view amrconv/if1_unpack.c @ 242:f081a6850fb5

libgsmfrp: new refined implementation The previous implementation exhibited the following defects, which are now fixed: 1) The last received valid SID was cached forever for the purpose of handling future invalid SIDs - we could have received some valid SID ages ago, then lots of speech or NO_DATA, and if we then get an invalid SID, we would resurrect the last valid SID from ancient history - a bad design. In our new design, we handle invalid SID based on the current state, much like BFI. 2) GSM 06.11 spec says clearly that after the second lost SID (received BFI=1 && TAF=1 in CN state) we need to gradually decrease the output level, rather than jump directly to emitting silence frames - we previously failed to implement such logic. 3) Per GSM 06.12 section 5.2, Xmaxc should be the same in all 4 subframes in a SID frame. What should we do if we receive an otherwise valid SID frame with different Xmaxc? Our previous approach would replicate this Xmaxc oddity in every subsequent generated CN frame, which is rather bad. In our new design, the very first CN frame (which can be seen as a transformation of the SID frame itself) retains the original 4 distinct Xmaxc, but all subsequent CN frames are based on the Xmaxc from the last subframe of the most recent SID.
author Mychaela Falconia <falcon@freecalypso.org>
date Tue, 09 May 2023 05:16:31 +0000
parents 934cf92a1c45
children
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/*
 * In this module we implement our function for unpacking bits from AMR IF1
 * and reshuffling them into the codec's natural bit order.
 */

#include <stdint.h>
#include "amr_defs.h"

extern const uint8_t amr_475_bit_order[95];
extern const uint8_t amr_515_bit_order[103];
extern const uint8_t amr_59_bit_order[118];
extern const uint8_t amr_67_bit_order[134];
extern const uint8_t amr_74_bit_order[148];
extern const uint8_t amr_795_bit_order[159];
extern const uint8_t amr_102_bit_order[204];
extern const uint8_t amr_122_bit_order[244];

static void
unpack_bits(if1_bytes, codec_bits, nbits, table)
	uint8_t *if1_bytes, *codec_bits;
	unsigned nbits;
	const uint8_t *table;
{
	unsigned n, nb;

	for (n = 0; n < nbits; n++) {
		if (table)
			nb = table[n];
		else
			nb = n;
		codec_bits[nb] = msb_get_bit(if1_bytes, n);
	}
}

amr_if1_unpack(if1_bytes, codec_bits, mode)
	uint8_t *if1_bytes, *codec_bits;
	unsigned mode;
{
	switch (mode) {
	case MR475:
		unpack_bits(if1_bytes, codec_bits, AMR_NBITS_475,
				amr_475_bit_order);
		return(0);
	case MR515:
		unpack_bits(if1_bytes, codec_bits, AMR_NBITS_515,
				amr_515_bit_order);
		return(0);
	case MR59:
		unpack_bits(if1_bytes, codec_bits, AMR_NBITS_59,
				amr_59_bit_order);
		return(0);
	case MR67:
		unpack_bits(if1_bytes, codec_bits, AMR_NBITS_67,
				amr_67_bit_order);
		return(0);
	case MR74:
		unpack_bits(if1_bytes, codec_bits, AMR_NBITS_74,
				amr_74_bit_order);
		return(0);
	case MR795:
		unpack_bits(if1_bytes, codec_bits, AMR_NBITS_795,
				amr_795_bit_order);
		return(0);
	case MR102:
		unpack_bits(if1_bytes, codec_bits, AMR_NBITS_102,
				amr_102_bit_order);
		return(0);
	case MR122:            
		unpack_bits(if1_bytes, codec_bits, AMR_NBITS_122,
				amr_122_bit_order);
		return(0);
	case MRDTX:
		unpack_bits(if1_bytes, codec_bits, AMR_NBITS_SID,
				(const uint8_t *) 0);
		return(0);
	default:
		return(-1);
	}
}