Day 13 parts 1 & 2 (with tons of debug, before code cleaning)
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@@ -108,3 +108,14 @@ The instructions made a square!
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The transparent paper is pretty big, so for now, focus on just completing the first fold. After the first fold in the example above, 17 dots are visible - dots that end up overlapping after the fold is completed count as a single dot.
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How many dots are visible after completing just the first fold instruction on your transparent paper?
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Your puzzle answer was 802.
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--- Part Two ---
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Finish folding the transparent paper according to the instructions. The manual says the code is always eight capital letters.
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What code do you use to activate the infrared thermal imaging camera system?
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Your puzzle answer was RKHFZGUB.
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Both parts of this puzzle are complete! They provide two gold stars: **
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234
2021/day13/aoc-c.c
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234
2021/day13/aoc-c.c
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/* aoc-c.c: Advent of Code 2021, day 13 parts 1 & 2
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*
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* Copyright (C) 2021 Bruno Raoult ("br")
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* Licensed under the GNU General Public License v3.0 or later.
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* Some rights reserved. See COPYING.
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*
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* You should have received a copy of the GNU General Public License along with this
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* program. If not, see <https://www.gnu.org/licenses/gpl-3.0-standalone.html>.
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*
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* SPDX-License-Identifier: GPL-3.0-or-later <https://spdx.org/licenses/GPL-3.0-or-later.html>
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*/
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#include <stdio.h>
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#include <stdlib.h>
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#include <unistd.h>
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#include <string.h>
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#include <malloc.h>
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#include <ctype.h>
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#include "debug.h"
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#include "pool.h"
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#include "bits.h"
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#include "list.h"
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#define MAX_POINTS 1024
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#define MAX_FLIPS 1024
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typedef struct square {
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int x;
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int y;
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} square_t;
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typedef struct flip {
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char xy; /* 0: x, 1: y */
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int val;
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} flip_t;
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static square_t points[MAX_POINTS]; /* points list */
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static int npoints; /* ... and size */
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static flip_t flips[MAX_FLIPS]; /* flips list */
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static int nflips; /* ... and size */
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static void print_points()
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{
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int i;
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log(2, "points (%d) :\n", npoints);
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for (i = 0; i < npoints; ++i)
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log(2, "x=%d y=%d\n", points[i].x, points[i].y);
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}
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static void print_dots()
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{
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int prevx = 0, prevy = 0, x = 0, y = 0;
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log(2, "points (%d) :\n", npoints);
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for (int i = 0; i < npoints; ++i) {
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y = points[i].y;
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if (y != prevy) {
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printf("\n");
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prevy = y;
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x = 0;
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}
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/* print spaces before next point */
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while(x < points[i].x) {
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printf(".");
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x++;
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}
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x++;
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printf("#");
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}
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printf("\n");
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}
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static void print_flips()
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{
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int i;
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log(2, "flips (%d) :\n", nflips);
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for (i = 0; i < nflips; ++i)
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log_i(2, "xy=%c val=%d\n", flips[i].xy, flips[i].val);
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}
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/* sort array and pack it (remove duplicates). sort by y first, then x.
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*/
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static void ins_sort_points()
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{
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for (int i = 1, j = 0; i < npoints; i++, j = i - 1) {
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square_t cur = points[i];
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while (j >= 0 && ((points[j].y > cur.y) ||
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((points[j].y == cur.y) && (points[j].x > cur.x)))) {
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points[j + 1] = points[j];
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j = j - 1;
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}
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points[j + 1] = cur;
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}
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int cur = 0;
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//if array is empty
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// or contains a single element
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if (npoints > 1) {
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for (int i = 0; i < npoints - 1; ++i) {
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if (points[i].x != points[i + 1].x || points[i].y != points[i + 1].y) {
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points[cur++] = points[i];
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}
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}
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points[cur++] = points[npoints-1];
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}
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npoints = cur;
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return;
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}
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static void flipx(int n)
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{
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for (int i = 0; i < npoints; ++i) {
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square_t *p = points+i;
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if (points[i].x > n) {
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log(3, "flipping %d,%d -> ", p->x, p->y);
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p->x = 2 * n - p->x;
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log(3, "%d,%d\n", p->x, p->y);
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}
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}
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}
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static void flipy(int n)
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{
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for (int i = 0; i < npoints; ++i) {
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square_t *p = points+i;
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if (points[i].y > n) {
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log(3, "flipping %d,%d -> ", p->x, p->y);
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p->y = 2 * n - p->y;
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log(3, "%d,%d\n", p->x, p->y);
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}
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}
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}
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/* read data and create graph.
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*/
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static int read_input()
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{
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ssize_t len;
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size_t alloc = 0;
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char *buf;
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/* get points list */
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while ((len = getline(&buf, &alloc, stdin)) > 1) {
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sscanf(buf, "%d,%d", &points[npoints].x, &points[npoints].y);
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npoints++;
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//log(1, "len=%d x=%d, y=%d ss=%d\n", len, x, y, ss);
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}
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/* get flip list */
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while ((len = getline(&buf, &alloc, stdin)) > 1) {
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sscanf(buf, "fold along %c=%d", &flips[nflips].xy, &flips[nflips].val);
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nflips++;
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//log(1, "len=%d x=%d, y=%d ss=%d\n", len, x, y, ss);
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}
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free(buf);
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return 1;
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}
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static int part1()
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{
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print_points();
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print_flips();
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ins_sort_points();
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print_points();
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if (flips[0].xy == 'x') {
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flipx(flips[0].val);
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} else {
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flipy(flips[0].val);
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}
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ins_sort_points();
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print_points();
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return npoints;
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}
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static int part2()
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{
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print_points();
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print_flips();
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ins_sort_points();
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print_points();
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for (int i = 0; i < nflips; ++i) {
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if (flips[i].xy == 'x') {
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flipx(flips[i].val);
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} else {
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flipy(flips[i].val);
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}
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}
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ins_sort_points();
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print_points();
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print_dots();
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return npoints;
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}
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static int doit(int part)
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{
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read_input();
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return part == 1? part1(): part2();
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}
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static int usage(char *prg)
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{
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fprintf(stderr, "Usage: %s [-d debug_level] [-p part]\n", prg);
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return 1;
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}
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int main(int ac, char **av)
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{
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int opt, part = 1;
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while ((opt = getopt(ac, av, "d:p:")) != -1) {
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switch (opt) {
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case 'd':
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debug_level_set(atoi(optarg));
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break;
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case 'p': /* 1 or 2 */
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part = atoi(optarg);
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if (part < 1 || part > 2)
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return usage(*av);
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break;
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default:
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return usage(*av);
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}
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}
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if (optind < ac)
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return usage(*av);
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printf("%s : res=%d\n", *av, doit(part));
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exit (0);
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}
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