Parser.cpp 38 KB

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  1. /*
  2. * Copyright (c) 2021, Matthew Olsson <mattco@serenityos.org>
  3. *
  4. * SPDX-License-Identifier: BSD-2-Clause
  5. */
  6. #include <AK/BitStream.h>
  7. #include <AK/MemoryStream.h>
  8. #include <AK/ScopeGuard.h>
  9. #include <AK/TypeCasts.h>
  10. #include <LibPDF/CommonNames.h>
  11. #include <LibPDF/Document.h>
  12. #include <LibPDF/Filter.h>
  13. #include <LibPDF/Parser.h>
  14. #include <LibTextCodec/Decoder.h>
  15. #include <ctype.h>
  16. namespace PDF {
  17. template<typename T, typename... Args>
  18. static NonnullRefPtr<T> make_object(Args... args) requires(IsBaseOf<Object, T>)
  19. {
  20. return adopt_ref(*new T(forward<Args>(args)...));
  21. }
  22. Vector<Command> Parser::parse_graphics_commands(ReadonlyBytes const& bytes)
  23. {
  24. auto parser = adopt_ref(*new Parser(bytes));
  25. return parser->parse_graphics_commands();
  26. }
  27. Parser::Parser(Badge<Document>, ReadonlyBytes const& bytes)
  28. : m_reader(bytes)
  29. {
  30. }
  31. Parser::Parser(ReadonlyBytes const& bytes)
  32. : m_reader(bytes)
  33. {
  34. }
  35. bool Parser::initialize()
  36. {
  37. if (!parse_header())
  38. return {};
  39. const auto result = initialize_linearization_dict();
  40. if (result == LinearizationResult::Error)
  41. return {};
  42. if (result == LinearizationResult::NotLinearized)
  43. return initialize_non_linearized_xref_table();
  44. bool is_linearized = m_linearization_dictionary.has_value();
  45. if (is_linearized) {
  46. // The file may have been linearized at one point, but could have been updated afterwards,
  47. // which means it is no longer a linearized PDF file.
  48. is_linearized = m_linearization_dictionary.value().length_of_file == m_reader.bytes().size();
  49. if (!is_linearized) {
  50. // FIXME: The file shouldn't be treated as linearized, yet the xref tables are still
  51. // split. This might take some tweaking to ensure correct behavior, which can be
  52. // implemented later.
  53. TODO();
  54. }
  55. }
  56. if (is_linearized)
  57. return initialize_linearized_xref_table();
  58. return initialize_non_linearized_xref_table();
  59. }
  60. Value Parser::parse_object_with_index(u32 index)
  61. {
  62. VERIFY(m_xref_table->has_object(index));
  63. auto byte_offset = m_xref_table->byte_offset_for_object(index);
  64. m_reader.move_to(byte_offset);
  65. auto indirect_value = parse_indirect_value();
  66. VERIFY(indirect_value);
  67. VERIFY(indirect_value->index() == index);
  68. return indirect_value->value();
  69. }
  70. bool Parser::parse_header()
  71. {
  72. // FIXME: Do something with the version?
  73. m_reader.set_reading_forwards();
  74. m_reader.move_to(0);
  75. if (m_reader.remaining() < 8 || !m_reader.matches("%PDF-"))
  76. return false;
  77. m_reader.move_by(5);
  78. char major_ver = m_reader.read();
  79. if (major_ver != '1' && major_ver != '2')
  80. return false;
  81. if (m_reader.read() != '.')
  82. return false;
  83. char minor_ver = m_reader.read();
  84. if (minor_ver < '0' || minor_ver > '7')
  85. return false;
  86. consume_eol();
  87. // Parse optional high-byte comment, which signifies a binary file
  88. // FIXME: Do something with this?
  89. auto comment = parse_comment();
  90. if (!comment.is_empty()) {
  91. auto binary = comment.length() >= 4;
  92. if (binary) {
  93. for (size_t i = 0; i < comment.length() && binary; i++)
  94. binary = static_cast<u8>(comment[i]) > 128;
  95. }
  96. }
  97. return true;
  98. }
  99. Parser::LinearizationResult Parser::initialize_linearization_dict()
  100. {
  101. // parse_header() is called immediately before this, so we are at the right location
  102. auto dict_value = m_document->resolve(parse_indirect_value());
  103. if (!dict_value || !dict_value.is_object())
  104. return LinearizationResult::Error;
  105. auto dict_object = dict_value.as_object();
  106. if (!dict_object->is_dict())
  107. return LinearizationResult::NotLinearized;
  108. auto dict = object_cast<DictObject>(dict_object);
  109. if (!dict->contains(CommonNames::Linearized))
  110. return LinearizationResult::NotLinearized;
  111. if (!dict->contains(CommonNames::L, CommonNames::H, CommonNames::O, CommonNames::E, CommonNames::N, CommonNames::T))
  112. return LinearizationResult::Error;
  113. auto length_of_file = dict->get_value(CommonNames::L);
  114. auto hint_table = dict->get_value(CommonNames::H);
  115. auto first_page_object_number = dict->get_value(CommonNames::O);
  116. auto offset_of_first_page_end = dict->get_value(CommonNames::E);
  117. auto number_of_pages = dict->get_value(CommonNames::N);
  118. auto offset_of_main_xref_table = dict->get_value(CommonNames::T);
  119. auto first_page = dict->get(CommonNames::P).value_or({});
  120. // Validation
  121. if (!length_of_file.is_int_type<u32>()
  122. || !hint_table.is_object()
  123. || !first_page_object_number.is_int_type<u32>()
  124. || !number_of_pages.is_int_type<u16>()
  125. || !offset_of_main_xref_table.is_int_type<u32>()
  126. || (first_page && !first_page.is_int_type<u32>())) {
  127. return LinearizationResult::Error;
  128. }
  129. auto hint_table_object = hint_table.as_object();
  130. if (!hint_table_object->is_array())
  131. return LinearizationResult::Error;
  132. auto hint_table_array = object_cast<ArrayObject>(hint_table_object);
  133. auto hint_table_size = hint_table_array->size();
  134. if (hint_table_size != 2 && hint_table_size != 4)
  135. return LinearizationResult::Error;
  136. auto primary_hint_stream_offset = hint_table_array->at(0);
  137. auto primary_hint_stream_length = hint_table_array->at(1);
  138. Value overflow_hint_stream_offset;
  139. Value overflow_hint_stream_length;
  140. if (hint_table_size == 4) {
  141. overflow_hint_stream_offset = hint_table_array->at(2);
  142. overflow_hint_stream_length = hint_table_array->at(3);
  143. }
  144. if (!primary_hint_stream_offset.is_int_type<u32>()
  145. || !primary_hint_stream_length.is_int_type<u32>()
  146. || (overflow_hint_stream_offset && !overflow_hint_stream_offset.is_int_type<u32>())
  147. || (overflow_hint_stream_length && !overflow_hint_stream_length.is_int_type<u32>())) {
  148. return LinearizationResult::Error;
  149. }
  150. m_linearization_dictionary = LinearizationDictionary {
  151. length_of_file.as_int_type<u32>(),
  152. primary_hint_stream_offset.as_int_type<u32>(),
  153. primary_hint_stream_length.as_int_type<u32>(),
  154. overflow_hint_stream_offset ? overflow_hint_stream_offset.as_int_type<u32>() : NumericLimits<u32>::max(),
  155. overflow_hint_stream_length ? overflow_hint_stream_length.as_int_type<u32>() : NumericLimits<u32>::max(),
  156. first_page_object_number.as_int_type<u32>(),
  157. offset_of_first_page_end.as_int_type<u32>(),
  158. number_of_pages.as_int_type<u16>(),
  159. offset_of_main_xref_table.as_int_type<u32>(),
  160. first_page ? first_page.as_int_type<u32>() : NumericLimits<u32>::max(),
  161. };
  162. return LinearizationResult::Linearized;
  163. }
  164. bool Parser::initialize_linearized_xref_table()
  165. {
  166. // The linearization parameter dictionary has just been parsed, and the xref table
  167. // comes immediately after it. We are in the correct spot.
  168. if (!m_reader.matches("xref"))
  169. return false;
  170. m_xref_table = parse_xref_table();
  171. if (!m_xref_table)
  172. return false;
  173. m_trailer = parse_file_trailer();
  174. if (!m_trailer)
  175. return false;
  176. // Also parse the main xref table and merge into the first-page xref table. Note
  177. // that we don't use the main xref table offset from the linearization dict because
  178. // for some reason, it specified the offset of the whitespace after the object
  179. // index start and length? So it's much easier to do it this way.
  180. auto main_xref_table_offset = m_trailer->get_value(CommonNames::Prev).to_int();
  181. m_reader.move_to(main_xref_table_offset);
  182. auto main_xref_table = parse_xref_table();
  183. if (!main_xref_table)
  184. return false;
  185. return m_xref_table->merge(move(*main_xref_table));
  186. }
  187. bool Parser::initialize_hint_tables()
  188. {
  189. auto linearization_dict = m_linearization_dictionary.value();
  190. auto primary_offset = linearization_dict.primary_hint_stream_offset;
  191. auto overflow_offset = linearization_dict.overflow_hint_stream_offset;
  192. auto parse_hint_table = [&](size_t offset) -> RefPtr<StreamObject> {
  193. m_reader.move_to(offset);
  194. auto stream_indirect_value = parse_indirect_value();
  195. if (!stream_indirect_value)
  196. return {};
  197. auto stream_value = stream_indirect_value->value();
  198. if (!stream_value.is_object())
  199. return {};
  200. auto stream_object = stream_value.as_object();
  201. if (!stream_object->is_stream())
  202. return {};
  203. return object_cast<StreamObject>(stream_object);
  204. };
  205. auto primary_hint_stream = parse_hint_table(primary_offset);
  206. if (!primary_hint_stream)
  207. return false;
  208. RefPtr<StreamObject> overflow_hint_stream;
  209. if (overflow_offset != NumericLimits<u32>::max())
  210. overflow_hint_stream = parse_hint_table(overflow_offset);
  211. ByteBuffer possible_merged_stream_buffer;
  212. ReadonlyBytes hint_stream_bytes;
  213. if (overflow_hint_stream) {
  214. auto primary_size = primary_hint_stream->bytes().size();
  215. auto overflow_size = overflow_hint_stream->bytes().size();
  216. auto total_size = primary_size + overflow_size;
  217. auto buffer_result = ByteBuffer::create_uninitialized(total_size);
  218. if (!buffer_result.has_value())
  219. return false;
  220. possible_merged_stream_buffer = buffer_result.release_value();
  221. auto ok = possible_merged_stream_buffer.try_append(primary_hint_stream->bytes());
  222. ok = ok && possible_merged_stream_buffer.try_append(overflow_hint_stream->bytes());
  223. if (!ok)
  224. return false;
  225. hint_stream_bytes = possible_merged_stream_buffer.bytes();
  226. } else {
  227. hint_stream_bytes = primary_hint_stream->bytes();
  228. }
  229. auto hint_table = parse_page_offset_hint_table(hint_stream_bytes);
  230. if (!hint_table.has_value())
  231. return false;
  232. dbgln("hint table: {}", hint_table.value());
  233. auto hint_table_entries = parse_all_page_offset_hint_table_entries(hint_table.value(), hint_stream_bytes);
  234. if (!hint_table_entries.has_value())
  235. return false;
  236. auto entries = hint_table_entries.value();
  237. dbgln("hint table entries size: {}", entries.size());
  238. for (auto& entry : entries)
  239. dbgln("{}", entry);
  240. return true;
  241. }
  242. bool Parser::initialize_non_linearized_xref_table()
  243. {
  244. m_reader.move_to(m_reader.bytes().size() - 1);
  245. if (!navigate_to_before_eof_marker())
  246. return false;
  247. if (!navigate_to_after_startxref())
  248. return false;
  249. if (m_reader.done())
  250. return false;
  251. m_reader.set_reading_forwards();
  252. auto xref_offset_value = parse_number();
  253. if (!xref_offset_value.is_int())
  254. return false;
  255. auto xref_offset = xref_offset_value.as_int();
  256. m_reader.move_to(xref_offset);
  257. m_xref_table = parse_xref_table();
  258. if (!m_xref_table)
  259. return false;
  260. m_trailer = parse_file_trailer();
  261. return m_trailer;
  262. }
  263. RefPtr<XRefTable> Parser::parse_xref_table()
  264. {
  265. if (!m_reader.matches("xref"))
  266. return {};
  267. m_reader.move_by(4);
  268. if (!consume_eol())
  269. return {};
  270. auto table = adopt_ref(*new XRefTable());
  271. while (true) {
  272. if (m_reader.matches("trailer"))
  273. return table;
  274. Vector<XRefEntry> entries;
  275. auto starting_index_value = parse_number();
  276. auto starting_index = starting_index_value.as_int();
  277. auto object_count_value = parse_number();
  278. auto object_count = object_count_value.as_int();
  279. for (int i = 0; i < object_count; i++) {
  280. auto offset_string = String(m_reader.bytes().slice(m_reader.offset(), 10));
  281. m_reader.move_by(10);
  282. if (!consume(' '))
  283. return {};
  284. auto generation_string = String(m_reader.bytes().slice(m_reader.offset(), 5));
  285. m_reader.move_by(5);
  286. if (!consume(' '))
  287. return {};
  288. auto letter = m_reader.read();
  289. if (letter != 'n' && letter != 'f')
  290. return {};
  291. // The line ending sequence can be one of the following:
  292. // SP CR, SP LF, or CR LF
  293. if (m_reader.matches(' ')) {
  294. consume();
  295. auto ch = consume();
  296. if (ch != '\r' && ch != '\n')
  297. return {};
  298. } else {
  299. if (!m_reader.matches("\r\n"))
  300. return {};
  301. m_reader.move_by(2);
  302. }
  303. auto offset = strtol(offset_string.characters(), nullptr, 10);
  304. auto generation = strtol(generation_string.characters(), nullptr, 10);
  305. entries.append({ offset, static_cast<u16>(generation), letter == 'n' });
  306. }
  307. table->add_section({ starting_index, object_count, entries });
  308. }
  309. }
  310. RefPtr<DictObject> Parser::parse_file_trailer()
  311. {
  312. if (!m_reader.matches("trailer"))
  313. return {};
  314. m_reader.move_by(7);
  315. consume_whitespace();
  316. auto dict = parse_dict();
  317. if (!dict)
  318. return {};
  319. if (!m_reader.matches("startxref"))
  320. return {};
  321. m_reader.move_by(9);
  322. consume_whitespace();
  323. m_reader.move_until([&](auto) { return matches_eol(); });
  324. VERIFY(consume_eol());
  325. if (!m_reader.matches("%%EOF"))
  326. return {};
  327. m_reader.move_by(5);
  328. consume_whitespace();
  329. return dict;
  330. }
  331. Optional<Parser::PageOffsetHintTable> Parser::parse_page_offset_hint_table(ReadonlyBytes const& hint_stream_bytes)
  332. {
  333. if (hint_stream_bytes.size() < sizeof(PageOffsetHintTable))
  334. return {};
  335. size_t offset = 0;
  336. auto read_u32 = [&] {
  337. u32 data = reinterpret_cast<const u32*>(hint_stream_bytes.data() + offset)[0];
  338. offset += 4;
  339. return AK::convert_between_host_and_big_endian(data);
  340. };
  341. auto read_u16 = [&] {
  342. u16 data = reinterpret_cast<const u16*>(hint_stream_bytes.data() + offset)[0];
  343. offset += 2;
  344. return AK::convert_between_host_and_big_endian(data);
  345. };
  346. PageOffsetHintTable hint_table {
  347. read_u32(),
  348. read_u32(),
  349. read_u16(),
  350. read_u32(),
  351. read_u16(),
  352. read_u32(),
  353. read_u16(),
  354. read_u32(),
  355. read_u16(),
  356. read_u16(),
  357. read_u16(),
  358. read_u16(),
  359. read_u16(),
  360. };
  361. // Verify that all of the bits_required_for_xyz fields are <= 32, since all of the numeric
  362. // fields in PageOffsetHintTableEntry are u32
  363. VERIFY(hint_table.bits_required_for_object_number <= 32);
  364. VERIFY(hint_table.bits_required_for_page_length <= 32);
  365. VERIFY(hint_table.bits_required_for_content_stream_offsets <= 32);
  366. VERIFY(hint_table.bits_required_for_content_stream_length <= 32);
  367. VERIFY(hint_table.bits_required_for_number_of_shared_obj_refs <= 32);
  368. VERIFY(hint_table.bits_required_for_greatest_shared_obj_identifier <= 32);
  369. VERIFY(hint_table.bits_required_for_fraction_numerator <= 32);
  370. return hint_table;
  371. }
  372. Optional<Vector<Parser::PageOffsetHintTableEntry>> Parser::parse_all_page_offset_hint_table_entries(PageOffsetHintTable const& hint_table, ReadonlyBytes const& hint_stream_bytes)
  373. {
  374. InputMemoryStream input_stream(hint_stream_bytes);
  375. input_stream.seek(sizeof(PageOffsetHintTable));
  376. if (input_stream.has_any_error())
  377. return {};
  378. InputBitStream bit_stream(input_stream);
  379. auto number_of_pages = m_linearization_dictionary.value().number_of_pages;
  380. Vector<PageOffsetHintTableEntry> entries;
  381. for (size_t i = 0; i < number_of_pages; i++)
  382. entries.append(PageOffsetHintTableEntry {});
  383. auto bits_required_for_object_number = hint_table.bits_required_for_object_number;
  384. auto bits_required_for_page_length = hint_table.bits_required_for_page_length;
  385. auto bits_required_for_content_stream_offsets = hint_table.bits_required_for_content_stream_offsets;
  386. auto bits_required_for_content_stream_length = hint_table.bits_required_for_content_stream_length;
  387. auto bits_required_for_number_of_shared_obj_refs = hint_table.bits_required_for_number_of_shared_obj_refs;
  388. auto bits_required_for_greatest_shared_obj_identifier = hint_table.bits_required_for_greatest_shared_obj_identifier;
  389. auto bits_required_for_fraction_numerator = hint_table.bits_required_for_fraction_numerator;
  390. auto parse_int_entry = [&](u32 PageOffsetHintTableEntry::*field, u32 bit_size) {
  391. if (bit_size <= 0)
  392. return;
  393. for (int i = 0; i < number_of_pages; i++) {
  394. auto& entry = entries[i];
  395. entry.*field = bit_stream.read_bits(bit_size);
  396. }
  397. };
  398. auto parse_vector_entry = [&](Vector<u32> PageOffsetHintTableEntry::*field, u32 bit_size) {
  399. if (bit_size <= 0)
  400. return;
  401. for (int page = 1; page < number_of_pages; page++) {
  402. auto number_of_shared_objects = entries[page].number_of_shared_objects;
  403. Vector<u32> items;
  404. items.ensure_capacity(number_of_shared_objects);
  405. for (size_t i = 0; i < number_of_shared_objects; i++)
  406. items.unchecked_append(bit_stream.read_bits(bit_size));
  407. entries[page].*field = move(items);
  408. }
  409. };
  410. parse_int_entry(&PageOffsetHintTableEntry::objects_in_page_number, bits_required_for_object_number);
  411. parse_int_entry(&PageOffsetHintTableEntry::page_length_number, bits_required_for_page_length);
  412. parse_int_entry(&PageOffsetHintTableEntry::number_of_shared_objects, bits_required_for_number_of_shared_obj_refs);
  413. parse_vector_entry(&PageOffsetHintTableEntry::shared_object_identifiers, bits_required_for_greatest_shared_obj_identifier);
  414. parse_vector_entry(&PageOffsetHintTableEntry::shared_object_location_numerators, bits_required_for_fraction_numerator);
  415. parse_int_entry(&PageOffsetHintTableEntry::page_content_stream_offset_number, bits_required_for_content_stream_offsets);
  416. parse_int_entry(&PageOffsetHintTableEntry::page_content_stream_length_number, bits_required_for_content_stream_length);
  417. return entries;
  418. }
  419. bool Parser::navigate_to_before_eof_marker()
  420. {
  421. m_reader.set_reading_backwards();
  422. while (!m_reader.done()) {
  423. m_reader.move_until([&](auto) { return matches_eol(); });
  424. if (m_reader.done())
  425. return false;
  426. consume_eol();
  427. if (!m_reader.matches("%%EOF"))
  428. continue;
  429. m_reader.move_by(5);
  430. if (!matches_eol())
  431. continue;
  432. consume_eol();
  433. return true;
  434. }
  435. return false;
  436. }
  437. bool Parser::navigate_to_after_startxref()
  438. {
  439. m_reader.set_reading_backwards();
  440. while (!m_reader.done()) {
  441. m_reader.move_until([&](auto) { return matches_eol(); });
  442. auto offset = m_reader.offset() + 1;
  443. consume_eol();
  444. if (!m_reader.matches("startxref"))
  445. continue;
  446. m_reader.move_by(9);
  447. if (!matches_eol())
  448. continue;
  449. m_reader.move_to(offset);
  450. return true;
  451. }
  452. return false;
  453. }
  454. bool Parser::sloppy_is_linearized()
  455. {
  456. ScopeGuard guard([&] {
  457. m_reader.move_to(0);
  458. m_reader.set_reading_forwards();
  459. });
  460. auto limit = min(1024ul, m_reader.bytes().size() - 1);
  461. m_reader.move_to(limit);
  462. m_reader.set_reading_backwards();
  463. while (!m_reader.done()) {
  464. m_reader.move_until('/');
  465. if (m_reader.matches("/Linearized"))
  466. return true;
  467. m_reader.move_by(1);
  468. }
  469. return false;
  470. }
  471. String Parser::parse_comment()
  472. {
  473. if (!m_reader.matches('%'))
  474. return {};
  475. consume();
  476. auto comment_start_offset = m_reader.offset();
  477. m_reader.move_until([&](auto) {
  478. return matches_eol();
  479. });
  480. String str = StringView(m_reader.bytes().slice(comment_start_offset, m_reader.offset() - comment_start_offset));
  481. consume_eol();
  482. consume_whitespace();
  483. return str;
  484. }
  485. Value Parser::parse_value()
  486. {
  487. parse_comment();
  488. if (m_reader.matches("null")) {
  489. m_reader.move_by(4);
  490. consume_whitespace();
  491. return Value(Value::NullTag {});
  492. }
  493. if (m_reader.matches("true")) {
  494. m_reader.move_by(4);
  495. consume_whitespace();
  496. return Value(true);
  497. }
  498. if (m_reader.matches("false")) {
  499. m_reader.move_by(5);
  500. consume_whitespace();
  501. return Value(false);
  502. }
  503. if (matches_number())
  504. return parse_possible_indirect_value_or_ref();
  505. if (m_reader.matches('/'))
  506. return parse_name();
  507. if (m_reader.matches("<<")) {
  508. auto dict = parse_dict();
  509. if (!dict)
  510. return {};
  511. if (m_reader.matches("stream"))
  512. return parse_stream(dict.release_nonnull());
  513. return dict;
  514. }
  515. if (m_reader.matches_any('(', '<'))
  516. return parse_string();
  517. if (m_reader.matches('['))
  518. return parse_array();
  519. dbgln("tried to parse value, but found char {} ({}) at offset {}", m_reader.peek(), static_cast<u8>(m_reader.peek()), m_reader.offset());
  520. VERIFY_NOT_REACHED();
  521. }
  522. Value Parser::parse_possible_indirect_value_or_ref()
  523. {
  524. auto first_number = parse_number();
  525. if (!first_number.is_int() || !matches_number())
  526. return first_number;
  527. m_reader.save();
  528. auto second_number = parse_number();
  529. if (!second_number.is_int()) {
  530. m_reader.load();
  531. return first_number;
  532. }
  533. if (m_reader.matches('R')) {
  534. m_reader.discard();
  535. consume();
  536. consume_whitespace();
  537. return Value(first_number.as_int(), second_number.as_int());
  538. }
  539. if (m_reader.matches("obj")) {
  540. m_reader.discard();
  541. return parse_indirect_value(first_number.as_int(), second_number.as_int());
  542. }
  543. m_reader.load();
  544. return first_number;
  545. }
  546. RefPtr<IndirectValue> Parser::parse_indirect_value(int index, int generation)
  547. {
  548. if (!m_reader.matches("obj"))
  549. return {};
  550. m_reader.move_by(3);
  551. if (matches_eol())
  552. consume_eol();
  553. auto value = parse_value();
  554. if (!m_reader.matches("endobj"))
  555. return {};
  556. consume(6);
  557. consume_whitespace();
  558. return make_object<IndirectValue>(index, generation, value);
  559. }
  560. RefPtr<IndirectValue> Parser::parse_indirect_value()
  561. {
  562. auto first_number = parse_number();
  563. if (!first_number.is_int())
  564. return {};
  565. auto second_number = parse_number();
  566. if (!second_number.is_int())
  567. return {};
  568. return parse_indirect_value(first_number.as_int(), second_number.as_int());
  569. }
  570. Value Parser::parse_number()
  571. {
  572. size_t start_offset = m_reader.offset();
  573. bool is_float = false;
  574. if (m_reader.matches('+') || m_reader.matches('-'))
  575. consume();
  576. while (!m_reader.done()) {
  577. if (m_reader.matches('.')) {
  578. if (is_float)
  579. break;
  580. is_float = true;
  581. consume();
  582. } else if (isdigit(m_reader.peek())) {
  583. consume();
  584. } else {
  585. break;
  586. }
  587. }
  588. consume_whitespace();
  589. auto string = String(m_reader.bytes().slice(start_offset, m_reader.offset() - start_offset));
  590. float f = strtof(string.characters(), nullptr);
  591. if (is_float)
  592. return Value(f);
  593. VERIFY(floorf(f) == f);
  594. return Value(static_cast<int>(f));
  595. }
  596. RefPtr<NameObject> Parser::parse_name()
  597. {
  598. if (!consume('/'))
  599. return {};
  600. StringBuilder builder;
  601. while (true) {
  602. if (!matches_regular_character())
  603. break;
  604. if (m_reader.matches('#')) {
  605. int hex_value = 0;
  606. for (int i = 0; i < 2; i++) {
  607. auto ch = consume();
  608. if (!isxdigit(ch))
  609. return {};
  610. hex_value *= 16;
  611. if (ch <= '9') {
  612. hex_value += ch - '0';
  613. } else {
  614. hex_value += ch - 'A' + 10;
  615. }
  616. }
  617. builder.append(static_cast<char>(hex_value));
  618. continue;
  619. }
  620. builder.append(consume());
  621. }
  622. consume_whitespace();
  623. return make_object<NameObject>(builder.to_string());
  624. }
  625. RefPtr<StringObject> Parser::parse_string()
  626. {
  627. ScopeGuard guard([&] { consume_whitespace(); });
  628. String string;
  629. bool is_binary_string;
  630. if (m_reader.matches('(')) {
  631. string = parse_literal_string();
  632. is_binary_string = false;
  633. } else {
  634. string = parse_hex_string();
  635. is_binary_string = true;
  636. }
  637. if (string.is_null())
  638. return {};
  639. if (string.bytes().starts_with(Array<u8, 2> { 0xfe, 0xff })) {
  640. // The string is encoded in UTF16-BE
  641. string = TextCodec::decoder_for("utf-16be")->to_utf8(string.substring(2));
  642. } else if (string.bytes().starts_with(Array<u8, 3> { 239, 187, 191 })) {
  643. // The string is encoded in UTF-8. This is the default anyways, but if these bytes
  644. // are explicitly included, we have to trim them
  645. string = string.substring(3);
  646. }
  647. return make_object<StringObject>(string, is_binary_string);
  648. }
  649. String Parser::parse_literal_string()
  650. {
  651. if (!consume('('))
  652. return {};
  653. StringBuilder builder;
  654. auto opened_parens = 0;
  655. while (true) {
  656. if (m_reader.matches('(')) {
  657. opened_parens++;
  658. builder.append(consume());
  659. } else if (m_reader.matches(')')) {
  660. consume();
  661. if (opened_parens == 0)
  662. break;
  663. opened_parens--;
  664. builder.append(')');
  665. } else if (m_reader.matches('\\')) {
  666. consume();
  667. if (matches_eol()) {
  668. consume_eol();
  669. continue;
  670. }
  671. if (m_reader.done())
  672. return {};
  673. auto ch = consume();
  674. switch (ch) {
  675. case 'n':
  676. builder.append('\n');
  677. break;
  678. case 'r':
  679. builder.append('\r');
  680. break;
  681. case 't':
  682. builder.append('\t');
  683. break;
  684. case 'b':
  685. builder.append('\b');
  686. break;
  687. case 'f':
  688. builder.append('\f');
  689. break;
  690. case '(':
  691. builder.append('(');
  692. break;
  693. case ')':
  694. builder.append(')');
  695. break;
  696. case '\\':
  697. builder.append('\\');
  698. break;
  699. default: {
  700. if (ch >= '0' && ch <= '7') {
  701. int octal_value = ch - '0';
  702. for (int i = 0; i < 2; i++) {
  703. auto octal_ch = consume();
  704. if (octal_ch < '0' || octal_ch > '7')
  705. break;
  706. octal_value = octal_value * 8 + (octal_ch - '0');
  707. }
  708. builder.append(static_cast<char>(octal_value));
  709. } else {
  710. builder.append(ch);
  711. }
  712. }
  713. }
  714. } else if (matches_eol()) {
  715. consume_eol();
  716. builder.append('\n');
  717. } else {
  718. builder.append(consume());
  719. }
  720. }
  721. if (opened_parens != 0)
  722. return {};
  723. return builder.to_string();
  724. }
  725. String Parser::parse_hex_string()
  726. {
  727. if (!consume('<'))
  728. return {};
  729. StringBuilder builder;
  730. while (true) {
  731. if (m_reader.matches('>')) {
  732. consume();
  733. return builder.to_string();
  734. } else {
  735. int hex_value = 0;
  736. for (int i = 0; i < 2; i++) {
  737. auto ch = consume();
  738. if (ch == '>') {
  739. // The hex string contains an odd number of characters, and the last character
  740. // is assumed to be '0'
  741. consume();
  742. hex_value *= 16;
  743. builder.append(static_cast<char>(hex_value));
  744. return builder.to_string();
  745. }
  746. if (!isxdigit(ch))
  747. return {};
  748. hex_value *= 16;
  749. if (ch <= '9') {
  750. hex_value += ch - '0';
  751. } else {
  752. hex_value += ch - 'A' + 10;
  753. }
  754. }
  755. builder.append(static_cast<char>(hex_value));
  756. }
  757. }
  758. }
  759. RefPtr<ArrayObject> Parser::parse_array()
  760. {
  761. if (!consume('['))
  762. return {};
  763. consume_whitespace();
  764. Vector<Value> values;
  765. while (!m_reader.matches(']')) {
  766. auto value = parse_value();
  767. if (!value)
  768. return {};
  769. values.append(value);
  770. }
  771. if (!consume(']'))
  772. return {};
  773. consume_whitespace();
  774. return make_object<ArrayObject>(values);
  775. }
  776. RefPtr<DictObject> Parser::parse_dict()
  777. {
  778. if (!consume('<') || !consume('<'))
  779. return {};
  780. consume_whitespace();
  781. HashMap<FlyString, Value> map;
  782. while (true) {
  783. if (m_reader.matches(">>"))
  784. break;
  785. auto name = parse_name();
  786. if (!name)
  787. return {};
  788. auto value = parse_value();
  789. if (!value)
  790. return {};
  791. map.set(name->name(), value);
  792. }
  793. if (!consume('>') || !consume('>'))
  794. return {};
  795. consume_whitespace();
  796. return make_object<DictObject>(map);
  797. }
  798. RefPtr<DictObject> Parser::conditionally_parse_page_tree_node(u32 object_index, bool& ok)
  799. {
  800. ok = true;
  801. VERIFY(m_xref_table->has_object(object_index));
  802. auto byte_offset = m_xref_table->byte_offset_for_object(object_index);
  803. m_reader.move_to(byte_offset);
  804. parse_number();
  805. parse_number();
  806. if (!m_reader.matches("obj")) {
  807. ok = false;
  808. return {};
  809. }
  810. m_reader.move_by(3);
  811. consume_whitespace();
  812. if (!consume('<') || !consume('<'))
  813. return {};
  814. consume_whitespace();
  815. HashMap<FlyString, Value> map;
  816. while (true) {
  817. if (m_reader.matches(">>"))
  818. break;
  819. auto name = parse_name();
  820. if (!name) {
  821. ok = false;
  822. return {};
  823. }
  824. auto name_string = name->name();
  825. if (!name_string.is_one_of(CommonNames::Type, CommonNames::Parent, CommonNames::Kids, CommonNames::Count)) {
  826. // This is a page, not a page tree node
  827. return {};
  828. }
  829. auto value = parse_value();
  830. if (!value) {
  831. ok = false;
  832. return {};
  833. }
  834. if (name_string == CommonNames::Type) {
  835. if (!value.is_object())
  836. return {};
  837. auto type_object = value.as_object();
  838. if (!type_object->is_name())
  839. return {};
  840. auto type_name = object_cast<NameObject>(type_object);
  841. if (type_name->name() != CommonNames::Pages)
  842. return {};
  843. }
  844. map.set(name->name(), value);
  845. }
  846. if (!consume('>') || !consume('>'))
  847. return {};
  848. consume_whitespace();
  849. return make_object<DictObject>(map);
  850. }
  851. RefPtr<StreamObject> Parser::parse_stream(NonnullRefPtr<DictObject> dict)
  852. {
  853. if (!m_reader.matches("stream"))
  854. return {};
  855. m_reader.move_by(6);
  856. if (!consume_eol())
  857. return {};
  858. ReadonlyBytes bytes;
  859. auto maybe_length = dict->get(CommonNames::Length);
  860. if (maybe_length.has_value() && (!maybe_length->is_ref() || m_xref_table)) {
  861. // The PDF writer has kindly provided us with the direct length of the stream
  862. m_reader.save();
  863. auto length = m_document->resolve_to<int>(maybe_length.value());
  864. m_reader.load();
  865. bytes = m_reader.bytes().slice(m_reader.offset(), length);
  866. m_reader.move_by(length);
  867. consume_whitespace();
  868. } else {
  869. // We have to look for the endstream keyword
  870. auto stream_start = m_reader.offset();
  871. while (true) {
  872. m_reader.move_until([&](auto) { return matches_eol(); });
  873. auto potential_stream_end = m_reader.offset();
  874. consume_eol();
  875. if (!m_reader.matches("endstream"))
  876. continue;
  877. bytes = m_reader.bytes().slice(stream_start, potential_stream_end - stream_start);
  878. break;
  879. }
  880. }
  881. m_reader.move_by(9);
  882. consume_whitespace();
  883. if (dict->contains(CommonNames::Filter)) {
  884. auto filter_type = dict->get_name(m_document, CommonNames::Filter)->name();
  885. auto maybe_bytes = Filter::decode(bytes, filter_type);
  886. if (!maybe_bytes.has_value())
  887. return {};
  888. return make_object<EncodedStreamObject>(dict, move(maybe_bytes.value()));
  889. }
  890. return make_object<PlainTextStreamObject>(dict, bytes);
  891. }
  892. Vector<Command> Parser::parse_graphics_commands()
  893. {
  894. Vector<Command> commands;
  895. Vector<Value> command_args;
  896. constexpr static auto is_command_char = [](char ch) {
  897. return isalpha(ch) || ch == '*' || ch == '\'';
  898. };
  899. while (!m_reader.done()) {
  900. auto ch = m_reader.peek();
  901. if (is_command_char(ch)) {
  902. auto command_start = m_reader.offset();
  903. while (is_command_char(ch)) {
  904. consume();
  905. if (m_reader.done())
  906. break;
  907. ch = m_reader.peek();
  908. }
  909. auto command_string = StringView(m_reader.bytes().slice(command_start, m_reader.offset() - command_start));
  910. auto command_type = Command::command_type_from_symbol(command_string);
  911. commands.append(Command(command_type, move(command_args)));
  912. command_args = Vector<Value>();
  913. consume_whitespace();
  914. continue;
  915. }
  916. command_args.append(parse_value());
  917. }
  918. return commands;
  919. }
  920. bool Parser::matches_eol() const
  921. {
  922. return m_reader.matches_any(0xa, 0xd);
  923. }
  924. bool Parser::matches_whitespace() const
  925. {
  926. return matches_eol() || m_reader.matches_any(0, 0x9, 0xc, ' ');
  927. }
  928. bool Parser::matches_number() const
  929. {
  930. if (m_reader.done())
  931. return false;
  932. auto ch = m_reader.peek();
  933. return isdigit(ch) || ch == '-' || ch == '+';
  934. }
  935. bool Parser::matches_delimiter() const
  936. {
  937. return m_reader.matches_any('(', ')', '<', '>', '[', ']', '{', '}', '/', '%');
  938. }
  939. bool Parser::matches_regular_character() const
  940. {
  941. return !matches_delimiter() && !matches_whitespace();
  942. }
  943. bool Parser::consume_eol()
  944. {
  945. if (m_reader.matches("\r\n")) {
  946. consume(2);
  947. return true;
  948. }
  949. auto consumed = consume();
  950. return consumed == 0xd || consumed == 0xa;
  951. }
  952. bool Parser::consume_whitespace()
  953. {
  954. bool consumed = false;
  955. while (matches_whitespace()) {
  956. consumed = true;
  957. consume();
  958. }
  959. return consumed;
  960. }
  961. char Parser::consume()
  962. {
  963. return m_reader.read();
  964. }
  965. void Parser::consume(int amount)
  966. {
  967. for (size_t i = 0; i < static_cast<size_t>(amount); i++)
  968. consume();
  969. }
  970. bool Parser::consume(char ch)
  971. {
  972. return consume() == ch;
  973. }
  974. }
  975. namespace AK {
  976. template<>
  977. struct Formatter<PDF::Parser::LinearizationDictionary> : Formatter<StringView> {
  978. void format(FormatBuilder& format_builder, PDF::Parser::LinearizationDictionary const& dict)
  979. {
  980. StringBuilder builder;
  981. builder.append("{\n");
  982. builder.appendff(" length_of_file={}\n", dict.length_of_file);
  983. builder.appendff(" primary_hint_stream_offset={}\n", dict.primary_hint_stream_offset);
  984. builder.appendff(" primary_hint_stream_length={}\n", dict.primary_hint_stream_length);
  985. builder.appendff(" overflow_hint_stream_offset={}\n", dict.overflow_hint_stream_offset);
  986. builder.appendff(" overflow_hint_stream_length={}\n", dict.overflow_hint_stream_length);
  987. builder.appendff(" first_page_object_number={}\n", dict.first_page_object_number);
  988. builder.appendff(" offset_of_first_page_end={}\n", dict.offset_of_first_page_end);
  989. builder.appendff(" number_of_pages={}\n", dict.number_of_pages);
  990. builder.appendff(" offset_of_main_xref_table={}\n", dict.offset_of_main_xref_table);
  991. builder.appendff(" first_page={}\n", dict.first_page);
  992. builder.append('}');
  993. Formatter<StringView>::format(format_builder, builder.to_string());
  994. }
  995. };
  996. template<>
  997. struct Formatter<PDF::Parser::PageOffsetHintTable> : Formatter<StringView> {
  998. void format(FormatBuilder& format_builder, PDF::Parser::PageOffsetHintTable const& table)
  999. {
  1000. StringBuilder builder;
  1001. builder.append("{\n");
  1002. builder.appendff(" least_number_of_objects_in_a_page={}\n", table.least_number_of_objects_in_a_page);
  1003. builder.appendff(" location_of_first_page_object={}\n", table.location_of_first_page_object);
  1004. builder.appendff(" bits_required_for_object_number={}\n", table.bits_required_for_object_number);
  1005. builder.appendff(" least_length_of_a_page={}\n", table.least_length_of_a_page);
  1006. builder.appendff(" bits_required_for_page_length={}\n", table.bits_required_for_page_length);
  1007. builder.appendff(" least_offset_of_any_content_stream={}\n", table.least_offset_of_any_content_stream);
  1008. builder.appendff(" bits_required_for_content_stream_offsets={}\n", table.bits_required_for_content_stream_offsets);
  1009. builder.appendff(" least_content_stream_length={}\n", table.least_content_stream_length);
  1010. builder.appendff(" bits_required_for_content_stream_length={}\n", table.bits_required_for_content_stream_length);
  1011. builder.appendff(" bits_required_for_number_of_shared_obj_refs={}\n", table.bits_required_for_number_of_shared_obj_refs);
  1012. builder.appendff(" bits_required_for_greatest_shared_obj_identifier={}\n", table.bits_required_for_greatest_shared_obj_identifier);
  1013. builder.appendff(" bits_required_for_fraction_numerator={}\n", table.bits_required_for_fraction_numerator);
  1014. builder.appendff(" shared_object_reference_fraction_denominator={}\n", table.shared_object_reference_fraction_denominator);
  1015. builder.append('}');
  1016. Formatter<StringView>::format(format_builder, builder.to_string());
  1017. }
  1018. };
  1019. template<>
  1020. struct Formatter<PDF::Parser::PageOffsetHintTableEntry> : Formatter<StringView> {
  1021. void format(FormatBuilder& format_builder, PDF::Parser::PageOffsetHintTableEntry const& entry)
  1022. {
  1023. StringBuilder builder;
  1024. builder.append("{\n");
  1025. builder.appendff(" objects_in_page_number={}\n", entry.objects_in_page_number);
  1026. builder.appendff(" page_length_number={}\n", entry.page_length_number);
  1027. builder.appendff(" number_of_shared_objects={}\n", entry.number_of_shared_objects);
  1028. builder.append(" shared_object_identifiers=[");
  1029. for (auto& identifier : entry.shared_object_identifiers)
  1030. builder.appendff(" {}", identifier);
  1031. builder.append(" ]\n");
  1032. builder.append(" shared_object_location_numerators=[");
  1033. for (auto& numerator : entry.shared_object_location_numerators)
  1034. builder.appendff(" {}", numerator);
  1035. builder.append(" ]\n");
  1036. builder.appendff(" page_content_stream_offset_number={}\n", entry.page_content_stream_offset_number);
  1037. builder.appendff(" page_content_stream_length_number={}\n", entry.page_content_stream_length_number);
  1038. builder.append('}');
  1039. Formatter<StringView>::format(format_builder, builder.to_string());
  1040. }
  1041. };
  1042. }