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authorandreas128 <Andreas>2017-09-13 16:55:13 +0200
committerandreas128 <Andreas>2017-09-13 16:55:13 +0200
commitd2562d60af9f5d32c4e5ff89a1085962a9089d23 (patch)
treefb955a8180c00567956804457f5ce9c7a2cd2c55 /dpd
parentd87d4e3931dbdc21b5b4678da782498cb4040b84 (diff)
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Add FSM to main.py
Diffstat (limited to 'dpd')
-rwxr-xr-xdpd/main.py57
1 files changed, 38 insertions, 19 deletions
diff --git a/dpd/main.py b/dpd/main.py
index 5e67c90..99bcf31 100755
--- a/dpd/main.py
+++ b/dpd/main.py
@@ -42,6 +42,8 @@ import numpy as np
import traceback
import src.Measure as Measure
import src.Model as Model
+import src.Model_AM as Model_AM
+import src.ExtractStatistic as ExtractStatistic
import src.Adapt as Adapt
import src.Agc as Agc
import src.TX_Agc as TX_Agc
@@ -64,7 +66,7 @@ parser.add_argument('--samplerate', default='8192000',
parser.add_argument('--coefs', default='poly.coef',
help='File with DPD coefficients, which will be read by ODR-DabMod',
required=False)
-parser.add_argument('--txgain', default=71,
+parser.add_argument('--txgain', default=73,
help='TX Gain',
required=False,
type=int)
@@ -103,17 +105,21 @@ MER = src.MER.MER(samplerate)
c = src.const.const(samplerate)
meas = Measure.Measure(samplerate, port, num_req)
-
+extStat = ExtractStatistic.ExtractStatistic(c, plot=True)
adapt = Adapt.Adapt(port_rc, coef_path)
-coefs_am, coefs_pm = adapt.get_coefs()
+
if cli_args.load_poly:
+ coefs_am, coefs_pm = adapt.get_coefs()
model = Model.Model(c, SA, MER, coefs_am, coefs_pm, plot=True)
else:
- model = Model.Model(c, SA, MER, [1.0, 0, 0, 0, 0], [0, 0, 0, 0, 0], plot=True)
+ coefs_am, coefs_pm = [[1.0, 0, 0, 0, 0], [0, 0, 0, 0, 0]]
+ model = Model.Model(c, SA, MER, coefs_am, coefs_pm, plot=True)
+model_am = Model_AM.Model_AM(c, plot=True)
adapt.set_coefs(model.coefs_am, model.coefs_pm)
adapt.set_digital_gain(digital_gain)
adapt.set_txgain(txgain)
adapt.set_rxgain(rxgain)
+print(coefs_am)
tx_gain = adapt.get_txgain()
rx_gain = adapt.get_rxgain()
@@ -132,23 +138,36 @@ tx_agc = TX_Agc.TX_Agc(adapt)
agc = Agc.Agc(meas, adapt)
agc.run()
-for i in range(num_iter):
+state = "measure"
+i = 0
+while i < num_iter:
try:
- txframe_aligned, tx_ts, rxframe_aligned, rx_ts, rx_median = meas.get_samples()
- logging.debug("tx_ts {}, rx_ts {}".format(tx_ts, rx_ts))
- assert tx_ts - rx_ts < 1e-5, "Time stamps do not match."
-
- if tx_agc.adapt_if_necessary(txframe_aligned):
- continue
-
- coefs_am, coefs_pm = model.get_next_coefs(txframe_aligned, rxframe_aligned)
- adapt.set_coefs(coefs_am, coefs_pm)
+ # Measure
+ if state == "measure":
+ txframe_aligned, tx_ts, rxframe_aligned, rx_ts, rx_median = meas.get_samples()
+ tx, rx, n_per_bin = extStat.extract(txframe_aligned, rxframe_aligned)
+ n_use = int(len(n_per_bin) * 0.6)
+ tx = tx[:n_use]
+ rx = rx[:n_use]
+ if all(c.ES_n_per_bin == np.array(n_per_bin)[0:n_use]):
+ state = "model"
+ else:
+ state = "measure"
+
+ # Model
+ elif state == "model":
+ coefs_am = model_am.get_next_coefs(tx, rx, coefs_am)
+ del extStat
+ extStat = ExtractStatistic.ExtractStatistic(c, plot=True)
+ state = "adapt"
+
+ # Adapt
+ elif state == "adapt":
+ print(coefs_am)
+ adapt.set_coefs(coefs_am, coefs_pm)
+ state = "measure"
+ i += 1
- off = SA.calc_offset(txframe_aligned)
- tx_mer = MER.calc_mer(txframe_aligned[off:off + c.T_U])
- rx_mer = MER.calc_mer(rxframe_aligned[off:off + c.T_U], debug=True)
- logging.info("MER with lag in it. {}: TX {}, RX {}".
- format(i, tx_mer, rx_mer))
except Exception as e:
logging.warning("Iteration {} failed.".format(i))
logging.warning(traceback.format_exc())