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			158 lines
		
	
	
		
			4.8 KiB
		
	
	
	
		
			C
		
	
	
	
	
	
			
		
		
	
	
			158 lines
		
	
	
		
			4.8 KiB
		
	
	
	
		
			C
		
	
	
	
	
	
| /* Generate a header file for a particular 
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|    single or double frequency */
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| 
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| #include <stdio.h>
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| #include <math.h>
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| #include <string.h>
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| #include <unistd.h>
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| #include <stdlib.h>
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| #define CLIP 32635
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| #define BIAS 0x84
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| static float loudness=16384.0;
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| 
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| static int calc_samples(int freq)
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| {
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| 	int x, samples;
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| 	/* Calculate the number of samples at 8000hz sampling
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| 	   we need to have this wave form */
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| 	samples = 8000;
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| 	/* Take out common 2's up to six times */
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| 	for (x=0;x<6;x++) 
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| 		if (!(freq % 2)) {
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| 			freq /= 2;
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| 			samples /= 2;
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| 		}
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| 	/* Take out common 5's (up to three times */
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| 	for (x=0;x<3;x++) 
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| 		if (!(freq % 5)) {
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| 			freq /= 5;
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| 			samples /=5;
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| 		}
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| 	/* No more common factors. */
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| 	return samples;
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| }
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| 
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| /*
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| ** This routine converts from linear to ulaw
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| **
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| ** Craig Reese: IDA/Supercomputing Research Center
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| ** Joe Campbell: Department of Defense
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| ** 29 September 1989
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| **
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| ** References:
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| ** 1) CCITT Recommendation G.711  (very difficult to follow)
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| ** 2) "A New Digital Technique for Implementation of Any
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| **     Continuous PCM Companding Law," Villeret, Michel,
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| **     et al. 1973 IEEE Int. Conf. on Communications, Vol 1,
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| **     1973, pg. 11.12-11.17
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| ** 3) MIL-STD-188-113,"Interoperability and Performance Standards
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| **     for Analog-to_Digital Conversion Techniques,"
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| **     17 February 1987
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| **
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| ** Input: Signed 16 bit linear sample
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| ** Output: 8 bit ulaw sample
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| */
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| 
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| #define ZEROTRAP    /* turn on the trap as per the MIL-STD */
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| #define BIAS 0x84   /* define the add-in bias for 16 bit samples */
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| #define CLIP 32635
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| 
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| static unsigned char linear2ulaw(short sample) {
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| static int exp_lut[256] = {0,0,1,1,2,2,2,2,3,3,3,3,3,3,3,3,
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|                              4,4,4,4,4,4,4,4,4,4,4,4,4,4,4,4,
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|                              5,5,5,5,5,5,5,5,5,5,5,5,5,5,5,5,
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|                              5,5,5,5,5,5,5,5,5,5,5,5,5,5,5,5,
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|                              6,6,6,6,6,6,6,6,6,6,6,6,6,6,6,6,
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|                              6,6,6,6,6,6,6,6,6,6,6,6,6,6,6,6,
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|                              6,6,6,6,6,6,6,6,6,6,6,6,6,6,6,6,
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|                              6,6,6,6,6,6,6,6,6,6,6,6,6,6,6,6,
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|                              7,7,7,7,7,7,7,7,7,7,7,7,7,7,7,7,
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|                              7,7,7,7,7,7,7,7,7,7,7,7,7,7,7,7,
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|                              7,7,7,7,7,7,7,7,7,7,7,7,7,7,7,7,
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|                              7,7,7,7,7,7,7,7,7,7,7,7,7,7,7,7,
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|                              7,7,7,7,7,7,7,7,7,7,7,7,7,7,7,7,
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|                              7,7,7,7,7,7,7,7,7,7,7,7,7,7,7,7,
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|                              7,7,7,7,7,7,7,7,7,7,7,7,7,7,7,7,
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|                              7,7,7,7,7,7,7,7,7,7,7,7,7,7,7,7};
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|   int sign, exponent, mantissa;
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|   unsigned char ulawbyte;
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| 
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|   /* Get the sample into sign-magnitude. */
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|   sign = (sample >> 8) & 0x80;          /* set aside the sign */
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|   if (sign != 0) sample = -sample;              /* get magnitude */
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|   if (sample > CLIP) sample = CLIP;             /* clip the magnitude */
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| 
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|   /* Convert from 16 bit linear to ulaw. */
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|   sample = sample + BIAS;
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|   exponent = exp_lut[(sample >> 7) & 0xFF];
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|   mantissa = (sample >> (exponent + 3)) & 0x0F;
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|   ulawbyte = ~(sign | (exponent << 4) | mantissa);
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| #ifdef ZEROTRAP
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|   if (ulawbyte == 0) ulawbyte = 0x02;   /* optional CCITT trap */
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| #endif
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| 
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|   return(ulawbyte);
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| }
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| 
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| int main(int argc, char *argv[])
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| {
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| 	FILE *f;
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| 	int freq1, freq2;
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| 	float wlen1, wlen2;
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| 	float val;
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| 	int x, samples1, samples2, samples=0;
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| 	char fn[256];
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| 	if (argc < 3) {
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| 		fprintf(stderr, "Usage: gensound <name> <freq1> [freq2]\n");
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| 		exit(1);
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| 	}
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| 	freq1 = atoi(argv[2]);
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| 	if (argc > 3) 
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| 		freq2 = atoi(argv[3]);
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| 	else
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| 		freq2 = 0;
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| 	wlen1 = 8000.0/(float)freq1;
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| 	samples1 = calc_samples(freq1);
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| 	printf("Wavelength 1 (in samples): %10.5f\n", wlen1);
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| 	printf("Minimum samples (1): %d (%f.3 wavelengths)\n", samples1, samples1 / wlen1);
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| 	if (freq2) {
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| 		wlen2 = 8000.0/(float)freq2;
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| 		samples2 = calc_samples(freq2);
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| 		printf("Wavelength 1 (in samples): %10.5f\n", wlen2);
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| 		printf("Minimum samples (1): %d (%f.3 wavelengths)\n", samples2, samples2 / wlen2);
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| 	}
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| 	samples = samples1;
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| 	if (freq2) {
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| 		while(samples % samples2)
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| 			samples += samples1;
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| 	}
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| 	printf("Need %d samples\n", samples);
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| 	snprintf(fn, sizeof(fn), "%s.h", argv[1]);
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| 	if ((f = fopen(fn, "w"))) {
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| 		if (freq2) 
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| 			fprintf(f, "/* %s: Generated from frequencies %d and %d \n"
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| 			           "   by gentone.  %d samples  */\n", fn, freq1, freq2, samples); 
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| 		else
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| 			fprintf(f, "/* %s: Generated from frequency %d\n"
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| 			           "   by gentone.  %d samples  */\n", fn, freq1, samples); 
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| 		fprintf(f, "static unsigned char %s[%d] = {\n\t", argv[1], samples);
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| 		for (x=0;x<samples;x++) {
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| 			val = loudness * sin((freq1 * 2.0 * M_PI * x)/8000.0);
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| 			if (freq2)
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| 				val += loudness * sin((freq2 * 2.0 * M_PI * x)/8000.0);
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| 			fprintf(f, "%3d, ", (int) linear2ulaw(val));
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| 			if (!((x+1) % 8)) 
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| 				fprintf(f, "\n\t");
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| 		}
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| 		if (x % 15)
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| 			fprintf(f, "\n");
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| 		fprintf(f, "};\n");
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| 		fclose(f);
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| 		printf("Wrote %s\n", fn);
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| 	} else {
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| 		fprintf(stderr, "Unable to open %s for writing\n", fn);
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| 		return 1;
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| 	}
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| 	return 0;
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| }   
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