Add a test for a macro implementation using custom lex function
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25
spec/macros.c.propane
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25
spec/macros.c.propane
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<<
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#include <stdlib.h>
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size_t mylexfn(p_context_t * context, p_token_info_t * out_token_info);
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void record(int v);
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>>
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ptype int;
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lex_fn mylexfn;
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drop /\s+/;
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token lbrace /\{/;
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token rbrace /\}/;
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token plus /\+/;
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token macro;
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token macroname /@[a-zA-Z_]\w*/;
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token num /\d+/ << char b[100]; memcpy(b, match, match_length); b[match_length] = '\0'; $$ = atoi(b); >>
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Start -> Statements;
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Statements -> ;
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Statements -> Statement Statements;
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Statement -> Add;
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Statement -> MacroStart;
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Add -> num plus num << $$ = $1 + $3; record($$); >>
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MacroStart -> macro macroname lbrace;
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31
spec/macros.d.propane
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31
spec/macros.d.propane
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<<
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import test_macros;
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>>
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ptype int;
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lex_fn mylexfn;
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drop /\s+/;
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token lbrace /\{/;
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token rbrace /\}/;
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token plus /\+/;
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token macro;
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token macroname /@[a-zA-Z_]\w*/;
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token num /\d+/ <<
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int n = 0;
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foreach (c; match)
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{
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n *= 10;
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n += (c - '0');
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}
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$$ = n;
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>>
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Start -> Statements;
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Statements -> ;
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Statements -> Statement Statements;
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Statement -> Add;
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Statement -> MacroStart;
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Add -> num plus num << $$ = $1 + $3; record($$); >>
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MacroStart -> macro macroname lbrace;
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@ -2164,6 +2164,16 @@ StartR start: 1, 3
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StartR end: 1, 6
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EOF
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end
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it "allows nested parses for macro expansions" do
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ext = language == "cpp" ? "c" : language
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write_grammar(File.read("spec/macros.#{ext}.propane"))
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run_propane(language: language)
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compile("spec/test_macros.#{language}", language: language)
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results = run_test(language: language)
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expect(results.stderr).to eq ""
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expect(results.status).to eq 0
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end
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end
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end
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end
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117
spec/test_macros.c
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117
spec/test_macros.c
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#include "testparser.h"
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#include "testutils.h"
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#include <string.h>
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#include <assert.h>
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#include <stddef.h>
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static p_context_t * context;
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size_t n_tokens;
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p_token_info_t token_infos[10];
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/* Capture the macro body tokens (everything up to the closing '}') into
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* token_infos[]. Called from mylexfn() right after the definition's '{' has
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* been lexed, so the input cursor is positioned at the first body token. */
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static void capture_macro_body(void)
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{
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n_tokens = 0u;
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for (;;)
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{
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size_t result = p_lex(context, &token_infos[n_tokens]);
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assert_eq(result, P_SUCCESS);
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if (token_infos[n_tokens].token == TOKEN_rbrace)
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{
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break;
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}
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n_tokens++;
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assert(n_tokens < sizeof(token_infos) / sizeof(token_infos[0]));
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}
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}
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size_t mylexfn(p_context_t * context, p_token_info_t * out_token_info)
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{
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static bool defining;
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static bool expanding;
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static size_t expand_i;
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for (;;)
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{
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if (expanding)
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{
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size_t ei = expand_i++;
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if (expand_i >= n_tokens)
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{
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expanding = false;
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}
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*out_token_info = token_infos[ei];
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return P_SUCCESS;
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}
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size_t lex_result = p_lex(context, out_token_info);
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if (lex_result != P_SUCCESS)
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{
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return lex_result;
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}
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switch (out_token_info->token)
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{
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case TOKEN_macro:
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/* Start of a macro definition: "macro macroname { ... }". */
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defining = true;
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break;
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case TOKEN_macroname:
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if (!defining)
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{
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/* Use of a macro: replay its captured body tokens instead of
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* returning the macroname to the parser. */
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expanding = true;
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expand_i = 0u;
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continue;
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}
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/* Definition name: pass through and keep waiting for '{'. */
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break;
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case TOKEN_lbrace:
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if (defining)
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{
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/* Consume and store the macro body now, before the parser gets
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* a chance to read its lookahead token (which would otherwise
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* swallow the first body token). */
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capture_macro_body();
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defining = false;
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}
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break;
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default:
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defining = false;
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break;
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}
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return lex_result;
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}
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}
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size_t n_nums;
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int nums[10];
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void record(int v)
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{
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nums[n_nums++] = v;
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}
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int main()
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{
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char const * input =
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"macro @m { 23 + 200 }\n"
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"66 + 100\n"
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"@m\n"
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"33 + 55\n"
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"@m\n";
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context = p_context_new((uint8_t const *)input, strlen(input));
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assert(p_parse(context) == P_SUCCESS);
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p_context_delete(context);
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assert_eq(n_nums, 4);
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assert_eq(nums[0], 166);
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assert_eq(nums[1], 223);
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assert_eq(nums[2], 88);
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assert_eq(nums[3], 223);
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return 0;
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}
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116
spec/test_macros.d
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116
spec/test_macros.d
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import testparser;
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import testutils;
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size_t n_tokens;
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p_token_info_t[10] token_infos;
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// Capture the macro body tokens (everything up to the closing '}') into
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// token_infos[]. Called from mylexfn() right after the definition's '{' has
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// been lexed, so the input cursor is positioned at the first body token.
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void capture_macro_body(p_context_t * context)
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{
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n_tokens = 0u;
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for (;;)
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{
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size_t result = p_lex(context, &token_infos[n_tokens]);
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assert(result == P_SUCCESS);
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if (token_infos[n_tokens].token == TOKEN_rbrace)
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{
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break;
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}
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n_tokens++;
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assert(n_tokens < token_infos.length);
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}
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}
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size_t mylexfn(p_context_t * context, p_token_info_t * out_token_info)
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{
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static bool defining;
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static bool expanding;
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static size_t expand_i;
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for (;;)
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{
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if (expanding)
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{
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size_t ei = expand_i++;
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if (expand_i >= n_tokens)
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{
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expanding = false;
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}
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*out_token_info = token_infos[ei];
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return P_SUCCESS;
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}
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size_t lex_result = p_lex(context, out_token_info);
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if (lex_result != P_SUCCESS)
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{
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return lex_result;
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}
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switch (out_token_info.token)
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{
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case TOKEN_macro:
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// Start of a macro definition: "macro macroname { ... }".
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defining = true;
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break;
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case TOKEN_macroname:
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if (!defining)
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{
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// Use of a macro: replay its captured body tokens instead of
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// returning the macroname to the parser.
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expanding = true;
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expand_i = 0u;
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continue;
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}
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// Definition name: pass through and keep waiting for '{'.
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break;
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case TOKEN_lbrace:
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if (defining)
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{
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// Consume and store the macro body now, before the parser gets
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// a chance to read its lookahead token (which would otherwise
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// swallow the first body token).
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capture_macro_body(context);
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defining = false;
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}
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break;
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default:
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defining = false;
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break;
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}
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return lex_result;
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}
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}
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size_t n_nums;
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int[10] nums;
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void record(int v)
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{
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nums[n_nums++] = v;
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}
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int main()
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{
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return 0;
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}
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unittest
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{
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string input =
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"macro @m { 23 + 200 }\n" ~
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"66 + 100\n" ~
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"@m\n" ~
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"33 + 55\n" ~
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"@m\n";
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p_context_t * context = p_context_new(input);
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assert(p_parse(context) == P_SUCCESS);
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p_context_delete(context);
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assert(n_nums == 4);
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assert(nums[0] == 166);
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assert(nums[1] == 223);
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assert(nums[2] == 88);
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assert(nums[3] == 223);
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}
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