Newer
Older
/*
* Copyright (c) 2015-2016, Luca Fulchir<luca@fulchir.it>, All rights reserved.
*
* This file is part of "libRaptorQ".
*
* libRaptorQ is free software: you can redistribute it and/or modify
* it under the terms of the GNU Lesser General Public License as
* published by the Free Software Foundation, either version 3
* of the License, or (at your option) any later version.
*
* libRaptorQ is distributed in the hope that it will be useful,
* but WITHOUT ANY WARRANTY; without even the implied warranty of
* MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
* GNU General Public License for more details.
*
* You should have received a copy of the GNU General Public License
* and a copy of the GNU Lesser General Public License
* along with libRaptorQ. If not, see <http://www.gnu.org/licenses/>.
*/
#pragma once
#include "RaptorQ/v1/common.hpp"
#include "RaptorQ/v1/Encoder.hpp"
#include "RaptorQ/v1/Decoder.hpp"
namespace RaptorQ__v1 {
namespace Impl {
template <typename Rnd_It, typename Fwd_It>
class RAPTORQ_LOCAL Encoder
{
public:
~Encoder();
// used for precomputation
Encoder (const uint16_t symbols, const uint16_t symbol_size);
// with data at the beginning. Less work.
Encoder (const Rnd_It data_from, const Rnd_It data_to,
const uint16_t symbol_size);
uint16_t symbols() const;
uint16_t symbol_size() const;
uint32_t max_repair() const;
RaptorQ__v1::It::Encoder::Symbol_Iterator<Rnd_It, Fwd_It> begin_source();
RaptorQ__v1::It::Encoder::Symbol_Iterator<Rnd_It, Fwd_It> end_source();
RaptorQ__v1::It::Encoder::Symbol_Iterator<Rnd_It, Fwd_It> begin_repair();
RaptorQ__v1::It::Encoder::Symbol_Iterator<Rnd_It, Fwd_It> end_repair
uint64_t add_data (Rnd_It from, const Rnd_It to);
bool compute_sync();
std::future<Error> compute();
uint64_t encode (Fwd_It &output, const Fwd_It end, const uint32_t &id);
private:
enum class Data_State : uint8_t {
NEED_DATA = 1, // first constructor used. no interleaver until FULL
FULL = 2,
INIT = 3 // second constructor used: we already have the interleaver
};
std::unique_ptr<RFC6330__v1::Impl::Interleaver<Rnd_It>> interleaver;
Raw_Encoder<Rnd_It, Fwd_It> encoder;
DenseMtx precomputed;
std::vector<typename std::iterator_traits<Rnd_It>::value_type> data;
static uint16_t real_symbol_size (const uint16_t symbol_size);
static uint16_t calc_symbols (const Rnd_It data_from, const Rnd_It data_to,
const uint16_t symbol_size);
};
template <typename In_It, typename Fwd_It>
class RAPTORQ_LOCAL Decoder
{
public:
enum class RAPTORQ_LOCAL Report : uint8_t {
PARTIAL_FROM_BEGINNING = 1,
PARTIAL_ANY = 2,
COMPLETE = 3
};
Decoder (const uint64_t bytes, const uint16_t symbol_size,
const Report type);
RaptorQ__v1::It::Decoder::Symbol_Iterator<In_It, Fwd_It> begin ();
RaptorQ__v1::It::Decoder::Symbol_Iterator<In_It, Fwd_It> end ();
Error add_symbol (In_It from, const In_It to, const uint32_t esi);
using Decoder_Result = typename Raw_Decoder<In_It>::Decoder_Result;
bool can_decode() const;
Decoder_Result decode();
void stop();
std::pair<Error, uint16_t> poll();
std::future<std::pair<Error, uint16_t>> wait (bool async);
// return number of symbols.
// simbol_size % sizeof(FWD) == 0 else assert!
// returns number of iterators written
uint64_t decode_symbol (Fwd_It &start, const Fwd_It end,const uint16_t esi);
std::pair<uint64_t, size_t> decode_bytes (Fwd_It &start, const Fwd_It end,
const size_t from_byte, const size_t skip);
private:
const uint64_t _bytes;
const uint16_t _symbols, _symbol_size;
int32_t last_reported;
const Report _type;
RaptorQ__v1::Work_State work;
// 2* symbols. actually tracks available and reported symbols.
std::vector<bool> symbols_tracker;
std::mutex _mtx;
std::condition_variable _cond;
std::vector<std::thread> waiting;
static uint16_t get_symbols (const uint64_t bytes,
const uint16_t symbol_size);
static void waiting_thread (Decoder<In_It, Fwd_It> *obj,
std::promise<std::pair<Error, uint16_t>> p);
};
///////////////////
//// Encoder
///////////////////
template <typename Rnd_It, typename Fwd_It>
Encoder<Rnd_It, Fwd_It>::~Encoder()
{
}
template <typename Rnd_It, typename Fwd_It>
Encoder<Rnd_It, Fwd_It>::Encoder (const uint16_t symbols,
const uint16_t symbol_size)
: interleaver (nullptr), encoder (symbols), _symbols (symbols),
_symbol_size (symbol_size)
{
IS_RANDOM(Rnd_It, "RaptorQ__v1::Encoder");
IS_FORWARD(Fwd_It, "RaptorQ__v1::Encoder");
state = Data_State::NEED_DATA;
work = RaptorQ__v1::Work_State::KEEP_WORKING;
}
template <typename Rnd_It, typename Fwd_It>
uint16_t Encoder<Rnd_It, Fwd_It>::real_symbol_size (const uint16_t symbol_size)
{
using T = typename std::iterator_traits<Rnd_It>::value_type;
return symbol_size * sizeof(T);
}
template <typename Rnd_It, typename Fwd_It>
uint16_t Encoder<Rnd_It, Fwd_It>::calc_symbols (const Rnd_It data_from,
const Rnd_It data_to,
const uint16_t symbol_size)
{
using T = typename std::iterator_traits<Rnd_It>::value_type;
uint64_t size = static_cast<uint64_t> (data_to - data_from) * sizeof(T);
uint16_t symbols = static_cast<uint16_t> (size / symbol_size);
if ((size % symbol_size) != 0)
++symbols;
return symbols;
}
template <typename Rnd_It, typename Fwd_It>
Encoder<Rnd_It, Fwd_It>::Encoder (const Rnd_It data_from, const Rnd_It data_to,
const uint16_t symbol_size)
: interleaver (new RFC6330__v1::Impl::Interleaver<Rnd_It> (data_from,
data_to, real_symbol_size(symbol_size),
SIZE_MAX, real_symbol_size(symbol_size))),
encoder (interleaver.get(), 0),
_symbols (calc_symbols (data_from, data_to,
real_symbol_size(symbol_size))),
_symbol_size (real_symbol_size(symbol_size))
{
IS_RANDOM(Rnd_It, "RaptorQ__v1::Encoder");
IS_FORWARD(Fwd_It, "RaptorQ__v1::Encoder");
state = Data_State::INIT;
work = RaptorQ__v1::Work_State::KEEP_WORKING;
}
template <typename Rnd_It, typename Fwd_It>
uint16_t Encoder<Rnd_It, Fwd_It>::symbols() const
{
return _symbols;
}
template <typename Rnd_It, typename Fwd_It>
uint16_t Encoder<Rnd_It, Fwd_It>::symbol_size() const
{
return _symbol_size;
}
template <typename Rnd_It, typename Fwd_It>
uint32_t Encoder<Rnd_It, Fwd_It>::max_repair() const
{
return static_cast<uint32_t> (std::pow(2, 20)) - _symbols;
RaptorQ__v1::It::Encoder::Symbol_Iterator<Rnd_It, Fwd_It>
return RaptorQ__v1::It::Encoder::Symbol_Iterator<Rnd_It, Fwd_It> (this, 0);
RaptorQ__v1::It::Encoder::Symbol_Iterator<Rnd_It, Fwd_It>
Encoder<Rnd_It, Fwd_It>::end_source()
{
return RaptorQ__v1::It::Encoder::Symbol_Iterator<Rnd_It, Fwd_It> (this,
_symbols);
}
template <typename Rnd_It, typename Fwd_It>
RaptorQ__v1::It::Encoder::Symbol_Iterator<Rnd_It, Fwd_It>
Encoder<Rnd_It, Fwd_It>::begin_repair()
{
return end_source();
}
template <typename Rnd_It, typename Fwd_It>
RaptorQ__v1::It::Encoder::Symbol_Iterator<Rnd_It, Fwd_It>
Encoder<Rnd_It, Fwd_It>::end_repair (const uint32_t repair)
return RaptorQ__v1::It::Encoder::Symbol_Iterator<Rnd_It, Fwd_It> (nullptr,
template <typename Rnd_It, typename Fwd_It>
uint64_t Encoder<Rnd_It, Fwd_It>::add_data (Rnd_It from, const Rnd_It to)
{
uint64_t written = 0;
using T = typename std::iterator_traits<Rnd_It>::value_type;
if (state != Data_State::NEED_DATA)
return written;
std::unique_lock<std::mutex> lock (data_mtx);
RQ_UNUSED (lock);
while (from != to) {
if ((data.size() * sizeof (T) >= _symbols * _symbol_size)) {
state = Data_State::FULL;
break;
}
data.push_back (from);
++from;
++written;
}
return written;
}
template <typename Rnd_It, typename Fwd_It>
bool Encoder<Rnd_It, Fwd_It>::compute_sync()
{
if (state == Data_State::INIT) {
return encoder.generate_symbols (&work);
} else {
precomputed = encoder.get_precomputed (&work);
return precomputed.rows() != 0;
}
}
template <typename Rnd_It, typename Fwd_It>
uint64_t Encoder<Rnd_It, Fwd_It>::encode (Fwd_It &output, const Fwd_It end,
const uint32_t &id)
{
switch (state) {
case Data_State::INIT:
return 0;
return encoder.Enc (id, output, end);
case Data_State::NEED_DATA:
if (precomputed.rows() == 0) {
return 0;
} else {
interleaver = std::unique_ptr<
RFC6330__v1::Impl::Interleaver<Rnd_It>> (
new RFC6330__v1::Impl::Interleaver<Rnd_It> (
data.begin(), data.end(),
_symbol_size, SIZE_MAX,
_symbol_size));
precomputed = DenseMtx(); // free mem
}
}
return encoder.Enc (id, output, end);
}
}
///////////////////
//// Decoder
///////////////////
template <typename In_It, typename Fwd_It>
uint16_t Decoder<In_It, Fwd_It>::get_symbols (const uint64_t bytes,
const uint16_t symbol_size)
{
uint16_t symbols = static_cast<uint16_t> (bytes / symbol_size);
if (bytes % symbol_size != 0)
++symbols;
template <typename In_It, typename Fwd_It>
Decoder<In_It, Fwd_It>::~Decoder ()
{
work = RaptorQ__v1::Work_State::ABORT_COMPUTATION;
_cond.notify_all();
// wait threads to exit
do {
std::unique_lock<std::mutex> lock (_mtx);
if (waiting.size() == 0)
break;
_cond.wait (lock);
lock.unlock();
} while (waiting.size() != 0);
}
template <typename In_It, typename Fwd_It>
Decoder<In_It, Fwd_It>::Decoder (const uint64_t bytes,
const uint16_t symbol_size, const Report type)
:_bytes (bytes), _symbols (get_symbols (bytes, symbol_size)),
_symbol_size (symbol_size), _type (type),
dec (_symbols, symbol_size)
{
IS_INPUT(In_It, "RaptorQ__v1::Decoder");
IS_FORWARD(Fwd_It, "RaptorQ__v1::Decoder");
symbols_tracker = std::vector<bool> (2 * _symbols, false);
work = RaptorQ__v1::Work_State::KEEP_WORKING;
}
template <typename In_It, typename Fwd_It>
uint16_t Decoder<In_It, Fwd_It>::symbols() const
{
return _symbols;
}
template <typename In_It, typename Fwd_It>
uint16_t Decoder<In_It, Fwd_It>::symbol_size() const
{
return _symbol_size;
RaptorQ__v1::It::Decoder::Symbol_Iterator<In_It, Fwd_It>
return RaptorQ__v1::It::Decoder::Symbol_Iterator<In_It, Fwd_It> (this, 0);
RaptorQ__v1::It::Decoder::Symbol_Iterator<In_It, Fwd_It>
return RaptorQ__v1::It::Decoder::Symbol_Iterator<In_It, Fwd_It> (nullptr,
template <typename In_It, typename Fwd_It>
Error Decoder<In_It, Fwd_It>::add_symbol (In_It from, const In_It to,
const uint32_t esi)
{
auto ret = dec.add_symbol (from, to, esi);
if (ret == Error::NONE && esi < _symbols) {
symbols_tracker [2 * esi] = true;
std::unique_lock<std::mutex> lock (_mtx);
RQ_UNUSED (lock);
_cond.notify_all();
}
return ret;
}
template <typename In_It, typename Fwd_It>
std::unique_lock<std::mutex> lock (_mtx, std::defer_lock);
int32_t id;
uint32_t to_report;
switch (_type) {
case Report::PARTIAL_FROM_BEGINNING:
to_report = 0;
if (id < 0)
id = 0;
for (; id < symbols_tracker.size(); id += 2) {
if (symbols_tracker[id] == true) {
++id;
if (to_report > 0 || dec->ready()) {
last_reported += to_report;
return {Error::NONE, last_reported};
}
if (!dec.can_decode())
return {Error::NEED_DATA, 0};
return {Error::WORKING, 0};
case Report::PARTIAL_ANY:
if (symbols_tracker[id] == true) {
++id;
lock.lock();
if (symbols_tracker[id] == false) {
symbols_tracker[id] = true;
}
}
if (dec->ready())
return {Error::NONE, 0};
if (dec.can_decode())
return {Error::NEED_DATA, 0};
return {Error::WORKING, 0};
case Report::COMPLETE:
for (id = last_reported; id < symbols_tracker.size(); id += 2) {
if (symbols_tracker[id] == false) {
if (dec.can_decode())
return {Error::WORKING, 0};
return {Error::NEED_DATA, 0};
}
}
459
460
461
462
463
464
465
466
467
468
469
470
471
472
473
474
475
476
477
478
479
480
481
482
483
484
485
486
487
488
489
490
491
492
493
494
495
496
497
498
499
return {Error::NONE, 0};
}
return {Error::WORKING, 0};
}
template <typename In_It, typename Fwd_It>
void Decoder<In_It, Fwd_It>::waiting_thread (Decoder<In_It, Fwd_It> *obj,
std::promise<std::pair<Error, uint16_t>> p)
{
while (obj->work == RaptorQ__v1::Work_State::KEEP_WORKING) {
std::unique_lock<std::mutex> lock (obj->_mtx);
auto res = obj->poll();
if (obj->poll.first == Error::NONE) {
p.set_value (res);
break;
}
obj->_cond.wait (lock);
res = obj->poll();
lock.unlock();
if (obj->poll.first == Error::NONE) {
p.set_value (res);
break;
}
}
if (obj->work != RaptorQ__v1::Work_State::KEEP_WORKING)
p.set_value ({Error::EXITING, 0});
std::unique_lock<std::mutex> lock (obj->_mtx);
RQ_UNUSED (lock);
for (auto th = obj->waiting.begin(); th != obj->waiting.end(); ++th) {
if (std::this_thread::get_id() == th.id()) {
th.detach();
obj->waiting.erase (th);
break;
}
}
obj->_cond.notify_all(); // notify exit to destructor
}
template <typename In_It, typename Fwd_It>
std::future<std::pair<Error, uint16_t>> Decoder<In_It, Fwd_It>::wait (
{
std::promise<std::pair<Error, uint16_t>> p;
waiting_thread (this, std::move(p));
} else {
waiting.emplace_back (waiting_thread, this, std::move(p));
}
}
template <typename In_It, typename Fwd_It>
bool Decoder<In_It, Fwd_It>::can_decode() const
{
return dec.can_decode();
}
template <typename In_It, typename Fwd_It>
typename Decoder<In_It, Fwd_It>::Decoder_Result Decoder<In_It, Fwd_It>::decode()
{
auto res = dec.decode (&work);
if (res == Decoder_Result::DECODED) {
std::unique_lock<std::mutex> lock (_mtx);
RQ_UNUSED (lock);
if (_type != Report::COMPLETE) {
uint32_t id = static_cast<uint32_t> (std::max (0, last_reported));
for (; id < symbols_tracker.size(); id += 2)
symbols_tracker[id] = true;
}
_cond.notify_all();
}
return res;
}
template <typename In_It, typename Fwd_It>
void Decoder<In_It, Fwd_It>::stop()
{
work = RaptorQ__v1::Work_State::ABORT_COMPUTATION;
std::unique_lock<std::mutex> lock (_mtx);
_cond.notify_all();
}
template <typename In_It, typename Fwd_It>
std::pair<uint64_t, size_t> Decoder<In_It, Fwd_It>::decode_bytes (Fwd_It &start,
const Fwd_It end,
const uint64_t from_byte,
const size_t skip)
using T = typename std::iterator_traits<Fwd_It>::value_type;
if (!dec.ready() || skip >= sizeof(T)) // !dec.ready()
auto decoded = dec.get_symbols();
uint16_t esi = static_cast<uint16_t> (from_byte /
static_cast<uint64_t> (decoded->cols()));
uint16_t byte = static_cast<uint16_t> (from_byte %
static_cast<uint64_t> (decoded->cols()));
T element = static_cast<T> (0);
if (skip != 0) {
uint8_t *p = reinterpret_cast<uint8_t *> (&*start);
for (size_t keep = 0; keep < skip; ++keep) {
element += static_cast<T> (*(p++)) << keep * 8;
}
}
while (start != end && esi < decoded->rows() &&
_bytes > from_byte + written + offset_al) {
element += static_cast<T> (static_cast<uint8_t> ((*decoded)(esi, byte)))
<< offset_al * 8;
++offset_al;
if (offset_al == sizeof(T)) {
*start = element;
written += offset_al;
offset_al = 0;
element = static_cast<T> (0);
}
++byte;
if (byte == decoded->cols()) {
byte = 0;
++esi;
}
}
if (start != end && offset_al != 0) {
// we have more stuff in "element", but not enough to fill
// the iterator.
*start = element;
written += offset_al;
}
template <typename In_It, typename Fwd_It>
uint64_t Decoder<In_It, Fwd_It>::decode_symbol (Fwd_It &start, const Fwd_It end,
assert ((_symbol_size %
sizeof(typename std::iterator_traits<Fwd_It>::value_type)) == 0);
if (!dec.ready())
return 0;
size_t esi_byte = esi * dec->cols();
auto pair = decode_bytes (start, end, esi_byte, 0);
assert (pair.second == 0 );
return pair.first / _symbol_size;