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@tavianator
Last active May 1, 2022 14:12
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Ray/bounding box intersection test program
/****************************************************************************
* Copyright (C) 2015 Tavian Barnes <[email protected]> *
* *
* Permission to use, copy, modify, and/or distribute this software for any *
* purpose with or without fee is hereby granted. *
* *
* THE SOFTWARE IS PROVIDED "AS IS" AND THE AUTHOR DISCLAIMS ALL WARRANTIES *
* WITH REGARD TO THIS SOFTWARE INCLUDING ALL IMPLIED WARRANTIES OF *
* MERCHANTABILITY AND FITNESS. IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR *
* ANY SPECIAL, DIRECT, INDIRECT, OR CONSEQUENTIAL DAMAGES OR ANY DAMAGES *
* WHATSOEVER RESULTING FROM LOSS OF USE, DATA OR PROFITS, WHETHER IN AN *
* ACTION OF CONTRACT, NEGLIGENCE OR OTHER TORTIOUS ACTION, ARISING OUT OF *
* OR IN CONNECTION WITH THE USE OR PERFORMANCE OF THIS SOFTWARE. *
****************************************************************************/
#include <math.h>
#include <stdbool.h>
#include <stdio.h>
#include <stdlib.h>
typedef struct {
double origin[3];
double dir_inv[3];
} ray;
typedef struct {
double min[3];
double max[3];
} box;
static inline double min(double x, double y) {
#if SSE
return x < y ? x : y;
#elif IEEE
return y != y ? x : (x < y ? x : y);
#elif JAVA
return x != x ? x : (x < y ? x : y);
#endif
}
static inline double max(double x, double y) {
#if SSE
return x > y ? x : y;
#elif IEEE
return y != y ? x : (x > y ? x : y);
#elif JAVA
return x != x ? x : (x > y ? x : y);
#endif
}
bool intersection(box b, ray r) {
double tmin = -INFINITY, tmax = INFINITY;
for (int i = 0; i < 3; ++i) {
double t1 = (b.min[i] - r.origin[i])*r.dir_inv[i];
double t2 = (b.max[i] - r.origin[i])*r.dir_inv[i];
#if SSE
tmin = max(tmin, min(min(t1, t2), tmax));
tmax = min(tmax, max(max(t1, t2), tmin));
#else
tmin = max(tmin, min(t1, t2));
tmax = min(tmax, max(t1, t2));
#endif
}
return tmax > max(tmin, 0.0);
}
void check_reflections(ray r, bool expected, int* count, int* total) {
box b = {{-1.0, -1.0, -1.0}, {1.0, 1.0, 1.0}};
for (int i = 0; i < 1 << 3; ++i) {
ray rr;
for (int j = 0; j < 3; ++j) {
if (i & (1 << j)) {
rr.origin[j] = -r.origin[j];
rr.dir_inv[j] = -r.dir_inv[j];
} else {
rr.origin[j] = r.origin[j];
rr.dir_inv[j] = r.dir_inv[j];
}
}
if (intersection(b, rr) != expected) {
printf("(%g, %g, %g) + t*(%g, %g, %g): \t%s\n",
rr.origin[0], rr.origin[1], rr.origin[2],
rr.dir_inv[0], rr.dir_inv[1], rr.dir_inv[2],
!expected ? "true" : "false");
} else {
++*count;
}
++*total;
}
}
void check_permutations(ray r, bool expected, int* count, int* total) {
static const int permutations[][3] = {
{0, 1, 2},
{0, 2, 1},
{1, 0, 2},
{1, 2, 0},
{2, 0, 1},
{2, 1, 0},
};
for (int i = 0; i < 6; ++i) {
ray rr;
for (int j = 0; j < 3; ++j) {
rr.origin[j] = r.origin[permutations[i][j]];
rr.dir_inv[j] = r.dir_inv[permutations[i][j]];
}
check_reflections(rr, expected, count, total);
}
}
void check_scaled(double factor, bool expected, int* count, int* total) {
ray r;
r.origin[1] = factor;
r.origin[2] = -2.0;
r.dir_inv[2] = 1.0;
for (int i = -1; i <= 1; ++i) {
r.origin[0] = factor*i;
for (int j = -1; j <= 1; j += 2) {
r.dir_inv[1] = j*INFINITY;
for (int k = 0; k <= 1 - abs(i); ++k) {
r.dir_inv[0] = 8.0/k;
check_permutations(r, expected, count, total);
r.dir_inv[0] = -r.dir_inv[0];
check_permutations(r, expected, count, total);
}
}
}
}
int main() {
int count = 0, total = 0;
check_scaled(1.01, false, &count, &total);
check_scaled(1.00, false, &count, &total);
check_scaled(0.99, true, &count, &total);
printf("%d/%d\n", count, total);
return count == total ? EXIT_SUCCESS : EXIT_FAILURE;
}
@SkybuckFlying
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The code is not suited for "ray segment" intersection of a box. But if you can adept it, try ! I also recommend more test cases ! ;)

@tavianator
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tavianator commented May 1, 2022

@SkybuckFlying For a line segment, you can just start with tmin and tmax equal to the start and end of the segment in intersection().

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