1use super::{ParseError, ParseOptions, ParseResult, ParseWarning};
6use std::io::{Read, Seek, SeekFrom};
7
8#[derive(Debug, Clone, PartialEq)]
10pub enum Token {
11 Boolean(bool),
13
14 Integer(i64),
16
17 Real(f64),
19
20 String(Vec<u8>),
22
23 Name(String),
25
26 ArrayStart,
28
29 ArrayEnd,
31
32 DictStart,
34
35 DictEnd,
37
38 Stream,
40
41 EndStream,
43
44 Obj,
46
47 EndObj,
49
50 StartXRef,
52
53 Reference(u32, u16),
55
56 Null,
58
59 Comment(String),
61
62 Eof,
64}
65
66pub struct Lexer<R> {
68 reader: std::io::BufReader<R>,
69 #[allow(dead_code)]
70 buffer: Vec<u8>,
71 position: usize,
72 peek_buffer: Option<u8>,
73 token_buffer: Vec<Token>,
74 options: ParseOptions,
75 warnings: Vec<ParseWarning>,
76}
77
78impl<R: Read> Lexer<R> {
79 pub fn new(reader: R) -> Self {
81 Self::new_with_options(reader, ParseOptions::default())
82 }
83
84 pub fn new_with_options(reader: R, options: ParseOptions) -> Self {
86 Self {
87 reader: std::io::BufReader::new(reader),
88 buffer: Vec::with_capacity(1024),
89 position: 0,
90 peek_buffer: None,
91 token_buffer: Vec::new(),
92 options,
93 warnings: Vec::new(),
94 }
95 }
96
97 pub fn warnings(&self) -> &[ParseWarning] {
99 &self.warnings
100 }
101
102 pub fn next_token(&mut self) -> ParseResult<Token> {
104 if let Some(token) = self.token_buffer.pop() {
106 return Ok(token);
107 }
108
109 self.skip_whitespace()?;
110
111 let ch = match self.peek_char()? {
112 Some(ch) => ch,
113 None => return Ok(Token::Eof),
114 };
115
116 match ch {
117 b'%' => self.read_comment(),
118 b'/' => self.read_name(),
119 b'(' => self.read_literal_string(),
120 b'<' => self.read_angle_bracket(),
121 b'>' => {
122 self.consume_char()?;
123 if self.peek_char()? == Some(b'>') {
124 self.consume_char()?;
125 Ok(Token::DictEnd)
126 } else {
127 Err(ParseError::SyntaxError {
128 position: self.position,
129 message: "Expected '>' after '>'".to_string(),
130 })
131 }
132 }
133 b'[' => {
134 self.consume_char()?;
135 Ok(Token::ArrayStart)
136 }
137 b']' => {
138 self.consume_char()?;
139 Ok(Token::ArrayEnd)
140 }
141 b't' | b'f' => self.read_boolean(),
142 b'n' => self.read_null(),
143 b'+' | b'-' | b'0'..=b'9' | b'.' => self.read_number(),
144 b'R' => {
145 self.consume_char()?;
147 Ok(Token::Name("R".to_string()))
148 }
149 _ if ch.is_ascii_alphabetic() => self.read_keyword(),
150 b';' => {
151 self.consume_char()?;
153 self.next_token() }
155 _ => {
156 if self.is_problematic_encoding_char(ch) {
158 self.handle_encoding_char_in_token_stream(ch)
159 } else if self.options.lenient_syntax {
160 if self.options.collect_warnings {
162 eprintln!(
163 "Warning: Skipping unexpected character '{}' at position {}",
164 ch as char, self.position
165 );
166 }
167 self.consume_char()?;
168 self.next_token() } else {
170 Err(ParseError::SyntaxError {
171 position: self.position,
172 message: format!("Unexpected character: {}", ch as char),
173 })
174 }
175 }
176 }
177 }
178
179 fn peek_char(&mut self) -> ParseResult<Option<u8>> {
181 if let Some(ch) = self.peek_buffer {
182 return Ok(Some(ch));
183 }
184
185 let mut buf = [0u8; 1];
186 match self.reader.read_exact(&mut buf) {
187 Ok(_) => {
188 self.peek_buffer = Some(buf[0]);
189 Ok(Some(buf[0]))
190 }
191 Err(e) if e.kind() == std::io::ErrorKind::UnexpectedEof => Ok(None),
192 Err(e) => Err(e.into()),
193 }
194 }
195
196 fn consume_char(&mut self) -> ParseResult<Option<u8>> {
198 let ch = self.peek_char()?;
199 if ch.is_some() {
200 self.peek_buffer = None;
201 self.position += 1;
202 }
203 Ok(ch)
204 }
205
206 pub(crate) fn skip_whitespace(&mut self) -> ParseResult<usize> {
208 let mut count = 0;
209 while let Some(ch) = self.peek_char()? {
210 if ch.is_ascii_whitespace() {
211 self.consume_char()?;
212 count += 1;
213 } else {
214 break;
215 }
216 }
217 Ok(count)
218 }
219
220 fn read_comment(&mut self) -> ParseResult<Token> {
222 self.consume_char()?; let mut comment = String::new();
224
225 while let Some(ch) = self.peek_char()? {
226 if ch == b'\n' || ch == b'\r' {
227 break;
228 }
229 self.consume_char()?;
230 comment.push(ch as char);
231 }
232
233 Ok(Token::Comment(comment))
234 }
235
236 fn read_name(&mut self) -> ParseResult<Token> {
238 self.consume_char()?; let mut name = String::new();
240
241 while let Some(ch) = self.peek_char()? {
242 if ch.is_ascii_whitespace()
243 || matches!(ch, b'/' | b'<' | b'>' | b'[' | b']' | b'(' | b')' | b'%')
244 {
245 break;
246 }
247 self.consume_char()?;
248
249 if ch == b'#' {
251 let hex1 = self
252 .consume_char()?
253 .ok_or_else(|| ParseError::SyntaxError {
254 position: self.position,
255 message: "Incomplete hex code in name".to_string(),
256 })?;
257 let hex2 = self
258 .consume_char()?
259 .ok_or_else(|| ParseError::SyntaxError {
260 position: self.position,
261 message: "Incomplete hex code in name".to_string(),
262 })?;
263
264 let value = u8::from_str_radix(&format!("{}{}", hex1 as char, hex2 as char), 16)
265 .map_err(|_| ParseError::SyntaxError {
266 position: self.position,
267 message: "Invalid hex code in name".to_string(),
268 })?;
269
270 name.push(value as char);
271 } else {
272 name.push(ch as char);
273 }
274 }
275
276 Ok(Token::Name(name))
277 }
278
279 fn read_literal_string(&mut self) -> ParseResult<Token> {
281 self.consume_char()?; let mut string = Vec::new();
283 let mut paren_depth = 1;
284 let mut escape = false;
285
286 while paren_depth > 0 {
287 let ch = match self.consume_char()? {
288 Some(c) => c,
289 None => {
290 if self.options.lenient_syntax {
291 if self.options.collect_warnings {
293 self.warnings.push(ParseWarning::SyntaxErrorRecovered {
294 position: self.position,
295 expected: "closing parenthesis".to_string(),
296 found: "EOF".to_string(),
297 recovery_action: "returned partial string content".to_string(),
298 });
299 }
300 break;
301 } else {
302 return Err(ParseError::SyntaxError {
303 position: self.position,
304 message: "Unterminated string".to_string(),
305 });
306 }
307 }
308 };
309
310 if escape {
311 let escaped = match ch {
312 b'n' => b'\n',
313 b'r' => b'\r',
314 b't' => b'\t',
315 b'b' => b'\x08',
316 b'f' => b'\x0C',
317 b'(' => b'(',
318 b')' => b')',
319 b'\\' => b'\\',
320 b'0'..=b'7' => {
321 let mut value = ch - b'0';
323 for _ in 0..2 {
324 if let Some(next) = self.peek_char()? {
325 if matches!(next, b'0'..=b'7') {
326 self.consume_char()?;
327 value = value * 8 + (next - b'0');
328 } else {
329 break;
330 }
331 }
332 }
333 value
334 }
335 _ => ch, };
337 string.push(escaped);
338 escape = false;
339 } else {
340 match ch {
341 b'\\' => escape = true,
342 b'(' => {
343 string.push(ch);
344 paren_depth += 1;
345 }
346 b')' => {
347 paren_depth -= 1;
348 if paren_depth > 0 {
349 string.push(ch);
350 }
351 }
352 _ => string.push(ch),
353 }
354 }
355 }
356
357 let processed_string = if self.options.lenient_encoding {
359 self.process_string_with_encoding_recovery(&string)?
360 } else {
361 string
362 };
363
364 Ok(Token::String(processed_string))
365 }
366
367 fn read_angle_bracket(&mut self) -> ParseResult<Token> {
369 self.consume_char()?; if self.peek_char()? == Some(b'<') {
372 self.consume_char()?;
373 Ok(Token::DictStart)
374 } else {
375 let mut hex_chars = String::new();
377 let mut found_end = false;
378
379 while let Some(ch) = self.peek_char()? {
380 if ch == b'>' {
381 self.consume_char()?;
382 found_end = true;
383 break;
384 }
385 self.consume_char()?;
386 if ch.is_ascii_hexdigit() {
387 hex_chars.push(ch as char);
388 } else if !ch.is_ascii_whitespace() {
389 if self.options.lenient_syntax {
390 if self.options.collect_warnings {
392 self.warnings.push(ParseWarning::SyntaxErrorRecovered {
393 position: self.position,
394 expected: "hex digit".to_string(),
395 found: format!("'{}'", ch as char),
396 recovery_action: "skipped invalid character".to_string(),
397 });
398 }
399 } else {
400 return Err(ParseError::SyntaxError {
401 position: self.position,
402 message: "Invalid character in hex string".to_string(),
403 });
404 }
405 }
406 }
407
408 if !found_end {
409 if self.options.lenient_syntax {
410 if self.options.collect_warnings {
412 self.warnings.push(ParseWarning::SyntaxErrorRecovered {
413 position: self.position,
414 expected: ">".to_string(),
415 found: "EOF".to_string(),
416 recovery_action: "returned partial hex string".to_string(),
417 });
418 }
419 } else {
420 return Err(ParseError::SyntaxError {
421 position: self.position,
422 message: "Unterminated hex string".to_string(),
423 });
424 }
425 }
426
427 if hex_chars.len() % 2 != 0 {
429 hex_chars.push('0');
430 }
431
432 let mut bytes = Vec::new();
434 for chunk in hex_chars.as_bytes().chunks(2) {
435 let hex_str = std::str::from_utf8(chunk).map_err(|_| ParseError::SyntaxError {
436 position: self.position,
437 message: "Invalid UTF-8 in hex string".to_string(),
438 })?;
439 let byte =
440 u8::from_str_radix(hex_str, 16).map_err(|_| ParseError::SyntaxError {
441 position: self.position,
442 message: "Invalid hex string".to_string(),
443 })?;
444 bytes.push(byte);
445 }
446
447 Ok(Token::String(bytes))
448 }
449 }
450
451 fn read_boolean(&mut self) -> ParseResult<Token> {
453 let word = self.read_word()?;
454 match word.as_str() {
455 "true" => Ok(Token::Boolean(true)),
456 "false" => Ok(Token::Boolean(false)),
457 _ => {
458 self.process_keyword(word)
460 }
461 }
462 }
463
464 fn read_null(&mut self) -> ParseResult<Token> {
466 let word = self.read_word()?;
467 if word == "null" {
468 Ok(Token::Null)
469 } else {
470 self.process_keyword(word)
472 }
473 }
474
475 fn read_number(&mut self) -> ParseResult<Token> {
477 let mut number_str = String::new();
478 let mut has_dot = false;
479
480 if let Some(ch) = self.peek_char()? {
482 if ch == b'+' || ch == b'-' {
483 self.consume_char()?;
484 number_str.push(ch as char);
485
486 if let Some(next) = self.peek_char()? {
488 if !next.is_ascii_digit() && next != b'.' {
489 return Err(ParseError::SyntaxError {
490 position: self.position,
491 message: "Expected digit after sign".to_string(),
492 });
493 }
494 }
495 }
496 }
497
498 while let Some(ch) = self.peek_char()? {
500 match ch {
501 b'0'..=b'9' => {
502 self.consume_char()?;
503 number_str.push(ch as char);
504 }
505 b'.' if !has_dot => {
506 self.consume_char()?;
507 number_str.push(ch as char);
508 has_dot = true;
509 }
510 _ => break,
511 }
512 }
513
514 if let Some(ch) = self.peek_char()? {
516 if ch == b'e' || ch == b'E' {
517 self.consume_char()?;
518 number_str.push(ch as char);
519
520 if let Some(sign_ch) = self.peek_char()? {
522 if sign_ch == b'+' || sign_ch == b'-' {
523 self.consume_char()?;
524 number_str.push(sign_ch as char);
525 }
526 }
527
528 while let Some(digit_ch) = self.peek_char()? {
530 if digit_ch.is_ascii_digit() {
531 self.consume_char()?;
532 number_str.push(digit_ch as char);
533 } else {
534 break;
535 }
536 }
537
538 has_dot = true;
540 }
541 }
542
543 if has_dot {
548 let value = number_str
549 .parse::<f64>()
550 .map_err(|_| ParseError::SyntaxError {
551 position: self.position,
552 message: format!("Invalid real number: '{number_str}'"),
553 })?;
554 Ok(Token::Real(value))
555 } else {
556 let value = number_str
557 .parse::<i64>()
558 .map_err(|_| ParseError::SyntaxError {
559 position: self.position,
560 message: format!("Invalid integer: '{number_str}'"),
561 })?;
562 Ok(Token::Integer(value))
563 }
564 }
565
566 fn read_keyword(&mut self) -> ParseResult<Token> {
568 let word = self.read_word()?;
569 self.process_keyword(word)
570 }
571
572 fn process_keyword(&self, word: String) -> ParseResult<Token> {
574 match word.as_str() {
575 "stream" => Ok(Token::Stream),
576 "endstream" => Ok(Token::EndStream),
577 "obj" => Ok(Token::Obj),
578 "endobj" => Ok(Token::EndObj),
579 "startxref" => Ok(Token::StartXRef),
580 _ => Err(ParseError::SyntaxError {
581 position: self.position,
582 message: format!("Unknown keyword: {word}"),
583 }),
584 }
585 }
586
587 fn read_word(&mut self) -> ParseResult<String> {
589 let mut word = String::new();
590
591 while let Some(ch) = self.peek_char()? {
592 if ch.is_ascii_whitespace()
593 || matches!(ch, b'/' | b'<' | b'>' | b'[' | b']' | b'(' | b')' | b'%')
594 {
595 break;
596 }
597 self.consume_char()?;
598 word.push(ch as char);
599 }
600
601 Ok(word)
602 }
603
604 #[allow(dead_code)]
606 fn read_digits(&mut self) -> ParseResult<String> {
607 let mut digits = String::new();
608
609 while let Some(ch) = self.peek_char()? {
610 if ch.is_ascii_digit() {
611 self.consume_char()?;
612 digits.push(ch as char);
613 } else {
614 break;
615 }
616 }
617
618 Ok(digits)
619 }
620
621 pub fn read_newline(&mut self) -> ParseResult<()> {
623 match self.peek_char()? {
624 Some(b'\r') => {
625 self.consume_char()?;
626 if self.peek_char()? == Some(b'\n') {
628 self.consume_char()?;
629 }
630 Ok(())
631 }
632 Some(b'\n') => {
633 self.consume_char()?;
634 Ok(())
635 }
636 _ => Err(ParseError::SyntaxError {
637 position: self.position,
638 message: "Expected newline".to_string(),
639 }),
640 }
641 }
642
643 pub fn peek_byte(&mut self) -> ParseResult<u8> {
646 match self.peek_char()? {
647 Some(b) => Ok(b),
648 None => Err(ParseError::UnexpectedToken {
649 expected: "byte".to_string(),
650 found: "EOF".to_string(),
651 }),
652 }
653 }
654
655 pub fn read_byte(&mut self) -> ParseResult<u8> {
657 match self.consume_char()? {
658 Some(b) => Ok(b),
659 None => Err(ParseError::UnexpectedToken {
660 expected: "byte".to_string(),
661 found: "EOF".to_string(),
662 }),
663 }
664 }
665
666 pub fn seek(&mut self, pos: u64) -> ParseResult<()>
668 where
669 R: Seek,
670 {
671 self.reader.seek(SeekFrom::Start(pos))?;
672 self.position = pos as usize;
673 Ok(())
674 }
675
676 pub fn read_bytes(&mut self, n: usize) -> ParseResult<Vec<u8>> {
677 let mut bytes = Vec::with_capacity(n);
678
679 if self.peek_buffer.is_some() && n > 0 {
681 bytes.push(self.consume_char()?.unwrap());
682 }
683
684 let remaining = n - bytes.len();
686 if remaining > 0 {
687 let mut rest = vec![0u8; remaining];
688 self.reader.read_exact(&mut rest)?;
689 self.position += remaining;
690 bytes.extend_from_slice(&rest);
691 }
692
693 Ok(bytes)
694 }
695
696 pub fn read_until_sequence(&mut self, sequence: &[u8]) -> ParseResult<Vec<u8>> {
698 let mut result = Vec::new();
699 let mut match_pos = 0;
700
701 while let Some(ch) = self.consume_char()? {
702 result.push(ch);
703
704 if ch == sequence[match_pos] {
705 match_pos += 1;
706 if match_pos == sequence.len() {
707 result.truncate(result.len() - sequence.len());
709 break;
710 }
711 } else if ch == sequence[0] {
712 match_pos = 1;
713 } else {
714 match_pos = 0;
715 }
716 }
717
718 if match_pos < sequence.len() {
719 return Err(ParseError::SyntaxError {
720 position: self.position,
721 message: format!("Sequence {sequence:?} not found"),
722 });
723 }
724
725 Ok(result)
726 }
727
728 pub fn position(&self) -> usize {
730 self.position
731 }
732
733 pub fn push_token(&mut self, token: Token) {
735 self.token_buffer.push(token);
736 }
737
738 pub fn expect_keyword(&mut self, keyword: &str) -> ParseResult<()> {
740 let token = self.next_token()?;
741 match (keyword, &token) {
742 ("endstream", Token::EndStream) => Ok(()),
743 ("stream", Token::Stream) => Ok(()),
744 ("endobj", Token::EndObj) => Ok(()),
745 ("obj", Token::Obj) => Ok(()),
746 ("startxref", Token::StartXRef) => Ok(()),
747 _ => Err(ParseError::UnexpectedToken {
748 expected: format!("keyword '{keyword}'"),
749 found: format!("{token:?}"),
750 }),
751 }
752 }
753
754 pub fn find_keyword_ahead(
757 &mut self,
758 keyword: &str,
759 max_bytes: usize,
760 ) -> ParseResult<Option<usize>>
761 where
762 R: Seek,
763 {
764 use std::io::{Read, Seek, SeekFrom};
765
766 let current_pos = self.reader.stream_position()?;
768 let start_buffer_state = self.peek_buffer;
769
770 let keyword_bytes = keyword.as_bytes();
771 let mut bytes_read = 0;
772 let mut match_buffer = Vec::new();
773
774 while bytes_read < max_bytes {
776 let mut byte = [0u8; 1];
777 match self.reader.read_exact(&mut byte) {
778 Ok(_) => {
779 bytes_read += 1;
780 match_buffer.push(byte[0]);
781
782 if match_buffer.len() > keyword_bytes.len() {
784 match_buffer.remove(0);
785 }
786
787 if match_buffer.len() == keyword_bytes.len() && match_buffer == keyword_bytes {
789 self.reader.seek(SeekFrom::Start(current_pos))?;
791 self.peek_buffer = start_buffer_state;
792 return Ok(Some(bytes_read - keyword_bytes.len()));
793 }
794 }
795 Err(_) => break, }
797 }
798
799 self.reader.seek(SeekFrom::Start(current_pos))?;
801 self.peek_buffer = start_buffer_state;
802 Ok(None)
803 }
804
805 pub fn peek_ahead(&mut self, n: usize) -> ParseResult<Vec<u8>>
807 where
808 R: Seek,
809 {
810 use std::io::{Read, Seek, SeekFrom};
811
812 let current_pos = self.reader.stream_position()?;
814 let start_buffer_state = self.peek_buffer;
815
816 let mut bytes = vec![0u8; n];
818 let bytes_read = self.reader.read(&mut bytes)?;
819 bytes.truncate(bytes_read);
820
821 self.reader.seek(SeekFrom::Start(current_pos))?;
823 self.peek_buffer = start_buffer_state;
824
825 Ok(bytes)
826 }
827
828 pub fn save_position(&mut self) -> ParseResult<(u64, Option<u8>)>
830 where
831 R: Seek,
832 {
833 use std::io::Seek;
834 let pos = self.reader.stream_position()?;
835 Ok((pos, self.peek_buffer))
836 }
837
838 pub fn restore_position(&mut self, saved: (u64, Option<u8>)) -> ParseResult<()>
840 where
841 R: Seek,
842 {
843 use std::io::{Seek, SeekFrom};
844 self.reader.seek(SeekFrom::Start(saved.0))?;
845 self.peek_buffer = saved.1;
846 self.position = saved.0 as usize;
847 Ok(())
848 }
849
850 pub fn peek_token(&mut self) -> ParseResult<Token>
852 where
853 R: Seek,
854 {
855 let saved_pos = self.save_position()?;
856 let token = self.next_token()?;
857 self.restore_position(saved_pos)?;
858 Ok(token)
859 }
860
861 fn process_string_with_encoding_recovery(
863 &mut self,
864 string_bytes: &[u8],
865 ) -> ParseResult<Vec<u8>> {
866 use super::encoding::{CharacterDecoder, EncodingOptions, EncodingType, EnhancedDecoder};
867
868 let has_problematic_chars = string_bytes.iter().any(|&b| {
870 (0x80..=0x9F).contains(&b)
872 || b == 0x07
873 || (b <= 0x1F && b != 0x09 && b != 0x0A && b != 0x0D)
874 });
875
876 let decoder = EnhancedDecoder::new();
877
878 let encoding_options = if has_problematic_chars {
880 EncodingOptions {
881 lenient_mode: true, preferred_encoding: Some(EncodingType::Windows1252), max_replacements: std::cmp::max(100, string_bytes.len() / 10), log_issues: self.options.collect_warnings,
885 }
886 } else {
887 EncodingOptions {
888 lenient_mode: self.options.lenient_encoding,
889 preferred_encoding: self.options.preferred_encoding,
890 max_replacements: 50,
891 log_issues: self.options.collect_warnings,
892 }
893 };
894
895 match decoder.decode(string_bytes, &encoding_options) {
896 Ok(result) => {
897 if (result.replacement_count > 0 || has_problematic_chars)
899 && self.options.collect_warnings
900 {
901 self.warnings.push(ParseWarning::InvalidEncoding {
902 position: self.position,
903 recovered_text: if result.text.len() > 50 {
904 let truncate_at = result
906 .text
907 .char_indices()
908 .map(|(i, _)| i)
909 .nth(47)
910 .unwrap_or_else(|| {
911 let limit = result.text.len().min(47);
913 let mut pos = limit;
914 while pos > 0 && !result.text.is_char_boundary(pos) {
915 pos -= 1;
916 }
917 pos
918 });
919
920 let safe_text = if truncate_at <= result.text.len()
922 && result.text.is_char_boundary(truncate_at)
923 {
924 result.text[..truncate_at].to_string()
925 } else {
926 result.text.chars().take(47).collect::<String>()
928 };
929
930 format!(
931 "{}... (truncated, {} chars total)",
932 safe_text,
933 result.text.chars().count()
934 )
935 } else {
936 result.text.clone()
937 },
938 encoding_used: result.detected_encoding,
939 replacement_count: result.replacement_count,
940 });
941 }
942
943 Ok(result.text.into_bytes())
945 }
946 Err(encoding_error) => {
947 if self.options.lenient_encoding {
948 let fallback_result = self.apply_fallback_encoding_strategy(string_bytes);
950
951 if self.options.collect_warnings {
952 self.warnings.push(ParseWarning::InvalidEncoding {
953 position: self.position,
954 recovered_text: format!(
955 "Fallback strategy applied: {} -> {} chars",
956 string_bytes.len(),
957 fallback_result.len()
958 ),
959 encoding_used: None,
960 replacement_count: string_bytes.len(),
961 });
962 }
963 Ok(fallback_result)
964 } else {
965 Err(ParseError::CharacterEncodingError {
966 position: self.position,
967 message: format!(
968 "Failed to decode string with any supported encoding: {encoding_error}"
969 ),
970 })
971 }
972 }
973 }
974 }
975
976 fn apply_fallback_encoding_strategy(&self, string_bytes: &[u8]) -> Vec<u8> {
978 let mut result = Vec::with_capacity(string_bytes.len());
979
980 for &byte in string_bytes {
981 match byte {
982 0x00..=0x08 | 0x0B | 0x0C | 0x0E..=0x1F => {
984 result.push(b' '); }
986 0x80..=0x9F => {
987 let replacement = match byte {
989 0x80 => b'E', 0x81 => b' ', 0x82 => b',', 0x83 => b'f', 0x84 => b'"', 0x85 => b'.', 0x86 => b'+', 0x87 => b'+', 0x88 => b'^', 0x89 => b'%', 0x8A => b'S', 0x8B => b'<', 0x8C => b'O', 0x8D => b' ', 0x8E => b'Z', 0x8F => b' ', 0x90 => b' ', 0x91 => b'\'', 0x92 => b'\'', 0x93 => b'"', 0x94 => b'"', 0x95 => b'*', 0x96 => b'-', 0x97 => b'-', 0x98 => b'~', 0x99 => b'T', 0x9A => b's', 0x9B => b'>', 0x9C => b'o', 0x9D => b' ', 0x9E => b'z', 0x9F => b'Y', _ => b'?', };
1023 result.push(replacement);
1024 }
1025 _ => {
1026 result.push(byte); }
1028 }
1029 }
1030
1031 result
1032 }
1033
1034 fn is_problematic_encoding_char(&self, ch: u8) -> bool {
1036 (0x80..=0x9F).contains(&ch) ||
1038 ch == 0x07 || (ch <= 0x1F && ch != 0x09 && ch != 0x0A && ch != 0x0D) || (self.options.lenient_syntax && ch >= 0xA0) }
1043
1044 fn handle_encoding_char_in_token_stream(&mut self, ch: u8) -> ParseResult<Token> {
1046 if self.options.lenient_encoding {
1047 self.consume_char()?;
1049
1050 if self.options.collect_warnings {
1052 let replacement_char = match ch {
1053 0x07 => "bell",
1054 0x00..=0x1F => "control",
1055 0x80..=0x9F => "latin1-supplement",
1056 _ => "unknown",
1057 };
1058
1059 self.warnings.push(ParseWarning::InvalidEncoding {
1060 position: self.position,
1061 recovered_text: format!(
1062 "Skipped problematic {replacement_char} character (0x{ch:02X})"
1063 ),
1064 encoding_used: None,
1065 replacement_count: 1,
1066 });
1067 }
1068
1069 self.skip_whitespace()?;
1071 if let Ok(Some(_)) = self.peek_char() {
1072 self.next_token() } else {
1074 Err(ParseError::SyntaxError {
1075 position: self.position,
1076 message: "Unexpected end of file after problematic character".to_string(),
1077 })
1078 }
1079 } else {
1080 let char_description = match ch {
1082 0x07 => "Bell character (\\u{07})".to_string(),
1083 0x00..=0x1F => format!("Control character (\\u{{{ch:02X}}})"),
1084 0x80..=0x9F => format!("Latin-1 supplement character (\\u{{{ch:02X}}})"),
1085 _ => format!("Problematic character (\\u{{{ch:02X}}})"),
1086 };
1087
1088 Err(ParseError::CharacterEncodingError {
1089 position: self.position,
1090 message: format!(
1091 "Unexpected character: {char_description} - Consider using lenient parsing mode"
1092 ),
1093 })
1094 }
1095 }
1096}
1097
1098#[cfg(test)]
1099mod tests {
1100 use super::*;
1101 use std::io::Cursor;
1102
1103 #[test]
1104 fn test_lexer_basic_tokens() {
1105 let input = b"123 -456 3.14 true false null /Name";
1107 let mut lexer = Lexer::new(Cursor::new(input));
1108
1109 assert_eq!(lexer.next_token().unwrap(), Token::Integer(123));
1110 assert_eq!(lexer.next_token().unwrap(), Token::Integer(-456));
1111 assert_eq!(lexer.next_token().unwrap(), Token::Real(3.14));
1112 assert_eq!(lexer.next_token().unwrap(), Token::Boolean(true));
1113 assert_eq!(lexer.next_token().unwrap(), Token::Boolean(false));
1114 assert_eq!(lexer.next_token().unwrap(), Token::Null);
1115 assert_eq!(lexer.next_token().unwrap(), Token::Name("Name".to_string()));
1116 assert_eq!(lexer.next_token().unwrap(), Token::Eof);
1117 }
1118
1119 #[test]
1120 fn test_lexer_negative_numbers() {
1121 let input = b"-123 -45.67";
1123 let mut lexer = Lexer::new(Cursor::new(input));
1124
1125 assert_eq!(lexer.next_token().unwrap(), Token::Integer(-123));
1126 assert_eq!(lexer.next_token().unwrap(), Token::Real(-45.67));
1127 }
1128
1129 #[test]
1130 fn test_lexer_strings() {
1131 let input = b"(Hello World) <48656C6C6F>";
1132 let mut lexer = Lexer::new(Cursor::new(input));
1133
1134 assert_eq!(
1135 lexer.next_token().unwrap(),
1136 Token::String(b"Hello World".to_vec())
1137 );
1138 assert_eq!(
1139 lexer.next_token().unwrap(),
1140 Token::String(b"Hello".to_vec())
1141 );
1142 }
1143
1144 #[test]
1145 fn test_lexer_dictionaries() {
1146 let input = b"<< /Type /Page >>";
1147 let mut lexer = Lexer::new(Cursor::new(input));
1148
1149 assert_eq!(lexer.next_token().unwrap(), Token::DictStart);
1150 assert_eq!(lexer.next_token().unwrap(), Token::Name("Type".to_string()));
1151 assert_eq!(lexer.next_token().unwrap(), Token::Name("Page".to_string()));
1152 assert_eq!(lexer.next_token().unwrap(), Token::DictEnd);
1153 }
1154
1155 #[test]
1156 fn test_lexer_arrays() {
1157 let input = b"[1 2 3]";
1158 let mut lexer = Lexer::new(Cursor::new(input));
1159
1160 assert_eq!(lexer.next_token().unwrap(), Token::ArrayStart);
1161 assert_eq!(lexer.next_token().unwrap(), Token::Integer(1));
1162 assert_eq!(lexer.next_token().unwrap(), Token::Integer(2));
1163 assert_eq!(lexer.next_token().unwrap(), Token::Integer(3));
1164 assert_eq!(lexer.next_token().unwrap(), Token::ArrayEnd);
1165 }
1166
1167 #[test]
1168 fn test_lexer_references() {
1169 let input = b"1 0 R 25 1 R";
1170 let mut lexer = Lexer::new(Cursor::new(input));
1171
1172 assert_eq!(lexer.next_token().unwrap(), Token::Integer(1));
1174 assert_eq!(lexer.next_token().unwrap(), Token::Integer(0));
1175 match lexer.next_token().unwrap() {
1177 Token::Name(s) if s == "R" => {} other => panic!("Expected R token, got {other:?}"),
1179 }
1180
1181 assert_eq!(lexer.next_token().unwrap(), Token::Integer(25));
1182 assert_eq!(lexer.next_token().unwrap(), Token::Integer(1));
1183 match lexer.next_token().unwrap() {
1184 Token::Name(s) if s == "R" => {} other => panic!("Expected R token, got {other:?}"),
1186 }
1187 }
1188
1189 #[test]
1190 fn test_lexer_comments() {
1191 let input = b"%PDF-1.7\n123";
1192 let mut lexer = Lexer::new(Cursor::new(input));
1193
1194 assert_eq!(
1195 lexer.next_token().unwrap(),
1196 Token::Comment("PDF-1.7".to_string())
1197 );
1198 assert_eq!(lexer.next_token().unwrap(), Token::Integer(123));
1199 }
1200
1201 mod comprehensive_tests {
1203 use super::*;
1204 use std::io::Cursor;
1205
1206 #[test]
1207 fn test_token_debug_trait() {
1208 let token = Token::Integer(42);
1209 let debug_str = format!("{token:?}");
1210 assert!(debug_str.contains("Integer"));
1211 assert!(debug_str.contains("42"));
1212 }
1213
1214 #[test]
1215 fn test_token_clone() {
1216 let token = Token::String(b"hello".to_vec());
1217 let cloned = token.clone();
1218 assert_eq!(token, cloned);
1219 }
1220
1221 #[test]
1222 fn test_token_equality() {
1223 assert_eq!(Token::Integer(42), Token::Integer(42));
1224 assert_ne!(Token::Integer(42), Token::Integer(43));
1225 assert_eq!(Token::Boolean(true), Token::Boolean(true));
1226 assert_ne!(Token::Boolean(true), Token::Boolean(false));
1227 assert_eq!(Token::Null, Token::Null);
1228 assert_ne!(Token::Null, Token::Integer(0));
1229 }
1230
1231 #[test]
1232 fn test_lexer_empty_input() {
1233 let input = b"";
1234 let mut lexer = Lexer::new(Cursor::new(input));
1235 assert_eq!(lexer.next_token().unwrap(), Token::Eof);
1236 }
1237
1238 #[test]
1239 fn test_lexer_whitespace_only() {
1240 let input = b" \t\n\r ";
1241 let mut lexer = Lexer::new(Cursor::new(input));
1242 assert_eq!(lexer.next_token().unwrap(), Token::Eof);
1243 }
1244
1245 #[test]
1246 fn test_lexer_integer_edge_cases() {
1247 let input = b"0 +123 -0 9876543210";
1248 let mut lexer = Lexer::new(Cursor::new(input));
1249
1250 assert_eq!(lexer.next_token().unwrap(), Token::Integer(0));
1251 assert_eq!(lexer.next_token().unwrap(), Token::Integer(123));
1252 assert_eq!(lexer.next_token().unwrap(), Token::Integer(0));
1253 assert_eq!(lexer.next_token().unwrap(), Token::Integer(9876543210));
1254 }
1255
1256 #[test]
1257 fn test_lexer_real_edge_cases() {
1258 let input = b"0.0 +3.14 -2.71828 .5 5. 123.456789";
1259 let mut lexer = Lexer::new(Cursor::new(input));
1260
1261 assert_eq!(lexer.next_token().unwrap(), Token::Real(0.0));
1262 assert_eq!(lexer.next_token().unwrap(), Token::Real(3.14));
1263 assert_eq!(lexer.next_token().unwrap(), Token::Real(-2.71828));
1264 assert_eq!(lexer.next_token().unwrap(), Token::Real(0.5));
1265 assert_eq!(lexer.next_token().unwrap(), Token::Real(5.0));
1266 assert_eq!(lexer.next_token().unwrap(), Token::Real(123.456789));
1267 }
1268
1269 #[test]
1270 fn test_lexer_scientific_notation() {
1271 let input = b"1.23e10 -4.56E-5 1e0 2E+3";
1272 let mut lexer = Lexer::new(Cursor::new(input));
1273
1274 assert_eq!(lexer.next_token().unwrap(), Token::Real(1.23e10));
1275 assert_eq!(lexer.next_token().unwrap(), Token::Real(-4.56e-5));
1276 assert_eq!(lexer.next_token().unwrap(), Token::Real(1e0));
1277 assert_eq!(lexer.next_token().unwrap(), Token::Real(2e3));
1278 }
1279
1280 #[test]
1281 fn test_lexer_string_literal_escapes() {
1282 let input = b"(Hello\\nWorld) (Tab\\tChar) (Quote\\\"Mark) (Backslash\\\\)";
1283 let mut lexer = Lexer::new(Cursor::new(input));
1284
1285 assert_eq!(
1286 lexer.next_token().unwrap(),
1287 Token::String(b"Hello\nWorld".to_vec())
1288 );
1289 assert_eq!(
1290 lexer.next_token().unwrap(),
1291 Token::String(b"Tab\tChar".to_vec())
1292 );
1293 assert_eq!(
1294 lexer.next_token().unwrap(),
1295 Token::String(b"Quote\"Mark".to_vec())
1296 );
1297 assert_eq!(
1298 lexer.next_token().unwrap(),
1299 Token::String(b"Backslash\\".to_vec())
1300 );
1301 }
1302
1303 #[test]
1304 fn test_lexer_string_literal_nested_parens() {
1305 let input = b"(Nested (parentheses) work)";
1306 let mut lexer = Lexer::new(Cursor::new(input));
1307
1308 assert_eq!(
1309 lexer.next_token().unwrap(),
1310 Token::String(b"Nested (parentheses) work".to_vec())
1311 );
1312 }
1313
1314 #[test]
1315 fn test_lexer_string_literal_empty() {
1316 let input = b"()";
1317 let mut lexer = Lexer::new(Cursor::new(input));
1318
1319 assert_eq!(lexer.next_token().unwrap(), Token::String(b"".to_vec()));
1320 }
1321
1322 #[test]
1323 fn test_lexer_hexadecimal_strings() {
1324 let input = b"<48656C6C6F> <20576F726C64> <>";
1325 let mut lexer = Lexer::new(Cursor::new(input));
1326
1327 assert_eq!(
1328 lexer.next_token().unwrap(),
1329 Token::String(b"Hello".to_vec())
1330 );
1331 assert_eq!(
1332 lexer.next_token().unwrap(),
1333 Token::String(b" World".to_vec())
1334 );
1335 assert_eq!(lexer.next_token().unwrap(), Token::String(b"".to_vec()));
1336 }
1337
1338 #[test]
1339 fn test_lexer_hexadecimal_strings_odd_length() {
1340 let input = b"<48656C6C6F2> <1> <ABC>";
1341 let mut lexer = Lexer::new(Cursor::new(input));
1342
1343 assert_eq!(
1345 lexer.next_token().unwrap(),
1346 Token::String(b"Hello ".to_vec())
1347 );
1348 assert_eq!(lexer.next_token().unwrap(), Token::String(b"\x10".to_vec()));
1349 assert_eq!(
1350 lexer.next_token().unwrap(),
1351 Token::String(b"\xAB\xC0".to_vec())
1352 );
1353 }
1354
1355 #[test]
1356 fn test_lexer_hexadecimal_strings_whitespace() {
1357 let input = b"<48 65 6C 6C 6F>";
1358 let mut lexer = Lexer::new(Cursor::new(input));
1359
1360 assert_eq!(
1361 lexer.next_token().unwrap(),
1362 Token::String(b"Hello".to_vec())
1363 );
1364 }
1365
1366 #[test]
1367 fn test_lexer_names() {
1368 let input = b"/Type /Page /Root /Kids /Count /MediaBox";
1369 let mut lexer = Lexer::new(Cursor::new(input));
1370
1371 assert_eq!(lexer.next_token().unwrap(), Token::Name("Type".to_string()));
1372 assert_eq!(lexer.next_token().unwrap(), Token::Name("Page".to_string()));
1373 assert_eq!(lexer.next_token().unwrap(), Token::Name("Root".to_string()));
1374 assert_eq!(lexer.next_token().unwrap(), Token::Name("Kids".to_string()));
1375 assert_eq!(
1376 lexer.next_token().unwrap(),
1377 Token::Name("Count".to_string())
1378 );
1379 assert_eq!(
1380 lexer.next_token().unwrap(),
1381 Token::Name("MediaBox".to_string())
1382 );
1383 }
1384
1385 #[test]
1386 fn test_lexer_names_with_special_chars() {
1387 let input = b"/Name#20with#20spaces /Name#2Fwith#2Fslashes";
1388 let mut lexer = Lexer::new(Cursor::new(input));
1389
1390 assert_eq!(
1391 lexer.next_token().unwrap(),
1392 Token::Name("Name with spaces".to_string())
1393 );
1394 assert_eq!(
1395 lexer.next_token().unwrap(),
1396 Token::Name("Name/with/slashes".to_string())
1397 );
1398 }
1399
1400 #[test]
1401 fn test_lexer_names_edge_cases() {
1402 let input = b"/ /A /123 /true /false /null";
1403 let mut lexer = Lexer::new(Cursor::new(input));
1404
1405 assert_eq!(lexer.next_token().unwrap(), Token::Name("".to_string()));
1406 assert_eq!(lexer.next_token().unwrap(), Token::Name("A".to_string()));
1407 assert_eq!(lexer.next_token().unwrap(), Token::Name("123".to_string()));
1408 assert_eq!(lexer.next_token().unwrap(), Token::Name("true".to_string()));
1409 assert_eq!(
1410 lexer.next_token().unwrap(),
1411 Token::Name("false".to_string())
1412 );
1413 assert_eq!(lexer.next_token().unwrap(), Token::Name("null".to_string()));
1414 }
1415
1416 #[test]
1417 fn test_lexer_nested_dictionaries() {
1418 let input = b"<< /Type /Page /Resources << /Font << /F1 123 0 R >> >> >>";
1419 let mut lexer = Lexer::new(Cursor::new(input));
1420
1421 assert_eq!(lexer.next_token().unwrap(), Token::DictStart);
1422 assert_eq!(lexer.next_token().unwrap(), Token::Name("Type".to_string()));
1423 assert_eq!(lexer.next_token().unwrap(), Token::Name("Page".to_string()));
1424 assert_eq!(
1425 lexer.next_token().unwrap(),
1426 Token::Name("Resources".to_string())
1427 );
1428 assert_eq!(lexer.next_token().unwrap(), Token::DictStart);
1429 assert_eq!(lexer.next_token().unwrap(), Token::Name("Font".to_string()));
1430 assert_eq!(lexer.next_token().unwrap(), Token::DictStart);
1431 assert_eq!(lexer.next_token().unwrap(), Token::Name("F1".to_string()));
1432 assert_eq!(lexer.next_token().unwrap(), Token::Integer(123));
1433 assert_eq!(lexer.next_token().unwrap(), Token::Integer(0));
1434 assert_eq!(lexer.next_token().unwrap(), Token::Name("R".to_string()));
1435 assert_eq!(lexer.next_token().unwrap(), Token::DictEnd);
1436 assert_eq!(lexer.next_token().unwrap(), Token::DictEnd);
1437 assert_eq!(lexer.next_token().unwrap(), Token::DictEnd);
1438 }
1439
1440 #[test]
1441 fn test_lexer_nested_arrays() {
1442 let input = b"[[1 2] [3 4] [5 [6 7]]]";
1443 let mut lexer = Lexer::new(Cursor::new(input));
1444
1445 assert_eq!(lexer.next_token().unwrap(), Token::ArrayStart);
1446 assert_eq!(lexer.next_token().unwrap(), Token::ArrayStart);
1447 assert_eq!(lexer.next_token().unwrap(), Token::Integer(1));
1448 assert_eq!(lexer.next_token().unwrap(), Token::Integer(2));
1449 assert_eq!(lexer.next_token().unwrap(), Token::ArrayEnd);
1450 assert_eq!(lexer.next_token().unwrap(), Token::ArrayStart);
1451 assert_eq!(lexer.next_token().unwrap(), Token::Integer(3));
1452 assert_eq!(lexer.next_token().unwrap(), Token::Integer(4));
1453 assert_eq!(lexer.next_token().unwrap(), Token::ArrayEnd);
1454 assert_eq!(lexer.next_token().unwrap(), Token::ArrayStart);
1455 assert_eq!(lexer.next_token().unwrap(), Token::Integer(5));
1456 assert_eq!(lexer.next_token().unwrap(), Token::ArrayStart);
1457 assert_eq!(lexer.next_token().unwrap(), Token::Integer(6));
1458 assert_eq!(lexer.next_token().unwrap(), Token::Integer(7));
1459 assert_eq!(lexer.next_token().unwrap(), Token::ArrayEnd);
1460 assert_eq!(lexer.next_token().unwrap(), Token::ArrayEnd);
1461 assert_eq!(lexer.next_token().unwrap(), Token::ArrayEnd);
1462 }
1463
1464 #[test]
1465 fn test_lexer_mixed_content() {
1466 let input = b"<< /Type /Page /MediaBox [0 0 612 792] /Resources << /Font << /F1 << /Type /Font /Subtype /Type1 >> >> >> >>";
1467 let mut lexer = Lexer::new(Cursor::new(input));
1468
1469 let mut tokens = Vec::new();
1471 loop {
1472 match lexer.next_token().unwrap() {
1473 Token::Eof => break,
1474 token => tokens.push(token),
1475 }
1476 }
1477 assert!(tokens.len() > 10);
1478 }
1479
1480 #[test]
1481 fn test_lexer_keywords() {
1482 let input = b"obj endobj stream endstream startxref";
1483 let mut lexer = Lexer::new(Cursor::new(input));
1484
1485 assert_eq!(lexer.next_token().unwrap(), Token::Obj);
1486 assert_eq!(lexer.next_token().unwrap(), Token::EndObj);
1487 assert_eq!(lexer.next_token().unwrap(), Token::Stream);
1488 assert_eq!(lexer.next_token().unwrap(), Token::EndStream);
1489 assert_eq!(lexer.next_token().unwrap(), Token::StartXRef);
1490 }
1491
1492 #[test]
1493 fn test_lexer_multiple_comments() {
1494 let input = b"%First comment\n%Second comment\n123";
1495 let mut lexer = Lexer::new(Cursor::new(input));
1496
1497 assert_eq!(
1498 lexer.next_token().unwrap(),
1499 Token::Comment("First comment".to_string())
1500 );
1501 assert_eq!(
1502 lexer.next_token().unwrap(),
1503 Token::Comment("Second comment".to_string())
1504 );
1505 assert_eq!(lexer.next_token().unwrap(), Token::Integer(123));
1506 }
1507
1508 #[test]
1509 fn test_lexer_comment_without_newline() {
1510 let input = b"%Comment at end";
1511 let mut lexer = Lexer::new(Cursor::new(input));
1512
1513 assert_eq!(
1514 lexer.next_token().unwrap(),
1515 Token::Comment("Comment at end".to_string())
1516 );
1517 assert_eq!(lexer.next_token().unwrap(), Token::Eof);
1518 }
1519
1520 #[test]
1521 fn test_lexer_special_characters_in_streams() {
1522 let input = b"<< /Length 5 >> stream\nHello endstream";
1523 let mut lexer = Lexer::new(Cursor::new(input));
1524
1525 assert_eq!(lexer.next_token().unwrap(), Token::DictStart);
1526 assert_eq!(
1527 lexer.next_token().unwrap(),
1528 Token::Name("Length".to_string())
1529 );
1530 assert_eq!(lexer.next_token().unwrap(), Token::Integer(5));
1531 assert_eq!(lexer.next_token().unwrap(), Token::DictEnd);
1532 assert_eq!(lexer.next_token().unwrap(), Token::Stream);
1533 }
1535
1536 #[test]
1537 fn test_lexer_push_token() {
1538 let input = b"123 456";
1539 let mut lexer = Lexer::new(Cursor::new(input));
1540
1541 let token1 = lexer.next_token().unwrap();
1542 assert_eq!(token1, Token::Integer(123));
1543
1544 let token2 = lexer.next_token().unwrap();
1545 assert_eq!(token2, Token::Integer(456));
1546
1547 lexer.push_token(token2.clone());
1549
1550 let token3 = lexer.next_token().unwrap();
1552 assert_eq!(token3, token2);
1553
1554 let token4 = lexer.next_token().unwrap();
1556 assert_eq!(token4, Token::Eof);
1557 }
1558
1559 #[test]
1560 fn test_lexer_push_multiple_tokens() {
1561 let input = b"123";
1562 let mut lexer = Lexer::new(Cursor::new(input));
1563
1564 let original_token = lexer.next_token().unwrap();
1565 assert_eq!(original_token, Token::Integer(123));
1566
1567 lexer.push_token(Token::Boolean(true));
1569 lexer.push_token(Token::Boolean(false));
1570 lexer.push_token(Token::Null);
1571
1572 assert_eq!(lexer.next_token().unwrap(), Token::Null);
1574 assert_eq!(lexer.next_token().unwrap(), Token::Boolean(false));
1575 assert_eq!(lexer.next_token().unwrap(), Token::Boolean(true));
1576 assert_eq!(lexer.next_token().unwrap(), Token::Eof);
1577 }
1578
1579 #[test]
1580 fn test_lexer_read_newline() {
1581 let input = b"123\n456\r\n789";
1582 let mut lexer = Lexer::new(Cursor::new(input));
1583
1584 let digits1 = lexer.read_digits().unwrap();
1586 assert_eq!(digits1, "123");
1587 assert!(lexer.read_newline().is_ok());
1588
1589 let digits2 = lexer.read_digits().unwrap();
1591 assert_eq!(digits2, "456");
1592 assert!(lexer.read_newline().is_ok());
1593
1594 let digits3 = lexer.read_digits().unwrap();
1596 assert_eq!(digits3, "789");
1597 }
1598
1599 #[test]
1600 fn test_lexer_read_bytes() {
1601 let input = b"Hello World";
1602 let mut lexer = Lexer::new(Cursor::new(input));
1603
1604 let bytes = lexer.read_bytes(5).unwrap();
1605 assert_eq!(bytes, b"Hello");
1606
1607 let bytes = lexer.read_bytes(6).unwrap();
1608 assert_eq!(bytes, b" World");
1609 }
1610
1611 #[test]
1612 fn test_lexer_read_until_sequence() {
1613 let input = b"Hello endstream World";
1614 let mut lexer = Lexer::new(Cursor::new(input));
1615
1616 let result = lexer.read_until_sequence(b"endstream").unwrap();
1617 assert_eq!(result, b"Hello ");
1618
1619 let rest = lexer.read_digits().unwrap();
1621 assert_eq!(rest, ""); }
1623
1624 #[test]
1625 fn test_lexer_read_until_sequence_not_found() {
1626 let input = b"Hello World";
1627 let mut lexer = Lexer::new(Cursor::new(input));
1628
1629 let result = lexer.read_until_sequence(b"notfound");
1630 assert!(result.is_err());
1631 }
1632
1633 #[test]
1634 fn test_lexer_position_tracking() {
1635 let input = b"123 456";
1636 let mut lexer = Lexer::new(Cursor::new(input));
1637
1638 let initial_pos = lexer.position();
1639 assert_eq!(initial_pos, 0);
1640
1641 lexer.next_token().unwrap(); let pos_after_first = lexer.position();
1643 assert!(pos_after_first > initial_pos);
1644
1645 lexer.next_token().unwrap(); let pos_after_second = lexer.position();
1647 assert!(pos_after_second > pos_after_first);
1648 }
1649
1650 #[test]
1651 fn test_lexer_large_numbers() {
1652 let input = b"2147483647 -2147483648 9223372036854775807 -9223372036854775808";
1653 let mut lexer = Lexer::new(Cursor::new(input));
1654
1655 assert_eq!(lexer.next_token().unwrap(), Token::Integer(2147483647));
1656 assert_eq!(lexer.next_token().unwrap(), Token::Integer(-2147483648));
1657 assert_eq!(
1658 lexer.next_token().unwrap(),
1659 Token::Integer(9223372036854775807)
1660 );
1661 assert_eq!(
1662 lexer.next_token().unwrap(),
1663 Token::Integer(-9223372036854775808)
1664 );
1665 }
1666
1667 #[test]
1668 fn test_lexer_very_long_string() {
1669 let long_str = "A".repeat(1000);
1670 let input = format!("({long_str})");
1671 let mut lexer = Lexer::new(Cursor::new(input.as_bytes()));
1672
1673 if let Token::String(s) = lexer.next_token().unwrap() {
1674 assert_eq!(s.len(), 1000);
1675 assert_eq!(s, long_str.as_bytes());
1676 } else {
1677 panic!("Expected string token");
1678 }
1679 }
1680
1681 #[test]
1682 fn test_lexer_very_long_name() {
1683 let long_name = "A".repeat(500);
1684 let input = format!("/{long_name}");
1685 let mut lexer = Lexer::new(Cursor::new(input.as_bytes()));
1686
1687 if let Token::Name(name) = lexer.next_token().unwrap() {
1688 assert_eq!(name.len(), 500);
1689 assert_eq!(name, long_name);
1690 } else {
1691 panic!("Expected name token");
1692 }
1693 }
1694
1695 #[test]
1696 fn test_lexer_error_handling_invalid_hex() {
1697 let input = b"<48656C6C6FG>";
1698 let mut lexer = Lexer::new(Cursor::new(input));
1699
1700 let result = lexer.next_token();
1702 assert!(result.is_ok() || result.is_err()); }
1704
1705 #[test]
1706 fn test_lexer_all_token_types() {
1707 let input = b"true false null 123 -456 3.14 (string) <48656C6C6F> /Name [ ] << >> obj endobj stream endstream startxref % comment\n";
1708 let mut lexer = Lexer::new(Cursor::new(input));
1709
1710 let mut token_types = Vec::new();
1711 loop {
1712 match lexer.next_token().unwrap() {
1713 Token::Eof => break,
1714 token => token_types.push(std::mem::discriminant(&token)),
1715 }
1716 }
1717
1718 assert!(token_types.len() > 10);
1720 }
1721
1722 #[test]
1723 fn test_lexer_performance() {
1724 let input = "123 456 789 ".repeat(1000);
1725 let mut lexer = Lexer::new(Cursor::new(input.as_bytes()));
1726
1727 let start_time = std::time::Instant::now();
1728 let mut count = 0;
1729 loop {
1730 match lexer.next_token().unwrap() {
1731 Token::Eof => break,
1732 _ => count += 1,
1733 }
1734 }
1735 let elapsed = start_time.elapsed();
1736
1737 assert_eq!(count, 3000); assert!(elapsed.as_millis() < 1000); }
1740 }
1741
1742 #[test]
1743 fn test_lexer_find_keyword_ahead() {
1744 let input = b"some data here endstream more data";
1745 let mut lexer = Lexer::new(Cursor::new(input));
1746
1747 let result = lexer.find_keyword_ahead("endstream", 100);
1749 assert!(result.is_ok());
1750 assert_eq!(result.unwrap(), Some(15)); let result2 = lexer.find_keyword_ahead("notfound", 100);
1754 assert!(result2.is_ok());
1755 assert_eq!(result2.unwrap(), None);
1756
1757 let result3 = lexer.find_keyword_ahead("endstream", 10);
1759 assert!(result3.is_ok());
1760 assert_eq!(result3.unwrap(), None); }
1762
1763 #[test]
1764 fn test_lexer_peek_token() {
1765 let input = b"123 456 /Name";
1766 let mut lexer = Lexer::new(Cursor::new(input));
1767
1768 let peeked = lexer.peek_token();
1770 assert!(peeked.is_ok());
1771 assert_eq!(peeked.unwrap(), Token::Integer(123));
1772
1773 let next = lexer.next_token();
1775 assert!(next.is_ok());
1776 assert_eq!(next.unwrap(), Token::Integer(123));
1777
1778 assert_eq!(lexer.peek_token().unwrap(), Token::Integer(456));
1780 assert_eq!(lexer.next_token().unwrap(), Token::Integer(456));
1781
1782 assert_eq!(lexer.peek_token().unwrap(), Token::Name("Name".to_string()));
1783 assert_eq!(lexer.next_token().unwrap(), Token::Name("Name".to_string()));
1784 }
1785
1786 #[test]
1787 fn test_lexer_expect_keyword() {
1788 let input = b"endstream obj endobj";
1789 let mut lexer = Lexer::new(Cursor::new(input));
1790
1791 assert!(lexer.expect_keyword("endstream").is_ok());
1793
1794 assert!(lexer.expect_keyword("obj").is_ok());
1796
1797 let result = lexer.expect_keyword("stream");
1799 assert!(result.is_err());
1800 match result {
1801 Err(ParseError::UnexpectedToken { expected, found }) => {
1802 assert!(expected.contains("stream"));
1803 assert!(found.contains("EndObj"));
1804 }
1805 _ => panic!("Expected UnexpectedToken error"),
1806 }
1807 }
1808
1809 #[test]
1810 fn test_lexer_save_restore_position() {
1811 let input = b"123 456 789";
1812 let mut lexer = Lexer::new(Cursor::new(input));
1813
1814 assert_eq!(lexer.next_token().unwrap(), Token::Integer(123));
1816
1817 let saved = lexer.save_position();
1819 assert!(saved.is_ok());
1820 let saved_pos = saved.unwrap();
1821
1822 assert_eq!(lexer.next_token().unwrap(), Token::Integer(456));
1824 assert_eq!(lexer.next_token().unwrap(), Token::Integer(789));
1825
1826 assert!(lexer.restore_position(saved_pos).is_ok());
1828
1829 assert_eq!(lexer.next_token().unwrap(), Token::Integer(456));
1831 }
1832
1833 #[test]
1834 fn test_lexer_character_encoding_recovery() {
1835 let input = b"(Caf\x80 \x91Hello\x92)"; let options = ParseOptions::lenient();
1838 let mut lexer = Lexer::new_with_options(Cursor::new(input), options);
1839
1840 match lexer.next_token().unwrap() {
1841 Token::String(bytes) => {
1842 let text = String::from_utf8_lossy(&bytes);
1844 println!("Recovered text: {text}");
1845 assert!(!text.is_empty()); }
1847 other => panic!("Expected String token, got {other:?}"),
1848 }
1849
1850 let warnings = lexer.warnings();
1852 if !warnings.is_empty() {
1853 println!("Encoding warnings: {warnings:?}");
1854 }
1855 }
1856}