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827 lines (620 loc) · 24.5 KB
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/*
Socle Library Ecosystem
Copyright (c) 2014, Ales Stibal <astib@mag0.net>, All rights reserved.
This library 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 3.0 of the License, or (at your option) any later version.
This library 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 Lesser General Public License for more details.
You should have received a copy of the GNU Lesser General Public
License along with this library.
*/
#include "hostcx.hpp"
#include "log/logger.hpp"
#include "display.hpp"
#include "crc32.hpp"
#include "iproxy.hpp"
#include <number.hpp>
using namespace socle::raw;
namespace std
{
size_t hash<Host>::operator()(const Host& h) const
{
const std::string hs = h.chost();
const std::string hp = h.cport();
// Compute individual hash values for two data members and combine them using XOR and bit shifting
return ((hash<string>()(hs) ^ (hash<string>()(hp) << 1)) >> 1);
}
}
bool operator==(const Host& h, const Host& hh) {
std::string s = h.chost() + ":" + h.cport();
std::string ss = hh.chost() + ":" + hh.cport();
return s == ss;
}
baseHostCX::baseHostCX(baseCom* c, const char* h, const char* p): Host(h, p) {
writebuf_.capacity(baseHostCX::params_t::buffsize);
readbuf_.capacity(baseHostCX::params_t::buffsize);
//whenever we initialize object with socket, we will be already opening!
opening(true);
if(!c) {
throw socle::com_is_null();
}
com_ = std::unique_ptr<baseCom>(c);
com()->init(this);
}
baseHostCX::baseHostCX(baseCom* c, int s): fds_(s) {
writebuf_.capacity(baseHostCX::params_t::buffsize);
readbuf_.capacity(baseHostCX::params_t::buffsize);
//whenever we initialize object with socket, we will be already opening!
opening(true);
if(!c) {
throw socle::com_is_null();
}
com_ = std::unique_ptr<baseCom>(c);
com()->init(this);
}
baseHostCX::~baseHostCX() {
com()->cleanup();
if(fds_ > 0) {
com()->set_poll_handler(fds_,nullptr);
com()->close(fds_);
}
if(closing_fds_ > 0) {
com()->set_poll_handler(closing_fds_,nullptr);
com()->close(closing_fds_);
}
}
void baseHostCX::com(baseCom* c) {
com_ = std::unique_ptr<baseCom>(c);
}
int baseHostCX::connect() {
if(! com()) {
return -1;
}
opening(true);
_deb("HostCX::connect[%s]: blocking=%d",c_type(), baseCom::GLOBAL_IO_BLOCKING());
fds_ = com()->connect(host_.c_str(),port_.c_str());
error_ = false;
if (fds_ > 0 && baseCom::GLOBAL_IO_BLOCKING()) {
_deb("HostCX::connect[%s]: blocking, connected successfully, socket %d",c_type(),fds_);
opening(false);
}
else if (baseCom::GLOBAL_IO_BLOCKING()) {
_deb("HostCX::connect[%s]: blocking, failed!",c_type());
opening(false);
}
return fds_;
}
bool baseHostCX::opening_timeout() {
if (!opening()) {
_dum("baseHostCX::opening_timeout: already opened");
return false;
} else {
time_t now = time(nullptr);
if (now - t_connected > reconnect_delay()) {
_dia("opening_timeout: timeout!");
return true;
}
}
return false;
}
bool baseHostCX::idle_timeout() const {
time_t now = time(nullptr);
bool read_timeout = false;
bool write_timeout = false;
if (now - w_activity > idle_delay() && now - w_activity) {
write_timeout = true;
}
if (now - r_activity > idle_delay() && now - r_activity) {
read_timeout = true;
}
if(write_timeout and read_timeout) {
_dia("baseHostCX::idle_timeout: timeout");
return true;
}
return false;
}
bool baseHostCX::read_waiting_for_peercom () {
if(read_waiting_for_peercom_ && peercom()) {
if(peercom()->com_status()) {
_dia("baseHostCX::read_waiting_for_peercom: peer's com status is OK after %dx, un-pausing", peer_stats.com_not_ready_counter);
read_waiting_for_peercom(false);
peer_stats.com_not_ready_counter = 0;
} else {
_dia("baseHostCX::read_waiting_for_peercom: peer's com status not ready (%dx), rescanning read", peer_stats.com_not_ready_counter);
++peer_stats.com_not_ready_counter > baseHostCX::params_t::com_not_ready_slowdown ?
peercom()->rescan_read(peercom()->socket()) : peercom()->set_monitor(peercom()->socket());
}
}
else if(read_waiting_for_peercom_) {
// peer() == nullptr !
_dum("baseHostCX::read_waiting_for_peercom: no peer set => no peer to wait for => manual mode");
}
return read_waiting_for_peercom_;
}
bool baseHostCX::write_waiting_for_peercom () {
if(write_waiting_for_peercom_) {
if(peercom()) {
if(peercom()->com_status()) {
_dia("baseHostCX::write_waiting_for_peercom: peer's com status ok after %dx, un-pausing write", peer_stats.com_not_ready_counter);
write_waiting_for_peercom(false);
peer_stats.com_not_ready_counter = 0;
}
else {
_dia("baseHostCX::write_waiting_for_peercom: peer's com status not ready (%dx), rescanning write", peer_stats.com_not_ready_counter);
++peer_stats.com_not_ready_counter > baseHostCX::params_t::com_not_ready_slowdown ?
peercom()->rescan_write(peercom()->socket()) : peercom()->set_write_monitor(peercom()->socket());
}
}
else {
// peer() == nullptr !
_err("baseHostCX::write_waiting_for_peercom: no peer set => no peer to wait for => manual mode");
error(true);
}
}
return write_waiting_for_peercom_;
}
bool baseHostCX::is_connected() {
bool status = com()->is_connected(socket());
_dia("baseHostCX::is_connected[%s]: getsockopt(%d,SOL_SOCKET,SO_ERROR,..,..) reply %d", c_type(), socket(), status);
return status;
}
void baseHostCX::unhandle() const {
if (com()) {
int closed_s = closed_socket();
if (closed_s != 0) {
com()->unset_monitor(closed_s);
com()->set_poll_handler(closed_s, nullptr);
}
else {
int opened_s = socket();
if (opened_s != 0) {
com()->unset_monitor(opened_s);
com()->set_poll_handler(opened_s, nullptr);
}
}
}
}
void baseHostCX::shutdown() {
parent_proxy(nullptr, '-');
if(fds_ != 0) {
closing_fds_ = fds_;
if(com()) {
// Stop dispatching before shutdown: UDP shutdown closes the fd
// immediately, so clearing its handler afterwards could clear a
// different socket which already reused the same descriptor.
unhandle();
_deb("baseHostCX::shutdown[%s]: handler removed", c_type());
com()->shutdown(closing_fds_);
_deb("baseHostCX::shutdown[%s]: socket shutdown on com", c_type());
// UDPCom either closes the socket or transfers a shared cached
// socket to another session. In both cases this HostCX must not
// close the numeric fd again later: it may already be reused.
if(com()->shutdown_consumes_fd()) closing_fds_ = 0;
}
fds_ = 0;
} else {
_deb("baseHostCX::shutdown[%s]: no-op, cannot be shutdown",c_type());
}
}
std::string& baseHostCX::name(int level, bool force) const {
if(name_empty() || online_name || force) {
if (reduced()) {
std::string com_name = "?";
if(com() != nullptr) {
com_name = com()->c_type();
}
std::string res_host;
std::string res_port;
if (valid()) {
if(com() != nullptr) {
com()->resolve_socket_src(fds_, &res_host, &res_port);
host(res_host);
port(res_port);
}
if(socket_in_name) {
name(string_format("%d::%s_%s:%s", socket(), com()->shortname().c_str() , chost().c_str(), cport().c_str()));
} else {
name(string_format("%s_%s:%s", com()->shortname().c_str() , chost().c_str(), cport().c_str()));
}
//name__ = string_format("%d:<reduced>",socket());
}
else {
name(std::string("?:<reduced>"));
}
} else {
if(socket_in_name) {
name(string_format("%d::%s_%s:%s", socket(), com()->shortname().c_str() , chost().c_str(), cport().c_str()));
} else {
name(string_format("%s_%s:%s", com()->shortname().c_str() , chost().c_str(), cport().c_str()));
}
}
}
return name_;
}
const char* baseHostCX::c_type() const {
name();
return name_.c_str();
}
bool baseHostCX::reconnect() {
if (should_reconnect_now() and permanent()) {
shutdown();
connect();
_deb("baseHostCX::reconnect[%s]: reconnect attempt (previous at %u)",c_type(),last_reconnect_);
last_reconnect_ = time(nullptr);
return true;
}
else if (!permanent()) {
_not("baseHostCX::reconnect: attempt to reconnect non-permanent CX: %s",c_type());
return false;
}
else if (reduced() ) {
_err("baseHostCX::reconnect[%s]: reconnecting reduced CX is not possible",c_type());
last_reconnect_ = time(nullptr);
return false;
}
return false;
}
ssize_t baseHostCX::io_read(void* where, size_t len, int flags = 0) const {
return com()->read(socket(), where, len, flags);
}
void baseHostCX::grow_buffer() {
_dia("baseHostCX::read[%s]: read buffer reached it's current capacity %d/%d bytes", c_type(),
readbuf_.size(), readbuf_.capacity());
if(readbuf_.capacity() * 2 <= get_max_buffsize()) {
if (readbuf_.capacity(readbuf_.capacity() * 2)) {
_dia("baseHostCX::read[%s]: read buffer resized capacity %d/%d bytes", c_type(),
readbuf_.size(), readbuf_.capacity());
} else {
_not("baseHostCX::read[%s]: memory tension: read buffer cannot be resized!", c_type());
}
}
else {
_dia("baseHostCX::read[%s]: buffer already reached it's maximum capacity.", c_type());
}
}
void baseHostCX::after_read(std::size_t buffer_written_len) {
meter_read_bytes += buffer_written_len;
meter_read_count++;
r_activity = time(nullptr);
// claim opening socket already opened
if (opening()) {
_dia("baseHostCX::read[%s]: connection established", c_type());
opening(false);
}
_ext("baseHostCX::read[%s]: readbuf_ read %d bytes", c_type(), buffer_written_len);
processed_in_ = 0L;
if(meter_read_bytes > processed_in_total_) {
processed_in_ = process_in_();
processed_in_total_ += processed_in_;
}
_deb("baseHostCX::read[%s]: readbuf_ read %d bytes, process()-ed %d bytes, incomplete readbuf_ %d bytes",
c_type(), buffer_written_len, processed_in_, buffer_written_len - processed_in_);
// data are already processed
_deb("baseHostCX::read[%s]: calling post_read",c_type());
post_read();
_if_deb {
if (baseCom::debug_log_data_crc) {
_deb("baseHostCX::read[%s]: after: buffer crc = %X", c_type(),
socle::tools::crc32::compute(0, readbuf()->data(), readbuf()->size()));
}
}
}
int baseHostCX::read() {
if(io_disabled()) {
_war("io is disabled, but read() called");
}
if(read_waiting_for_peercom()) {
_deb("baseHostCX::read[%s]: read operation is waiting_for_peercom, returning -1",c_type());
return -1;
}
if(peer() && peer()->writebuf()->size() > baseHostCX::params_t::write_full) {
_deb("baseHostCX::read[%d]: deferring read operation",socket());
com()->rescan_read(socket());
return -1;
}
auto lc_ = std::scoped_lock(readbuf()->lock_);
_dum("HostCX::read[%s]: calling pre_read",c_type());
pre_read();
if(read_eagain()) {
read_unlimited();
return -1;
}
_dum("HostCX::read[%s]: readbuf_ size=%d, capacity=%d, previously processed=%d finished", c_type(),
readbuf_.size(), readbuf_.capacity(), processed_in_);
if (auto_finish()) {
finish();
}
ssize_t buffer_written_len = 0;
auto this_read_op_limit = read_limit().value_or(0);
while(true) {
// append-like behavior: append to the end of the buffer, don't exceed max. capacity!
void *cur_read_ptr = &(readbuf_.data()[readbuf_.size()]);
// read only amount of bytes fitting the buffer capacity
auto max_bytes_left = readbuf()->capacity() - readbuf()->size();
if (this_read_op_limit > 0 and max_bytes_left > this_read_op_limit)
{
max_bytes_left = this_read_op_limit; // next read limit is checked to be positive
_deb("HostCX::read[%s]: read buffer limiter: %dB (%dB space in buffer)", c_type(), max_bytes_left, readbuf()->capacity() - readbuf()->size());
}
_ext("HostCX::read[%s]: readbuf_ base=%x, wr at=%x, maximum to write=%d", c_type(),
readbuf_.data(), cur_read_ptr, max_bytes_left);
//read on last position in buffer
auto cur_io_len = io_read(cur_read_ptr, max_bytes_left);
// no data to read!
if(cur_io_len < 0) {
// if this is first attempt read Fix it.
if(buffer_written_len == 0) {
buffer_written_len = -1;
}
break;
}
else if(cur_io_len == 0) {
_dia("baseHostCX::read[%s]: error while reading. %d bytes read into buffer.", c_type(), buffer_written_len);
error(true);
break;
}
auto cur_io_len_bytes = static_cast<std::size_t>(cur_io_len);
// change size of the buffer accordingly (negative cur_io_len is handled previously
readbuf_.size(readbuf_.size() + cur_io_len_bytes);
//increment read counter
buffer_written_len += cur_io_len_bytes;
if(this_read_op_limit > 0 and buffer_written_len >= static_cast<ssize_t>(this_read_op_limit))
{
_dia("baseHostCX::read[%s]: read limiter hit on %d bytes.", c_type(), buffer_written_len);
break;
}
// in case next_read_limit_ is large and we read less bytes than it, we need to decrement also next_read_limit_
if(this_read_op_limit != 0L) this_read_op_limit -= cur_io_len_bytes;
// if buffer is full, let's reallocate it and try read again (to save system resources)
if(readbuf_.size() >= readbuf_.capacity()) {
grow_buffer();
}
// reaching code here means that we don't want other iterations
break;
}
if (buffer_written_len > 0) {
after_read(static_cast<std::size_t>(buffer_written_len));
} else if (buffer_written_len == 0) {
_dia("baseHostCX::read[%s]: error while reading", c_type());
error(true);
} else {
processed_in_ = 0;
}
// before return, don't forget to reset read limiter
read_unlimited();
return down_cast<int>(buffer_written_len).value_or(max_of<int>());
}
void baseHostCX::pre_read() {
// this is intentionally empty
}
void baseHostCX::post_read() {
// this is intentionally empty
}
std::size_t baseHostCX::process_in_() {
return process_in();
};
std::size_t baseHostCX::process_out_() {
return process_out();
};
ssize_t baseHostCX::io_write(unsigned char* data, size_t tx_size, int flags = 0) const {
return com()->write(socket(), data, tx_size, flags);
}
int baseHostCX::write() {
auto _debug_tx_size = [this](auto tx_size_orig, auto tx_size, const char* fname) {
if(tx_size > 0) {
if (tx_size != tx_size_orig) {
_deb("baseHostCX::write[%s]: calling %s modified data, size %d -> %d", c_type(), fname, tx_size_orig,
tx_size);
}
_deb("baseHostCX::write[%s]: writebuf_ %d bytes pending %s", c_type(), tx_size,
opening() ? "(opening)" : "");
}
};
if(io_disabled()) {
_war("io is disabled, but write() called");
}
if(write_waiting_for_peercom()) {
_deb("baseHostCX::write[%s]: write operation is waiting_for_peercom, returning 0", c_type());
return 0;
}
auto acc = std::scoped_lock(*writebuf());
// pre-write operation
auto tx_size_orig = writebuf_.size();
pre_write();
auto tx_size = writebuf_.size();
_if_deb _debug_tx_size(tx_size_orig, tx_size, "pre_write");
// process-out operation
tx_size_orig = writebuf_.size();
tx_size = tx_size_orig;
processed_out_ = 0L;
// check for unseen data to be yet written
if(meter_write_bytes + tx_size > processed_out_total_) {
processed_out_ = process_out_();
processed_out_total_ += processed_out_;
}
else {
// there are still data in buffer, but we have seen them all already
processed_out_ = tx_size;
}
_if_deb {
_debug_tx_size(tx_size_orig, tx_size, "process_out");
if(processed_out_ != tx_size) {
_deb("baseHostCX::write[%s]: process_out processed %d of %d bytes in writebuf", c_type(), tx_size_orig, processed_out_);
}
}
// process_out can actually extend bytes, so we cannot rely on tx_size
ssize_t l = io_write(writebuf_.data(), std::min(writebuf_.size(), processed_out_), MSG_NOSIGNAL);
if (l > 0) {
meter_write_bytes += static_cast<std::size_t>(l);
meter_write_count++;
w_activity = time(nullptr);
if (opening()) {
_deb("baseHostCX::write[%s]: connection established", c_type());
opening(false);
}
_deb("baseHostCX::write[%s]: %d from %d bytes sent from tx buffer at %x", c_type(), l, tx_size, writebuf_.data());
if (l < static_cast<ssize_t>(tx_size)) {
// rather log this: not a big deal, but we couldn't have sent all data!
_dia("baseHostCX::write[%s]: only %d from %d bytes sent from tx buffer!", c_type(), l, tx_size);
}
_dum("baseHostCX::write[%s]: calling post_write", c_type());
post_write();
if(l < static_cast<ssize_t>(writebuf_.size())) {
_dia("baseHostCX::write[%s]: %d bytes written out of %d -> setting socket write monitor",
c_type(), l, writebuf_.size());
// we need to check once more when socket is fully writable
com()->set_write_monitor(socket());
rescan_out_flag_ = true;
} else {
// write buffer is empty
if(rescan_out_flag_) {
rescan_out_flag_ = false;
// stop monitoring write which results in loop an unnecesary write() calls
com()->change_monitor(socket(), EPOLLIN);
}
}
writebuf_.flush(static_cast<std::size_t>(l));
if(baseCom::debug_log_data_crc) {
_deb("baseHostCX::write[%s]: after: buffer crc = %X", c_type(),
socle::tools::crc32::compute(0, writebuf()->data(), writebuf()->size()));
}
if(close_after_write() && writebuf()->empty()) {
shutdown();
}
}
else if(l == 0 and not writebuf()->empty()) {
// write unsuccessful, we have to try immediately socket is writable!
_dia("baseHostCX::write[%s]: %d bytes written out of %d -> setting socket write monitor",
c_type(), l, writebuf_.size());
// write was not successful, wait a while
com()->rescan_write(socket());
rescan_out_flag_ = true;
}
else if(l < 0) {
_dia("baseHostCX::write[%s] write failed: %s, unrecoverable.", c_type(), string_error().c_str());
}
return down_cast<int>(l).value_or(max_of<int>());
}
void baseHostCX::pre_write() {
}
void baseHostCX::post_write() {
}
std::size_t baseHostCX::process_in() {
return readbuf()->size();
}
std::size_t baseHostCX::process_out() {
return writebuf()->size();
}
std::size_t baseHostCX::finish() {
if( readbuf()->size() >= (unsigned int)processed_in_ && processed_in_ > 0)
{
_deb("baseHostCX::finish[%s]: flushing %d bytes in readbuf_ size %d", c_type(), processed_in_, readbuf()->size());
readbuf()->flush(processed_in_);
return processed_in_;
}
else if (readbuf()->empty())
{
_dum("baseHostCX::finish[%s]: already flushed",c_type());
return 0;
}
else
{
_war("baseHostCX::finish[%s]: attempt to flush more data than in buffer", c_type());
_war("baseHostCX::finish[%s]: best-effort recovery: flushing all", c_type());
auto s = readbuf()->size();
readbuf()->flush(s);
return s;
}
}
lockbuffer& baseHostCX::to_read() {
return *readbuf();
}
void baseHostCX::to_write(buffer& b) {
bool fastlane = false;
if(writebuf()->empty()) {
if(meter_write_bytes > params_t::fast_copy_start) {
_deb("baseHostCX::to_write(buf)[%s]: fastlane swap %dB buffer", c_type(), b.size());
b.swap(*writebuf());
// resize to original capacity
b.capacity(writebuf()->capacity());
b.size(0);
fastlane = true;
} else {
_deb("baseHostCX::to_write(buf)[%s]: going slow mode, detection phase", c_type());
}
} else {
_deb("baseHostCX::to_write(buf)[%s]: going slow mode, %dB in writebuf", c_type(), writebuf()->size());
}
if(not fastlane) {
writebuf_.append(b);
_deb("baseHostCX::to_write(buf)[%s]: appending %d bytes, buffer size now %d bytes", c_type(), b.size(),
writebuf_.size());
}
com()->set_write_monitor(socket());
}
void baseHostCX::to_write(const std::string& s) {
writebuf_.append(s.data(), s.size());
com()->set_write_monitor(socket());
_deb("baseHostCX::to_write(ptr)[%s]: appending %d bytes, buffer size now %d bytes", c_type(), s.size(), writebuf_.size());
}
void baseHostCX::to_write(unsigned char* c, unsigned int l) {
writebuf_.append(c,l);
com()->set_write_monitor(socket());
_deb("baseHostCX::to_write(ptr)[%s]: appending %d bytes, buffer size now %d bytes", c_type(), l, writebuf_.size());
}
void baseHostCX::on_accept_socket(int fd) {
com()->accept_socket(fd);
if(reduced()) {
com()->resolve_socket_src(fd, &host_,&port_);
}
}
void baseHostCX::on_delay_socket(int fd) {
com()->delay_socket(fd);
}
std::string baseHostCX::to_string(int verbosity) const {
std::stringstream r_str;
r_str << name(verbosity);
if(verbosity > INF) {
r_str << string_format(" | fd=%d | rx_cnt=%d rx_b=%d / tx_cnt=%d tx_b=%d",
com() ? com()->translate_socket(socket()) : socket(),
meter_read_count, meter_read_bytes,
meter_write_count, meter_write_bytes);
}
return r_str.str();
}
std::string baseHostCX::full_name(unsigned char side) {
std::string self = host();
std::string self_p = port();
int self_s = socket();
std::string self_ss;
if(socket_in_name) self_ss = string_format("::%d:", self_s);
std::string self_c;
if (com()) self_c = com()->shortname();
std::string peeer = "?";
std::string peeer_p = "?";
int peeer_s = 0;
std::string peeer_c = "?";
std::string peeer_ss;
if (peer()) {
peeer = peer()->host();
peeer_p = peer()->port();
peeer_s = peer()->socket();
if(socket_in_name) peeer_ss = string_format("::%d:", peeer_s);
if (peer()->com()) {
peeer_c = peer()->com()->shortname();
}
} else {
return string_format("%s_%s%s:%s", self_c.c_str(), self_ss.c_str(), self.c_str(), self_p.c_str());
}
if ( (side == 'l') || ( side == 'L') ) {
return string_format("%s_%s%s:%s to %s_%s%s:%s", self_c.c_str(), self_ss.c_str(), self.c_str(), self_p.c_str(),
peeer_c.c_str(), peeer_ss.c_str(), peeer.c_str(), peeer_p.c_str());
}
//else
return string_format("%s_%s%s:%s to %s_%s%s:%s", peeer_c.c_str(), peeer_ss.c_str(), peeer.c_str(), peeer_p.c_str(),
self_c.c_str(), self_ss.c_str(), self.c_str(), self_p.c_str());
}