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#include <assert.h>
#include <stdio.h>
#include <stdbool.h>
#include <stdlib.h>
#include <cglm/cglm.h>
struct parameter {
double x;
double y;
bool fixed;
};
enum constraint_type {
CONSTRAINT_DISTANCE,
CONSTRAINT_ANGLE,
};
struct distance_params {
double distance;
struct parameter *p1;
struct parameter *p2;
};
struct angle_params {
double distance;
struct parameter *p11;
struct parameter *p12;
struct parameter *p21;
struct parameter *p22;
};
struct constraint {
enum constraint_type type;
bool applied;
union {
struct distance_params distance;
struct angle_params angle;
};
};
struct placement {
struct parameter *param;
vec2 pos;
};
struct cdset {
struct placement p[16];
size_t num;
};
struct caset {
struct parameter *p11;
struct parameter *p12;
struct parameter *p21;
struct parameter *p22;
};
ssize_t find_param_in_cd(struct cdset *cd, struct parameter *param) {
for(size_t i = 0; i < cd->num; i++) {
if(cd->p[i].param == param) return i;
}
return -1;
}
bool find_connecting_set(struct cdset cd[], size_t cd_count, size_t i, struct parameter *params, size_t *i_idx, size_t *i_rev, size_t *set1, size_t *set1_idx, size_t *set1_rev, size_t *set2, size_t *set2_idx, size_t *set2_rev) {
struct cdset *base_cd = &cd[i];
size_t first_seen[10] = {};
size_t first_seen_idx[10] = {};
size_t first_seen_shd[10] = {};
size_t first_seen_i[10] = {};
for(size_t j = 0; j < base_cd->num; j++) {
for(size_t k = i+1; k < cd_count; k++) {
struct cdset *candidate = &cd[k];
ssize_t contained = find_param_in_cd(candidate, base_cd->p[j].param);
if(contained >= 0) {
for(size_t w = 0; w < candidate->num; w++) {
if(contained == w) continue;
size_t candidate_param_idx = candidate->p[w].param - params;
if(first_seen[candidate_param_idx] != 0) {
*i_rev = j;
*i_idx = first_seen_i[candidate_param_idx];
*set1 = first_seen[candidate_param_idx];
*set1_idx = first_seen_shd[candidate_param_idx];
*set1_rev = first_seen_idx[candidate_param_idx];
*set2 = k;
*set2_idx = contained;
*set2_rev = w;
return true;
}
first_seen[candidate_param_idx] = k;
first_seen_shd[candidate_param_idx] = contained;
first_seen_idx[candidate_param_idx] = w;
first_seen_i[candidate_param_idx] = j;
}
}
}
}
return false;
}
int main(int argc, char *argv[]) {
struct parameter params[10] = {};
struct constraint constraints[] = {
{
.type = CONSTRAINT_DISTANCE,
.applied = false,
.distance = {
.distance = 10,
.p1 = ¶ms[0],
.p2 = ¶ms[1],
},
},
{
.type = CONSTRAINT_DISTANCE,
.applied = false,
.distance = {
.distance = 10,
.p1 = ¶ms[1],
.p2 = ¶ms[2],
},
},
{
.type = CONSTRAINT_DISTANCE,
.applied = false,
.distance = {
.distance = 10,
.p1 = ¶ms[0],
.p2 = ¶ms[2],
},
},
};
struct cdset cd[128] = {};
size_t cd_cur = 0;
struct caset ca[128] = {};
size_t ca_cur = 0;
for(size_t i = 0; i < sizeof(constraints)/sizeof(constraints[0]); i++) {
struct constraint *c = &constraints[i];
if(c->type == CONSTRAINT_DISTANCE) {
cd[cd_cur].p[cd[cd_cur].num ].param = c->distance.p1;
cd[cd_cur].p[cd[cd_cur].num ].pos[0] = 0.0;
cd[cd_cur].p[cd[cd_cur].num++].pos[1] = 0.0;
cd[cd_cur].p[cd[cd_cur].num ].param = c->distance.p2;
cd[cd_cur].p[cd[cd_cur].num ].pos[0] = c->distance.distance;
cd[cd_cur].p[cd[cd_cur].num++].pos[1] = 0.0;
cd_cur++;
} else if(c->type == CONSTRAINT_ANGLE) {
ca[ca_cur].p11 = c->angle.p11;
ca[ca_cur].p12 = c->angle.p12;
ca[ca_cur].p21 = c->angle.p21;
ca[ca_cur].p22 = c->angle.p22;
ca_cur++;
}
}
while(true) {
for(size_t i = 0; i < cd_cur; i++) {
struct cdset *cur = &cd[i];
size_t i_idx;
size_t i_rev;
size_t set1;
size_t set1_idx;
size_t set1_rev;
size_t set2;
size_t set2_idx;
size_t set2_rev;
if(find_connecting_set(cd, cd_cur, i, params, &i_idx, &i_rev, &set1, &set1_idx, &set1_rev, &set2, &set2_idx, &set2_rev)) {
// Find the parameters of the triangle the three sides have to
// construct
vec2 side_a;
glm_vec2_sub(cur->p[i_rev].pos, cur->p[i_idx].pos, side_a);
double a_len = glm_vec2_norm(side_a);
vec2 side_b;
glm_vec2_sub(cd[set1].p[set1_rev].pos, cd[set1].p[set1_idx].pos, side_b);
double b_len = glm_vec2_norm(side_b);
vec2 side_c;
glm_vec2_sub(cd[set2].p[set2_rev].pos, cd[set2].p[set2_idx].pos, side_c);
double c_len = glm_vec2_norm(side_c);
double b_theta = acos((pow(c_len, 2) + pow(a_len, 2) - pow(b_len, 2)) / (2 * c_len * a_len));
double c_theta = acos((pow(a_len, 2) + pow(b_len, 2) - pow(c_len, 2)) / (2 * a_len * b_len));
// Build the transform matrix for set1 and set2, we don't touch
// cur since we let that be the reference
// Merge set1 and set2 into cur
{
mat3 b_transform;
{
vec2 scratch;
glm_mat3_identity(b_transform);
glm_translate2d(b_transform, cur->p[i_idx].pos);
glm_rotate2d(b_transform, acos(glm_vec2_dot(side_b, side_a) / (b_len * a_len)) + c_theta);
glm_vec2_negate_to(cd[set1].p[set1_idx].pos, scratch);
glm_translate2d(b_transform, scratch);
}
vec3 scratch;
scratch[2] = 1;
for(size_t j = 0; j < cd[set1].num; j++) {
if(j == set1_idx) continue;
scratch[0] = cd[set1].p[j].pos[0];
scratch[1] = cd[set1].p[j].pos[1];
glm_mat3_mulv(b_transform, scratch, scratch);
cur->p[cur->num ].pos[0] = scratch[0];
cur->p[cur->num ].pos[1] = scratch[1];
cur->p[cur->num++].param = cd[set1].p[j].param;
}
cd[set1].num = 0;
}
{
mat3 c_transform;
{
vec2 scratch;
glm_mat3_identity(c_transform);
glm_translate2d(c_transform, cur->p[i_rev].pos);
glm_rotate2d(c_transform, acos(glm_vec2_dot(side_c, side_a) / (c_len * a_len)) - b_theta);
glm_vec2_negate_to(cd[set2].p[set2_rev].pos, scratch);
glm_translate2d(c_transform, scratch);
}
vec3 scratch;
scratch[2] = 1;
for(size_t j = 0; j < cd[set2].num; j++) {
if(j == set2_idx || j == set2_rev) continue;
scratch[0] = cd[set2].p[j].pos[0];
scratch[1] = cd[set2].p[j].pos[1];
glm_mat3_mulv(c_transform, scratch, scratch);
cur->p[cur->num ].pos[0] = scratch[0];
cur->p[cur->num ].pos[1] = scratch[1];
cur->p[cur->num++].param = cd[set2].p[j].param;
}
cd[set2].num = 0;
}
}
}
// Apply the DDA1 rule
for(size_t i = 0; i < ca_cur; i++) {
}
for(size_t i = 0; i < cd_cur; i++) {
printf("CD %d\n", i);
for(size_t j = 0; j < cd[i].num; j++) {
printf("p %d %f;%f\n", j, cd[i].p[j].pos[0], cd[i].p[j].pos[1]);
}
}
}
printf("%ld\n", cd_cur);
}
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