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| Author | SHA1 | Date | |
|---|---|---|---|
| 601829bd29 | |||
| 4131af3912 | |||
| 97529fdd2b | |||
| e4d3b08bf2 | |||
| 15a6195bf0 | |||
| b7737fba39 | |||
| dad687216b | |||
| 656726a8c1 | |||
| 1f248ad4cd | |||
| e283fd2c52 | |||
| 1fea81b74b | |||
| 77e1a77e02 | |||
| 892ff89a66 | |||
| 3c89cc4e99 | |||
| 38b5b48289 | |||
| 3c4146468e | |||
| f95de25842 | |||
| d6d5951b95 | |||
| 232295fff4 | |||
| 34fee99232 | |||
| 074b174d0f |
@@ -8,6 +8,7 @@ enable_testing()
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function(set_default_target_options target)
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set_property(TARGET ${target} PROPERTY C_STANDARD 11)
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set_property(TARGET ${target} PROPERTY C_EXTENSIONS OFF)
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target_compile_options(${target} PRIVATE -Wall -Wextra -pedantic)
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if(${SANITIZERS})
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target_compile_options(${target} PRIVATE -fsanitize=address,undefined)
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@@ -18,3 +19,4 @@ endfunction()
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add_subdirectory(lib)
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add_subdirectory(tests)
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add_subdirectory(demo)
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add_subdirectory(benchmarks)
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6
README
6
README
@@ -7,8 +7,8 @@ so here we are.
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Grammar
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This engine is not going to be strictly supporting any standard
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syntax; the expression syntax I intend to support follows.
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The engine does not support any specific standard's syntax, unless by
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coincidence. The grammar I've implemented for expressions is:
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regex ::= sequence ( '|' sequence )*
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sequence ::= term+
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@@ -23,7 +23,7 @@ syntax; the expression syntax I intend to support follows.
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The build uses CMake. There are two scripts, build.sh and test.sh,
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which will (much to everybody's shock) build the project and run the
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tests. I use Clang but the code is ISO C11, it should compile just
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tests. I use Clang but the code is ISO C11 so it should compile just
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fine with GCC. You might need to faff with CMakeLists.txt to get it
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to work with another compiler due to command-line flag nonsense.
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20
benchmarks/CMakeLists.txt
Normal file
20
benchmarks/CMakeLists.txt
Normal file
@@ -0,0 +1,20 @@
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add_library(benchmarking benchmarking.c)
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set_default_target_options(benchmarking)
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target_include_directories(benchmarking PUBLIC include)
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function(add_benchmark_suite source)
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string(REGEX REPLACE ".c$" "" name ${source})
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add_executable(${name} ${source})
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set_default_target_options(${name})
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target_link_libraries(${name} PRIVATE lib benchmarking m)
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endfunction()
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function(add_benchmark_suites)
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foreach(source ${ARGN})
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add_benchmark_suite(${source})
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endforeach()
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endfunction()
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add_benchmark_suites(
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matching_benchmarks.c
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)
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85
benchmarks/benchmarking.c
Normal file
85
benchmarks/benchmarking.c
Normal file
@@ -0,0 +1,85 @@
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/*
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* Copyright (c) Camden Dixie O'Brien
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* SPDX-License-Identifier: AGPL-3.0-only
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*/
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#include "benchmarking.h"
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#include <assert.h>
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#include <math.h>
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#include <stdio.h>
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#define SWAP(x, y) \
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do { \
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const double tmp = x; \
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x = y; \
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y = tmp; \
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} while (0)
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clock_t benchmark_start, benchmark_end;
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static void sort(double *xs, int n)
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{
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if (n <= 0)
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return;
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const double pivot = xs[(n - 1) / 2];
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int lt = 0;
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int eq = 0;
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int gt = n - 1;
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while (eq <= gt) {
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if (xs[eq] < pivot) {
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SWAP(xs[eq], xs[lt]);
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++lt;
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++eq;
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} else if (xs[eq] > pivot) {
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SWAP(xs[eq], xs[gt]);
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--gt;
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} else {
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++eq;
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}
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}
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sort(xs, lt);
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sort(xs + gt + 1, n - (gt + 1));
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}
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void benchmark_summarise(double *res, int reps, benchmark_summary_t *out)
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{
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assert(reps > 0);
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sort(res, reps);
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const double median = res[reps / 2];
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double sum = 0;
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for (int i = 0; i < reps; ++i)
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sum += res[i];
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const double mean = sum / reps;
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double diff_sum = 0;
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for (int i = 0; i < reps; ++i)
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diff_sum += pow(res[i] - mean, 2);
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const double variance = diff_sum / (reps - 1);
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out->reps = reps;
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out->total = sum;
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out->median = median;
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out->mean = mean;
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out->min = res[0];
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out->max = res[reps - 1];
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out->stddev = sqrt(variance);
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}
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void benchmark_print_header(void)
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{
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printf(
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"%-12s %13s %13s %13s %13s %12s\n", "benchmark", "median (µs)",
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"mean (µs)", "min (µs)", "max (µs)", "stddev");
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}
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void benchmark_print(const char *name, const benchmark_summary_t *s)
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{
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printf(
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"%-12s %12.2f %12.2f %12.2f %12.2f %12.2f\n", name, s->median,
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s->mean, s->min, s->max, s->stddev);
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}
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50
benchmarks/include/benchmarking.h
Normal file
50
benchmarks/include/benchmarking.h
Normal file
@@ -0,0 +1,50 @@
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/*
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* Copyright (c) Camden Dixie O'Brien
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* SPDX-License-Identifier: AGPL-3.0-only
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*/
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#ifndef BENCHMARKING_H
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#define BENCHMARKING_H
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#include <time.h>
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typedef struct {
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int reps;
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double total, median, mean, min, max, stddev;
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} benchmark_summary_t;
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#define CLOCK_MICROS(c) (1000000 * (double)c / CLOCKS_PER_SEC)
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#define BENCHMARKING_BEGIN() benchmark_print_header()
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#define BENCHMARKING_END() 0
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#define START_CLOCK() \
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do { \
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benchmark_start = clock(); \
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} while (0)
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#define STOP_CLOCK() \
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do { \
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benchmark_end = clock(); \
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} while (0)
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#define RUN_BENCHMARK(reps, name, fn, ...) \
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do { \
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double res[reps]; \
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for (int i = 0; i < reps; ++i) { \
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fn(__VA_ARGS__); \
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res[i] = CLOCK_MICROS(benchmark_end) \
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- CLOCK_MICROS(benchmark_start); \
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} \
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benchmark_summary_t summary; \
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benchmark_summarise(res, reps, &summary); \
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benchmark_print(name, &summary); \
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} while (0)
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extern clock_t benchmark_start, benchmark_end;
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void benchmark_summarise(double *res, int reps, benchmark_summary_t *out);
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void benchmark_print_header(void);
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void benchmark_print(const char *name, const benchmark_summary_t *summary);
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#endif
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54
benchmarks/matching_benchmarks.c
Normal file
54
benchmarks/matching_benchmarks.c
Normal file
@@ -0,0 +1,54 @@
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/*
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* Copyright (c) Camden Dixie O'Brien
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* SPDX-License-Identifier: AGPL-3.0-only
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*/
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#include "benchmarking.h"
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#include "compile.h"
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#include <assert.h>
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#include <stdlib.h>
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#include <string.h>
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#include <sys/time.h>
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#define LEN 1000
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#define RANGE_FIRST 'a'
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#define RANGE_LAST 'z'
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#define CLAMP_CHAR(x) (RANGE_FIRST + x % (RANGE_LAST - RANGE_FIRST + 1))
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#define RUN_MATCHING_BENCHMARK(reps, name, regex) \
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do { \
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fsa_t fsa; \
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compile(regex, strlen(regex), &fsa); \
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RUN_BENCHMARK(reps, name, matching_benchmark, &fsa); \
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fsa_free(&fsa); \
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} while (0)
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static void matching_benchmark(const fsa_t *fsa)
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{
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char s[LEN];
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for (int j = 0; j < LEN; ++j)
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s[j] = CLAMP_CHAR(rand());
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volatile bool match;
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START_CLOCK();
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match = fsa_accepts(fsa, s, LEN);
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STOP_CLOCK();
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(void)match;
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}
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int main(void)
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{
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struct timeval tv;
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gettimeofday(&tv, NULL);
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srand(tv.tv_usec);
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BENCHMARKING_BEGIN();
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RUN_MATCHING_BENCHMARK(10000, "foo or bar", ".*(foo|bar).*");
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RUN_MATCHING_BENCHMARK(10000, "regex #1", ".*(abc!?)*|dd+.*");
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RUN_MATCHING_BENCHMARK(10000, "regex #2", ".*(l|wh)?[aeiou]+.*");
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return BENCHMARKING_END();
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}
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@@ -12,6 +12,11 @@
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#define BUFFER_START_CAPACITY 128
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#define PREFIX ".*("
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#define PREFIX_LEN 3
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#define SUFFIX ").*"
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#define SUFFIX_LEN 3
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int main(int argc, char *argv[])
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{
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if (argc != 2) {
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@@ -19,8 +24,15 @@ int main(int argc, char *argv[])
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return EXIT_FAILURE;
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}
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const int input_len = strlen(argv[1]);
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const int regex_len = input_len + 6;
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char *regex = malloc(regex_len);
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memcpy(regex, PREFIX, PREFIX_LEN);
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memcpy(regex + PREFIX_LEN, argv[1], input_len);
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memcpy(regex + PREFIX_LEN + input_len, SUFFIX, SUFFIX_LEN);
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fsa_t dfa;
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if (!compile(argv[1], strlen(argv[1]), &dfa)) {
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if (!compile(regex, regex_len, &dfa)) {
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fprintf(stderr, "Failed to parse regex\n");
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return EXIT_FAILURE;
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}
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@@ -2,11 +2,9 @@ add_library(lib
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compile.c
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construct.c
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convert.c
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desugar.c
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fsa.c
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min_heap.c
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parse.c
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regex.c
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)
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set_default_target_options(lib)
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target_include_directories(lib PUBLIC include)
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@@ -5,21 +5,19 @@
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#include "compile.h"
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#include "parse.h"
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#include "desugar.h"
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#include "construct.h"
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#include "convert.h"
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#include "parse.h"
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bool compile(const char *regex, int len, fsa_t *dfa_out)
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{
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regex_t pt;
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parse_tree_t pt;
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if (-1 == parse_expr(regex, len, &pt))
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return false;
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desugar_regex(&pt);
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fsa_t nfa;
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construct_nfa(&pt, &nfa);
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regex_free(&pt);
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parse_tree_free(&pt);
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convert_to_dfa(&nfa, dfa_out);
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fsa_free(&nfa);
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|
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118
lib/construct.c
118
lib/construct.c
@@ -25,6 +25,9 @@ static void add_fsa(fsa_t *f, const fsa_t *o, int *init_out, int *final_out)
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}
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memcpy(f->states + f->count, o->states, o->count * sizeof(fsa_state_t));
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|
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// Mark o's final state as non-final.
|
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f->states[f->count].final = false;
|
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|
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// Retarget the rules of the copied states to refer to the new
|
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// state indices.
|
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for (int i = f->count; i < count; ++i) {
|
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@@ -112,62 +115,119 @@ static void prepend_fsa(fsa_t *f, const fsa_t *o)
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f->count = count;
|
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}
|
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|
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static void construct_base(fsa_t *out, int symbol)
|
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static void construct_base(fsa_t *out)
|
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{
|
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fsa_init(out);
|
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const int id = fsa_add_state(out);
|
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fsa_add_rule(out, id, out->initial, symbol);
|
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out->initial = id;
|
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out->states[0].final = true;
|
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out->initial = fsa_add_state(out);
|
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}
|
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|
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static void construct_symbol(fsa_t *out, int symbol)
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{
|
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construct_base(out);
|
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fsa_add_rule(out, out->initial, 0, symbol);
|
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}
|
||||
|
||||
static bool in_class(const parse_class_t *class, char c)
|
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{
|
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for (int i = 0; i < class->count; ++i) {
|
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if (class->contents[i] == c)
|
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return true;
|
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}
|
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return false;
|
||||
}
|
||||
|
||||
static void construct_class(fsa_t *out, const parse_class_t *class)
|
||||
{
|
||||
construct_base(out);
|
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if (class->negated) {
|
||||
for (int i = 0; i < CHAR_COUNT; ++i) {
|
||||
if (!in_class(class, i))
|
||||
fsa_add_rule(out, out->initial, 0, i);
|
||||
}
|
||||
} else {
|
||||
for (int i = 0; i < class->count; ++i)
|
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fsa_add_rule(out, out->initial, 0, class->contents[i]);
|
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}
|
||||
}
|
||||
|
||||
static void construct_wildcard(fsa_t *out)
|
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{
|
||||
construct_base(out);
|
||||
for (int i = 0; i < CHAR_COUNT; ++i)
|
||||
fsa_add_rule(out, out->initial, 0, i);
|
||||
}
|
||||
|
||||
static void base_quantify(fsa_t *out, int *init_out, int *final_out)
|
||||
{
|
||||
fsa_t f;
|
||||
memcpy(&f, out, sizeof(fsa_t));
|
||||
construct_base(out);
|
||||
add_fsa(out, &f, init_out, final_out);
|
||||
fsa_add_rule(out, out->initial, *init_out, EPSILON);
|
||||
fsa_add_rule(out, *final_out, 0, EPSILON);
|
||||
}
|
||||
|
||||
static void construct_star(fsa_t *out)
|
||||
{
|
||||
fsa_t f;
|
||||
memcpy(&f, out, sizeof(fsa_t));
|
||||
|
||||
construct_base(out, EPSILON);
|
||||
int f_initial, f_final;
|
||||
add_fsa(out, &f, &f_initial, &f_final);
|
||||
fsa_add_rule(out, out->initial, f_initial, EPSILON);
|
||||
fsa_add_rule(out, f_final, f_initial, EPSILON);
|
||||
fsa_add_rule(out, f_final, 0, EPSILON);
|
||||
int sub_init, sub_final;
|
||||
base_quantify(out, &sub_init, &sub_final);
|
||||
fsa_add_rule(out, sub_final, sub_init, EPSILON);
|
||||
fsa_add_rule(out, out->initial, 0, EPSILON);
|
||||
}
|
||||
|
||||
static void construct_term(const regex_term_t *term, fsa_t *out)
|
||||
static void construct_plus(fsa_t *out)
|
||||
{
|
||||
int sub_init, sub_final;
|
||||
base_quantify(out, &sub_init, &sub_final);
|
||||
fsa_add_rule(out, sub_final, sub_init, EPSILON);
|
||||
}
|
||||
|
||||
static void construct_qmark(fsa_t *out)
|
||||
{
|
||||
int sub_init, sub_final;
|
||||
base_quantify(out, &sub_init, &sub_final);
|
||||
fsa_add_rule(out, out->initial, 0, EPSILON);
|
||||
}
|
||||
|
||||
static void construct_term(const parse_term_t *term, fsa_t *out)
|
||||
{
|
||||
switch (term->type) {
|
||||
case REGEX_TERM_EMPTY:
|
||||
construct_base(out, EPSILON);
|
||||
case PARSE_TERM_EMPTY:
|
||||
construct_symbol(out, EPSILON);
|
||||
break;
|
||||
case REGEX_TERM_LITERAL:
|
||||
construct_base(out, term->literal);
|
||||
case PARSE_TERM_LITERAL:
|
||||
construct_symbol(out, term->literal);
|
||||
break;
|
||||
case REGEX_TERM_SUBEXPR:
|
||||
case PARSE_TERM_SUBEXPR:
|
||||
construct_nfa(&term->subexpr, out);
|
||||
break;
|
||||
case REGEX_TERM_WILDCARD:
|
||||
case REGEX_TERM_CLASS:
|
||||
assert(false);
|
||||
case PARSE_TERM_CLASS:
|
||||
construct_class(out, &term->class);
|
||||
break;
|
||||
case PARSE_TERM_WILDCARD:
|
||||
construct_wildcard(out);
|
||||
break;
|
||||
}
|
||||
|
||||
switch (term->quantifier) {
|
||||
case REGEX_QUANTIFIER_NONE:
|
||||
case PARSE_QUANTIFIER_NONE:
|
||||
break;
|
||||
case REGEX_QUANTIFIER_STAR:
|
||||
case PARSE_QUANTIFIER_STAR:
|
||||
construct_star(out);
|
||||
break;
|
||||
case REGEX_QUANTIFIER_PLUS:
|
||||
case REGEX_QUANTIFIER_QMARK:
|
||||
assert(false);
|
||||
case PARSE_QUANTIFIER_PLUS:
|
||||
construct_plus(out);
|
||||
break;
|
||||
case PARSE_QUANTIFIER_QMARK:
|
||||
construct_qmark(out);
|
||||
break;
|
||||
}
|
||||
|
||||
assert(out->states[0].final);
|
||||
}
|
||||
|
||||
static void construct_sequence(const regex_sequence_t *seq, fsa_t *out)
|
||||
static void construct_sequence(const parse_sequence_t *seq, fsa_t *out)
|
||||
{
|
||||
assert(seq->count > 0);
|
||||
|
||||
@@ -201,7 +261,7 @@ static void construct_union(fsa_t *f, const fsa_t *o)
|
||||
fsa_add_rule(f, final, 0, EPSILON);
|
||||
}
|
||||
|
||||
void construct_nfa(const regex_t *regex, fsa_t *out)
|
||||
void construct_nfa(const parse_tree_t *regex, fsa_t *out)
|
||||
{
|
||||
assert(regex->count > 0);
|
||||
|
||||
|
||||
@@ -160,13 +160,17 @@ static void insert(table_t *table, int *nfa_states, int count, int dfa_state)
|
||||
table->entries = calloc(table->capacity, sizeof(table_entry_t));
|
||||
assert(NULL != table->entries);
|
||||
for (int i = 0; i < old_capacity; ++i) {
|
||||
if (0 != entries[i].nfa_state_count)
|
||||
continue;
|
||||
insert(
|
||||
table, entries[i].nfa_states, entries[i].nfa_state_count,
|
||||
entries[i].dfa_state);
|
||||
if (0 != entries[i].nfa_state_count) {
|
||||
insert(
|
||||
table, entries[i].nfa_states, entries[i].nfa_state_count,
|
||||
entries[i].dfa_state);
|
||||
}
|
||||
}
|
||||
free(entries);
|
||||
|
||||
// Recurse to insert the entry now that the table has been
|
||||
// expanded.
|
||||
insert(table, nfa_states, count, dfa_state);
|
||||
}
|
||||
|
||||
static bool lookup_or_create(
|
||||
|
||||
150
lib/desugar.c
150
lib/desugar.c
@@ -1,150 +0,0 @@
|
||||
/*
|
||||
* Copyright (c) Camden Dixie O'Brien
|
||||
* SPDX-License-Identifier: AGPL-3.0-only
|
||||
*/
|
||||
|
||||
#include "desugar.h"
|
||||
|
||||
#include <assert.h>
|
||||
#include <stdlib.h>
|
||||
#include <string.h>
|
||||
|
||||
static void desugar_class(regex_term_t *term)
|
||||
{
|
||||
assert(!term->class.negated);
|
||||
|
||||
const int count = term->class.count;
|
||||
regex_sequence_t *alternatives
|
||||
= malloc(count * sizeof(regex_sequence_t));
|
||||
assert(NULL != alternatives);
|
||||
|
||||
for (int i = 0; i < count; ++i) {
|
||||
regex_term_t *terms = malloc(sizeof(regex_term_t));
|
||||
terms[0].quantifier = REGEX_QUANTIFIER_NONE;
|
||||
terms[0].type = REGEX_TERM_LITERAL;
|
||||
terms[0].literal = term->class.contents[i];
|
||||
alternatives[i].count = alternatives[i].capacity = 1;
|
||||
alternatives[i].contents = terms;
|
||||
}
|
||||
|
||||
regex_class_free(&term->class);
|
||||
term->type = REGEX_TERM_SUBEXPR;
|
||||
term->subexpr.count = term->subexpr.capacity = count;
|
||||
term->subexpr.contents = alternatives;
|
||||
}
|
||||
|
||||
static void deep_copy_term(regex_term_t *dst, regex_term_t *src);
|
||||
|
||||
static void deep_copy_sequence(regex_sequence_t *dst, regex_sequence_t *src)
|
||||
{
|
||||
dst->count = dst->capacity = src->count;
|
||||
dst->contents = malloc(dst->capacity * sizeof(regex_term_t));
|
||||
assert(NULL != dst->contents);
|
||||
|
||||
for (int i = 0; i < dst->count; ++i)
|
||||
deep_copy_term(&dst->contents[i], &src->contents[i]);
|
||||
}
|
||||
|
||||
static void deep_copy_term(regex_term_t *dst, regex_term_t *src)
|
||||
{
|
||||
assert(REGEX_TERM_WILDCARD != src->type);
|
||||
assert(REGEX_TERM_CLASS != src->type);
|
||||
|
||||
memcpy(dst, src, sizeof(regex_term_t));
|
||||
if (REGEX_TERM_SUBEXPR == src->type) {
|
||||
dst->subexpr.capacity = src->subexpr.count;
|
||||
dst->subexpr.contents
|
||||
= malloc(dst->subexpr.capacity * sizeof(regex_sequence_t));
|
||||
assert(NULL != dst->subexpr.contents);
|
||||
|
||||
for (int i = 0; i < dst->subexpr.count; ++i) {
|
||||
deep_copy_sequence(
|
||||
&dst->subexpr.contents[i], &src->subexpr.contents[i]);
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
static void desugar_plus(regex_term_t *term)
|
||||
{
|
||||
regex_sequence_t *alternatives = malloc(sizeof(regex_sequence_t));
|
||||
assert(NULL != alternatives);
|
||||
|
||||
alternatives[0].count = alternatives[0].capacity = 2;
|
||||
alternatives[0].contents = malloc(2 * sizeof(regex_term_t));
|
||||
assert(NULL != alternatives[0].contents);
|
||||
|
||||
memcpy(&alternatives[0].contents[0], term, sizeof(regex_term_t));
|
||||
deep_copy_term(&alternatives[0].contents[1], term);
|
||||
alternatives[0].contents[0].quantifier = REGEX_QUANTIFIER_NONE;
|
||||
alternatives[0].contents[1].quantifier = REGEX_QUANTIFIER_STAR;
|
||||
|
||||
term->quantifier = REGEX_QUANTIFIER_NONE;
|
||||
term->type = REGEX_TERM_SUBEXPR;
|
||||
term->subexpr.count = term->subexpr.capacity = 1;
|
||||
term->subexpr.contents = alternatives;
|
||||
}
|
||||
|
||||
static void desugar_qmark(regex_term_t *term)
|
||||
{
|
||||
regex_sequence_t *alternatives = malloc(2 * sizeof(regex_sequence_t));
|
||||
assert(NULL != alternatives);
|
||||
|
||||
alternatives[0].count = alternatives[0].capacity = 1;
|
||||
alternatives[0].contents = malloc(sizeof(regex_term_t));
|
||||
assert(NULL != alternatives[0].contents);
|
||||
alternatives[0].contents[0].quantifier = REGEX_QUANTIFIER_NONE;
|
||||
alternatives[0].contents[0].type = REGEX_TERM_EMPTY;
|
||||
|
||||
alternatives[1].count = alternatives[0].capacity = 1;
|
||||
alternatives[1].contents = malloc(sizeof(regex_term_t));
|
||||
assert(NULL != alternatives[1].contents);
|
||||
memcpy(&alternatives[1].contents[0], term, sizeof(regex_term_t));
|
||||
alternatives[1].contents[0].quantifier = REGEX_QUANTIFIER_NONE;
|
||||
|
||||
term->quantifier = REGEX_QUANTIFIER_NONE;
|
||||
term->type = REGEX_TERM_SUBEXPR;
|
||||
term->subexpr.count = term->subexpr.capacity = 2;
|
||||
term->subexpr.contents = alternatives;
|
||||
}
|
||||
|
||||
static void desugar_term(regex_term_t *term)
|
||||
{
|
||||
switch (term->type) {
|
||||
case REGEX_TERM_WILDCARD:
|
||||
assert(false);
|
||||
break;
|
||||
case REGEX_TERM_CLASS:
|
||||
desugar_class(term);
|
||||
break;
|
||||
|
||||
case REGEX_TERM_SUBEXPR:
|
||||
desugar_regex(&term->subexpr);
|
||||
break;
|
||||
|
||||
case REGEX_TERM_LITERAL:
|
||||
case REGEX_TERM_EMPTY:
|
||||
break;
|
||||
}
|
||||
|
||||
switch (term->quantifier) {
|
||||
case REGEX_QUANTIFIER_PLUS:
|
||||
desugar_plus(term);
|
||||
break;
|
||||
case REGEX_QUANTIFIER_QMARK:
|
||||
desugar_qmark(term);
|
||||
break;
|
||||
|
||||
case REGEX_QUANTIFIER_NONE:
|
||||
case REGEX_QUANTIFIER_STAR:
|
||||
break;
|
||||
}
|
||||
}
|
||||
|
||||
void desugar_regex(regex_t *regex)
|
||||
{
|
||||
for (int i = 0; i < regex->count; ++i) {
|
||||
for (int j = 0; j < regex->contents[i].count; ++j) {
|
||||
desugar_term(®ex->contents[i].contents[j]);
|
||||
}
|
||||
}
|
||||
}
|
||||
@@ -33,7 +33,8 @@ int fsa_add_state(fsa_t *fsa)
|
||||
{
|
||||
if (fsa->count >= fsa->capacity) {
|
||||
fsa->capacity *= 2;
|
||||
fsa->states = realloc(fsa->states, fsa->capacity);
|
||||
fsa->states
|
||||
= realloc(fsa->states, fsa->capacity * sizeof(fsa_state_t));
|
||||
assert(NULL != fsa->states);
|
||||
}
|
||||
|
||||
@@ -56,7 +57,8 @@ void fsa_add_rule(fsa_t *fsa, int from, int to, int input)
|
||||
fsa_state_t *state = &fsa->states[from];
|
||||
if (state->count >= state->capacity) {
|
||||
state->capacity *= 2;
|
||||
state->rules = realloc(state->rules, state->capacity);
|
||||
state->rules
|
||||
= realloc(state->rules, state->capacity * sizeof(fsa_rule_t));
|
||||
assert(NULL != state->rules);
|
||||
}
|
||||
|
||||
|
||||
@@ -7,8 +7,8 @@
|
||||
#define CONSTRUCT_H
|
||||
|
||||
#include "fsa.h"
|
||||
#include "regex.h"
|
||||
#include "parse.h"
|
||||
|
||||
void construct_nfa(const regex_t *regex, fsa_t *out);
|
||||
void construct_nfa(const parse_tree_t *regex, fsa_t *out);
|
||||
|
||||
#endif
|
||||
|
||||
@@ -1,13 +0,0 @@
|
||||
/*
|
||||
* Copyright (c) Camden Dixie O'Brien
|
||||
* SPDX-License-Identifier: AGPL-3.0-only
|
||||
*/
|
||||
|
||||
#ifndef DESUGAR_H
|
||||
#define DESUGAR_H
|
||||
|
||||
#include "regex.h"
|
||||
|
||||
void desugar_regex(regex_t *regex);
|
||||
|
||||
#endif
|
||||
@@ -6,10 +6,53 @@
|
||||
#ifndef PARSE_H
|
||||
#define PARSE_H
|
||||
|
||||
#include "regex.h"
|
||||
#include <stdbool.h>
|
||||
|
||||
#define PARSE_FAIL (-1)
|
||||
|
||||
int parse_expr(const char *input, int rem, regex_t *out);
|
||||
typedef struct {
|
||||
bool negated;
|
||||
int count, capacity;
|
||||
char *contents;
|
||||
} parse_class_t;
|
||||
|
||||
typedef enum {
|
||||
PARSE_QUANTIFIER_NONE,
|
||||
PARSE_QUANTIFIER_STAR,
|
||||
PARSE_QUANTIFIER_PLUS,
|
||||
PARSE_QUANTIFIER_QMARK,
|
||||
} parse_quantifier_t;
|
||||
|
||||
typedef enum {
|
||||
PARSE_TERM_WILDCARD,
|
||||
PARSE_TERM_CLASS,
|
||||
PARSE_TERM_LITERAL,
|
||||
PARSE_TERM_SUBEXPR,
|
||||
PARSE_TERM_EMPTY,
|
||||
} parse_term_type_t;
|
||||
|
||||
struct _parse_term;
|
||||
typedef struct {
|
||||
int count, capacity;
|
||||
struct _parse_term *contents;
|
||||
} parse_sequence_t;
|
||||
|
||||
typedef struct {
|
||||
int count, capacity;
|
||||
parse_sequence_t *contents;
|
||||
} parse_tree_t;
|
||||
|
||||
typedef struct _parse_term {
|
||||
parse_quantifier_t quantifier;
|
||||
parse_term_type_t type;
|
||||
union {
|
||||
parse_class_t class;
|
||||
char literal;
|
||||
parse_tree_t subexpr;
|
||||
};
|
||||
} parse_term_t;
|
||||
|
||||
int parse_expr(const char *input, int rem, parse_tree_t *out);
|
||||
void parse_tree_free(const parse_tree_t *t);
|
||||
|
||||
#endif
|
||||
|
||||
@@ -1,56 +0,0 @@
|
||||
/*
|
||||
* Copyright (c) Camden Dixie O'Brien
|
||||
* SPDX-License-Identifier: AGPL-3.0-only
|
||||
*/
|
||||
|
||||
#ifndef REGEX_H
|
||||
#define REGEX_H
|
||||
|
||||
#include <stdbool.h>
|
||||
|
||||
typedef struct {
|
||||
bool negated;
|
||||
int count, capacity;
|
||||
char *contents;
|
||||
} regex_class_t;
|
||||
|
||||
typedef enum {
|
||||
REGEX_QUANTIFIER_NONE,
|
||||
REGEX_QUANTIFIER_STAR,
|
||||
REGEX_QUANTIFIER_PLUS,
|
||||
REGEX_QUANTIFIER_QMARK,
|
||||
} regex_quantifier_t;
|
||||
|
||||
typedef enum {
|
||||
REGEX_TERM_WILDCARD,
|
||||
REGEX_TERM_CLASS,
|
||||
REGEX_TERM_LITERAL,
|
||||
REGEX_TERM_SUBEXPR,
|
||||
REGEX_TERM_EMPTY,
|
||||
} regex_term_type_t;
|
||||
|
||||
struct _regex_term;
|
||||
typedef struct {
|
||||
int count, capacity;
|
||||
struct _regex_term *contents;
|
||||
} regex_sequence_t;
|
||||
|
||||
typedef struct {
|
||||
int count, capacity;
|
||||
regex_sequence_t *contents;
|
||||
} regex_t;
|
||||
|
||||
typedef struct _regex_term {
|
||||
regex_quantifier_t quantifier;
|
||||
regex_term_type_t type;
|
||||
union {
|
||||
regex_class_t class;
|
||||
char literal;
|
||||
regex_t subexpr;
|
||||
};
|
||||
} regex_term_t;
|
||||
|
||||
void regex_free(const regex_t *t);
|
||||
void regex_class_free(const regex_class_t *c);
|
||||
|
||||
#endif
|
||||
68
lib/parse.c
68
lib/parse.c
@@ -45,7 +45,7 @@ static int parse_literal(const char *input, int rem, char *out)
|
||||
}
|
||||
}
|
||||
|
||||
static int parse_class(const char *input, int rem, regex_class_t *out)
|
||||
static int parse_class(const char *input, int rem, parse_class_t *out)
|
||||
{
|
||||
int result, used = 0;
|
||||
|
||||
@@ -87,7 +87,7 @@ static int parse_class(const char *input, int rem, regex_class_t *out)
|
||||
return out->count > 0 ? used : -1;
|
||||
}
|
||||
|
||||
static int parse_term(const char *input, int rem, regex_term_t *out)
|
||||
static int parse_term(const char *input, int rem, parse_term_t *out)
|
||||
{
|
||||
int result, used = 0;
|
||||
|
||||
@@ -95,7 +95,7 @@ static int parse_term(const char *input, int rem, regex_term_t *out)
|
||||
return PARSE_FAIL;
|
||||
|
||||
if ('.' == input[0]) {
|
||||
out->type = REGEX_TERM_WILDCARD;
|
||||
out->type = PARSE_TERM_WILDCARD;
|
||||
++used;
|
||||
} else if ('(' == input[0]) {
|
||||
++used;
|
||||
@@ -103,7 +103,7 @@ static int parse_term(const char *input, int rem, regex_term_t *out)
|
||||
result = parse_expr(input + used, rem - used, &out->subexpr);
|
||||
if (PARSE_FAIL == result)
|
||||
return PARSE_FAIL;
|
||||
out->type = REGEX_TERM_SUBEXPR;
|
||||
out->type = PARSE_TERM_SUBEXPR;
|
||||
used += result;
|
||||
|
||||
if (')' != input[used])
|
||||
@@ -113,54 +113,54 @@ static int parse_term(const char *input, int rem, regex_term_t *out)
|
||||
result = parse_class(input + used, rem - used, &out->class);
|
||||
if (PARSE_FAIL == result)
|
||||
return PARSE_FAIL;
|
||||
out->type = REGEX_TERM_CLASS;
|
||||
out->type = PARSE_TERM_CLASS;
|
||||
used += result;
|
||||
} else {
|
||||
result = parse_literal(input + used, rem - used, &out->literal);
|
||||
if (PARSE_FAIL == result)
|
||||
return PARSE_FAIL;
|
||||
out->type = REGEX_TERM_LITERAL;
|
||||
out->type = PARSE_TERM_LITERAL;
|
||||
used += result;
|
||||
}
|
||||
|
||||
if (used < rem) {
|
||||
switch (input[used]) {
|
||||
case '*':
|
||||
out->quantifier = REGEX_QUANTIFIER_STAR;
|
||||
out->quantifier = PARSE_QUANTIFIER_STAR;
|
||||
++used;
|
||||
break;
|
||||
case '+':
|
||||
out->quantifier = REGEX_QUANTIFIER_PLUS;
|
||||
out->quantifier = PARSE_QUANTIFIER_PLUS;
|
||||
++used;
|
||||
break;
|
||||
case '?':
|
||||
out->quantifier = REGEX_QUANTIFIER_QMARK;
|
||||
out->quantifier = PARSE_QUANTIFIER_QMARK;
|
||||
++used;
|
||||
break;
|
||||
default:
|
||||
out->quantifier = REGEX_QUANTIFIER_NONE;
|
||||
out->quantifier = PARSE_QUANTIFIER_NONE;
|
||||
}
|
||||
} else {
|
||||
out->quantifier = REGEX_QUANTIFIER_NONE;
|
||||
out->quantifier = PARSE_QUANTIFIER_NONE;
|
||||
}
|
||||
|
||||
return used;
|
||||
}
|
||||
|
||||
static int parse_sequence(const char *input, int rem, regex_sequence_t *out)
|
||||
static int parse_sequence(const char *input, int rem, parse_sequence_t *out)
|
||||
{
|
||||
int result, used = 0;
|
||||
|
||||
out->count = 0;
|
||||
out->capacity = SEQUENCE_START_CAPACITY;
|
||||
out->contents = malloc(out->capacity * sizeof(regex_term_t));
|
||||
out->contents = malloc(out->capacity * sizeof(parse_term_t));
|
||||
assert(NULL != out->contents);
|
||||
|
||||
while (used < rem) {
|
||||
if (out->count >= out->capacity) {
|
||||
out->capacity *= 2;
|
||||
out->contents = realloc(
|
||||
out->contents, out->capacity * sizeof(regex_term_t));
|
||||
out->contents, out->capacity * sizeof(parse_term_t));
|
||||
assert(NULL != out->contents);
|
||||
}
|
||||
|
||||
@@ -175,13 +175,13 @@ static int parse_sequence(const char *input, int rem, regex_sequence_t *out)
|
||||
return out->count > 0 ? used : -1;
|
||||
}
|
||||
|
||||
int parse_expr(const char *input, int rem, regex_t *out)
|
||||
int parse_expr(const char *input, int rem, parse_tree_t *out)
|
||||
{
|
||||
int result, used = 0;
|
||||
|
||||
out->count = 0;
|
||||
out->capacity = TREE_START_CAPACITY;
|
||||
out->contents = malloc(out->capacity * sizeof(regex_sequence_t));
|
||||
out->contents = malloc(out->capacity * sizeof(parse_sequence_t));
|
||||
assert(NULL != out->contents);
|
||||
|
||||
result = parse_sequence(input + used, rem - used, &out->contents[0]);
|
||||
@@ -198,7 +198,7 @@ int parse_expr(const char *input, int rem, regex_t *out)
|
||||
if (out->count >= out->capacity) {
|
||||
out->capacity *= 2;
|
||||
out->contents = realloc(
|
||||
out->contents, out->capacity * sizeof(regex_sequence_t));
|
||||
out->contents, out->capacity * sizeof(parse_sequence_t));
|
||||
assert(NULL != out->contents);
|
||||
}
|
||||
|
||||
@@ -212,3 +212,37 @@ int parse_expr(const char *input, int rem, regex_t *out)
|
||||
|
||||
return used;
|
||||
}
|
||||
|
||||
static void class_free(const parse_class_t *c)
|
||||
{
|
||||
if (NULL != c->contents)
|
||||
free(c->contents);
|
||||
}
|
||||
|
||||
static void sequence_free(const parse_sequence_t *s)
|
||||
{
|
||||
if (NULL != s->contents) {
|
||||
for (int i = 0; i < s->count; ++i) {
|
||||
switch (s->contents[i].type) {
|
||||
case PARSE_TERM_CLASS:
|
||||
class_free(&s->contents[i].class);
|
||||
break;
|
||||
case PARSE_TERM_SUBEXPR:
|
||||
parse_tree_free(&s->contents[i].subexpr);
|
||||
break;
|
||||
default:
|
||||
break;
|
||||
}
|
||||
}
|
||||
free(s->contents);
|
||||
}
|
||||
}
|
||||
|
||||
void parse_tree_free(const parse_tree_t *t)
|
||||
{
|
||||
if (NULL != t->contents) {
|
||||
for (int i = 0; i < t->count; ++i)
|
||||
sequence_free(&t->contents[i]);
|
||||
free(t->contents);
|
||||
}
|
||||
}
|
||||
|
||||
42
lib/regex.c
42
lib/regex.c
@@ -1,42 +0,0 @@
|
||||
/*
|
||||
* Copyright (c) Camden Dixie O'Brien
|
||||
* SPDX-License-Identifier: AGPL-3.0-only
|
||||
*/
|
||||
|
||||
#include "regex.h"
|
||||
|
||||
#include <stdlib.h>
|
||||
|
||||
static void sequence_free(const regex_sequence_t *s)
|
||||
{
|
||||
if (NULL != s->contents) {
|
||||
for (int i = 0; i < s->count; ++i) {
|
||||
switch (s->contents[i].type) {
|
||||
case REGEX_TERM_CLASS:
|
||||
regex_class_free(&s->contents[i].class);
|
||||
break;
|
||||
case REGEX_TERM_SUBEXPR:
|
||||
regex_free(&s->contents[i].subexpr);
|
||||
break;
|
||||
default:
|
||||
break;
|
||||
}
|
||||
}
|
||||
free(s->contents);
|
||||
}
|
||||
}
|
||||
|
||||
void regex_free(const regex_t *t)
|
||||
{
|
||||
if (NULL != t->contents) {
|
||||
for (int i = 0; i < t->count; ++i)
|
||||
sequence_free(&t->contents[i]);
|
||||
free(t->contents);
|
||||
}
|
||||
}
|
||||
|
||||
void regex_class_free(const regex_class_t *c)
|
||||
{
|
||||
if (NULL != c->contents)
|
||||
free(c->contents);
|
||||
}
|
||||
@@ -1,4 +1,4 @@
|
||||
#!/bin/sh
|
||||
cd "$(git rev-parse --show-toplevel)"
|
||||
find . -not \( -path './.git' -prune \) -not \( -path './build' -prune \) \
|
||||
| entr -s 'clear && scripts/build.sh && scripts/test.sh'
|
||||
| entr -cs 'scripts/build.sh && scripts/test.sh'
|
||||
|
||||
@@ -19,8 +19,8 @@ endfunction()
|
||||
add_test_suites(
|
||||
construct_tests.c
|
||||
convert_tests.c
|
||||
desugar_tests.c
|
||||
fsa_tests.c
|
||||
integration_tests.c
|
||||
min_heap_tests.c
|
||||
parse_tests.c
|
||||
)
|
||||
|
||||
@@ -34,13 +34,13 @@ static bool accepts(const fsa_t *nfa, const char *input)
|
||||
|
||||
static void test_empty_expression(void)
|
||||
{
|
||||
regex_term_t *terms = malloc(1 * sizeof(regex_term_t));
|
||||
terms[0].quantifier = REGEX_QUANTIFIER_NONE;
|
||||
terms[0].type = REGEX_TERM_EMPTY;
|
||||
regex_sequence_t *alternatives = malloc(1 * sizeof(regex_sequence_t));
|
||||
parse_term_t *terms = malloc(1 * sizeof(parse_term_t));
|
||||
terms[0].quantifier = PARSE_QUANTIFIER_NONE;
|
||||
terms[0].type = PARSE_TERM_EMPTY;
|
||||
parse_sequence_t *alternatives = malloc(1 * sizeof(parse_sequence_t));
|
||||
alternatives[0].count = alternatives[0].capacity = 1;
|
||||
alternatives[0].contents = terms;
|
||||
const regex_t regex
|
||||
const parse_tree_t regex
|
||||
= { .count = 1, .capacity = 1, .contents = alternatives };
|
||||
|
||||
fsa_t fsa;
|
||||
@@ -49,20 +49,45 @@ static void test_empty_expression(void)
|
||||
ASSERT_TRUE(accepts(&fsa, ""));
|
||||
ASSERT_FALSE(accepts(&fsa, "a"));
|
||||
|
||||
regex_free(®ex);
|
||||
parse_tree_free(®ex);
|
||||
fsa_free(&fsa);
|
||||
}
|
||||
|
||||
static void test_wildcard(void)
|
||||
{
|
||||
parse_term_t *terms = malloc(1 * sizeof(parse_term_t));
|
||||
terms[0].quantifier = PARSE_QUANTIFIER_NONE;
|
||||
terms[0].type = PARSE_TERM_WILDCARD;
|
||||
parse_sequence_t *alternatives = malloc(1 * sizeof(parse_sequence_t));
|
||||
alternatives[0].count = alternatives[0].capacity = 1;
|
||||
alternatives[0].contents = terms;
|
||||
const parse_tree_t regex
|
||||
= { .count = 1, .capacity = 1, .contents = alternatives };
|
||||
|
||||
fsa_t fsa;
|
||||
construct_nfa(®ex, &fsa);
|
||||
|
||||
ASSERT_TRUE(accepts(&fsa, "a"));
|
||||
ASSERT_TRUE(accepts(&fsa, "b"));
|
||||
ASSERT_TRUE(accepts(&fsa, "c"));
|
||||
ASSERT_TRUE(accepts(&fsa, "d"));
|
||||
ASSERT_FALSE(accepts(&fsa, ""));
|
||||
ASSERT_FALSE(accepts(&fsa, "aa"));
|
||||
|
||||
parse_tree_free(®ex);
|
||||
fsa_free(&fsa);
|
||||
}
|
||||
|
||||
static void test_literal_expression(void)
|
||||
{
|
||||
regex_term_t *terms = malloc(1 * sizeof(regex_term_t));
|
||||
terms[0].quantifier = REGEX_QUANTIFIER_NONE;
|
||||
terms[0].type = REGEX_TERM_LITERAL;
|
||||
parse_term_t *terms = malloc(1 * sizeof(parse_term_t));
|
||||
terms[0].quantifier = PARSE_QUANTIFIER_NONE;
|
||||
terms[0].type = PARSE_TERM_LITERAL;
|
||||
terms[0].literal = 'a';
|
||||
regex_sequence_t *alternatives = malloc(1 * sizeof(regex_sequence_t));
|
||||
parse_sequence_t *alternatives = malloc(1 * sizeof(parse_sequence_t));
|
||||
alternatives[0].count = alternatives[0].capacity = 1;
|
||||
alternatives[0].contents = terms;
|
||||
const regex_t regex
|
||||
const parse_tree_t regex
|
||||
= { .count = 1, .capacity = 1, .contents = alternatives };
|
||||
|
||||
fsa_t fsa;
|
||||
@@ -71,26 +96,27 @@ static void test_literal_expression(void)
|
||||
ASSERT_TRUE(accepts(&fsa, "a"));
|
||||
ASSERT_FALSE(accepts(&fsa, "b"));
|
||||
|
||||
regex_free(®ex);
|
||||
parse_tree_free(®ex);
|
||||
fsa_free(&fsa);
|
||||
}
|
||||
|
||||
static void test_sequence(void)
|
||||
{
|
||||
regex_term_t *terms = malloc(3 * sizeof(regex_term_t));
|
||||
terms[0].quantifier = REGEX_QUANTIFIER_NONE;
|
||||
terms[0].type = REGEX_TERM_LITERAL;
|
||||
parse_term_t *terms = malloc(3 * sizeof(parse_term_t));
|
||||
terms[0].quantifier = PARSE_QUANTIFIER_NONE;
|
||||
terms[0].type = PARSE_TERM_LITERAL;
|
||||
terms[0].literal = 'a';
|
||||
terms[1].quantifier = REGEX_QUANTIFIER_NONE;
|
||||
terms[1].type = REGEX_TERM_LITERAL;
|
||||
terms[1].quantifier = PARSE_QUANTIFIER_NONE;
|
||||
terms[1].type = PARSE_TERM_LITERAL;
|
||||
terms[1].literal = 'b';
|
||||
terms[2].quantifier = REGEX_QUANTIFIER_NONE;
|
||||
terms[2].type = REGEX_TERM_LITERAL;
|
||||
terms[2].quantifier = PARSE_QUANTIFIER_NONE;
|
||||
terms[2].type = PARSE_TERM_LITERAL;
|
||||
terms[2].literal = 'c';
|
||||
regex_sequence_t *alternatives = malloc(1 * sizeof(regex_sequence_t));
|
||||
parse_sequence_t *alternatives = malloc(1 * sizeof(parse_sequence_t));
|
||||
alternatives[0].count = alternatives[0].capacity = 3;
|
||||
alternatives[0].contents = terms;
|
||||
regex_t regex = { .count = 1, .capacity = 1, .contents = alternatives };
|
||||
parse_tree_t regex
|
||||
= { .count = 1, .capacity = 1, .contents = alternatives };
|
||||
|
||||
fsa_t fsa;
|
||||
construct_nfa(®ex, &fsa);
|
||||
@@ -101,24 +127,25 @@ static void test_sequence(void)
|
||||
ASSERT_FALSE(accepts(&fsa, "d"));
|
||||
ASSERT_FALSE(accepts(&fsa, "abcd"));
|
||||
|
||||
regex_free(®ex);
|
||||
parse_tree_free(®ex);
|
||||
fsa_free(&fsa);
|
||||
}
|
||||
|
||||
static void test_union(void)
|
||||
{
|
||||
const char *literals = "abc";
|
||||
regex_sequence_t *alternatives = malloc(3 * sizeof(regex_sequence_t));
|
||||
parse_sequence_t *alternatives = malloc(3 * sizeof(parse_sequence_t));
|
||||
for (int i = 0; i < 3; ++i) {
|
||||
regex_term_t *terms = malloc(1 * sizeof(regex_term_t));
|
||||
terms[0].quantifier = REGEX_QUANTIFIER_NONE;
|
||||
terms[0].type = REGEX_TERM_LITERAL;
|
||||
parse_term_t *terms = malloc(1 * sizeof(parse_term_t));
|
||||
terms[0].quantifier = PARSE_QUANTIFIER_NONE;
|
||||
terms[0].type = PARSE_TERM_LITERAL;
|
||||
terms[0].literal = literals[i];
|
||||
|
||||
alternatives[i].count = alternatives[i].capacity = 1;
|
||||
alternatives[i].contents = terms;
|
||||
}
|
||||
regex_t regex = { .count = 3, .capacity = 3, .contents = alternatives };
|
||||
parse_tree_t regex
|
||||
= { .count = 3, .capacity = 3, .contents = alternatives };
|
||||
|
||||
fsa_t fsa;
|
||||
construct_nfa(®ex, &fsa);
|
||||
@@ -129,20 +156,21 @@ static void test_union(void)
|
||||
ASSERT_FALSE(accepts(&fsa, "d"));
|
||||
ASSERT_FALSE(accepts(&fsa, "aa"));
|
||||
|
||||
regex_free(®ex);
|
||||
parse_tree_free(®ex);
|
||||
fsa_free(&fsa);
|
||||
}
|
||||
|
||||
static void test_star(void)
|
||||
{
|
||||
regex_term_t *terms = malloc(1 * sizeof(regex_term_t));
|
||||
terms[0].quantifier = REGEX_QUANTIFIER_STAR;
|
||||
terms[0].type = REGEX_TERM_LITERAL;
|
||||
parse_term_t *terms = malloc(1 * sizeof(parse_term_t));
|
||||
terms[0].quantifier = PARSE_QUANTIFIER_STAR;
|
||||
terms[0].type = PARSE_TERM_LITERAL;
|
||||
terms[0].literal = 'a';
|
||||
regex_sequence_t *alternatives = malloc(1 * sizeof(regex_sequence_t));
|
||||
parse_sequence_t *alternatives = malloc(1 * sizeof(parse_sequence_t));
|
||||
alternatives[0].count = alternatives[0].capacity = 1;
|
||||
alternatives[0].contents = terms;
|
||||
regex_t regex = { .count = 1, .capacity = 1, .contents = alternatives };
|
||||
parse_tree_t regex
|
||||
= { .count = 1, .capacity = 1, .contents = alternatives };
|
||||
|
||||
fsa_t fsa;
|
||||
construct_nfa(®ex, &fsa);
|
||||
@@ -152,29 +180,78 @@ static void test_star(void)
|
||||
ASSERT_TRUE(accepts(&fsa, "aaaaaa"));
|
||||
ASSERT_FALSE(accepts(&fsa, "b"));
|
||||
|
||||
regex_free(®ex);
|
||||
parse_tree_free(®ex);
|
||||
fsa_free(&fsa);
|
||||
}
|
||||
|
||||
static void test_plus(void)
|
||||
{
|
||||
parse_term_t *terms = malloc(1 * sizeof(parse_term_t));
|
||||
terms[0].quantifier = PARSE_QUANTIFIER_PLUS;
|
||||
terms[0].type = PARSE_TERM_LITERAL;
|
||||
terms[0].literal = 'a';
|
||||
parse_sequence_t *alternatives = malloc(1 * sizeof(parse_sequence_t));
|
||||
alternatives[0].count = alternatives[0].capacity = 1;
|
||||
alternatives[0].contents = terms;
|
||||
parse_tree_t regex
|
||||
= { .count = 1, .capacity = 1, .contents = alternatives };
|
||||
|
||||
fsa_t fsa;
|
||||
construct_nfa(®ex, &fsa);
|
||||
|
||||
ASSERT_TRUE(accepts(&fsa, "a"));
|
||||
ASSERT_TRUE(accepts(&fsa, "aaaaaa"));
|
||||
ASSERT_FALSE(accepts(&fsa, ""));
|
||||
ASSERT_FALSE(accepts(&fsa, "b"));
|
||||
|
||||
parse_tree_free(®ex);
|
||||
fsa_free(&fsa);
|
||||
}
|
||||
|
||||
static void test_qmark(void)
|
||||
{
|
||||
parse_term_t *terms = malloc(1 * sizeof(parse_term_t));
|
||||
terms[0].quantifier = PARSE_QUANTIFIER_QMARK;
|
||||
terms[0].type = PARSE_TERM_LITERAL;
|
||||
terms[0].literal = 'a';
|
||||
parse_sequence_t *alternatives = malloc(1 * sizeof(parse_sequence_t));
|
||||
alternatives[0].count = alternatives[0].capacity = 1;
|
||||
alternatives[0].contents = terms;
|
||||
parse_tree_t regex
|
||||
= { .count = 1, .capacity = 1, .contents = alternatives };
|
||||
|
||||
fsa_t fsa;
|
||||
construct_nfa(®ex, &fsa);
|
||||
|
||||
ASSERT_TRUE(accepts(&fsa, ""));
|
||||
ASSERT_TRUE(accepts(&fsa, "a"));
|
||||
ASSERT_FALSE(accepts(&fsa, "aa"));
|
||||
ASSERT_FALSE(accepts(&fsa, "b"));
|
||||
|
||||
parse_tree_free(®ex);
|
||||
fsa_free(&fsa);
|
||||
}
|
||||
|
||||
static void test_subexpression(void)
|
||||
{
|
||||
regex_term_t *inner_terms = malloc(1 * sizeof(regex_term_t));
|
||||
inner_terms[0].quantifier = REGEX_QUANTIFIER_NONE;
|
||||
inner_terms[0].type = REGEX_TERM_LITERAL;
|
||||
parse_term_t *inner_terms = malloc(1 * sizeof(parse_term_t));
|
||||
inner_terms[0].quantifier = PARSE_QUANTIFIER_NONE;
|
||||
inner_terms[0].type = PARSE_TERM_LITERAL;
|
||||
inner_terms[0].literal = 'a';
|
||||
regex_sequence_t *inner_alternatives
|
||||
= malloc(1 * sizeof(regex_sequence_t));
|
||||
parse_sequence_t *inner_alternatives
|
||||
= malloc(1 * sizeof(parse_sequence_t));
|
||||
inner_alternatives[0].count = inner_alternatives[0].capacity = 1;
|
||||
inner_alternatives[0].contents = inner_terms;
|
||||
regex_term_t *terms = malloc(1 * sizeof(regex_term_t));
|
||||
terms[0].quantifier = REGEX_QUANTIFIER_NONE;
|
||||
terms[0].type = REGEX_TERM_SUBEXPR;
|
||||
parse_term_t *terms = malloc(1 * sizeof(parse_term_t));
|
||||
terms[0].quantifier = PARSE_QUANTIFIER_NONE;
|
||||
terms[0].type = PARSE_TERM_SUBEXPR;
|
||||
terms[0].subexpr.count = terms[0].subexpr.capacity = 1;
|
||||
terms[0].subexpr.contents = inner_alternatives;
|
||||
regex_sequence_t *alternatives = malloc(1 * sizeof(regex_sequence_t));
|
||||
parse_sequence_t *alternatives = malloc(1 * sizeof(parse_sequence_t));
|
||||
alternatives[0].count = alternatives[0].capacity = 1;
|
||||
alternatives[0].contents = terms;
|
||||
regex_t regex = { .count = 1, .capacity = 1, .contents = alternatives };
|
||||
parse_tree_t regex
|
||||
= { .count = 1, .capacity = 1, .contents = alternatives };
|
||||
|
||||
fsa_t fsa;
|
||||
construct_nfa(®ex, &fsa);
|
||||
@@ -182,42 +259,108 @@ static void test_subexpression(void)
|
||||
ASSERT_TRUE(accepts(&fsa, "a"));
|
||||
ASSERT_FALSE(accepts(&fsa, "b"));
|
||||
|
||||
regex_free(®ex);
|
||||
parse_tree_free(®ex);
|
||||
fsa_free(&fsa);
|
||||
}
|
||||
|
||||
static void test_class(void)
|
||||
{
|
||||
char *class_contents = malloc(3);
|
||||
class_contents[0] = 'a';
|
||||
class_contents[1] = 'b';
|
||||
class_contents[2] = 'c';
|
||||
parse_term_t *terms = malloc(1 * sizeof(parse_term_t));
|
||||
terms[0].quantifier = PARSE_QUANTIFIER_NONE;
|
||||
terms[0].type = PARSE_TERM_CLASS;
|
||||
terms[0].class.negated = false;
|
||||
terms[0].class.count = terms[0].class.capacity = 3;
|
||||
terms[0].class.contents = class_contents;
|
||||
parse_sequence_t *alternatives = malloc(1 * sizeof(parse_sequence_t));
|
||||
alternatives[0].count = alternatives[0].capacity = 1;
|
||||
alternatives[0].contents = terms;
|
||||
const parse_tree_t regex
|
||||
= { .count = 1, .capacity = 1, .contents = alternatives };
|
||||
|
||||
fsa_t fsa;
|
||||
construct_nfa(®ex, &fsa);
|
||||
|
||||
ASSERT_TRUE(accepts(&fsa, "a"));
|
||||
ASSERT_TRUE(accepts(&fsa, "b"));
|
||||
ASSERT_TRUE(accepts(&fsa, "c"));
|
||||
ASSERT_FALSE(accepts(&fsa, ""));
|
||||
ASSERT_FALSE(accepts(&fsa, "aa"));
|
||||
ASSERT_FALSE(accepts(&fsa, "d"));
|
||||
|
||||
parse_tree_free(®ex);
|
||||
fsa_free(&fsa);
|
||||
}
|
||||
|
||||
static void test_negated_class(void)
|
||||
{
|
||||
char *class_contents = malloc(3);
|
||||
class_contents[0] = 'a';
|
||||
class_contents[1] = 'b';
|
||||
class_contents[2] = 'c';
|
||||
parse_term_t *terms = malloc(1 * sizeof(parse_term_t));
|
||||
terms[0].quantifier = PARSE_QUANTIFIER_NONE;
|
||||
terms[0].type = PARSE_TERM_CLASS;
|
||||
terms[0].class.negated = true;
|
||||
terms[0].class.count = terms[0].class.capacity = 3;
|
||||
terms[0].class.contents = class_contents;
|
||||
parse_sequence_t *alternatives = malloc(1 * sizeof(parse_sequence_t));
|
||||
alternatives[0].count = alternatives[0].capacity = 1;
|
||||
alternatives[0].contents = terms;
|
||||
const parse_tree_t regex
|
||||
= { .count = 1, .capacity = 1, .contents = alternatives };
|
||||
|
||||
fsa_t fsa;
|
||||
construct_nfa(®ex, &fsa);
|
||||
|
||||
ASSERT_TRUE(accepts(&fsa, "d"));
|
||||
ASSERT_TRUE(accepts(&fsa, "e"));
|
||||
ASSERT_FALSE(accepts(&fsa, "a"));
|
||||
ASSERT_FALSE(accepts(&fsa, "b"));
|
||||
ASSERT_FALSE(accepts(&fsa, "c"));
|
||||
ASSERT_FALSE(accepts(&fsa, ""));
|
||||
ASSERT_FALSE(accepts(&fsa, "aa"));
|
||||
|
||||
parse_tree_free(®ex);
|
||||
fsa_free(&fsa);
|
||||
}
|
||||
|
||||
static void test_sequence_containing_starred_union(void)
|
||||
{
|
||||
// ab(c|d)*
|
||||
regex_term_t *inner_terms0 = malloc(1 * sizeof(regex_term_t));
|
||||
inner_terms0[0].quantifier = REGEX_QUANTIFIER_NONE;
|
||||
inner_terms0[0].type = REGEX_TERM_LITERAL;
|
||||
parse_term_t *inner_terms0 = malloc(1 * sizeof(parse_term_t));
|
||||
inner_terms0[0].quantifier = PARSE_QUANTIFIER_NONE;
|
||||
inner_terms0[0].type = PARSE_TERM_LITERAL;
|
||||
inner_terms0[0].literal = 'c';
|
||||
regex_term_t *inner_terms1 = malloc(1 * sizeof(regex_term_t));
|
||||
inner_terms1[0].quantifier = REGEX_QUANTIFIER_NONE;
|
||||
inner_terms1[0].type = REGEX_TERM_LITERAL;
|
||||
parse_term_t *inner_terms1 = malloc(1 * sizeof(parse_term_t));
|
||||
inner_terms1[0].quantifier = PARSE_QUANTIFIER_NONE;
|
||||
inner_terms1[0].type = PARSE_TERM_LITERAL;
|
||||
inner_terms1[0].literal = 'd';
|
||||
regex_sequence_t *inner_alternatives
|
||||
= malloc(2 * sizeof(regex_sequence_t));
|
||||
parse_sequence_t *inner_alternatives
|
||||
= malloc(2 * sizeof(parse_sequence_t));
|
||||
inner_alternatives[0].count = inner_alternatives[0].capacity = 1;
|
||||
inner_alternatives[0].contents = inner_terms0;
|
||||
inner_alternatives[1].count = inner_alternatives[1].capacity = 1;
|
||||
inner_alternatives[1].contents = inner_terms1;
|
||||
regex_term_t *terms = malloc(3 * sizeof(regex_term_t));
|
||||
terms[0].quantifier = REGEX_QUANTIFIER_NONE;
|
||||
terms[0].type = REGEX_TERM_LITERAL;
|
||||
parse_term_t *terms = malloc(3 * sizeof(parse_term_t));
|
||||
terms[0].quantifier = PARSE_QUANTIFIER_NONE;
|
||||
terms[0].type = PARSE_TERM_LITERAL;
|
||||
terms[0].literal = 'a';
|
||||
terms[1].quantifier = REGEX_QUANTIFIER_NONE;
|
||||
terms[1].type = REGEX_TERM_LITERAL;
|
||||
terms[1].quantifier = PARSE_QUANTIFIER_NONE;
|
||||
terms[1].type = PARSE_TERM_LITERAL;
|
||||
terms[1].literal = 'b';
|
||||
terms[2].quantifier = REGEX_QUANTIFIER_STAR;
|
||||
terms[2].type = REGEX_TERM_SUBEXPR;
|
||||
terms[2].quantifier = PARSE_QUANTIFIER_STAR;
|
||||
terms[2].type = PARSE_TERM_SUBEXPR;
|
||||
terms[2].subexpr.count = terms[2].subexpr.capacity = 2;
|
||||
terms[2].subexpr.contents = inner_alternatives;
|
||||
regex_sequence_t *alternatives = malloc(1 * sizeof(regex_sequence_t));
|
||||
parse_sequence_t *alternatives = malloc(1 * sizeof(parse_sequence_t));
|
||||
alternatives[0].count = alternatives[0].capacity = 3;
|
||||
alternatives[0].contents = terms;
|
||||
regex_t regex = { .count = 1, .capacity = 1, .contents = alternatives };
|
||||
parse_tree_t regex
|
||||
= { .count = 1, .capacity = 1, .contents = alternatives };
|
||||
|
||||
fsa_t fsa;
|
||||
construct_nfa(®ex, &fsa);
|
||||
@@ -233,7 +376,7 @@ static void test_sequence_containing_starred_union(void)
|
||||
ASSERT_FALSE(accepts(&fsa, "d"));
|
||||
ASSERT_FALSE(accepts(&fsa, "foo"));
|
||||
|
||||
regex_free(®ex);
|
||||
parse_tree_free(®ex);
|
||||
fsa_free(&fsa);
|
||||
}
|
||||
|
||||
@@ -241,23 +384,24 @@ static void
|
||||
test_union_of_single_term_and_sequence_containing_starred_term(void)
|
||||
{
|
||||
// a|b*c
|
||||
regex_term_t *terms0 = malloc(1 * sizeof(regex_term_t));
|
||||
terms0[0].quantifier = REGEX_QUANTIFIER_NONE;
|
||||
terms0[0].type = REGEX_TERM_LITERAL;
|
||||
parse_term_t *terms0 = malloc(1 * sizeof(parse_term_t));
|
||||
terms0[0].quantifier = PARSE_QUANTIFIER_NONE;
|
||||
terms0[0].type = PARSE_TERM_LITERAL;
|
||||
terms0[0].literal = 'a';
|
||||
regex_term_t *terms1 = malloc(2 * sizeof(regex_term_t));
|
||||
terms1[0].quantifier = REGEX_QUANTIFIER_STAR;
|
||||
terms1[0].type = REGEX_TERM_LITERAL;
|
||||
parse_term_t *terms1 = malloc(2 * sizeof(parse_term_t));
|
||||
terms1[0].quantifier = PARSE_QUANTIFIER_STAR;
|
||||
terms1[0].type = PARSE_TERM_LITERAL;
|
||||
terms1[0].literal = 'b';
|
||||
terms1[1].quantifier = REGEX_QUANTIFIER_NONE;
|
||||
terms1[1].type = REGEX_TERM_LITERAL;
|
||||
terms1[1].quantifier = PARSE_QUANTIFIER_NONE;
|
||||
terms1[1].type = PARSE_TERM_LITERAL;
|
||||
terms1[1].literal = 'c';
|
||||
regex_sequence_t *alternatives = malloc(2 * sizeof(regex_sequence_t));
|
||||
parse_sequence_t *alternatives = malloc(2 * sizeof(parse_sequence_t));
|
||||
alternatives[0].count = alternatives[0].capacity = 1;
|
||||
alternatives[0].contents = terms0;
|
||||
alternatives[1].count = alternatives[1].capacity = 2;
|
||||
alternatives[1].contents = terms1;
|
||||
regex_t regex = { .count = 2, .capacity = 2, .contents = alternatives };
|
||||
parse_tree_t regex
|
||||
= { .count = 2, .capacity = 2, .contents = alternatives };
|
||||
|
||||
fsa_t fsa;
|
||||
construct_nfa(®ex, &fsa);
|
||||
@@ -269,7 +413,49 @@ test_union_of_single_term_and_sequence_containing_starred_term(void)
|
||||
ASSERT_FALSE(accepts(&fsa, "foo"));
|
||||
ASSERT_FALSE(accepts(&fsa, "ba"));
|
||||
|
||||
regex_free(®ex);
|
||||
parse_tree_free(®ex);
|
||||
fsa_free(&fsa);
|
||||
}
|
||||
|
||||
static void test_sequence_of_subexpr_a_or_empty_and_b(void)
|
||||
{
|
||||
// (a|ε)b
|
||||
parse_term_t *inner_terms0 = malloc(1 * sizeof(parse_term_t));
|
||||
inner_terms0[0].quantifier = PARSE_QUANTIFIER_NONE;
|
||||
inner_terms0[0].type = PARSE_TERM_LITERAL;
|
||||
inner_terms0[0].literal = 'a';
|
||||
parse_term_t *inner_terms1 = malloc(1 * sizeof(parse_term_t));
|
||||
inner_terms1[0].quantifier = PARSE_QUANTIFIER_NONE;
|
||||
inner_terms1[0].type = PARSE_TERM_EMPTY;
|
||||
parse_sequence_t *inner_alternatives
|
||||
= malloc(2 * sizeof(parse_sequence_t));
|
||||
inner_alternatives[0].count = inner_alternatives[0].capacity = 1;
|
||||
inner_alternatives[0].contents = inner_terms0;
|
||||
inner_alternatives[1].count = inner_alternatives[1].capacity = 1;
|
||||
inner_alternatives[1].contents = inner_terms1;
|
||||
parse_term_t *terms = malloc(2 * sizeof(parse_term_t));
|
||||
terms[0].quantifier = PARSE_QUANTIFIER_NONE;
|
||||
terms[0].type = PARSE_TERM_SUBEXPR;
|
||||
terms[0].subexpr.count = terms[0].subexpr.capacity = 2;
|
||||
terms[0].subexpr.contents = inner_alternatives;
|
||||
terms[1].quantifier = PARSE_QUANTIFIER_NONE;
|
||||
terms[1].type = PARSE_TERM_LITERAL;
|
||||
terms[1].literal = 'b';
|
||||
parse_sequence_t *alternatives = malloc(1 * sizeof(parse_sequence_t));
|
||||
alternatives[0].count = alternatives[0].capacity = 2;
|
||||
alternatives[0].contents = terms;
|
||||
parse_tree_t regex
|
||||
= { .count = 1, .capacity = 1, .contents = alternatives };
|
||||
|
||||
fsa_t fsa;
|
||||
construct_nfa(®ex, &fsa);
|
||||
|
||||
ASSERT_TRUE(accepts(&fsa, "ab"));
|
||||
ASSERT_TRUE(accepts(&fsa, "b"));
|
||||
ASSERT_FALSE(accepts(&fsa, ""));
|
||||
ASSERT_FALSE(accepts(&fsa, "a"));
|
||||
|
||||
parse_tree_free(®ex);
|
||||
fsa_free(&fsa);
|
||||
}
|
||||
|
||||
@@ -280,14 +466,20 @@ int main(void)
|
||||
// Base cases
|
||||
test_empty_expression();
|
||||
test_literal_expression();
|
||||
test_wildcard();
|
||||
test_sequence();
|
||||
test_union();
|
||||
test_star();
|
||||
test_plus();
|
||||
test_qmark();
|
||||
test_subexpression();
|
||||
test_class();
|
||||
test_negated_class();
|
||||
|
||||
// Compound expressions
|
||||
test_sequence_containing_starred_union();
|
||||
test_union_of_single_term_and_sequence_containing_starred_term();
|
||||
test_sequence_of_subexpr_a_or_empty_and_b();
|
||||
|
||||
return TESTING_END();
|
||||
}
|
||||
|
||||
@@ -1,357 +0,0 @@
|
||||
/*
|
||||
* Copyright (c) Camden Dixie O'Brien
|
||||
* SPDX-License-Identifier: AGPL-3.0-only
|
||||
*/
|
||||
|
||||
#include "desugar.h"
|
||||
#include "testing.h"
|
||||
|
||||
#include <stddef.h>
|
||||
|
||||
static void a_is_unchanged(void)
|
||||
{
|
||||
regex_term_t *terms = malloc(1 * sizeof(regex_term_t));
|
||||
terms[0].quantifier = REGEX_QUANTIFIER_NONE;
|
||||
terms[0].type = REGEX_TERM_LITERAL;
|
||||
terms[0].literal = 'a';
|
||||
regex_sequence_t *alternatives = malloc(1 * sizeof(regex_sequence_t));
|
||||
alternatives[0].count = alternatives[0].capacity = 1;
|
||||
alternatives[0].contents = terms;
|
||||
regex_t t = { .count = 1, .capacity = 1, .contents = alternatives };
|
||||
|
||||
desugar_regex(&t);
|
||||
|
||||
ASSERT_EQ(1, t.count);
|
||||
ASSERT_NOT_NULL(t.contents);
|
||||
ASSERT_EQ(1, t.contents[0].count);
|
||||
ASSERT_NOT_NULL(t.contents[0].contents);
|
||||
ASSERT_EQ(REGEX_QUANTIFIER_NONE, t.contents[0].contents[0].quantifier);
|
||||
ASSERT_EQ(REGEX_TERM_LITERAL, t.contents[0].contents[0].type);
|
||||
ASSERT_EQ('a', t.contents[0].contents[0].literal);
|
||||
|
||||
regex_free(&t);
|
||||
}
|
||||
|
||||
static void abc_is_unchanged(void)
|
||||
{
|
||||
regex_term_t *terms = malloc(3 * sizeof(regex_term_t));
|
||||
terms[0].type = REGEX_TERM_LITERAL;
|
||||
terms[0].literal = 'a';
|
||||
terms[1].type = REGEX_TERM_LITERAL;
|
||||
terms[1].literal = 'b';
|
||||
terms[2].type = REGEX_TERM_LITERAL;
|
||||
terms[2].literal = 'c';
|
||||
regex_sequence_t *alternatives = malloc(1 * sizeof(regex_sequence_t));
|
||||
alternatives[0].count = alternatives[0].capacity = 3;
|
||||
alternatives[0].contents = terms;
|
||||
regex_t t = { .count = 1, .capacity = 1, .contents = alternatives };
|
||||
|
||||
desugar_regex(&t);
|
||||
|
||||
ASSERT_EQ(1, t.count);
|
||||
ASSERT_NOT_NULL(t.contents);
|
||||
ASSERT_EQ(3, t.contents[0].count);
|
||||
ASSERT_NOT_NULL(t.contents[0].contents);
|
||||
ASSERT_EQ(REGEX_TERM_LITERAL, t.contents[0].contents[0].type);
|
||||
ASSERT_EQ('a', t.contents[0].contents[0].literal);
|
||||
ASSERT_NOT_NULL(t.contents[0].contents);
|
||||
ASSERT_EQ(REGEX_TERM_LITERAL, t.contents[0].contents[1].type);
|
||||
ASSERT_EQ('b', t.contents[0].contents[1].literal);
|
||||
ASSERT_NOT_NULL(t.contents[0].contents);
|
||||
ASSERT_EQ(REGEX_TERM_LITERAL, t.contents[0].contents[2].type);
|
||||
ASSERT_EQ('c', t.contents[0].contents[2].literal);
|
||||
|
||||
regex_free(&t);
|
||||
}
|
||||
|
||||
static void a_star_is_unchanged(void)
|
||||
{
|
||||
regex_term_t *terms = malloc(1 * sizeof(regex_term_t));
|
||||
terms[0].quantifier = REGEX_QUANTIFIER_STAR;
|
||||
terms[0].type = REGEX_TERM_LITERAL;
|
||||
terms[0].literal = 'a';
|
||||
regex_sequence_t *alternatives = malloc(1 * sizeof(regex_sequence_t));
|
||||
alternatives[0].count = alternatives[0].capacity = 1;
|
||||
alternatives[0].contents = terms;
|
||||
regex_t t = { .count = 1, .capacity = 1, .contents = alternatives };
|
||||
|
||||
desugar_regex(&t);
|
||||
|
||||
ASSERT_EQ(1, t.count);
|
||||
ASSERT_NOT_NULL(t.contents);
|
||||
ASSERT_EQ(1, t.contents[0].count);
|
||||
ASSERT_NOT_NULL(t.contents[0].contents);
|
||||
ASSERT_EQ(REGEX_QUANTIFIER_STAR, t.contents[0].contents[0].quantifier);
|
||||
ASSERT_EQ(REGEX_TERM_LITERAL, t.contents[0].contents[0].type);
|
||||
ASSERT_EQ('a', t.contents[0].contents[0].literal);
|
||||
|
||||
regex_free(&t);
|
||||
}
|
||||
|
||||
static void a_or_b_or_c_is_unchanged(void)
|
||||
{
|
||||
const char *literals = "abc";
|
||||
regex_sequence_t *alternatives = malloc(3 * sizeof(regex_sequence_t));
|
||||
for (int i = 0; i < 3; ++i) {
|
||||
regex_term_t *terms = malloc(1 * sizeof(regex_term_t));
|
||||
terms[0].quantifier = REGEX_QUANTIFIER_NONE;
|
||||
terms[0].type = REGEX_TERM_LITERAL;
|
||||
terms[0].literal = literals[i];
|
||||
|
||||
alternatives[i].count = alternatives[i].capacity = 1;
|
||||
alternatives[i].contents = terms;
|
||||
}
|
||||
regex_t t = { .count = 3, .capacity = 3, .contents = alternatives };
|
||||
|
||||
desugar_regex(&t);
|
||||
|
||||
ASSERT_EQ(3, t.count);
|
||||
ASSERT_NOT_NULL(t.contents);
|
||||
for (int i = 0; i < 3; ++i) {
|
||||
ASSERT_EQ(1, t.contents[i].count);
|
||||
ASSERT_NOT_NULL(t.contents[i].contents);
|
||||
ASSERT_EQ(
|
||||
REGEX_QUANTIFIER_NONE, t.contents[i].contents[0].quantifier);
|
||||
ASSERT_EQ(REGEX_TERM_LITERAL, t.contents[i].contents[0].type);
|
||||
ASSERT_EQ(literals[i], t.contents[i].contents[0].literal);
|
||||
}
|
||||
|
||||
regex_free(&t);
|
||||
}
|
||||
|
||||
static void subexpr_a_is_unchanged(void)
|
||||
{
|
||||
regex_term_t *inner_terms = malloc(1 * sizeof(regex_term_t));
|
||||
inner_terms[0].quantifier = REGEX_QUANTIFIER_NONE;
|
||||
inner_terms[0].type = REGEX_TERM_LITERAL;
|
||||
inner_terms[0].literal = 'a';
|
||||
regex_sequence_t *inner_alternatives
|
||||
= malloc(1 * sizeof(regex_sequence_t));
|
||||
inner_alternatives[0].count = inner_alternatives[0].capacity = 1;
|
||||
inner_alternatives[0].contents = inner_terms;
|
||||
regex_term_t *terms = malloc(1 * sizeof(regex_term_t));
|
||||
terms[0].quantifier = REGEX_QUANTIFIER_NONE;
|
||||
terms[0].type = REGEX_TERM_SUBEXPR;
|
||||
terms[0].subexpr.count = terms[0].subexpr.capacity = 1;
|
||||
terms[0].subexpr.contents = inner_alternatives;
|
||||
regex_sequence_t *alternatives = malloc(1 * sizeof(regex_sequence_t));
|
||||
alternatives[0].count = alternatives[0].capacity = 1;
|
||||
alternatives[0].contents = terms;
|
||||
regex_t t = { .count = 1, .capacity = 1, .contents = alternatives };
|
||||
|
||||
desugar_regex(&t);
|
||||
|
||||
ASSERT_EQ(1, t.count);
|
||||
ASSERT_NOT_NULL(t.contents);
|
||||
ASSERT_EQ(1, t.contents[0].count);
|
||||
ASSERT_NOT_NULL(t.contents[0].contents);
|
||||
ASSERT_EQ(REGEX_QUANTIFIER_NONE, t.contents[0].contents[0].quantifier);
|
||||
ASSERT_EQ(REGEX_TERM_SUBEXPR, t.contents[0].contents[0].type);
|
||||
|
||||
const regex_t *inner = &t.contents[0].contents[0].subexpr;
|
||||
ASSERT_EQ(1, inner->count);
|
||||
ASSERT_NOT_NULL(inner->contents);
|
||||
ASSERT_EQ(1, inner->contents[0].count);
|
||||
ASSERT_NOT_NULL(inner->contents[0].contents);
|
||||
ASSERT_EQ(
|
||||
REGEX_QUANTIFIER_NONE, inner->contents[0].contents[0].quantifier);
|
||||
ASSERT_EQ(REGEX_TERM_LITERAL, inner->contents[0].contents[0].type);
|
||||
ASSERT_EQ('a', inner->contents[0].contents[0].literal);
|
||||
|
||||
regex_free(&t);
|
||||
}
|
||||
|
||||
static void a_plus_becomes_subexpr_aa_star(void)
|
||||
{
|
||||
regex_term_t *terms = malloc(1 * sizeof(regex_term_t));
|
||||
terms[0].quantifier = REGEX_QUANTIFIER_PLUS;
|
||||
terms[0].type = REGEX_TERM_LITERAL;
|
||||
terms[0].literal = 'a';
|
||||
regex_sequence_t *alternatives = malloc(1 * sizeof(regex_sequence_t));
|
||||
alternatives[0].count = alternatives[0].capacity = 1;
|
||||
alternatives[0].contents = terms;
|
||||
regex_t t = { .count = 1, .capacity = 1, .contents = alternatives };
|
||||
|
||||
desugar_regex(&t);
|
||||
|
||||
ASSERT_EQ(1, t.count);
|
||||
ASSERT_NOT_NULL(t.contents);
|
||||
ASSERT_EQ(1, t.contents[0].count);
|
||||
ASSERT_NOT_NULL(t.contents[0].contents);
|
||||
ASSERT_EQ(REGEX_QUANTIFIER_NONE, t.contents[0].contents[0].quantifier);
|
||||
ASSERT_EQ(REGEX_TERM_SUBEXPR, t.contents[0].contents[0].type);
|
||||
|
||||
const regex_t *inner = &t.contents[0].contents[0].subexpr;
|
||||
ASSERT_EQ(1, inner->count);
|
||||
ASSERT_NOT_NULL(inner->contents);
|
||||
ASSERT_EQ(2, inner->contents[0].count);
|
||||
ASSERT_NOT_NULL(inner->contents[0].contents);
|
||||
ASSERT_EQ(
|
||||
REGEX_QUANTIFIER_NONE, inner->contents[0].contents[0].quantifier);
|
||||
ASSERT_EQ(REGEX_TERM_LITERAL, inner->contents[0].contents[0].type);
|
||||
ASSERT_EQ('a', inner->contents[0].contents[0].literal);
|
||||
ASSERT_EQ(
|
||||
REGEX_QUANTIFIER_STAR, inner->contents[0].contents[1].quantifier);
|
||||
ASSERT_EQ(REGEX_TERM_LITERAL, inner->contents[0].contents[1].type);
|
||||
ASSERT_EQ('a', inner->contents[0].contents[1].literal);
|
||||
|
||||
regex_free(&t);
|
||||
}
|
||||
|
||||
static void a_qmark_becomes_subexpr_empty_or_a(void)
|
||||
{
|
||||
regex_term_t *terms = malloc(1 * sizeof(regex_term_t));
|
||||
terms[0].quantifier = REGEX_QUANTIFIER_QMARK;
|
||||
terms[0].type = REGEX_TERM_LITERAL;
|
||||
terms[0].literal = 'a';
|
||||
regex_sequence_t *alternatives = malloc(1 * sizeof(regex_sequence_t));
|
||||
alternatives[0].count = alternatives[0].capacity = 1;
|
||||
alternatives[0].contents = terms;
|
||||
regex_t t = { .count = 1, .capacity = 1, .contents = alternatives };
|
||||
|
||||
desugar_regex(&t);
|
||||
|
||||
ASSERT_EQ(1, t.count);
|
||||
ASSERT_NOT_NULL(t.contents);
|
||||
ASSERT_EQ(1, t.contents[0].count);
|
||||
ASSERT_NOT_NULL(t.contents[0].contents);
|
||||
ASSERT_EQ(REGEX_QUANTIFIER_NONE, t.contents[0].contents[0].quantifier);
|
||||
ASSERT_EQ(REGEX_TERM_SUBEXPR, t.contents[0].contents[0].type);
|
||||
|
||||
const regex_t *inner = &t.contents[0].contents[0].subexpr;
|
||||
ASSERT_EQ(2, inner->count);
|
||||
ASSERT_NOT_NULL(inner->contents);
|
||||
ASSERT_EQ(1, inner->contents[0].count);
|
||||
ASSERT_NOT_NULL(inner->contents[0].contents);
|
||||
ASSERT_EQ(
|
||||
REGEX_QUANTIFIER_NONE, inner->contents[0].contents[0].quantifier);
|
||||
ASSERT_EQ(REGEX_TERM_EMPTY, inner->contents[0].contents[0].type);
|
||||
ASSERT_EQ(1, inner->contents[1].count);
|
||||
ASSERT_NOT_NULL(inner->contents[1].contents);
|
||||
ASSERT_EQ(
|
||||
REGEX_QUANTIFIER_NONE, inner->contents[1].contents[0].quantifier);
|
||||
ASSERT_EQ(REGEX_TERM_LITERAL, inner->contents[1].contents[0].type);
|
||||
ASSERT_EQ('a', inner->contents[1].contents[0].literal);
|
||||
|
||||
regex_free(&t);
|
||||
}
|
||||
|
||||
static void class_abc_becomes_subexpr_a_or_b_or_c(void)
|
||||
{
|
||||
char *options = malloc(3 * sizeof(char));
|
||||
options[0] = 'a';
|
||||
options[1] = 'b';
|
||||
options[2] = 'c';
|
||||
regex_term_t *terms = malloc(1 * sizeof(regex_term_t));
|
||||
terms[0].quantifier = REGEX_QUANTIFIER_NONE;
|
||||
terms[0].type = REGEX_TERM_CLASS;
|
||||
terms[0].class.negated = false;
|
||||
terms[0].class.count = terms[0].class.capacity = 3;
|
||||
terms[0].class.contents = options;
|
||||
regex_sequence_t *alternatives = malloc(1 * sizeof(regex_sequence_t));
|
||||
alternatives[0].count = alternatives[0].capacity = 1;
|
||||
alternatives[0].contents = terms;
|
||||
regex_t t = { .count = 1, .capacity = 1, .contents = alternatives };
|
||||
|
||||
desugar_regex(&t);
|
||||
|
||||
ASSERT_EQ(1, t.count);
|
||||
ASSERT_NOT_NULL(t.contents);
|
||||
ASSERT_EQ(1, t.contents[0].count);
|
||||
ASSERT_NOT_NULL(t.contents[0].contents);
|
||||
ASSERT_EQ(REGEX_QUANTIFIER_NONE, t.contents[0].contents[0].quantifier);
|
||||
ASSERT_EQ(REGEX_TERM_SUBEXPR, t.contents[0].contents[0].type);
|
||||
|
||||
const regex_t *inner = &t.contents[0].contents[0].subexpr;
|
||||
ASSERT_EQ(3, inner->count);
|
||||
ASSERT_NOT_NULL(inner->contents);
|
||||
ASSERT_EQ(1, inner->contents[0].count);
|
||||
ASSERT_NOT_NULL(inner->contents[0].contents);
|
||||
ASSERT_EQ(
|
||||
REGEX_QUANTIFIER_NONE, inner->contents[0].contents[0].quantifier);
|
||||
ASSERT_EQ(REGEX_TERM_LITERAL, inner->contents[0].contents[0].type);
|
||||
ASSERT_EQ('a', inner->contents[0].contents[0].literal);
|
||||
ASSERT_EQ(1, inner->contents[1].count);
|
||||
ASSERT_NOT_NULL(inner->contents[1].contents);
|
||||
ASSERT_EQ(
|
||||
REGEX_QUANTIFIER_NONE, inner->contents[1].contents[0].quantifier);
|
||||
ASSERT_EQ(REGEX_TERM_LITERAL, inner->contents[1].contents[0].type);
|
||||
ASSERT_EQ('b', inner->contents[1].contents[0].literal);
|
||||
ASSERT_EQ(1, inner->contents[2].count);
|
||||
ASSERT_NOT_NULL(inner->contents[2].contents);
|
||||
ASSERT_EQ(
|
||||
REGEX_QUANTIFIER_NONE, inner->contents[2].contents[0].quantifier);
|
||||
ASSERT_EQ(REGEX_TERM_LITERAL, inner->contents[2].contents[0].type);
|
||||
ASSERT_EQ('c', inner->contents[2].contents[0].literal);
|
||||
|
||||
regex_free(&t);
|
||||
}
|
||||
|
||||
static void subexpr_a_qmark_becomes_subexpr_subexpr_empty_or_a(void)
|
||||
{
|
||||
regex_term_t *inner_terms = malloc(1 * sizeof(regex_term_t));
|
||||
inner_terms[0].quantifier = REGEX_QUANTIFIER_QMARK;
|
||||
inner_terms[0].type = REGEX_TERM_LITERAL;
|
||||
inner_terms[0].literal = 'a';
|
||||
regex_sequence_t *inner_alternatives
|
||||
= malloc(1 * sizeof(regex_sequence_t));
|
||||
inner_alternatives[0].count = inner_alternatives[0].capacity = 1;
|
||||
inner_alternatives[0].contents = inner_terms;
|
||||
regex_term_t *terms = malloc(1 * sizeof(regex_term_t));
|
||||
terms[0].quantifier = REGEX_QUANTIFIER_NONE;
|
||||
terms[0].type = REGEX_TERM_SUBEXPR;
|
||||
terms[0].subexpr.count = terms[0].subexpr.capacity = 1;
|
||||
terms[0].subexpr.contents = inner_alternatives;
|
||||
regex_sequence_t *alternatives = malloc(1 * sizeof(regex_sequence_t));
|
||||
alternatives[0].count = alternatives[0].capacity = 1;
|
||||
alternatives[0].contents = terms;
|
||||
regex_t t = { .count = 1, .capacity = 1, .contents = alternatives };
|
||||
|
||||
desugar_regex(&t);
|
||||
|
||||
ASSERT_EQ(1, t.count);
|
||||
ASSERT_EQ(1, t.contents[0].count);
|
||||
ASSERT_EQ(REGEX_QUANTIFIER_NONE, t.contents[0].contents[0].quantifier);
|
||||
ASSERT_EQ(REGEX_TERM_SUBEXPR, t.contents[0].contents[0].type);
|
||||
|
||||
const regex_t *inner;
|
||||
|
||||
inner = &t.contents[0].contents[0].subexpr;
|
||||
ASSERT_EQ(1, inner->count);
|
||||
ASSERT_EQ(1, inner->contents[0].count);
|
||||
ASSERT_EQ(
|
||||
REGEX_QUANTIFIER_NONE, inner->contents[0].contents[0].quantifier);
|
||||
ASSERT_EQ(REGEX_TERM_SUBEXPR, inner->contents[0].contents[0].type);
|
||||
|
||||
inner = &inner->contents[0].contents[0].subexpr;
|
||||
ASSERT_EQ(2, inner->count);
|
||||
ASSERT_NOT_NULL(inner->contents);
|
||||
ASSERT_EQ(1, inner->contents[0].count);
|
||||
ASSERT_NOT_NULL(inner->contents[0].contents);
|
||||
ASSERT_EQ(
|
||||
REGEX_QUANTIFIER_NONE, inner->contents[0].contents[0].quantifier);
|
||||
ASSERT_EQ(REGEX_TERM_EMPTY, inner->contents[0].contents[0].type);
|
||||
ASSERT_EQ(1, inner->contents[1].count);
|
||||
ASSERT_NOT_NULL(inner->contents[1].contents);
|
||||
ASSERT_EQ(
|
||||
REGEX_QUANTIFIER_NONE, inner->contents[1].contents[0].quantifier);
|
||||
ASSERT_EQ(REGEX_TERM_LITERAL, inner->contents[1].contents[0].type);
|
||||
ASSERT_EQ('a', inner->contents[1].contents[0].literal);
|
||||
|
||||
regex_free(&t);
|
||||
}
|
||||
|
||||
int main(void)
|
||||
{
|
||||
TESTING_BEGIN();
|
||||
a_is_unchanged();
|
||||
abc_is_unchanged();
|
||||
a_star_is_unchanged();
|
||||
a_or_b_or_c_is_unchanged();
|
||||
subexpr_a_is_unchanged();
|
||||
a_plus_becomes_subexpr_aa_star();
|
||||
a_qmark_becomes_subexpr_empty_or_a();
|
||||
class_abc_becomes_subexpr_a_or_b_or_c();
|
||||
subexpr_a_qmark_becomes_subexpr_subexpr_empty_or_a();
|
||||
return TESTING_END();
|
||||
}
|
||||
100
tests/integration_tests.c
Normal file
100
tests/integration_tests.c
Normal file
@@ -0,0 +1,100 @@
|
||||
/*
|
||||
* Copyright (c) Camden Dixie O'Brien
|
||||
* SPDX-License-Identifier: AGPL-3.0-only
|
||||
*/
|
||||
|
||||
#include "compile.h"
|
||||
#include "testing.h"
|
||||
|
||||
static void test_foo_or_bar_regex(void)
|
||||
{
|
||||
fsa_t dfa;
|
||||
const char *regex = "foo|bar";
|
||||
const bool success = compile(regex, strlen(regex), &dfa);
|
||||
ASSERT_TRUE(success);
|
||||
ASSERT_ACCEPTS(&dfa, "foo");
|
||||
ASSERT_ACCEPTS(&dfa, "bar");
|
||||
ASSERT_REJECTS(&dfa, "baz");
|
||||
fsa_free(&dfa);
|
||||
}
|
||||
|
||||
static void test_even_number_of_Is_regex(void)
|
||||
{
|
||||
fsa_t dfa;
|
||||
const char *regex = "(II)*";
|
||||
const bool success = compile(regex, strlen(regex), &dfa);
|
||||
ASSERT_TRUE(success);
|
||||
ASSERT_ACCEPTS(&dfa, "");
|
||||
ASSERT_ACCEPTS(&dfa, "II");
|
||||
ASSERT_ACCEPTS(&dfa, "IIII");
|
||||
ASSERT_ACCEPTS(&dfa, "IIIIIIIIII");
|
||||
ASSERT_REJECTS(&dfa, "III");
|
||||
ASSERT_REJECTS(&dfa, "IIIII");
|
||||
ASSERT_REJECTS(&dfa, "IIIIIIIII");
|
||||
fsa_free(&dfa);
|
||||
}
|
||||
|
||||
static void test_arbitrary_regex_1(void)
|
||||
{
|
||||
fsa_t dfa;
|
||||
const char *regex = "(abc!?)*|dd+";
|
||||
const bool success = compile(regex, strlen(regex), &dfa);
|
||||
ASSERT_TRUE(success);
|
||||
ASSERT_ACCEPTS(&dfa, "abc!abcabc");
|
||||
ASSERT_ACCEPTS(&dfa, "dddddddd");
|
||||
ASSERT_REJECTS(&dfa, "d");
|
||||
ASSERT_REJECTS(&dfa, "abcd");
|
||||
fsa_free(&dfa);
|
||||
}
|
||||
|
||||
static void test_arbitrary_regex_2(void)
|
||||
{
|
||||
fsa_t dfa;
|
||||
const char *regex = "(l|wh)?[aeiou]+";
|
||||
const bool success = compile(regex, strlen(regex), &dfa);
|
||||
ASSERT_TRUE(success);
|
||||
ASSERT_ACCEPTS(&dfa, "laaaa");
|
||||
ASSERT_ACCEPTS(&dfa, "eeeee");
|
||||
ASSERT_ACCEPTS(&dfa, "iii");
|
||||
ASSERT_ACCEPTS(&dfa, "whooo");
|
||||
ASSERT_ACCEPTS(&dfa, "u");
|
||||
ASSERT_REJECTS(&dfa, "wh");
|
||||
ASSERT_REJECTS(&dfa, "lxxx");
|
||||
fsa_free(&dfa);
|
||||
}
|
||||
|
||||
static void test_system_header_include_regex(void)
|
||||
{
|
||||
fsa_t dfa;
|
||||
const char *regex = "#include <[abcdefghijklmnopqrstuvwxyz]+\\.h>";
|
||||
const bool success = compile(regex, strlen(regex), &dfa);
|
||||
ASSERT_TRUE(success);
|
||||
ASSERT_ACCEPTS(&dfa, "#include <stdio.h>");
|
||||
ASSERT_REJECTS(&dfa, "#include \"foo.h\"");
|
||||
fsa_free(&dfa);
|
||||
}
|
||||
|
||||
static void test_quoted_string_regex(void)
|
||||
{
|
||||
fsa_t dfa;
|
||||
const char *regex = "'(\\\\'|[^'])*'";
|
||||
const bool success = compile(regex, strlen(regex), &dfa);
|
||||
ASSERT_TRUE(success);
|
||||
ASSERT_ACCEPTS(&dfa, "''");
|
||||
ASSERT_ACCEPTS(&dfa, "'foo bar baz'");
|
||||
ASSERT_ACCEPTS(&dfa, "'foo \\'bar\\' baz'");
|
||||
ASSERT_REJECTS(&dfa, "'foo 'bar' baz'");
|
||||
fsa_free(&dfa);
|
||||
}
|
||||
|
||||
int main(void)
|
||||
{
|
||||
TESTING_BEGIN();
|
||||
test_foo_or_bar_regex();
|
||||
test_even_number_of_Is_regex();
|
||||
test_arbitrary_regex_1();
|
||||
test_arbitrary_regex_2();
|
||||
test_system_header_include_regex();
|
||||
test_quoted_string_regex();
|
||||
return TESTING_END();
|
||||
}
|
||||
@@ -10,268 +10,268 @@
|
||||
|
||||
static void a_has_1_alternative(void)
|
||||
{
|
||||
regex_t t;
|
||||
parse_tree_t t;
|
||||
const int result = PARSE_EXPR_STRING("a", &t);
|
||||
ASSERT_NE(-1, result);
|
||||
ASSERT_EQ(1, t.count);
|
||||
regex_free(&t);
|
||||
parse_tree_free(&t);
|
||||
}
|
||||
|
||||
static void a_pipe_b_has_2_alternatives(void)
|
||||
{
|
||||
regex_t t;
|
||||
parse_tree_t t;
|
||||
const int result = PARSE_EXPR_STRING("a|b", &t);
|
||||
ASSERT_NE(-1, result);
|
||||
ASSERT_EQ(2, t.count);
|
||||
regex_free(&t);
|
||||
parse_tree_free(&t);
|
||||
}
|
||||
|
||||
static void a_pipe_b_pipe_c_has_3_alternatives(void)
|
||||
{
|
||||
regex_t t;
|
||||
parse_tree_t t;
|
||||
const int result = PARSE_EXPR_STRING("a|b|c", &t);
|
||||
ASSERT_NE(-1, result);
|
||||
ASSERT_EQ(3, t.count);
|
||||
regex_free(&t);
|
||||
parse_tree_free(&t);
|
||||
}
|
||||
|
||||
static void a_is_parsed_as_unquantified_literal(void)
|
||||
{
|
||||
regex_t t;
|
||||
parse_tree_t t;
|
||||
const int result = PARSE_EXPR_STRING("a", &t);
|
||||
ASSERT_NE(-1, result);
|
||||
ASSERT_EQ(1, t.count);
|
||||
ASSERT_NOT_NULL(t.contents);
|
||||
|
||||
ASSERT_EQ(1, t.contents[0].count);
|
||||
ASSERT_EQ(REGEX_QUANTIFIER_NONE, t.contents[0].contents[0].quantifier);
|
||||
ASSERT_EQ(REGEX_TERM_LITERAL, t.contents[0].contents[0].type);
|
||||
ASSERT_EQ(PARSE_QUANTIFIER_NONE, t.contents[0].contents[0].quantifier);
|
||||
ASSERT_EQ(PARSE_TERM_LITERAL, t.contents[0].contents[0].type);
|
||||
ASSERT_EQ('a', t.contents[0].contents[0].literal);
|
||||
|
||||
regex_free(&t);
|
||||
parse_tree_free(&t);
|
||||
}
|
||||
|
||||
static void b_is_parsed_as_unquantified_literal(void)
|
||||
{
|
||||
regex_t t;
|
||||
parse_tree_t t;
|
||||
const int result = PARSE_EXPR_STRING("b", &t);
|
||||
ASSERT_NE(-1, result);
|
||||
ASSERT_EQ(1, t.count);
|
||||
ASSERT_NOT_NULL(t.contents);
|
||||
|
||||
ASSERT_EQ(1, t.contents[0].count);
|
||||
ASSERT_EQ(REGEX_QUANTIFIER_NONE, t.contents[0].contents[0].quantifier);
|
||||
ASSERT_EQ(REGEX_TERM_LITERAL, t.contents[0].contents[0].type);
|
||||
ASSERT_EQ(PARSE_QUANTIFIER_NONE, t.contents[0].contents[0].quantifier);
|
||||
ASSERT_EQ(PARSE_TERM_LITERAL, t.contents[0].contents[0].type);
|
||||
ASSERT_EQ('b', t.contents[0].contents[0].literal);
|
||||
|
||||
regex_free(&t);
|
||||
parse_tree_free(&t);
|
||||
}
|
||||
|
||||
static void abc_is_parsed_as_sequence_of_unquantified_literals(void)
|
||||
{
|
||||
regex_t t;
|
||||
parse_tree_t t;
|
||||
const int result = PARSE_EXPR_STRING("abc", &t);
|
||||
ASSERT_NE(-1, result);
|
||||
ASSERT_EQ(1, t.count);
|
||||
ASSERT_NOT_NULL(t.contents);
|
||||
|
||||
ASSERT_EQ(3, t.contents[0].count);
|
||||
ASSERT_EQ(REGEX_QUANTIFIER_NONE, t.contents[0].contents[0].quantifier);
|
||||
ASSERT_EQ(REGEX_TERM_LITERAL, t.contents[0].contents[0].type);
|
||||
ASSERT_EQ(PARSE_QUANTIFIER_NONE, t.contents[0].contents[0].quantifier);
|
||||
ASSERT_EQ(PARSE_TERM_LITERAL, t.contents[0].contents[0].type);
|
||||
ASSERT_EQ('a', t.contents[0].contents[0].literal);
|
||||
ASSERT_EQ(REGEX_QUANTIFIER_NONE, t.contents[0].contents[1].quantifier);
|
||||
ASSERT_EQ(REGEX_TERM_LITERAL, t.contents[0].contents[1].type);
|
||||
ASSERT_EQ(PARSE_QUANTIFIER_NONE, t.contents[0].contents[1].quantifier);
|
||||
ASSERT_EQ(PARSE_TERM_LITERAL, t.contents[0].contents[1].type);
|
||||
ASSERT_EQ('b', t.contents[0].contents[1].literal);
|
||||
ASSERT_EQ(REGEX_QUANTIFIER_NONE, t.contents[0].contents[2].quantifier);
|
||||
ASSERT_EQ(REGEX_TERM_LITERAL, t.contents[0].contents[2].type);
|
||||
ASSERT_EQ(PARSE_QUANTIFIER_NONE, t.contents[0].contents[2].quantifier);
|
||||
ASSERT_EQ(PARSE_TERM_LITERAL, t.contents[0].contents[2].type);
|
||||
ASSERT_EQ('c', t.contents[0].contents[2].literal);
|
||||
|
||||
regex_free(&t);
|
||||
parse_tree_free(&t);
|
||||
}
|
||||
|
||||
static void dot_is_parsed_as_unquantified_wildcard_term(void)
|
||||
{
|
||||
regex_t t;
|
||||
parse_tree_t t;
|
||||
const int result = PARSE_EXPR_STRING(".", &t);
|
||||
ASSERT_NE(-1, result);
|
||||
ASSERT_EQ(1, t.count);
|
||||
ASSERT_NOT_NULL(t.contents);
|
||||
|
||||
ASSERT_EQ(1, t.contents[0].count);
|
||||
ASSERT_EQ(REGEX_QUANTIFIER_NONE, t.contents[0].contents[0].quantifier);
|
||||
ASSERT_EQ(REGEX_TERM_WILDCARD, t.contents[0].contents[0].type);
|
||||
ASSERT_EQ(PARSE_QUANTIFIER_NONE, t.contents[0].contents[0].quantifier);
|
||||
ASSERT_EQ(PARSE_TERM_WILDCARD, t.contents[0].contents[0].type);
|
||||
|
||||
regex_free(&t);
|
||||
parse_tree_free(&t);
|
||||
}
|
||||
|
||||
static void backslash_dot_is_parsed_as_unquantified_literal(void)
|
||||
{
|
||||
regex_t t;
|
||||
parse_tree_t t;
|
||||
const int result = PARSE_EXPR_STRING("\\.", &t);
|
||||
ASSERT_NE(-1, result);
|
||||
ASSERT_EQ(1, t.count);
|
||||
ASSERT_NOT_NULL(t.contents);
|
||||
|
||||
ASSERT_EQ(1, t.contents[0].count);
|
||||
ASSERT_EQ(REGEX_QUANTIFIER_NONE, t.contents[0].contents[0].quantifier);
|
||||
ASSERT_EQ(REGEX_TERM_LITERAL, t.contents[0].contents[0].type);
|
||||
ASSERT_EQ(PARSE_QUANTIFIER_NONE, t.contents[0].contents[0].quantifier);
|
||||
ASSERT_EQ(PARSE_TERM_LITERAL, t.contents[0].contents[0].type);
|
||||
ASSERT_EQ('.', t.contents[0].contents[0].literal);
|
||||
|
||||
regex_free(&t);
|
||||
parse_tree_free(&t);
|
||||
}
|
||||
|
||||
static void backslash_backslash_is_parsed_as_unquantified_literal(void)
|
||||
{
|
||||
regex_t t;
|
||||
parse_tree_t t;
|
||||
const int result = PARSE_EXPR_STRING("\\\\", &t);
|
||||
ASSERT_NE(-1, result);
|
||||
ASSERT_EQ(1, t.count);
|
||||
ASSERT_NOT_NULL(t.contents);
|
||||
|
||||
ASSERT_EQ(1, t.contents[0].count);
|
||||
ASSERT_EQ(REGEX_QUANTIFIER_NONE, t.contents[0].contents[0].quantifier);
|
||||
ASSERT_EQ(REGEX_TERM_LITERAL, t.contents[0].contents[0].type);
|
||||
ASSERT_EQ(PARSE_QUANTIFIER_NONE, t.contents[0].contents[0].quantifier);
|
||||
ASSERT_EQ(PARSE_TERM_LITERAL, t.contents[0].contents[0].type);
|
||||
ASSERT_EQ('\\', t.contents[0].contents[0].literal);
|
||||
|
||||
regex_free(&t);
|
||||
parse_tree_free(&t);
|
||||
}
|
||||
|
||||
static void a_pipe_b_in_parens_is_parsed_as_subexpr_term(void)
|
||||
{
|
||||
regex_t t;
|
||||
parse_tree_t t;
|
||||
const int result = PARSE_EXPR_STRING("(a|b)", &t);
|
||||
ASSERT_NE(-1, result);
|
||||
ASSERT_EQ(1, t.count);
|
||||
ASSERT_NOT_NULL(t.contents);
|
||||
|
||||
ASSERT_EQ(1, t.contents[0].count);
|
||||
ASSERT_EQ(REGEX_QUANTIFIER_NONE, t.contents[0].contents[0].quantifier);
|
||||
ASSERT_EQ(REGEX_TERM_SUBEXPR, t.contents[0].contents[0].type);
|
||||
ASSERT_EQ(PARSE_QUANTIFIER_NONE, t.contents[0].contents[0].quantifier);
|
||||
ASSERT_EQ(PARSE_TERM_SUBEXPR, t.contents[0].contents[0].type);
|
||||
|
||||
const regex_t *inner = &t.contents[0].contents[0].subexpr;
|
||||
const parse_tree_t *inner = &t.contents[0].contents[0].subexpr;
|
||||
ASSERT_EQ(2, inner->count);
|
||||
|
||||
ASSERT_EQ(1, inner->contents[0].count);
|
||||
ASSERT_EQ(
|
||||
REGEX_QUANTIFIER_NONE, inner->contents[0].contents[0].quantifier);
|
||||
ASSERT_EQ(REGEX_TERM_LITERAL, inner->contents[0].contents[0].type);
|
||||
PARSE_QUANTIFIER_NONE, inner->contents[0].contents[0].quantifier);
|
||||
ASSERT_EQ(PARSE_TERM_LITERAL, inner->contents[0].contents[0].type);
|
||||
ASSERT_EQ('a', inner->contents[0].contents[0].literal);
|
||||
|
||||
ASSERT_EQ(1, inner->contents[1].count);
|
||||
ASSERT_EQ(
|
||||
REGEX_QUANTIFIER_NONE, inner->contents[1].contents[0].quantifier);
|
||||
ASSERT_EQ(REGEX_TERM_LITERAL, inner->contents[1].contents[0].type);
|
||||
PARSE_QUANTIFIER_NONE, inner->contents[1].contents[0].quantifier);
|
||||
ASSERT_EQ(PARSE_TERM_LITERAL, inner->contents[1].contents[0].type);
|
||||
ASSERT_EQ('b', inner->contents[1].contents[0].literal);
|
||||
|
||||
regex_free(&t);
|
||||
parse_tree_free(&t);
|
||||
}
|
||||
|
||||
static void a_in_parens_b_is_parsed_as_sequence_with_subexpr_term(void)
|
||||
{
|
||||
regex_t t;
|
||||
parse_tree_t t;
|
||||
const int result = PARSE_EXPR_STRING("(a)b", &t);
|
||||
ASSERT_NE(-1, result);
|
||||
ASSERT_EQ(1, t.count);
|
||||
ASSERT_NOT_NULL(t.contents);
|
||||
|
||||
ASSERT_EQ(2, t.contents[0].count);
|
||||
ASSERT_EQ(REGEX_QUANTIFIER_NONE, t.contents[0].contents[0].quantifier);
|
||||
ASSERT_EQ(REGEX_TERM_SUBEXPR, t.contents[0].contents[0].type);
|
||||
ASSERT_EQ(REGEX_QUANTIFIER_NONE, t.contents[0].contents[1].quantifier);
|
||||
ASSERT_EQ(REGEX_TERM_LITERAL, t.contents[0].contents[1].type);
|
||||
ASSERT_EQ(PARSE_QUANTIFIER_NONE, t.contents[0].contents[0].quantifier);
|
||||
ASSERT_EQ(PARSE_TERM_SUBEXPR, t.contents[0].contents[0].type);
|
||||
ASSERT_EQ(PARSE_QUANTIFIER_NONE, t.contents[0].contents[1].quantifier);
|
||||
ASSERT_EQ(PARSE_TERM_LITERAL, t.contents[0].contents[1].type);
|
||||
ASSERT_EQ('b', t.contents[0].contents[1].literal);
|
||||
|
||||
const regex_t *inner = &t.contents[0].contents[0].subexpr;
|
||||
const parse_tree_t *inner = &t.contents[0].contents[0].subexpr;
|
||||
ASSERT_EQ(1, inner->contents[0].count);
|
||||
ASSERT_EQ(
|
||||
REGEX_QUANTIFIER_NONE, inner->contents[0].contents[0].quantifier);
|
||||
ASSERT_EQ(REGEX_TERM_LITERAL, inner->contents[0].contents[0].type);
|
||||
PARSE_QUANTIFIER_NONE, inner->contents[0].contents[0].quantifier);
|
||||
ASSERT_EQ(PARSE_TERM_LITERAL, inner->contents[0].contents[0].type);
|
||||
ASSERT_EQ('a', inner->contents[0].contents[0].literal);
|
||||
|
||||
regex_free(&t);
|
||||
parse_tree_free(&t);
|
||||
}
|
||||
|
||||
static void dot_star_is_parsed_as_star_quantified_wildcard(void)
|
||||
{
|
||||
regex_t t;
|
||||
parse_tree_t t;
|
||||
const int result = PARSE_EXPR_STRING(".*", &t);
|
||||
ASSERT_NE(-1, result);
|
||||
ASSERT_EQ(1, t.count);
|
||||
ASSERT_NOT_NULL(t.contents);
|
||||
|
||||
ASSERT_EQ(1, t.contents[0].count);
|
||||
ASSERT_EQ(REGEX_QUANTIFIER_STAR, t.contents[0].contents[0].quantifier);
|
||||
ASSERT_EQ(REGEX_TERM_WILDCARD, t.contents[0].contents[0].type);
|
||||
ASSERT_EQ(PARSE_QUANTIFIER_STAR, t.contents[0].contents[0].quantifier);
|
||||
ASSERT_EQ(PARSE_TERM_WILDCARD, t.contents[0].contents[0].type);
|
||||
|
||||
regex_free(&t);
|
||||
parse_tree_free(&t);
|
||||
}
|
||||
|
||||
static void dot_plus_is_parsed_as_plus_quantified_wildcard(void)
|
||||
{
|
||||
regex_t t;
|
||||
parse_tree_t t;
|
||||
const int result = PARSE_EXPR_STRING(".+", &t);
|
||||
ASSERT_NE(-1, result);
|
||||
ASSERT_EQ(1, t.count);
|
||||
ASSERT_NOT_NULL(t.contents);
|
||||
|
||||
ASSERT_EQ(1, t.contents[0].count);
|
||||
ASSERT_EQ(REGEX_QUANTIFIER_PLUS, t.contents[0].contents[0].quantifier);
|
||||
ASSERT_EQ(REGEX_TERM_WILDCARD, t.contents[0].contents[0].type);
|
||||
ASSERT_EQ(PARSE_QUANTIFIER_PLUS, t.contents[0].contents[0].quantifier);
|
||||
ASSERT_EQ(PARSE_TERM_WILDCARD, t.contents[0].contents[0].type);
|
||||
|
||||
regex_free(&t);
|
||||
parse_tree_free(&t);
|
||||
}
|
||||
|
||||
static void dot_question_mark_is_parsed_as_qmrk_quantified_wildcard(void)
|
||||
{
|
||||
regex_t t;
|
||||
parse_tree_t t;
|
||||
const int result = PARSE_EXPR_STRING(".?", &t);
|
||||
ASSERT_NE(-1, result);
|
||||
ASSERT_EQ(1, t.count);
|
||||
ASSERT_NOT_NULL(t.contents);
|
||||
|
||||
ASSERT_EQ(1, t.contents[0].count);
|
||||
ASSERT_EQ(REGEX_QUANTIFIER_QMARK, t.contents[0].contents[0].quantifier);
|
||||
ASSERT_EQ(REGEX_TERM_WILDCARD, t.contents[0].contents[0].type);
|
||||
ASSERT_EQ(PARSE_QUANTIFIER_QMARK, t.contents[0].contents[0].quantifier);
|
||||
ASSERT_EQ(PARSE_TERM_WILDCARD, t.contents[0].contents[0].type);
|
||||
|
||||
regex_free(&t);
|
||||
parse_tree_free(&t);
|
||||
}
|
||||
|
||||
static void a_in_brackets_is_parsed_as_class_containing_only_a(void)
|
||||
{
|
||||
regex_t t;
|
||||
parse_tree_t t;
|
||||
const int result = PARSE_EXPR_STRING("[a]", &t);
|
||||
ASSERT_NE(-1, result);
|
||||
ASSERT_EQ(1, t.count);
|
||||
ASSERT_NOT_NULL(t.contents);
|
||||
|
||||
ASSERT_EQ(1, t.contents[0].count);
|
||||
ASSERT_EQ(REGEX_QUANTIFIER_NONE, t.contents[0].contents[0].quantifier);
|
||||
ASSERT_EQ(REGEX_TERM_CLASS, t.contents[0].contents[0].type);
|
||||
ASSERT_EQ(PARSE_QUANTIFIER_NONE, t.contents[0].contents[0].quantifier);
|
||||
ASSERT_EQ(PARSE_TERM_CLASS, t.contents[0].contents[0].type);
|
||||
ASSERT_FALSE(t.contents[0].contents[0].class.negated);
|
||||
ASSERT_EQ(1, t.contents[0].contents[0].class.count);
|
||||
ASSERT_NOT_NULL(t.contents[0].contents[0].class.contents);
|
||||
ASSERT_EQ('a', t.contents[0].contents[0].class.contents[0]);
|
||||
|
||||
regex_free(&t);
|
||||
parse_tree_free(&t);
|
||||
}
|
||||
|
||||
static void caret_a_in_brackets_parses_as_negated_class(void)
|
||||
{
|
||||
regex_t t;
|
||||
parse_tree_t t;
|
||||
const int result = PARSE_EXPR_STRING("[^a]", &t);
|
||||
ASSERT_NE(-1, result);
|
||||
ASSERT_EQ(1, t.count);
|
||||
ASSERT_NOT_NULL(t.contents);
|
||||
|
||||
ASSERT_EQ(1, t.contents[0].count);
|
||||
ASSERT_EQ(REGEX_QUANTIFIER_NONE, t.contents[0].contents[0].quantifier);
|
||||
ASSERT_EQ(REGEX_TERM_CLASS, t.contents[0].contents[0].type);
|
||||
ASSERT_EQ(PARSE_QUANTIFIER_NONE, t.contents[0].contents[0].quantifier);
|
||||
ASSERT_EQ(PARSE_TERM_CLASS, t.contents[0].contents[0].type);
|
||||
ASSERT_TRUE(t.contents[0].contents[0].class.negated);
|
||||
ASSERT_EQ(1, t.contents[0].contents[0].class.count);
|
||||
ASSERT_NOT_NULL(t.contents[0].contents[0].class.contents);
|
||||
ASSERT_EQ('a', t.contents[0].contents[0].class.contents[0]);
|
||||
|
||||
regex_free(&t);
|
||||
parse_tree_free(&t);
|
||||
}
|
||||
|
||||
int main(void)
|
||||
|
||||
Reference in New Issue
Block a user