[media] tda10023: Don't use a magic numbers for QAM modulation
Convert the existing data struct to use the QAM modulation macros, instead of assuming that they're numbered from 0 to 5. Signed-off-by: Mauro Carvalho Chehab <mchehab@redhat.com>
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37c52abd56
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@ -298,25 +298,43 @@ static int tda10023_init (struct dvb_frontend *fe)
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return 0;
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}
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struct qam_params {
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u8 qam, lockthr, mseth, aref, agcrefnyq, eragnyq_thd;
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};
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static int tda10023_set_parameters (struct dvb_frontend *fe,
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struct dvb_frontend_parameters *p)
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{
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struct tda10023_state* state = fe->demodulator_priv;
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static int qamvals[6][6] = {
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// QAM LOCKTHR MSETH AREF AGCREFNYQ ERAGCNYQ_THD
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{ (5<<2), 0x78, 0x8c, 0x96, 0x78, 0x4c }, // 4 QAM
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{ (0<<2), 0x87, 0xa2, 0x91, 0x8c, 0x57 }, // 16 QAM
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{ (1<<2), 0x64, 0x74, 0x96, 0x8c, 0x57 }, // 32 QAM
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{ (2<<2), 0x46, 0x43, 0x6a, 0x6a, 0x44 }, // 64 QAM
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{ (3<<2), 0x36, 0x34, 0x7e, 0x78, 0x4c }, // 128 QAM
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{ (4<<2), 0x26, 0x23, 0x6c, 0x5c, 0x3c }, // 256 QAM
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static const struct qam_params qam_params[] = {
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/* Modulation QAM LOCKTHR MSETH AREF AGCREFNYQ ERAGCNYQ_THD */
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[QPSK] = { (5<<2), 0x78, 0x8c, 0x96, 0x78, 0x4c },
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[QAM_16] = { (0<<2), 0x87, 0xa2, 0x91, 0x8c, 0x57 },
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[QAM_32] = { (1<<2), 0x64, 0x74, 0x96, 0x8c, 0x57 },
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[QAM_64] = { (2<<2), 0x46, 0x43, 0x6a, 0x6a, 0x44 },
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[QAM_128] = { (3<<2), 0x36, 0x34, 0x7e, 0x78, 0x4c },
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[QAM_256] = { (4<<2), 0x26, 0x23, 0x6c, 0x5c, 0x3c },
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};
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unsigned qam = p->u.qam.modulation;
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int qam = p->u.qam.modulation;
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if (qam < 0 || qam > 5)
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/*
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* gcc optimizes the code bellow the same way as it would code:
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* "if (qam > 5) return -EINVAL;"
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* Yet, the code is clearer, as it shows what QAM standards are
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* supported by the driver, and avoids the usage of magic numbers on
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* it.
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*/
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switch (qam) {
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case QPSK:
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case QAM_16:
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case QAM_32:
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case QAM_64:
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case QAM_128:
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case QAM_256:
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break;
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default:
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return -EINVAL;
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}
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if (fe->ops.tuner_ops.set_params) {
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fe->ops.tuner_ops.set_params(fe, p);
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@ -324,16 +342,18 @@ static int tda10023_set_parameters (struct dvb_frontend *fe,
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}
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tda10023_set_symbolrate (state, p->u.qam.symbol_rate);
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tda10023_writereg (state, 0x05, qamvals[qam][1]);
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tda10023_writereg (state, 0x08, qamvals[qam][2]);
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tda10023_writereg (state, 0x09, qamvals[qam][3]);
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tda10023_writereg (state, 0xb4, qamvals[qam][4]);
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tda10023_writereg (state, 0xb6, qamvals[qam][5]);
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tda10023_writereg(state, 0x05, qam_params[qam].lockthr);
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tda10023_writereg(state, 0x08, qam_params[qam].mseth);
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tda10023_writereg(state, 0x09, qam_params[qam].aref);
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tda10023_writereg(state, 0xb4, qam_params[qam].agcrefnyq);
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tda10023_writereg(state, 0xb6, qam_params[qam].eragnyq_thd);
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// tda10023_writereg (state, 0x04, (p->inversion?0x12:0x32));
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// tda10023_writebit (state, 0x04, 0x60, (p->inversion?0:0x20));
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#if 0
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tda10023_writereg(state, 0x04, (p->inversion ? 0x12 : 0x32));
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tda10023_writebit(state, 0x04, 0x60, (p->inversion ? 0 : 0x20));
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#endif
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tda10023_writebit(state, 0x04, 0x40, 0x40);
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tda10023_setup_reg0 (state, qamvals[qam][0]);
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tda10023_setup_reg0(state, qam_params[qam].qam);
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return 0;
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}
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