forked from Ivasoft/DSView
527 lines
13 KiB
C++
527 lines
13 KiB
C++
/*
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* This file is part of the PulseView project.
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*
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* Copyright (C) 2012 Joel Holdsworth <joel@airwebreathe.org.uk>
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*
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* This program is free software; you can redistribute it and/or modify
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* it under the terms of the GNU General Public License as published by
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* the Free Software Foundation; either version 2 of the License, or
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* (at your option) any later version.
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*
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* This program is distributed in the hope that it will be useful,
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* but WITHOUT ANY WARRANTY; without even the implied warranty of
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* MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
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* GNU General Public License for more details.
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*
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* You should have received a copy of the GNU General Public License
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* along with this program; if not, write to the Free Software
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* Foundation, Inc., 51 Franklin St, Fifth Floor, Boston, MA 02110-1301 USA
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*/
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#include <libsigrokdecode/libsigrokdecode.h>
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#include <boost/foreach.hpp>
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#include <boost/thread/thread.hpp>
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#include <stdexcept>
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#include <QDebug>
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#include "decoderstack.h"
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#include <pv/data/logic.h>
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#include <pv/data/logicsnapshot.h>
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#include <pv/data/decode/decoder.h>
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#include <pv/data/decode/annotation.h>
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#include <pv/sigsession.h>
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#include <pv/view/logicsignal.h>
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using boost::lock_guard;
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using boost::mutex;
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using boost::optional;
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using boost::shared_ptr;
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using boost::unique_lock;
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using std::deque;
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using std::make_pair;
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using std::max;
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using std::min;
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using std::list;
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using std::map;
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using std::pair;
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using std::vector;
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using namespace pv::data::decode;
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namespace pv {
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namespace data {
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const double DecoderStack::DecodeMargin = 1.0;
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const double DecoderStack::DecodeThreshold = 0.2;
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const int64_t DecoderStack::DecodeChunkLength = 1024 * 1024;
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const unsigned int DecoderStack::DecodeNotifyPeriod = 1;
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mutex DecoderStack::_global_decode_mutex;
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DecoderStack::DecoderStack(pv::SigSession &session,
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const srd_decoder *const dec) :
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_session(session),
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_sample_count(0),
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_frame_complete(false),
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_samples_decoded(0),
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_decode_state(Stopped),
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_options_changed(false)
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{
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connect(&_session, SIGNAL(frame_began()),
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this, SLOT(on_new_frame()));
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connect(&_session, SIGNAL(data_received()),
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this, SLOT(on_data_received()));
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connect(&_session, SIGNAL(frame_ended()),
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this, SLOT(on_frame_ended()));
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_stack.push_back(shared_ptr<decode::Decoder>(
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new decode::Decoder(dec)));
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}
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DecoderStack::~DecoderStack()
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{
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// if (_decode_thread.joinable()) {
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// _decode_thread.interrupt();
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// _decode_thread.join();
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// }
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stop_decode();
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}
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const std::list< boost::shared_ptr<decode::Decoder> >&
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DecoderStack::stack() const
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{
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return _stack;
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}
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void DecoderStack::push(boost::shared_ptr<decode::Decoder> decoder)
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{
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assert(decoder);
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_stack.push_back(decoder);
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}
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void DecoderStack::remove(int index)
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{
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assert(index >= 0);
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assert(index < (int)_stack.size());
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// Find the decoder in the stack
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list< shared_ptr<Decoder> >::iterator iter = _stack.begin();
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for(int i = 0; i < index; i++, iter++)
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assert(iter != _stack.end());
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// Delete the element
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_stack.erase(iter);
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}
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int64_t DecoderStack::samples_decoded() const
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{
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lock_guard<mutex> decode_lock(_output_mutex);
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return _samples_decoded;
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}
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std::vector< std::pair<decode::Row, bool> > DecoderStack::get_visible_rows() const
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{
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lock_guard<mutex> lock(_output_mutex);
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std::vector< std::pair<decode::Row, bool> > rows;
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BOOST_FOREACH (const shared_ptr<decode::Decoder> &dec, _stack)
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{
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assert(dec);
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const srd_decoder *const decc = dec->decoder();
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assert(dec->decoder());
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// Add a row for the decoder if it doesn't have a row list
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if (!decc->annotation_rows)
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rows.push_back(make_pair(Row(decc), dec->shown()));
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// Add the decoder rows
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for (const GSList *l = decc->annotation_rows; l; l = l->next)
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{
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const srd_decoder_annotation_row *const ann_row =
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(srd_decoder_annotation_row *)l->data;
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assert(ann_row);
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rows.push_back(make_pair(Row(decc, ann_row), dec->shown()));
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}
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}
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return rows;
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}
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void DecoderStack::get_annotation_subset(
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std::vector<pv::data::decode::Annotation> &dest,
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const Row &row, uint64_t start_sample,
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uint64_t end_sample) const
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{
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lock_guard<mutex> lock(_output_mutex);
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std::map<const Row, decode::RowData>::const_iterator iter =
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_rows.find(row);
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if (iter != _rows.end())
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(*iter).second.get_annotation_subset(dest,
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start_sample, end_sample);
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}
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uint64_t DecoderStack::get_max_annotation(const Row &row)
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{
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lock_guard<mutex> lock(_output_mutex);
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std::map<const Row, decode::RowData>::const_iterator iter =
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_rows.find(row);
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if (iter != _rows.end())
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return (*iter).second.get_max_annotation();
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return 0;
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}
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bool DecoderStack::has_annotations(const Row &row) const
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{
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lock_guard<mutex> lock(_output_mutex);
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std::map<const Row, decode::RowData>::const_iterator iter =
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_rows.find(row);
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if (iter != _rows.end())
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if(0 == (*iter).second.get_max_sample())
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return false;
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else
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return true;
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else
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return false;
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}
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QString DecoderStack::error_message()
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{
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lock_guard<mutex> lock(_output_mutex);
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return _error_message;
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}
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void DecoderStack::clear()
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{
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_sample_count = 0;
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_frame_complete = false;
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_samples_decoded = 0;
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_error_message = QString();
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_rows.clear();
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_class_rows.clear();
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}
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void DecoderStack::stop_decode()
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{
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if(_decode_state == Stopped)
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return;
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if (_decode_thread.get()) {
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_decode_thread->interrupt();
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_decode_thread->join();
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_decode_state = Stopped;
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}
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_decode_thread.reset();
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}
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void DecoderStack::begin_decode()
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{
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shared_ptr<pv::view::LogicSignal> logic_signal;
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shared_ptr<pv::data::Logic> data;
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if (!_options_changed)
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return;
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// if (_decode_thread.joinable()) {
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// _decode_thread.interrupt();
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// _decode_thread.join();
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// }
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stop_decode();
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clear();
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// Check that all decoders have the required channels
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BOOST_FOREACH(const shared_ptr<decode::Decoder> &dec, _stack)
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if (!dec->have_required_probes()) {
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_error_message = tr("One or more required channels "
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"have not been specified");
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return;
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}
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// Add classes
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BOOST_FOREACH (const shared_ptr<decode::Decoder> &dec, _stack)
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{
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assert(dec);
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const srd_decoder *const decc = dec->decoder();
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assert(dec->decoder());
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// Add a row for the decoder if it doesn't have a row list
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if (!decc->annotation_rows)
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_rows[Row(decc)] = decode::RowData();
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// Add the decoder rows
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for (const GSList *l = decc->annotation_rows; l; l = l->next)
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{
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const srd_decoder_annotation_row *const ann_row =
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(srd_decoder_annotation_row *)l->data;
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assert(ann_row);
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const Row row(decc, ann_row);
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// Add a new empty row data object
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_rows[row] = decode::RowData();
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// Map out all the classes
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for (const GSList *ll = ann_row->ann_classes;
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ll; ll = ll->next)
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_class_rows[make_pair(decc,
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GPOINTER_TO_INT(ll->data))] = row;
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}
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}
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// We get the logic data of the first channel in the list.
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// This works because we are currently assuming all
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// LogicSignals have the same data/snapshot
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BOOST_FOREACH (const shared_ptr<decode::Decoder> &dec, _stack)
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if (dec && !dec->channels().empty() &&
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((logic_signal = (*dec->channels().begin()).second)) &&
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((data = logic_signal->logic_data())))
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break;
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if (!data)
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return;
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// Check we have a snapshot of data
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const deque< shared_ptr<pv::data::LogicSnapshot> > &snapshots =
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data->get_snapshots();
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if (snapshots.empty())
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return;
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_snapshot = snapshots.front();
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// Get the samplerate and start time
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_start_time = data->get_start_time();
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_samplerate = data->samplerate();
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if (_samplerate == 0.0)
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_samplerate = 1.0;
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//_decode_thread = boost::thread(&DecoderStack::decode_proc, this);
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_decode_thread.reset(new boost::thread(&DecoderStack::decode_proc, this));
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}
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uint64_t DecoderStack::get_max_sample_count() const
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{
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uint64_t max_sample_count = 0;
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for (map<const Row, RowData>::const_iterator i = _rows.begin();
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i != _rows.end(); i++)
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max_sample_count = max(max_sample_count,
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(*i).second.get_max_sample());
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return max_sample_count;
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}
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boost::optional<uint64_t> DecoderStack::wait_for_data() const
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{
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unique_lock<mutex> input_lock(_input_mutex);
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while(!boost::this_thread::interruption_requested() &&
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!_frame_complete && (uint64_t)_samples_decoded >= _sample_count)
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_input_cond.wait(input_lock);
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return boost::make_optional(
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!boost::this_thread::interruption_requested() &&
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((uint64_t)_samples_decoded < _sample_count || !_frame_complete),
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_sample_count);
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}
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void DecoderStack::decode_data(
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const uint64_t sample_count, const unsigned int unit_size,
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srd_session *const session)
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{
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//uint8_t chunk[DecodeChunkLength];
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uint8_t *chunk = NULL;
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chunk = (uint8_t *)realloc(chunk, DecodeChunkLength);
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const uint64_t chunk_sample_count =
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DecodeChunkLength / _snapshot->unit_size();
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for (uint64_t i = 0;
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!boost::this_thread::interruption_requested() &&
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i < sample_count;
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i += chunk_sample_count)
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{
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//lock_guard<mutex> decode_lock(_global_decode_mutex);
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const uint64_t chunk_end = min(
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i + chunk_sample_count, sample_count);
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_snapshot->get_samples(chunk, i, chunk_end);
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if (srd_session_send(session, i, i + sample_count, chunk,
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(chunk_end - i) * unit_size) != SRD_OK) {
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_error_message = tr("Decoder reported an error");
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break;
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}
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{
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lock_guard<mutex> lock(_output_mutex);
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_samples_decoded = chunk_end;
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}
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if (i % DecodeNotifyPeriod == 0)
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new_decode_data();
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}
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_options_changed = false;
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decode_done();
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//new_decode_data();
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}
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void DecoderStack::decode_proc()
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{
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lock_guard<mutex> decode_lock(_global_decode_mutex);
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optional<uint64_t> sample_count;
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srd_session *session;
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srd_decoder_inst *prev_di = NULL;
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assert(_snapshot);
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// Create the session
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srd_session_new(&session);
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assert(session);
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_decode_state = Running;
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// Create the decoders
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const unsigned int unit_size = _snapshot->unit_size();
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BOOST_FOREACH(const shared_ptr<decode::Decoder> &dec, _stack)
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{
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srd_decoder_inst *const di = dec->create_decoder_inst(session, unit_size);
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if (!di)
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{
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_error_message = tr("Failed to create decoder instance");
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srd_session_destroy(session);
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return;
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}
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if (prev_di)
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srd_inst_stack (session, prev_di, di);
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prev_di = di;
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}
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// Get the intial sample count
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{
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unique_lock<mutex> input_lock(_input_mutex);
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sample_count = _sample_count = _snapshot->get_sample_count();
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}
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// Start the session
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srd_session_metadata_set(session, SRD_CONF_SAMPLERATE,
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g_variant_new_uint64((uint64_t)_samplerate));
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srd_pd_output_callback_add(session, SRD_OUTPUT_ANN,
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DecoderStack::annotation_callback, this);
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srd_session_start(session);
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// do {
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// decode_data(*sample_count, unit_size, session);
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// } while(_error_message.isEmpty() && (sample_count = wait_for_data()));
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decode_data(*sample_count, unit_size, session);
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// Destroy the session
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srd_session_destroy(session);
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_decode_state = Stopped;
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}
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void DecoderStack::annotation_callback(srd_proto_data *pdata, void *decoder)
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{
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assert(pdata);
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assert(decoder);
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DecoderStack *const d = (DecoderStack*)decoder;
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assert(d);
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lock_guard<mutex> lock(d->_output_mutex);
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const Annotation a(pdata);
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// Find the row
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assert(pdata->pdo);
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assert(pdata->pdo->di);
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const srd_decoder *const decc = pdata->pdo->di->decoder;
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assert(decc);
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map<const Row, decode::RowData>::iterator row_iter = d->_rows.end();
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// Try looking up the sub-row of this class
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const map<pair<const srd_decoder*, int>, Row>::const_iterator r =
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d->_class_rows.find(make_pair(decc, a.format()));
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if (r != d->_class_rows.end())
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row_iter = d->_rows.find((*r).second);
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else
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{
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// Failing that, use the decoder as a key
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row_iter = d->_rows.find(Row(decc));
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}
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assert(row_iter != d->_rows.end());
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if (row_iter == d->_rows.end()) {
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qDebug() << "Unexpected annotation: decoder = " << decc <<
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", format = " << a.format();
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assert(0);
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return;
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}
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// Add the annotation
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(*row_iter).second.push_annotation(a);
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}
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void DecoderStack::on_new_frame()
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{
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//begin_decode();
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}
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void DecoderStack::on_data_received()
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{
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// {
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// unique_lock<mutex> lock(_input_mutex);
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// if (_snapshot)
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// _sample_count = _snapshot->get_sample_count();
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// }
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// _input_cond.notify_one();
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}
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void DecoderStack::on_frame_ended()
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{
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// {
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// unique_lock<mutex> lock(_input_mutex);
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// if (_snapshot)
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// _frame_complete = true;
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// }
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// _input_cond.notify_one();
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_options_changed = true;
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begin_decode();
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}
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int DecoderStack::cur_rows_size()
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{
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int rows_size = 0;
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for (map<const Row, RowData>::const_iterator i = _rows.begin();
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i != _rows.end(); i++)
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if ((*i).second.get_max_sample() != 0)
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rows_size++;
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if (rows_size == 0)
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return 1;
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else
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return rows_size;
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}
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void DecoderStack::options_changed(bool changed)
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{
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_options_changed = changed;
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}
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} // namespace data
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} // namespace pv
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