.chari + 2;
let negated =
if self.peek_is(2, '^') {
name_start += 1;
FLAG_NEGATED
} else {
FLAG_EMPTY
};
let name = self.slice(name_start, closer - 1);
match find_class(ASCII_CLASSES, name.as_slice()) {
None => None,
Some(ranges) => {
self.chari = closer;
let flags = negated | (self.flags & FLAG_NOCASE);
Some(AstClass(combine_ranges(ranges), flags))
}
}
}
fn parse_counted(&mut self) -> Result<(), Error> {
let start = self.chari;
let closer =
match self.pos('}') {
Some(i) => i,
None => {
return self.err(format!("No closing brace for counted \
repetition starting at position \
{}.",
start).as_slice())
}
};
self.chari = closer;
let greed = try!(self.get_next_greedy());
let inner = self.chars[start+1..closer].iter().cloned().collect::<String>();
let (mut min, mut max): (uint, Option<uint>);
if !inner.contains(",") {
min = try!(self.parse_uint(inner.as_slice()));
max = Some(min);
} else {
let pieces: Vec<&str> = inner.splitn(1, ',').collect();
let (smin, smax) = (pieces[0], pieces[1]);
if smin.len() == 0 {
return self.err("Max repetitions cannot be specified \
without min repetitions.")
}
min = try!(self.parse_uint(smin));
max =
if smax.len() == 0 {
None
} else {
Some(try!(self.parse_uint(smax)))
};
}
if min > MAX_REPEAT {
return self.err(format!(
"{} exceeds maximum allowed repetitions ({})",
min, MAX_REPEAT).as_slice());
}
if max.is_some() {
let m = max.unwrap();
if m > MAX_REPEAT {
return self.err(format!(
"{} exceeds maximum allowed repetitions ({})",
m, MAX_REPEAT).as_slice());
}
if m < min {
return self.err(format!(
"Max repetitions ({}) cannot be smaller than min \
repetitions ({}).", m, min).as_slice());
}
}
if max.is_none() {
let ast = try!(self.pop_ast());
for _ in iter::range(0, min) {
self.push(ast.clone())
}
self.push(Rep(box ast, ZeroMore, greed));
} else {
let ast = try!(self.pop_ast());
for _ in iter::range(0, min) {
self.push(ast.clone())
}
if max.is_some() {
for _ in iter::range(min, max.unwrap()) {
self.push(Rep(box ast.clone(), ZeroOne, greed))
}
}
if min == 0 && (max.is_none() || max == Some(0)) {
self.push(Nothing)
}
}
Ok(())
}
fn parse_escape(&mut self) -> Result<Ast, Error> {
try!(self.noteof("an escape sequence following a '\\'"));
let c = self.cur();
if is_punct(c) {
return Ok(Literal(c, FLAG_EMPTY))
}
match c {
'a' => Ok(Literal('\x07', FLAG_EMPTY)),
'f' => Ok(Literal('\x0C', FLAG_EMPTY)),
't' => Ok(Literal('\t', FLAG_EMPTY)),
'n' => Ok(Literal('\n', FLAG_EMPTY)),
'r' => Ok(Literal('\r', FLAG_EMPTY)),
'v' => Ok(Literal('\x0B', FLAG_EMPTY)),
'A' => Ok(Begin(FLAG_EMPTY)),
'z' => Ok(End(FLAG_EMPTY)),
'b' => Ok(WordBoundary(FLAG_EMPTY)),
'B' => Ok(WordBoundary(FLAG_NEGATED)),
'0'|'1'|'2'|'3'|'4'|'5'|'6'|'7' => Ok(try!(self.parse_octal())),
'x' => Ok(try!(self.parse_hex())),
'p' | 'P' => Ok(try!(self.parse_unicode_name())),
'd' | 'D' | 's' | 'S' | 'w' | 'W' => {
let ranges = perl_unicode_class(c);
let mut flags = self.flags & FLAG_NOCASE;
if c.is_uppercase() { flags |= FLAG_NEGATED }
Ok(AstClass(ranges, flags))
}
_ => {
self.err(format!("Invalid escape sequence '\\\\{}'",
c).as_slice())
}
}
}
fn parse_unicode_name(&mut self) -> Result<Ast, Error> {
let negated = if self.cur() == 'P' { FLAG_NEGATED } else { FLAG_EMPTY };
let mut name: String;
if self.peek_is(1, '{') {
try!(self.expect('{'));
let closer =
match self.pos('}') {
Some(i) => i,
None => return self.err(format!(
"Missing '}}' for unclosed '{{' at position {}",
self.chari).as_slice()),
};
if closer - self.chari + 1 == 0 {
return self.err("No Unicode class name found.")
}
name = self.slice(self.chari + 1, closer);
self.chari = closer;
} else {
if self.chari + 1 >= self.chars.len() {
return self.err("No single letter Unicode class name found.")
}
name = self.slice(self.chari + 1, self.chari + 2);
self.chari += 1;
}
match find_class(UNICODE_CLASSES, name.as_slice()) {
None => {
return self.err(format!("Could not find Unicode class '{}'",
name).as_slice())
}
Some(ranges) => {
Ok(AstClass(ranges, negated | (self.flags & FLAG_NOCASE)))
}
}
}
fn parse_octal(&mut self) -> Result<Ast, Error> {
let start = self.chari;
let mut end = start + 1;
let (d2, d3) = (self.peek(1), self.peek(2));
if d2 >= Some('0') && d2 <= Some('7') {
try!(self.noteof("expected octal character in [0-7]"));
end += 1;
if d3 >= Some('0') && d3 <= Some('7') {
try!(self.noteof("expected octal character in [0-7]"));
end += 1;
}
}
let s = self.slice(start, end);
match num::from_str_radix::<u32>(s.as_slice(), 8) {
Some(n) => Ok(Literal(try!(self.char_from_u32(n)), FLAG_EMPTY)),
None => {
self.err(format!("Could not parse '{}' as octal number.",
s).as_slice())
}
}
}
fn parse_hex(&mut self) -> Result<Ast, Error> {
if !self.peek_is(1, '{') {
try!(self.expect('{'));
return self.parse_hex_two()
}
let start = self.chari + 2;
let closer =
match self.pos('}') {
None => {
return self.err(format!("Missing '}}' for unclosed \
'{{' at position {}",
start).as_slice())
}
Some(i) => i,
};
self.chari = closer;
self.parse_hex_digits(self.slice(start, closer).as_slice())
}
fn parse_hex_two(&mut self) -> Result<Ast, Error> {
let (start, end) = (self.chari, self.chari + 2);
let bad = self.slice(start - 2, self.chars.len());
try!(self.noteof(format!("Invalid hex escape sequence '{}'",
bad).as_slice()));
self.parse_hex_digits(self.slice(start, end).as_slice())
}
fn parse_hex_digits(&self, s: &str) -> Result<Ast, Error> {
match num::from_str_radix::<u32>(s, 16) {
Some(n) => Ok(Literal(try!(self.char_from_u32(n)), FLAG_EMPTY)),
None => {
self.err(format!("Could not parse '{}' as hex number.",
s).as_slice())
}
}
}
fn parse_named_capture(&mut self) -> Result<(), Error> {
try!(self.noteof("a capture name"));
let closer =
match self.pos('>') {
Some(i) => i,
None => return self.err("Capture name must end with '>'."),
};
if closer - self.chari == 0 {
return self.err("Capture names must have at least 1 character.")
}
let name = self.slice(self.chari, closer);
if !name.chars().all(is_valid_cap) {
return self.err(
"Capture names can only have underscores, letters and digits.")
}
if self.names.contains(&name) {
return self.err(format!("Duplicate capture group name '{}'.",
name).as_slice())
}
self.names.push(name.clone());
self.chari = closer;
self.caps += 1;
self.stack.push(Paren(self.flags, self.caps, name));
Ok(())
}
fn parse_group_opts(&mut self) -> Result<(), Error> {
if self.peek_is(1, 'P') && self.peek_is(2, '<') {
try!(self.expect('P')); try!(self.expect('<'));
return self.parse_named_capture()
}
let start = self.chari;
let mut flags = self.flags;
let mut sign = 1i;
let mut saw_flag = false;
loop {
try!(self.noteof("expected non-empty set of flags or closing ')'"));
match self.cur() {
'i' => { flags = flags | FLAG_NOCASE; saw_flag = true},
'm' => { flags = flags | FLAG_MULTI; saw_flag = true},
's' => { flags = flags | FLAG_DOTNL; saw_flag = true},
'U' => { flags = flags | FLAG_SWAP_GREED; saw_flag = true},
'-' => {
if sign < 0 {
return self.err(format!(
"Cannot negate flags twice in '{}'.",
self.slice(start, self.chari + 1)).as_slice())
}
sign = -1;
saw_flag = false;
flags = flags ^ flags;
}
':' | ')' => {
if sign < 0 {
if !saw_flag {
return self.err(format!(
"A valid flag does not follow negation in '{}'",
self.slice(start, self.chari + 1)).as_slice())
}
flags = flags ^ flags;
}
if self.cur() == ':' {
self.stack.push(Paren(self.flags, 0, "".to_string()));
}
self.flags = flags;
return Ok(())
}
_ => return self.err(format!(
"Unrecognized flag '{}'.", self.cur()).as_slice()),
}
}
}
fn get_next_greedy(&mut self) -> Result<Greed, Error> {
Ok(if self.peek_is(1, '?') {
try!(self.expect('?'));
Ungreedy
} else {
Greedy
}.swap(self.flags & FLAG_SWAP_GREED > 0))
}
fn pos_last<P>(&self, allow_start: bool, pred: P) -> Result<uint, Error> where
P: FnMut(&BuildAst) -> bool,
{
let from = match self.stack.iter().rev().position(pred) {
Some(i) => i,
None => {
if allow_start {
self.stack.len()
} else {
return self.err("No matching opening parenthesis.")
}
}
};
Ok(self.stack.len() - from)
}
fn concat(&mut self, from: uint) -> Result<(), Error> {
let ast = try!(self.build_from(from, concat_flatten));
self.push(ast);
Ok(())
}
fn alternate(&mut self, mut from: uint) -> Result<(), Error> {
if from > 0 { from = from - 1}
let ast = try!(self.build_from(from, |l,r| Alt(box l, box r)));
self.push(ast);
Ok(())
}
fn build_from<F>(&mut self, from: uint, mut mk: F) -> Result<Ast, Error> where
F: FnMut(Ast, Ast) -> Ast,
{
if from >= self.stack.len() {
return self.err("Empty group or alternate not allowed.")
}
let mut combined = try!(self.pop_ast());
let mut i = self.stack.len();
while i > from {
i = i - 1;
match self.stack.pop().unwrap() {
Expr(x) => combined = mk(x, combined),
_ => {},
}
}
Ok(combined)
}
fn parse_uint(&self, s: &str) -> Result<uint, Error> {
match s.parse::<uint>() {
Some(i) => Ok(i),
None => {
self.err(format!("Expected an unsigned integer but got '{}'.",
s).as_slice())
}
}
}
fn char_from_u32(&self, n: u32) -> Result<char, Error> {
match char::from_u32(n) {
Some(c) => Ok(c),
None => {
self.err(format!("Could not decode '{}' to unicode \
character.",
n).as_slice())
}
}
}
fn pos(&self, c: char) -> Option<uint> {
self.chars.iter()
.skip(self.chari).position(|&c2| c2 == c).map(|i| self.chari + i)
}
fn err<T>(&self, msg: &str) -> Result<T, Error> {
Err(Error {
pos: self.chari,
msg: msg.to_string(),
})
}
fn peek(&self, offset: uint) -> Option<char> {
if self.chari + offset >= self.chars.len() {
return None
}
Some(self.chars[self.chari + offset])
}
fn peek_is(&self, offset: uint, is: char) -> bool {
self.peek(offset) == Some(is)
}
fn cur(&self) -> char {
self.chars[self.chari]
}
fn slice(&self, start: uint, end: uint) -> String {
self.chars[start..end].iter().cloned().collect()
}
}
fn combine_ranges(unordered: Vec<(char, char)>) -> Vec<(char, char)> {
fn should_merge((a, b): (char, char), (x, y): (char, char)) -> bool {
cmp::max(a, x) as u32 <= cmp::min(b, y) as u32 + 1
}
let mut ordered: Vec<(char, char)> = Vec::with_capacity(unordered.len());
for (us, ue) in unordered.into_iter() {
let (mut us, mut ue) = (us, ue);
assert!(us <= ue);
let mut which: Option<uint> = None;
for (i, &(os, oe)) in ordered.iter().enumerate() {
if should_merge((us, ue), (os, oe)) {
us = cmp::min(us, os);
ue = cmp::max(ue, oe);
which = Some(i);
break
}
}
match which {
None => ordered.push((us, ue)),
Some(i) => ordered[i] = (us, ue),
}
}
ordered.sort();
ordered
}
fn perl_unicode_class(which: char) -> Vec<(char, char)> {
match which.to_lowercase() {
'd' => PERLD.to_vec(),
's' => PERLS.to_vec(),
'w' => PERLW.to_vec(),
_ => unreachable!(),
}
}
fn concat_flatten(x: Ast, y: Ast) -> Ast {
match (x, y) {
(Cat(mut xs), Cat(ys)) => { xs.extend(ys.into_iter()); Cat(xs) }
(Cat(mut xs), ast) => { xs.push(ast); Cat(xs) }
(ast, Cat(mut xs)) => { xs.insert(0, ast); Cat(xs) }
(ast1, ast2) => Cat(vec!(ast1, ast2)),
}
}
pub fn is_punct(c: char) -> bool {
match c {
'\\' | '.' | '+' | '*' | '?' | '(' | ')' | '|' |
'[' | ']' | '{' | '}' | '^' | '$' => true,
_ => false,
}
}
fn is_valid_cap(c: char) -> bool {
c == '_' || (c >= '0' && c <= '9')
|| (c >= 'a' && c <= 'z') || (c >= 'A' && c <= 'Z')
}
fn find_class(classes: NamedClasses, name: &str) -> Option<Vec<(char, char)>> {
match classes.binary_search_by(|&(s, _)| s.cmp(name)) {
Ok(i) => Some(classes[i].1.to_vec()),
Err(_) => None,
}
}
type Class = &'static [(char, char)];
type NamedClasses = &'static [(&'static str, &'static Class)];
static ASCII_CLASSES: NamedClasses = &[
("alnum", &ALNUM),
("alpha", &ALPHA),
("ascii", &ASCII),
("blank", &BLANK),
("cntrl", &CNTRL),
("digit", &DIGIT),
("graph", &GRAPH),
("lower", &LOWER),
("print", &PRINT),
("punct", &PUNCT),
("space", &SPACE),
("upper", &UPPER),
("word", &WORD),
("xdigit", &XDIGIT),
];
static ALNUM: Class = &[('0', '9'), ('A', 'Z'), ('a', 'z')];
static ALPHA: Class = &[('A', 'Z'), ('a', 'z')];
static ASCII: Class = &[('\x00', '\x7F')];
static BLANK: Class = &[(' ', ' '), ('\t', '\t')];
static CNTRL: Class = &[('\x00', '\x1F'), ('\x7F', '\x7F')];
static DIGIT: Class = &[('0', '9')];
static GRAPH: Class = &[('!', '~')];
static LOWER: Class = &[('a', 'z')];
static PRINT: Class = &[(' ', '~')];
static PUNCT: Class = &[('!', '/'), (':', '@'), ('[', '`'), ('{', '~')];
static SPACE: Class = &[('\t', '\t'), ('\n', '\n'), ('\x0B', '\x0B'),
('\x0C', '\x0C'), ('\r', '\r'), (' ', ' ')];
static UPPER: Class = &[('A', 'Z')];
static WORD: Class = &[('0', '9'), ('A', 'Z'), ('a', 'z'), ('_', '_')];
static XDIGIT: Class = &[('0', '9'), ('A', 'F'), ('a', 'f')];