postgresql/src/backend/replication
Michael Paquier 910e2aca12 Address set of issues with errno handling
System calls mixed up in error code paths are causing two issues which
several code paths have not correctly handled:
1) For write() calls, sometimes the system may return less bytes than
what has been written without errno being set.  Some paths were careful
enough to consider that case, and assumed that errno should be set to
ENOSPC, other calls missed that.
2) errno generated by a system call is overwritten by other system calls
which may succeed once an error code path is taken, causing what is
reported to the user to be incorrect.

This patch uses the brute-force approach of correcting all those code
paths.  Some refactoring could happen in the future, but this is let as
future work, which is not targeted for back-branches anyway.

Author: Michael Paquier
Reviewed-by: Ashutosh Sharma
Discussion: https://postgr.es/m/20180622061535.GD5215@paquier.xyz
2018-06-25 11:21:49 +09:00
..
libpqwalreceiver Fix low-probability leaks of PGresult objects in the backend. 2017-06-15 15:03:55 -04:00
logical Address set of issues with errno handling 2018-06-25 11:21:49 +09:00
.gitignore Remove generation of repl_gram.h 2012-10-08 20:36:46 -04:00
basebackup.c Address set of issues with errno handling 2018-06-25 11:21:49 +09:00
Makefile Fix VPATH builds of the replication parser from git for some !gcc compilers. 2014-09-25 15:22:26 +02:00
README Fix typo in README. 2015-02-24 14:33:26 +02:00
repl_gram.y Map basebackup tablespaces using a tablespace_map file 2015-05-12 09:29:10 -04:00
repl_scanner.l Map basebackup tablespaces using a tablespace_map file 2015-05-12 09:29:10 -04:00
slot.c Address set of issues with errno handling 2018-06-25 11:21:49 +09:00
slotfuncs.c Preserve required !catalog tuples while computing initial decoding snapshot. 2017-04-27 13:13:37 -07:00
syncrep.c Fix ordering of operations in SyncRepWakeQueue to avoid assertion failure. 2017-07-12 15:35:36 +03:00
walreceiver.c Fix coding rules violations in walreceiver.c 2017-10-03 14:58:25 +02:00
walreceiverfuncs.c Spelling fixes 2017-03-14 13:45:51 -04:00
walsender.c Fix walsender timeouts when decoding a large transaction 2017-12-14 11:32:00 -05:00

src/backend/replication/README

Walreceiver - libpqwalreceiver API
----------------------------------

The transport-specific part of walreceiver, responsible for connecting to
the primary server, receiving WAL files and sending messages, is loaded
dynamically to avoid having to link the main server binary with libpq.
The dynamically loaded module is in libpqwalreceiver subdirectory.

The dynamically loaded module implements four functions:


bool walrcv_connect(char *conninfo, XLogRecPtr startpoint)

Establish connection to the primary, and starts streaming from 'startpoint'.
Returns true on success.

bool walrcv_receive(int timeout, unsigned char *type, char **buffer, int *len)

Retrieve any message available through the connection, blocking for
maximum of 'timeout' ms. If a message was successfully read, returns true,
otherwise false. On success, a pointer to the message payload is stored in
*buffer, length in *len, and the type of message received in *type. The
returned buffer is valid until the next call to walrcv_* functions, the
caller should not attempt freeing it.

void walrcv_send(const char *buffer, int nbytes)

Send a message to XLOG stream.

void walrcv_disconnect(void);

Disconnect.


This API should be considered internal at the moment, but we could open it
up for 3rd party replacements of libpqwalreceiver in the future, allowing
pluggable methods for receiving WAL.

Walreceiver IPC
---------------

When the WAL replay in startup process has reached the end of archived WAL,
restorable using restore_command, it starts up the walreceiver process
to fetch more WAL (if streaming replication is configured).

Walreceiver is a postmaster subprocess, so the startup process can't fork it
directly. Instead, it sends a signal to postmaster, asking postmaster to launch
it. Before that, however, startup process fills in WalRcvData->conninfo
and WalRcvData->slotname, and initializes the starting point in
WalRcvData->receiveStart.

As walreceiver receives WAL from the master server, and writes and flushes
it to disk (in pg_xlog), it updates WalRcvData->receivedUpto and signals
the startup process to know how far WAL replay can advance.

Walreceiver sends information about replication progress to the master server
whenever it either writes or flushes new WAL, or the specified interval elapses.
This is used for reporting purpose.

Walsender IPC
-------------

At shutdown, postmaster handles walsender processes differently from regular
backends. It waits for regular backends to die before writing the
shutdown checkpoint and terminating pgarch and other auxiliary processes, but
that's not desirable for walsenders, because we want the standby servers to
receive all the WAL, including the shutdown checkpoint, before the master
is shut down. Therefore postmaster treats walsenders like the pgarch process,
and instructs them to terminate at PM_SHUTDOWN_2 phase, after all regular
backends have died and checkpointer has issued the shutdown checkpoint.

When postmaster accepts a connection, it immediately forks a new process
to handle the handshake and authentication, and the process initializes to
become a backend. Postmaster doesn't know if the process becomes a regular
backend or a walsender process at that time - that's indicated in the
connection handshake - so we need some extra signaling to let postmaster
identify walsender processes.

When walsender process starts up, it marks itself as a walsender process in
the PMSignal array. That way postmaster can tell it apart from regular
backends.

Note that no big harm is done if postmaster thinks that a walsender is a
regular backend; it will just terminate the walsender earlier in the shutdown
phase. A walsender will look like a regular backend until it's done with the
initialization and has marked itself in PMSignal array, and at process
termination, after unmarking the PMSignal slot.

Each walsender allocates an entry from the WalSndCtl array, and tracks
information about replication progress. User can monitor them via
statistics views.


Walsender - walreceiver protocol
--------------------------------

See manual.