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Commits
| Author | SHA1 | Date | |
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5ecb704f6b |
@@ -2021,6 +2021,39 @@ scan_number_done:
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// read the next character and ignore whitespace
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skip_whitespace();
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return scan_after_whitespace();
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}
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/*!
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@brief scan the next token when the caller expects a separator (':' or
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',') most of the time
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After an object key the next token is almost always ':', after a value
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inside an object or array almost always ','. Testing for that character
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first is a compare and a well-predicted branch, where the switch in
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scan_after_whitespace() is an indirect jump through a table. Anything else
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goes through the switch, so the result is the same as scan()'s.
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May only be called after scan() has run once (the BOM check is skipped).
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*/
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token_type scan_expecting(token_type expected_type)
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{
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JSON_ASSERT(expected_type == token_type::name_separator || expected_type == token_type::value_separator);
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JSON_ASSERT(position.chars_read_total > 0);
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const char_int_type expected_char = static_cast<unsigned char>((expected_type == token_type::name_separator) ? ':' : ',');
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skip_whitespace();
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if (JSON_HEDLEY_LIKELY(current == expected_char))
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{
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return expected_type;
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}
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return scan_after_whitespace();
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}
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private:
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/// the part of scan() after the leading whitespace: skip comments and
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/// scan the token that starts with current
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token_type scan_after_whitespace()
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{
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// ignore comments
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while (ignore_comments && current == '/')
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{
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@@ -2100,7 +2133,6 @@ scan_number_done:
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}
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}
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private:
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/// input adapter
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InputAdapterType ia;
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@@ -260,7 +260,7 @@ class parser
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}
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// parse separator (:)
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if (JSON_HEDLEY_UNLIKELY(get_token() != token_type::name_separator))
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if (JSON_HEDLEY_UNLIKELY(!get_token_expecting(token_type::name_separator)))
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{
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return sax->parse_error(m_lexer.get_position(),
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m_lexer.get_token_string(),
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@@ -423,7 +423,7 @@ class parser
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{
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// comma -> next value
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// or end of array (ignore_trailing_commas = true)
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if (get_token() == token_type::value_separator)
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if (get_token_expecting(token_type::value_separator))
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{
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// parse a new value
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get_token();
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@@ -463,7 +463,7 @@ class parser
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// comma -> next value
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// or end of object (ignore_trailing_commas = true)
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if (get_token() == token_type::value_separator)
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if (get_token_expecting(token_type::value_separator))
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{
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get_token();
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@@ -484,7 +484,7 @@ class parser
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}
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// parse separator (:)
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if (JSON_HEDLEY_UNLIKELY(get_token() != token_type::name_separator))
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if (JSON_HEDLEY_UNLIKELY(!get_token_expecting(token_type::name_separator)))
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{
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return sax->parse_error(m_lexer.get_position(),
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m_lexer.get_token_string(),
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@@ -528,6 +528,13 @@ class parser
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return last_token = m_lexer.scan();
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}
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/// get next token from lexer; true if it is the separator @a expected_type
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/// (name_separator or value_separator), which it usually is
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bool get_token_expecting(token_type expected_type)
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{
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return (last_token = m_lexer.scan_expecting(expected_type)) == expected_type;
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}
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std::string exception_message(const token_type expected, const std::string& context)
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{
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std::string error_msg = "syntax error ";
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@@ -12313,6 +12313,39 @@ scan_number_done:
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// read the next character and ignore whitespace
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skip_whitespace();
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return scan_after_whitespace();
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}
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/*!
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@brief scan the next token when the caller expects a separator (':' or
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',') most of the time
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After an object key the next token is almost always ':', after a value
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inside an object or array almost always ','. Testing for that character
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first is a compare and a well-predicted branch, where the switch in
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scan_after_whitespace() is an indirect jump through a table. Anything else
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goes through the switch, so the result is the same as scan()'s.
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May only be called after scan() has run once (the BOM check is skipped).
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*/
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token_type scan_expecting(token_type expected_type)
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{
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JSON_ASSERT(expected_type == token_type::name_separator || expected_type == token_type::value_separator);
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JSON_ASSERT(position.chars_read_total > 0);
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const char_int_type expected_char = static_cast<unsigned char>((expected_type == token_type::name_separator) ? ':' : ',');
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skip_whitespace();
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if (JSON_HEDLEY_LIKELY(current == expected_char))
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{
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return expected_type;
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}
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return scan_after_whitespace();
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}
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private:
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/// the part of scan() after the leading whitespace: skip comments and
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/// scan the token that starts with current
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token_type scan_after_whitespace()
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{
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// ignore comments
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while (ignore_comments && current == '/')
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{
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@@ -12392,7 +12425,6 @@ scan_number_done:
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}
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}
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private:
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/// input adapter
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InputAdapterType ia;
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@@ -18422,7 +18454,7 @@ class parser
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}
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// parse separator (:)
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if (JSON_HEDLEY_UNLIKELY(get_token() != token_type::name_separator))
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if (JSON_HEDLEY_UNLIKELY(!get_token_expecting(token_type::name_separator)))
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{
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return sax->parse_error(m_lexer.get_position(),
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m_lexer.get_token_string(),
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@@ -18585,7 +18617,7 @@ class parser
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{
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// comma -> next value
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// or end of array (ignore_trailing_commas = true)
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if (get_token() == token_type::value_separator)
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if (get_token_expecting(token_type::value_separator))
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{
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// parse a new value
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get_token();
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@@ -18625,7 +18657,7 @@ class parser
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// comma -> next value
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// or end of object (ignore_trailing_commas = true)
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if (get_token() == token_type::value_separator)
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if (get_token_expecting(token_type::value_separator))
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{
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get_token();
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@@ -18646,7 +18678,7 @@ class parser
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}
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// parse separator (:)
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if (JSON_HEDLEY_UNLIKELY(get_token() != token_type::name_separator))
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if (JSON_HEDLEY_UNLIKELY(!get_token_expecting(token_type::name_separator)))
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{
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return sax->parse_error(m_lexer.get_position(),
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m_lexer.get_token_string(),
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@@ -18690,6 +18722,13 @@ class parser
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return last_token = m_lexer.scan();
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}
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/// get next token from lexer; true if it is the separator @a expected_type
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/// (name_separator or value_separator), which it usually is
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bool get_token_expecting(token_type expected_type)
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{
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return (last_token = m_lexer.scan_expecting(expected_type)) == expected_type;
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}
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std::string exception_message(const token_type expected, const std::string& context)
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{
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std::string error_msg = "syntax error ";
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@@ -2317,6 +2317,58 @@ TEST_CASE("parser class")
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#endif
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}
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SECTION("comments before separators")
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{
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// The parser first checks for the expected ':' or ',' and only then
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// falls back to the full token switch, which skips comments. A comment
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// directly before a separator takes that fallback.
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json _;
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SECTION("ignored")
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{
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const std::vector<std::pair<std::string, json>> inputs =
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{
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{"{\"a\" /* c */ : 1}", {{"a", 1}}},
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{"{\"a\" // c\n: 1}", {{"a", 1}}},
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{R"({"a": 1, "b" /* c */ : 2})", {{"a", 1}, {"b", 2}}},
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{R"({"a": 1 /* c */ , "b": 2})", {{"a", 1}, {"b", 2}}},
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{"{\"a\": 1 // c\n, \"b\": 2}", {{"a", 1}, {"b", 2}}},
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{"[1 /* c */ , 2]", {1, 2}},
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{"[1 // c\n, 2]", {1, 2}},
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{"{\"a\" /* c */ /* d */ : [1 // c\n , 2 /**/ ] /**/ , \"b\" : 3}", {{"a", {1, 2}}, {"b", 3}}}
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};
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for (const auto& input : inputs)
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{
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CAPTURE(input.first)
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CHECK(json::parse(input.first, nullptr, true, true) == input.second);
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CHECK(json::accept(input.first, true));
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}
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}
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SECTION("ignored, with trailing commas")
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{
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CHECK(json::parse(std::string("[1 /* c */ , ]"), nullptr, true, true, true) == json({1}));
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CHECK(json::parse(std::string("{\"a\": 1 /* c */ , }"), nullptr, true, true, true) == json({{"a", 1}}));
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CHECK_THROWS_WITH_AS(_ = json::parse(std::string("[1 /* c */ , ]"), nullptr, true, true),
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"[json.exception.parse_error.101] parse error at line 1, column 14: syntax error while parsing value - unexpected ']'; expected '[', '{', or a literal", json::parse_error);
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CHECK_THROWS_WITH_AS(_ = json::parse(std::string("{\"a\": 1 /* c */ , }"), nullptr, true, true),
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"[json.exception.parse_error.101] parse error at line 1, column 19: syntax error while parsing object key - unexpected '}'; expected string literal", json::parse_error);
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}
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SECTION("not ignored")
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{
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CHECK_THROWS_WITH_AS(_ = json::parse(std::string("{\"a\" /* c */ : 1}")),
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"[json.exception.parse_error.101] parse error at line 1, column 6: syntax error while parsing object separator - invalid literal; last read: '\"a\" /'; expected ':'", json::parse_error);
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CHECK_THROWS_WITH_AS(_ = json::parse(std::string("{\"a\": 1, \"b\" /* c */ : 2}")),
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"[json.exception.parse_error.101] parse error at line 1, column 14: syntax error while parsing object separator - invalid literal; last read: '\"b\" /'; expected ':'", json::parse_error);
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CHECK_THROWS_WITH_AS(_ = json::parse(std::string("{\"a\": 1 /* c */ , \"b\": 2}")),
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"[json.exception.parse_error.101] parse error at line 1, column 9: syntax error while parsing object - invalid literal; last read: '1 /'; expected '}'", json::parse_error);
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CHECK_THROWS_WITH_AS(_ = json::parse(std::string("[1 /* c */ , 2]")),
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"[json.exception.parse_error.101] parse error at line 1, column 4: syntax error while parsing array - invalid literal; last read: '1 /'; expected ']'", json::parse_error);
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CHECK(!json::accept(std::string("[1 /* c */ , 2]")));
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}
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}
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#if JSON_DIAGNOSTIC_POSITIONS
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// Macro for all test cases for start_pos and end_pos
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#define SETUP_TESTCASES() \
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