1*88447a05SGarrett D'Amore /* 2*88447a05SGarrett D'Amore * CDDL HEADER START 3*88447a05SGarrett D'Amore * 4*88447a05SGarrett D'Amore * The contents of this file are subject to the terms of the 5*88447a05SGarrett D'Amore * Common Development and Distribution License (the "License"). 6*88447a05SGarrett D'Amore * You may not use this file except in compliance with the License. 7*88447a05SGarrett D'Amore * 8*88447a05SGarrett D'Amore * You can obtain a copy of the license at usr/src/OPENSOLARIS.LICENSE 9*88447a05SGarrett D'Amore * or http://www.opensolaris.org/os/licensing. 10*88447a05SGarrett D'Amore * See the License for the specific language governing permissions 11*88447a05SGarrett D'Amore * and limitations under the License. 12*88447a05SGarrett D'Amore * 13*88447a05SGarrett D'Amore * When distributing Covered Code, include this CDDL HEADER in each 14*88447a05SGarrett D'Amore * file and include the License file at usr/src/OPENSOLARIS.LICENSE. 15*88447a05SGarrett D'Amore * If applicable, add the following below this CDDL HEADER, with the 16*88447a05SGarrett D'Amore * fields enclosed by brackets "[]" replaced with your own identifying 17*88447a05SGarrett D'Amore * information: Portions Copyright [yyyy] [name of copyright owner] 18*88447a05SGarrett D'Amore * 19*88447a05SGarrett D'Amore * CDDL HEADER END 20*88447a05SGarrett D'Amore */ 21*88447a05SGarrett D'Amore /* 22*88447a05SGarrett D'Amore * Copyright (C) 4Front Technologies 1996-2008. 23*88447a05SGarrett D'Amore * 24*88447a05SGarrett D'Amore * Copyright 2009 Sun Microsystems, Inc. All rights reserved. 25*88447a05SGarrett D'Amore * Use is subject to license terms. 26*88447a05SGarrett D'Amore */ 27*88447a05SGarrett D'Amore /* 28*88447a05SGarrett D'Amore * Purpose: Test sounds for osstest 29*88447a05SGarrett D'Amore * 30*88447a05SGarrett D'Amore * Nodoc: 31*88447a05SGarrett D'Amore */ 32*88447a05SGarrett D'Amore 33*88447a05SGarrett D'Amore #include <string.h> 34*88447a05SGarrett D'Amore 35*88447a05SGarrett D'Amore #include "wavedata.h" 36*88447a05SGarrett D'Amore 37*88447a05SGarrett D'Amore static int 38*88447a05SGarrett D'Amore le_int(const unsigned char *p, int l) 39*88447a05SGarrett D'Amore { 40*88447a05SGarrett D'Amore int i, val; 41*88447a05SGarrett D'Amore 42*88447a05SGarrett D'Amore val = 0; 43*88447a05SGarrett D'Amore 44*88447a05SGarrett D'Amore for (i = l - 1; i >= 0; i--) { 45*88447a05SGarrett D'Amore val = (val << 8) | p[i]; 46*88447a05SGarrett D'Amore } 47*88447a05SGarrett D'Amore 48*88447a05SGarrett D'Amore return (val); 49*88447a05SGarrett D'Amore } 50*88447a05SGarrett D'Amore 51*88447a05SGarrett D'Amore int 52*88447a05SGarrett D'Amore uncompress_wave(short *outbuf) 53*88447a05SGarrett D'Amore { 54*88447a05SGarrett D'Amore #define WAVE_FORMAT_ADPCM 0x0002 55*88447a05SGarrett D'Amore 56*88447a05SGarrett D'Amore int i, n, dataleft, x, l = sizeof (inbuf); 57*88447a05SGarrett D'Amore const unsigned char *hdr = inbuf; 58*88447a05SGarrett D'Amore typedef struct { 59*88447a05SGarrett D'Amore int coeff1, coeff2; 60*88447a05SGarrett D'Amore } 61*88447a05SGarrett D'Amore adpcm_coeff; 62*88447a05SGarrett D'Amore 63*88447a05SGarrett D'Amore adpcm_coeff coeff[32]; 64*88447a05SGarrett D'Amore static int AdaptionTable[] = { 230, 230, 230, 230, 307, 409, 512, 614, 65*88447a05SGarrett D'Amore 768, 614, 512, 409, 307, 230, 230, 230 66*88447a05SGarrett D'Amore }; 67*88447a05SGarrett D'Amore 68*88447a05SGarrett D'Amore unsigned char buf[4096]; 69*88447a05SGarrett D'Amore 70*88447a05SGarrett D'Amore int channels = 1; 71*88447a05SGarrett D'Amore int p = 12, outp = 0; 72*88447a05SGarrett D'Amore int nBlockAlign = 2048; 73*88447a05SGarrett D'Amore int wSamplesPerBlock = 2036, wNumCoeff = 7; 74*88447a05SGarrett D'Amore int nib; 75*88447a05SGarrett D'Amore int ppp; 76*88447a05SGarrett D'Amore 77*88447a05SGarrett D'Amore /* filelen = le_int(&hdr[4], 4); */ 78*88447a05SGarrett D'Amore 79*88447a05SGarrett D'Amore while (p < l - 16 && memcmp(&hdr[p], "data", 4) != 0) { 80*88447a05SGarrett D'Amore n = le_int(&hdr[p + 4], 4); 81*88447a05SGarrett D'Amore 82*88447a05SGarrett D'Amore if (memcmp(&hdr[p], "fmt ", 4) == 0) { 83*88447a05SGarrett D'Amore 84*88447a05SGarrett D'Amore /* fmt = le_int(&hdr[p + 8], 2); */ 85*88447a05SGarrett D'Amore channels = le_int(&hdr[p + 10], 2); 86*88447a05SGarrett D'Amore /* speed = le_int(&hdr[p + 12], 4); */ 87*88447a05SGarrett D'Amore nBlockAlign = le_int(&hdr[p + 20], 2); 88*88447a05SGarrett D'Amore /* bytes_per_sample = le_int(&hdr[p + 20], 2); */ 89*88447a05SGarrett D'Amore 90*88447a05SGarrett D'Amore wSamplesPerBlock = le_int(&hdr[p + 26], 2); 91*88447a05SGarrett D'Amore wNumCoeff = le_int(&hdr[p + 28], 2); 92*88447a05SGarrett D'Amore 93*88447a05SGarrett D'Amore x = p + 30; 94*88447a05SGarrett D'Amore 95*88447a05SGarrett D'Amore for (i = 0; i < wNumCoeff; i++) { 96*88447a05SGarrett D'Amore coeff[i].coeff1 = (short)le_int(&hdr[x], 2); 97*88447a05SGarrett D'Amore x += 2; 98*88447a05SGarrett D'Amore coeff[i].coeff2 = (short)le_int(&hdr[x], 2); 99*88447a05SGarrett D'Amore x += 2; 100*88447a05SGarrett D'Amore } 101*88447a05SGarrett D'Amore } 102*88447a05SGarrett D'Amore 103*88447a05SGarrett D'Amore p += n + 8; 104*88447a05SGarrett D'Amore } 105*88447a05SGarrett D'Amore 106*88447a05SGarrett D'Amore if (p < l - 16 && memcmp(&hdr[p], "data", 4) == 0) { 107*88447a05SGarrett D'Amore 108*88447a05SGarrett D'Amore dataleft = n = le_int(&hdr[p + 4], 4); 109*88447a05SGarrett D'Amore p += 8; 110*88447a05SGarrett D'Amore 111*88447a05SGarrett D'Amore /* 112*88447a05SGarrett D'Amore * Playback procedure 113*88447a05SGarrett D'Amore */ 114*88447a05SGarrett D'Amore #define OUT_SAMPLE(s) { \ 115*88447a05SGarrett D'Amore if (s > 32767) \ 116*88447a05SGarrett D'Amore s = 32767; \ 117*88447a05SGarrett D'Amore else if (s < -32768) \ 118*88447a05SGarrett D'Amore s = -32768; \ 119*88447a05SGarrett D'Amore outbuf[outp++] = s; \ 120*88447a05SGarrett D'Amore n += 2; \ 121*88447a05SGarrett D'Amore } 122*88447a05SGarrett D'Amore 123*88447a05SGarrett D'Amore #define GETNIBBLE \ 124*88447a05SGarrett D'Amore ((nib == 0) ? \ 125*88447a05SGarrett D'Amore (buf[x + nib++] >> 4) & 0x0f : buf[x++ + --nib] & 0x0f) 126*88447a05SGarrett D'Amore 127*88447a05SGarrett D'Amore outp = 0; 128*88447a05SGarrett D'Amore 129*88447a05SGarrett D'Amore ppp = p; 130*88447a05SGarrett D'Amore while (dataleft > nBlockAlign) { 131*88447a05SGarrett D'Amore int predictor[2], delta[2], samp1[2], samp2[2]; 132*88447a05SGarrett D'Amore 133*88447a05SGarrett D'Amore int x = 0; 134*88447a05SGarrett D'Amore 135*88447a05SGarrett D'Amore (void) memcpy(buf, &inbuf[ppp], nBlockAlign); 136*88447a05SGarrett D'Amore ppp += nBlockAlign; 137*88447a05SGarrett D'Amore dataleft -= nBlockAlign; 138*88447a05SGarrett D'Amore 139*88447a05SGarrett D'Amore nib = 0; 140*88447a05SGarrett D'Amore n = 0; 141*88447a05SGarrett D'Amore 142*88447a05SGarrett D'Amore for (i = 0; i < channels; i++) { 143*88447a05SGarrett D'Amore predictor[i] = buf[x]; 144*88447a05SGarrett D'Amore x++; 145*88447a05SGarrett D'Amore } 146*88447a05SGarrett D'Amore 147*88447a05SGarrett D'Amore for (i = 0; i < channels; i++) { 148*88447a05SGarrett D'Amore delta[i] = (short)le_int(&buf[x], 2); 149*88447a05SGarrett D'Amore x += 2; 150*88447a05SGarrett D'Amore } 151*88447a05SGarrett D'Amore 152*88447a05SGarrett D'Amore for (i = 0; i < channels; i++) { 153*88447a05SGarrett D'Amore samp1[i] = (short)le_int(&buf[x], 2); 154*88447a05SGarrett D'Amore x += 2; 155*88447a05SGarrett D'Amore OUT_SAMPLE(samp1[i]); 156*88447a05SGarrett D'Amore } 157*88447a05SGarrett D'Amore 158*88447a05SGarrett D'Amore for (i = 0; i < channels; i++) { 159*88447a05SGarrett D'Amore samp2[i] = (short)le_int(&buf[x], 2); 160*88447a05SGarrett D'Amore x += 2; 161*88447a05SGarrett D'Amore OUT_SAMPLE(samp2[i]); 162*88447a05SGarrett D'Amore } 163*88447a05SGarrett D'Amore 164*88447a05SGarrett D'Amore while (n < (wSamplesPerBlock * 2 * channels)) 165*88447a05SGarrett D'Amore for (i = 0; i < channels; i++) { 166*88447a05SGarrett D'Amore int pred, new, error_delta, i_delta; 167*88447a05SGarrett D'Amore 168*88447a05SGarrett D'Amore pred = ((samp1[i] * 169*88447a05SGarrett D'Amore coeff[predictor[i]].coeff1) 170*88447a05SGarrett D'Amore + (samp2[i] * 171*88447a05SGarrett D'Amore coeff[predictor[i]].coeff2)) / 256; 172*88447a05SGarrett D'Amore i_delta = error_delta = GETNIBBLE; 173*88447a05SGarrett D'Amore 174*88447a05SGarrett D'Amore /* Convert to signed */ 175*88447a05SGarrett D'Amore if (i_delta & 0x08) 176*88447a05SGarrett D'Amore i_delta -= 0x10; 177*88447a05SGarrett D'Amore 178*88447a05SGarrett D'Amore new = pred + (delta[i] * i_delta); 179*88447a05SGarrett D'Amore OUT_SAMPLE(new); 180*88447a05SGarrett D'Amore 181*88447a05SGarrett D'Amore delta[i] = delta[i] * 182*88447a05SGarrett D'Amore AdaptionTable[error_delta] / 256; 183*88447a05SGarrett D'Amore if (delta[i] < 16) 184*88447a05SGarrett D'Amore delta[i] = 16; 185*88447a05SGarrett D'Amore 186*88447a05SGarrett D'Amore samp2[i] = samp1[i]; 187*88447a05SGarrett D'Amore samp1[i] = new; 188*88447a05SGarrett D'Amore } 189*88447a05SGarrett D'Amore } 190*88447a05SGarrett D'Amore 191*88447a05SGarrett D'Amore } 192*88447a05SGarrett D'Amore 193*88447a05SGarrett D'Amore return (outp * 2); 194*88447a05SGarrett D'Amore } 195