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piotr437f5462014-02-04 17:57:25 +01001/* -*- c++ -*- */
ptrkrysik529895b2014-12-02 18:07:38 +01002/*
3 * @file
4 * @author Piotr Krysik <ptrkrysik@gmail.com>
5 * @section LICENSE
6 *
7 * Gr-gsm is free software; you can redistribute it and/or modify
piotr437f5462014-02-04 17:57:25 +01008 * it under the terms of the GNU General Public License as published by
9 * the Free Software Foundation; either version 3, or (at your option)
10 * any later version.
ptrkrysik529895b2014-12-02 18:07:38 +010011 *
12 * Gr-gsm is distributed in the hope that it will be useful,
piotr437f5462014-02-04 17:57:25 +010013 * but WITHOUT ANY WARRANTY; without even the implied warranty of
14 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
15 * GNU General Public License for more details.
ptrkrysik529895b2014-12-02 18:07:38 +010016 *
piotr437f5462014-02-04 17:57:25 +010017 * You should have received a copy of the GNU General Public License
ptrkrysik529895b2014-12-02 18:07:38 +010018 * along with gr-gsm; see the file COPYING. If not, write to
piotr437f5462014-02-04 17:57:25 +010019 * the Free Software Foundation, Inc., 51 Franklin Street,
20 * Boston, MA 02110-1301, USA.
21 */
22
23#ifndef INCLUDED_GSM_RECEIVER_IMPL_H
24#define INCLUDED_GSM_RECEIVER_IMPL_H
25
ptrkrysik3be74a72014-12-13 10:11:00 +010026#include <grgsm/receiver/receiver.h>
27#include <grgsm/gsmtap.h>
piotr437f5462014-02-04 17:57:25 +010028#include <gsm_constants.h>
29#include <receiver_config.h>
ptrkrysik42411c62015-07-08 10:50:41 +020030#include <vector>
piotr437f5462014-02-04 17:57:25 +010031
32namespace gr {
33 namespace gsm {
piotr437f5462014-02-04 17:57:25 +010034 class receiver_impl : public receiver
35 {
36 private:
ptrkrysik58213792014-10-30 09:05:15 +010037 unsigned int d_c0_burst_start;
38 float d_c0_signal_dbm;
Piotr Krysikd61f85b2016-08-29 07:38:25 +020039
piotr437f5462014-02-04 17:57:25 +010040 /**@name Configuration of the receiver */
41 //@{
42 const int d_OSR; ///< oversampling ratio
ptrkrysik380dea82015-08-06 10:11:58 +020043 bool d_process_uplink;
piotr437f5462014-02-04 17:57:25 +010044 const int d_chan_imp_length; ///< channel impulse length
ptrkrysik58213792014-10-30 09:05:15 +010045 float d_signal_dbm;
ptrkrysike518bbf2014-11-06 14:50:59 +010046 std::vector<int> d_tseq_nums; ///< stores training sequence numbers for channels different than C0
ptrkrysik7a7b9b02014-11-19 11:27:34 +010047 std::vector<int> d_cell_allocation; ///< stores cell allocation - absolute rf channel numbers (ARFCNs) assigned to the given cell. The variable should at least contain C0 channel number.
piotr437f5462014-02-04 17:57:25 +010048 //@}
49
50 gr_complex d_sch_training_seq[N_SYNC_BITS]; ///<encoded training sequence of a SCH burst
ptrkrysik58213792014-10-30 09:05:15 +010051 gr_complex d_norm_training_seq[TRAIN_SEQ_NUM][N_TRAIN_BITS]; ///<encoded training sequences of a normal and dummy burst
piotr437f5462014-02-04 17:57:25 +010052
ptrkrysik32c21162015-04-04 14:01:52 +020053 float d_last_time;
54
piotr437f5462014-02-04 17:57:25 +010055 /** Counts samples consumed by the receiver
56 *
57 * It is used in beetween find_fcch_burst and reach_sch_burst calls.
58 * My intention was to synchronize this counter with some internal sample
59 * counter of the USRP. Simple access to such USRP's counter isn't possible
60 * so this variable isn't used in the "synchronized" state of the receiver yet.
61 */
62 unsigned d_counter;
63
64 /**@name Variables used to store result of the find_fcch_burst fuction */
65 //@{
66 unsigned d_fcch_start_pos; ///< position of the first sample of the fcch burst
piotr4089c1a2014-08-06 14:10:56 +020067 float d_freq_offset_setting; ///< frequency offset set in frequency shifter located upstream
piotr437f5462014-02-04 17:57:25 +010068 //@}
69 std::list<double> d_freq_offset_vals;
70
71 /**@name Identifiers of the BTS extracted from the SCH burst */
72 //@{
73 int d_ncc; ///< network color code
74 int d_bcc; ///< base station color code
75 //@}
76
77 /**@name Internal state of the gsm receiver */
78 //@{
79 enum states {
piotrd6d66872014-08-06 15:20:33 +020080 fcch_search, sch_search, // synchronization search part
piotr437f5462014-02-04 17:57:25 +010081 synchronized // receiver is synchronized in this state
82 } d_state;
83 //@}
84
85 /**@name Variables which make internal state in the "synchronized" state */
86 //@{
87 burst_counter d_burst_nr; ///< frame number and timeslot number
88 channel_configuration d_channel_conf; ///< mapping of burst_counter to burst_type
89 //@}
ptrkrysike518bbf2014-11-06 14:50:59 +010090
piotr437f5462014-02-04 17:57:25 +010091 unsigned d_failed_sch; ///< number of subsequent erroneous SCH bursts
92
93 /** Function whis is used to search a FCCH burst and to compute frequency offset before
94 * "synchronized" state of the receiver
95 *
piotr437f5462014-02-04 17:57:25 +010096 * @param input vector with input signal
97 * @param nitems number of samples in the input vector
98 * @return
99 */
piotr4089c1a2014-08-06 14:10:56 +0200100 bool find_fcch_burst(const gr_complex *input, const int nitems, double & computed_freq_offset);
piotr437f5462014-02-04 17:57:25 +0100101
102 /** Computes frequency offset from FCCH burst samples
103 *
piotr4089c1a2014-08-06 14:10:56 +0200104 * @param[in] input vector with input samples
105 * @param[in] first_sample number of the first sample of the FCCH busrt
106 * @param[in] last_sample number of the last sample of the FCCH busrt
107 * @param[out] computed_freq_offset contains frequency offset estimate if FCCH burst was located
108 * @return true if frequency offset was faound
piotr437f5462014-02-04 17:57:25 +0100109 */
110 double compute_freq_offset(const gr_complex * input, unsigned first_sample, unsigned last_sample);
piotr437f5462014-02-04 17:57:25 +0100111 /** Computes angle between two complex numbers
112 *
113 * @param val1 first complex number
114 * @param val2 second complex number
115 * @return
116 */
117 inline float compute_phase_diff(gr_complex val1, gr_complex val2);
118
119 /** Function whis is used to get near to SCH burst
120 *
121 * @param nitems number of samples in the gsm_receiver's buffer
122 * @return true if SCH burst is near, false otherwise
123 */
124 bool reach_sch_burst(const int nitems);
125
126 /** Extracts channel impulse response from a SCH burst and computes first sample number of this burst
127 *
128 * @param input vector with input samples
129 * @param chan_imp_resp complex vector where channel impulse response will be stored
130 * @return number of first sample of the burst
131 */
132 int get_sch_chan_imp_resp(const gr_complex *input, gr_complex * chan_imp_resp);
133
134 /** MLSE detection of a burst bits
135 *
136 * Detects bits of burst using viterbi algorithm.
137 * @param input vector with input samples
138 * @param chan_imp_resp vector with the channel impulse response
139 * @param burst_start number of the first sample of the burst
140 * @param output_binary vector with output bits
141 */
142 void detect_burst(const gr_complex * input, gr_complex * chan_imp_resp, int burst_start, unsigned char * output_binary);
143
144 /** Encodes differentially input bits and maps them into MSK states
145 *
146 * @param input vector with input bits
147 * @param nitems number of samples in the "input" vector
148 * @param gmsk_output bits mapped into MSK states
149 * @param start_point first state
150 */
151 void gmsk_mapper(const unsigned char * input, int nitems, gr_complex * gmsk_output, gr_complex start_point);
152
153 /** Correlates MSK mapped sequence with input signal
154 *
155 * @param sequence MKS mapped sequence
156 * @param length length of the sequence
157 * @param input_signal vector with input samples
158 * @return correlation value
159 */
160 gr_complex correlate_sequence(const gr_complex * sequence, int length, const gr_complex * input);
161
162 /** Computes autocorrelation of input vector for positive arguments
163 *
164 * @param input vector with input samples
165 * @param out output vector
166 * @param nitems length of the input vector
167 */
168 inline void autocorrelation(const gr_complex * input, gr_complex * out, int nitems);
169
170 /** Filters input signal through channel impulse response
171 *
172 * @param input vector with input samples
173 * @param nitems number of samples to pass through filter
174 * @param filter filter taps - channel impulse response
175 * @param filter_length nember of filter taps
176 * @param output vector with filtered samples
177 */
178 inline void mafi(const gr_complex * input, int nitems, gr_complex * filter, int filter_length, gr_complex * output);
179
180 /** Extracts channel impulse response from a normal burst and computes first sample number of this burst
181 *
182 * @param input vector with input samples
183 * @param chan_imp_resp complex vector where channel impulse response will be stored
184 * @param search_range possible absolute offset of a channel impulse response start
185 * @param bcc base station color code - number of a training sequence
186 * @return first sample number of normal burst
187 */
piotr7e3b0db2014-02-05 22:44:30 +0100188 int get_norm_chan_imp_resp(const gr_complex *input, gr_complex * chan_imp_resp, float *corr_max, int bcc);
piotr437f5462014-02-04 17:57:25 +0100189
190 /**
ptrkrysike518bbf2014-11-06 14:50:59 +0100191 * Sends burst through a C0 (for burst from C0 channel) or Cx (for other bursts) message port
piotr437f5462014-02-04 17:57:25 +0100192 *
ptrkrysike518bbf2014-11-06 14:50:59 +0100193 * @param burst_nr - frame number of the burst
194 * @param burst_binary - content of the burst
195 * @b_type - type of the burst
piotr437f5462014-02-04 17:57:25 +0100196 */
ptrkrysik617ba032014-11-21 10:11:05 +0100197 void send_burst(burst_counter burst_nr, const unsigned char * burst_binary, uint8_t burst_type, unsigned int input_nr);
piotr437f5462014-02-04 17:57:25 +0100198
199 /**
ptrkrysike518bbf2014-11-06 14:50:59 +0100200 * Configures burst types in different channels
piotr437f5462014-02-04 17:57:25 +0100201 */
202 void configure_receiver();
piotrf2b6a1b2014-08-04 11:28:59 +0200203
204
205
piotr437f5462014-02-04 17:57:25 +0100206 public:
ptrkrysik380dea82015-08-06 10:11:58 +0200207 receiver_impl(int osr, const std::vector<int> &cell_allocation, const std::vector<int> &tseq_nums, bool process_uplink);
piotr437f5462014-02-04 17:57:25 +0100208 ~receiver_impl();
209
piotrc7c249a2014-05-02 17:24:08 +0200210 int work(int noutput_items, gr_vector_const_void_star &input_items, gr_vector_void_star &output_items);
ptrkrysik7a7b9b02014-11-19 11:27:34 +0100211 virtual void set_cell_allocation(const std::vector<int> &cell_allocation);
ptrkrysike518bbf2014-11-06 14:50:59 +0100212 virtual void set_tseq_nums(const std::vector<int> & tseq_nums);
piotrf2b6a1b2014-08-04 11:28:59 +0200213 virtual void reset();
piotr437f5462014-02-04 17:57:25 +0100214 };
215 } // namespace gsm
216} // namespace gr
217
218#endif /* INCLUDED_GSM_RECEIVER_IMPL_H */
219