1 1.14 dholland /* $NetBSD: torped.c,v 1.14 2009/05/24 23:20:22 dholland Exp $ */ 2 1.3 cgd 3 1.1 cgd /* 4 1.3 cgd * Copyright (c) 1980, 1993 5 1.3 cgd * The Regents of the University of California. All rights reserved. 6 1.1 cgd * 7 1.1 cgd * Redistribution and use in source and binary forms, with or without 8 1.1 cgd * modification, are permitted provided that the following conditions 9 1.1 cgd * are met: 10 1.1 cgd * 1. Redistributions of source code must retain the above copyright 11 1.1 cgd * notice, this list of conditions and the following disclaimer. 12 1.1 cgd * 2. Redistributions in binary form must reproduce the above copyright 13 1.1 cgd * notice, this list of conditions and the following disclaimer in the 14 1.1 cgd * documentation and/or other materials provided with the distribution. 15 1.7 agc * 3. Neither the name of the University nor the names of its contributors 16 1.1 cgd * may be used to endorse or promote products derived from this software 17 1.1 cgd * without specific prior written permission. 18 1.1 cgd * 19 1.1 cgd * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND 20 1.1 cgd * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE 21 1.1 cgd * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE 22 1.1 cgd * ARE DISCLAIMED. IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE 23 1.1 cgd * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL 24 1.1 cgd * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS 25 1.1 cgd * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION) 26 1.1 cgd * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT 27 1.1 cgd * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY 28 1.1 cgd * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF 29 1.1 cgd * SUCH DAMAGE. 30 1.1 cgd */ 31 1.1 cgd 32 1.4 christos #include <sys/cdefs.h> 33 1.1 cgd #ifndef lint 34 1.3 cgd #if 0 35 1.3 cgd static char sccsid[] = "@(#)torped.c 8.1 (Berkeley) 5/31/93"; 36 1.3 cgd #else 37 1.14 dholland __RCSID("$NetBSD: torped.c,v 1.14 2009/05/24 23:20:22 dholland Exp $"); 38 1.3 cgd #endif 39 1.1 cgd #endif /* not lint */ 40 1.1 cgd 41 1.4 christos #include <stdio.h> 42 1.6 matt #include <stdlib.h> 43 1.4 christos #include <math.h> 44 1.4 christos #include "trek.h" 45 1.4 christos #include "getpar.h" 46 1.1 cgd 47 1.1 cgd /* 48 1.1 cgd ** PHOTON TORPEDO CONTROL 49 1.1 cgd ** 50 1.1 cgd ** Either one or three photon torpedoes are fired. If three 51 1.1 cgd ** are fired, it is called a "burst" and you also specify 52 1.1 cgd ** a spread angle. 53 1.1 cgd ** 54 1.1 cgd ** Torpedoes are never 100% accurate. There is always a random 55 1.1 cgd ** cludge factor in their course which is increased if you have 56 1.1 cgd ** your shields up. Hence, you will find that they are more 57 1.1 cgd ** accurate at close range. However, they have the advantage that 58 1.1 cgd ** at long range they don't lose any of their power as phasers 59 1.1 cgd ** do, i.e., a hit is a hit is a hit, by any other name. 60 1.1 cgd ** 61 1.1 cgd ** When the course spreads too much, you get a misfire, and the 62 1.1 cgd ** course is randomized even more. You also have the chance that 63 1.1 cgd ** the misfire damages your torpedo tubes. 64 1.1 cgd */ 65 1.1 cgd 66 1.8 jsm static int randcourse(int); 67 1.1 cgd 68 1.4 christos /*ARGSUSED*/ 69 1.4 christos void 70 1.10 dholland torped(int v __unused) 71 1.1 cgd { 72 1.4 christos int ix, iy; 73 1.4 christos double x, y, dx, dy; 74 1.4 christos double angle; 75 1.4 christos int course, course2; 76 1.4 christos int k; 77 1.4 christos double bigger; 78 1.4 christos double sectsize; 79 1.4 christos int burst; 80 1.4 christos int n; 81 1.1 cgd 82 1.12 dholland if (Ship.cloaked) { 83 1.13 dholland printf("Federation regulations do not permit attack while " 84 1.13 dholland "cloaked.\n"); 85 1.4 christos return; 86 1.1 cgd } 87 1.1 cgd if (check_out(TORPED)) 88 1.1 cgd return; 89 1.12 dholland if (Ship.torped <= 0) { 90 1.4 christos printf("All photon torpedos expended\n"); 91 1.4 christos return; 92 1.1 cgd } 93 1.1 cgd 94 1.1 cgd /* get the course */ 95 1.1 cgd course = getintpar("Torpedo course"); 96 1.1 cgd if (course < 0 || course > 360) 97 1.1 cgd return; 98 1.1 cgd burst = -1; 99 1.1 cgd 100 1.1 cgd /* need at least three torpedoes for a burst */ 101 1.12 dholland if (Ship.torped < 3) { 102 1.1 cgd printf("No-burst mode selected\n"); 103 1.1 cgd burst = 0; 104 1.12 dholland } else { 105 1.1 cgd /* see if the user wants one */ 106 1.12 dholland if (!testnl()) { 107 1.14 dholland k = ungetc(getchar(), stdin); 108 1.1 cgd if (k >= '0' && k <= '9') 109 1.1 cgd burst = 1; 110 1.1 cgd } 111 1.1 cgd } 112 1.12 dholland if (burst < 0) { 113 1.1 cgd burst = getynpar("Do you want a burst"); 114 1.1 cgd } 115 1.12 dholland if (burst) { 116 1.1 cgd burst = getintpar("burst angle"); 117 1.1 cgd if (burst <= 0) 118 1.1 cgd return; 119 1.4 christos if (burst > 15) { 120 1.4 christos printf("Maximum burst angle is 15 degrees\n"); 121 1.4 christos return; 122 1.4 christos } 123 1.1 cgd } 124 1.1 cgd sectsize = NSECTS; 125 1.1 cgd n = -1; 126 1.12 dholland if (burst) { 127 1.1 cgd n = 1; 128 1.1 cgd course -= burst; 129 1.1 cgd } 130 1.12 dholland for (; n && n <= 3; n++) { 131 1.1 cgd /* select a nice random course */ 132 1.1 cgd course2 = course + randcourse(n); 133 1.12 dholland /* convert to radians */ 134 1.12 dholland angle = course2 * 0.0174532925; 135 1.1 cgd dx = -cos(angle); 136 1.1 cgd dy = sin(angle); 137 1.1 cgd bigger = fabs(dx); 138 1.1 cgd x = fabs(dy); 139 1.1 cgd if (x > bigger) 140 1.1 cgd bigger = x; 141 1.1 cgd dx /= bigger; 142 1.1 cgd dy /= bigger; 143 1.1 cgd x = Ship.sectx + 0.5; 144 1.1 cgd y = Ship.secty + 0.5; 145 1.1 cgd if (Ship.cond != DOCKED) 146 1.1 cgd Ship.torped -= 1; 147 1.1 cgd printf("Torpedo track"); 148 1.1 cgd if (n > 0) 149 1.1 cgd printf(", torpedo number %d", n); 150 1.1 cgd printf(":\n%6.1f\t%4.1f\n", x, y); 151 1.12 dholland while (1) { 152 1.1 cgd ix = x += dx; 153 1.1 cgd iy = y += dy; 154 1.13 dholland if (x < 0.0 || x >= sectsize || 155 1.13 dholland y < 0.0 || y >= sectsize) { 156 1.1 cgd printf("Torpedo missed\n"); 157 1.1 cgd break; 158 1.1 cgd } 159 1.1 cgd printf("%6.1f\t%4.1f\n", x, y); 160 1.12 dholland switch (Sect[ix][iy]) { 161 1.1 cgd case EMPTY: 162 1.1 cgd continue; 163 1.11 dholland 164 1.1 cgd case HOLE: 165 1.13 dholland printf("Torpedo disappears into a black " 166 1.13 dholland "hole\n"); 167 1.1 cgd break; 168 1.1 cgd 169 1.1 cgd case KLINGON: 170 1.12 dholland for (k = 0; k < Etc.nkling; k++) { 171 1.13 dholland if (Etc.klingon[k].x != ix || 172 1.13 dholland Etc.klingon[k].y != iy) 173 1.1 cgd continue; 174 1.1 cgd Etc.klingon[k].power -= 500 + ranf(501); 175 1.12 dholland if (Etc.klingon[k].power > 0) { 176 1.13 dholland printf("*** Hit on Klingon at " 177 1.13 dholland "%d,%d: extensive " 178 1.13 dholland "damages\n", 179 1.1 cgd ix, iy); 180 1.1 cgd break; 181 1.1 cgd } 182 1.1 cgd killk(ix, iy); 183 1.1 cgd break; 184 1.1 cgd } 185 1.1 cgd break; 186 1.11 dholland 187 1.1 cgd case STAR: 188 1.1 cgd nova(ix, iy); 189 1.1 cgd break; 190 1.11 dholland 191 1.1 cgd case INHABIT: 192 1.1 cgd kills(ix, iy, -1); 193 1.1 cgd break; 194 1.11 dholland 195 1.1 cgd case BASE: 196 1.1 cgd killb(Ship.quadx, Ship.quady); 197 1.1 cgd Game.killb += 1; 198 1.1 cgd break; 199 1.11 dholland 200 1.1 cgd default: 201 1.1 cgd printf("Unknown object %c at %d,%d destroyed\n", 202 1.1 cgd Sect[ix][iy], ix, iy); 203 1.1 cgd Sect[ix][iy] = EMPTY; 204 1.1 cgd break; 205 1.1 cgd } 206 1.1 cgd break; 207 1.1 cgd } 208 1.1 cgd if (damaged(TORPED) || Quad[Ship.quadx][Ship.quady].stars < 0) 209 1.1 cgd break; 210 1.1 cgd course += burst; 211 1.1 cgd } 212 1.1 cgd Move.free = 0; 213 1.1 cgd } 214 1.1 cgd 215 1.1 cgd 216 1.1 cgd /* 217 1.1 cgd ** RANDOMIZE COURSE 218 1.1 cgd ** 219 1.1 cgd ** This routine randomizes the course for torpedo number 'n'. 220 1.1 cgd ** Other things handled by this routine are misfires, damages 221 1.1 cgd ** to the tubes, etc. 222 1.1 cgd */ 223 1.1 cgd 224 1.4 christos static int 225 1.10 dholland randcourse(int n) 226 1.1 cgd { 227 1.1 cgd double r; 228 1.4 christos int d; 229 1.1 cgd 230 1.1 cgd d = ((franf() + franf()) - 1.0) * 20; 231 1.12 dholland if (abs(d) > 12) { 232 1.1 cgd printf("Photon tubes misfire"); 233 1.1 cgd if (n < 0) 234 1.1 cgd printf("\n"); 235 1.1 cgd else 236 1.1 cgd printf(" on torpedo %d\n", n); 237 1.12 dholland if (ranf(2)) { 238 1.1 cgd damage(TORPED, 0.2 * abs(d) * (franf() + 1.0)); 239 1.1 cgd } 240 1.1 cgd d *= 1.0 + 2.0 * franf(); 241 1.1 cgd } 242 1.12 dholland if (Ship.shldup || Ship.cond == DOCKED) { 243 1.1 cgd r = Ship.shield; 244 1.1 cgd r = 1.0 + r / Param.shield; 245 1.1 cgd if (Ship.cond == DOCKED) 246 1.1 cgd r = 2.0; 247 1.1 cgd d *= r; 248 1.1 cgd } 249 1.1 cgd return (d); 250 1.1 cgd } 251