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1.1 |
NAME |
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Coro - the only real threads in perl |
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1.1 |
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SYNOPSIS |
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1.14 |
use Coro; |
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async { |
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# some asynchronous thread of execution |
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print "2\n"; |
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cede; # yield back to main |
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print "4\n"; |
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}; |
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print "1\n"; |
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cede; # yield to coro |
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print "3\n"; |
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cede; # and again |
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# use locking |
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use Coro::Semaphore; |
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my $lock = new Coro::Semaphore; |
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my $locked; |
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$lock->down; |
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$locked = 1; |
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$lock->up; |
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1.1 |
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DESCRIPTION |
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For a tutorial-style introduction, please read the Coro::Intro manpage. |
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This manpage mainly contains reference information. |
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1.1 |
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This module collection manages continuations in general, most often in |
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the form of cooperative threads (also called coros, or simply "coro" in |
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the documentation). They are similar to kernel threads but don't (in |
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general) run in parallel at the same time even on SMP machines. The |
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specific flavor of thread offered by this module also guarantees you |
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that it will not switch between threads unless necessary, at |
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easily-identified points in your program, so locking and parallel access |
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are rarely an issue, making thread programming much safer and easier |
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than using other thread models. |
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Unlike the so-called "Perl threads" (which are not actually real threads |
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but only the windows process emulation ported to unix, and as such act |
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as processes), Coro provides a full shared address space, which makes |
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communication between threads very easy. And Coro's threads are fast, |
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too: disabling the Windows process emulation code in your perl and using |
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Coro can easily result in a two to four times speed increase for your |
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programs. A parallel matrix multiplication benchmark runs over 300 times |
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faster on a single core than perl's pseudo-threads on a quad core using |
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all four cores. |
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Coro achieves that by supporting multiple running interpreters that |
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share data, which is especially useful to code pseudo-parallel processes |
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and for event-based programming, such as multiple HTTP-GET requests |
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running concurrently. See Coro::AnyEvent to learn more on how to |
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integrate Coro into an event-based environment. |
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In this module, a thread is defined as "callchain + lexical variables + |
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some package variables + C stack), that is, a thread has its own |
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callchain, its own set of lexicals and its own set of perls most |
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important global variables (see Coro::State for more configuration and |
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background info). |
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See also the "SEE ALSO" section at the end of this document - the Coro |
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module family is quite large. |
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GLOBAL VARIABLES |
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$Coro::main |
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This variable stores the Coro object that represents the main |
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program. While you cna "ready" it and do most other things you can |
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do to coro, it is mainly useful to compare again $Coro::current, to |
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see whether you are running in the main program or not. |
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$Coro::current |
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The Coro object representing the current coro (the last coro that |
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the Coro scheduler switched to). The initial value is $Coro::main |
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(of course). |
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This variable is strictly *read-only*. You can take copies of the |
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value stored in it and use it as any other Coro object, but you must |
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not otherwise modify the variable itself. |
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$Coro::idle |
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This variable is mainly useful to integrate Coro into event loops. |
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It is usually better to rely on Coro::AnyEvent or Coro::EV, as this |
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is pretty low-level functionality. |
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This variable stores either a Coro object or a callback. |
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If it is a callback, the it is called whenever the scheduler finds |
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no ready coros to run. The default implementation prints "FATAL: |
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deadlock detected" and exits, because the program has no other way |
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to continue. |
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If it is a coro object, then this object will be readied (without |
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invoking any ready hooks, however) when the scheduler finds no other |
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ready coros to run. |
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This hook is overwritten by modules such as "Coro::EV" and |
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"Coro::AnyEvent" to wait on an external event that hopefully wake up |
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a coro so the scheduler can run it. |
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1.1 |
|
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Note that the callback *must not*, under any circumstances, block |
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the current coro. Normally, this is achieved by having an "idle |
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coro" that calls the event loop and then blocks again, and then |
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readying that coro in the idle handler, or by simply placing the |
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idle coro in this variable. |
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1.4 |
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See Coro::Event or Coro::AnyEvent for examples of using this |
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technique. |
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Please note that if your callback recursively invokes perl (e.g. for |
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event handlers), then it must be prepared to be called recursively |
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itself. |
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|
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SIMPLE CORO CREATION |
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async { ... } [@args...] |
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Create a new coro and return its Coro object (usually unused). The |
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coro will be put into the ready queue, so it will start running |
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automatically on the next scheduler run. |
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The first argument is a codeblock/closure that should be executed in |
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the coro. When it returns argument returns the coro is automatically |
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terminated. |
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The remaining arguments are passed as arguments to the closure. |
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See the "Coro::State::new" constructor for info about the coro |
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environment in which coro are executed. |
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Calling "exit" in a coro will do the same as calling exit outside |
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the coro. Likewise, when the coro dies, the program will exit, just |
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as it would in the main program. |
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1.3 |
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If you do not want that, you can provide a default "die" handler, or |
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simply avoid dieing (by use of "eval"). |
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Example: Create a new coro that just prints its arguments. |
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async { |
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print "@_\n"; |
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} 1,2,3,4; |
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async_pool { ... } [@args...] |
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Similar to "async", but uses a coro pool, so you should not call |
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terminate or join on it (although you are allowed to), and you get a |
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coro that might have executed other code already (which can be good |
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or bad :). |
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|
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1.18 |
On the plus side, this function is about twice as fast as creating |
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(and destroying) a completely new coro, so if you need a lot of |
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generic coros in quick successsion, use "async_pool", not "async". |
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1.6 |
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The code block is executed in an "eval" context and a warning will |
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be issued in case of an exception instead of terminating the |
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program, as "async" does. As the coro is being reused, stuff like |
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"on_destroy" will not work in the expected way, unless you call |
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terminate or cancel, which somehow defeats the purpose of pooling |
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(but is fine in the exceptional case). |
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1.6 |
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The priority will be reset to 0 after each run, tracing will be |
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1.10 |
disabled, the description will be reset and the default output |
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filehandle gets restored, so you can change all these. Otherwise the |
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coro will be re-used "as-is": most notably if you change other |
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per-coro global stuff such as $/ you *must needs* revert that |
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1.16 |
change, which is most simply done by using local as in: "local $/". |
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The idle pool size is limited to 8 idle coros (this can be adjusted |
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by changing $Coro::POOL_SIZE), but there can be as many non-idle |
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coros as required. |
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1.6 |
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If you are concerned about pooled coros growing a lot because a |
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1.6 |
single "async_pool" used a lot of stackspace you can e.g. |
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"async_pool { terminate }" once per second or so to slowly replenish |
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1.9 |
the pool. In addition to that, when the stacks used by a handler |
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grows larger than 32kb (adjustable via $Coro::POOL_RSS) it will also |
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be destroyed. |
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1.19 |
STATIC METHODS |
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Static methods are actually functions that implicitly operate on the |
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current coro. |
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1.6 |
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schedule |
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Calls the scheduler. The scheduler will find the next coro that is |
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to be run from the ready queue and switches to it. The next coro to |
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be run is simply the one with the highest priority that is longest |
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in its ready queue. If there is no coro ready, it will clal the |
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$Coro::idle hook. |
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Please note that the current coro will *not* be put into the ready |
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queue, so calling this function usually means you will never be |
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called again unless something else (e.g. an event handler) calls |
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"->ready", thus waking you up. |
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This makes "schedule" *the* generic method to use to block the |
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current coro and wait for events: first you remember the current |
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coro in a variable, then arrange for some callback of yours to call |
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"->ready" on that once some event happens, and last you call |
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"schedule" to put yourself to sleep. Note that a lot of things can |
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wake your coro up, so you need to check whether the event indeed |
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happened, e.g. by storing the status in a variable. |
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1.4 |
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1.18 |
See HOW TO WAIT FOR A CALLBACK, below, for some ways to wait for |
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callbacks. |
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1.1 |
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cede |
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"Cede" to other coros. This function puts the current coro into the |
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ready queue and calls "schedule", which has the effect of giving up |
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the current "timeslice" to other coros of the same or higher |
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priority. Once your coro gets its turn again it will automatically |
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be resumed. |
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This function is often called "yield" in other languages. |
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1.1 |
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1.6 |
Coro::cede_notself |
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Works like cede, but is not exported by default and will cede to |
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*any* coro, regardless of priority. This is useful sometimes to |
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1.14 |
ensure progress is made. |
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1.6 |
|
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1.1 |
terminate [arg...] |
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1.21 |
Terminates the current coro with the given status values (see |
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1.1 |
cancel). |
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1.21 |
Coro::on_enter BLOCK, Coro::on_leave BLOCK |
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These function install enter and leave winders in the current scope. |
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The enter block will be executed when on_enter is called and |
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whenever the current coro is re-entered by the scheduler, while the |
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leave block is executed whenever the current coro is blocked by the |
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scheduler, and also when the containing scope is exited (by whatever |
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means, be it exit, die, last etc.). |
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*Neither invoking the scheduler, nor exceptions, are allowed within |
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those BLOCKs*. That means: do not even think about calling "die" |
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without an eval, and do not even think of entering the scheduler in |
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any way. |
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Since both BLOCKs are tied to the current scope, they will |
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automatically be removed when the current scope exits. |
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These functions implement the same concept as "dynamic-wind" in |
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scheme does, and are useful when you want to localise some resource |
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to a specific coro. |
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1.24 |
They slow down thread switching considerably for coros that use them |
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(about 40% for a BLOCK with a single assignment, so thread switching |
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is still reasonably fast if the handlers are fast). |
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1.21 |
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These functions are best understood by an example: The following |
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function will change the current timezone to |
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"Antarctica/South_Pole", which requires a call to "tzset", but by |
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using "on_enter" and "on_leave", which remember/change the current |
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timezone and restore the previous value, respectively, the timezone |
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1.23 |
is only changed for the coro that installed those handlers. |
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1.21 |
|
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use POSIX qw(tzset); |
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async { |
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my $old_tz; # store outside TZ value here |
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Coro::on_enter { |
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$old_tz = $ENV{TZ}; # remember the old value |
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$ENV{TZ} = "Antarctica/South_Pole"; |
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tzset; # enable new value |
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}; |
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Coro::on_leave { |
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$ENV{TZ} = $old_tz; |
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tzset; # restore old value |
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}; |
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# at this place, the timezone is Antarctica/South_Pole, |
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# without disturbing the TZ of any other coro. |
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}; |
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This can be used to localise about any resource (locale, uid, |
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current working directory etc.) to a block, despite the existance of |
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other coros. |
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1.24 |
Another interesting example implements time-sliced multitasking |
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using interval timers (this could obviously be optimised, but does |
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the job): |
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# "timeslice" the given block |
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sub timeslice(&) { |
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use Time::HiRes (); |
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Coro::on_enter { |
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# on entering the thread, we set an VTALRM handler to cede |
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$SIG{VTALRM} = sub { cede }; |
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# and then start the interval timer |
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Time::HiRes::setitimer &Time::HiRes::ITIMER_VIRTUAL, 0.01, 0.01; |
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}; |
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Coro::on_leave { |
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# on leaving the thread, we stop the interval timer again |
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Time::HiRes::setitimer &Time::HiRes::ITIMER_VIRTUAL, 0, 0; |
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}; |
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&{+shift}; |
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} |
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# use like this: |
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timeslice { |
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# The following is an endless loop that would normally |
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# monopolise the process. Since it runs in a timesliced |
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# environment, it will regularly cede to other threads. |
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while () { } |
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}; |
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1.10 |
killall |
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1.21 |
Kills/terminates/cancels all coros except the currently running one. |
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Note that while this will try to free some of the main interpreter |
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resources if the calling coro isn't the main coro, but one cannot |
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free all of them, so if a coro that is not the main coro calls this |
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function, there will be some one-time resource leak. |
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CORO OBJECT METHODS |
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These are the methods you can call on coro objects (or to create them). |
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1.1 |
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new Coro \&sub [, @args...] |
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1.21 |
Create a new coro and return it. When the sub returns, the coro |
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automatically terminates as if "terminate" with the returned values |
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were called. To make the coro run you must first put it into the |
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ready queue by calling the ready method. |
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1.4 |
|
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1.10 |
See "async" and "Coro::State::new" for additional info about the |
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1.21 |
coro environment. |
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1.4 |
|
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1.21 |
$success = $coro->ready |
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Put the given coro into the end of its ready queue (there is one |
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queue for each priority) and return true. If the coro is already in |
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the ready queue, do nothing and return false. |
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This ensures that the scheduler will resume this coro automatically |
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|
|
once all the coro of higher priority and all coro of the same |
| 336 |
|
|
priority that were put into the ready queue earlier have been |
| 337 |
|
|
resumed. |
| 338 |
|
|
|
| 339 |
root |
1.22 |
$coro->suspend |
| 340 |
|
|
Suspends the specified coro. A suspended coro works just like any |
| 341 |
|
|
other coro, except that the scheduler will not select a suspended |
| 342 |
|
|
coro for execution. |
| 343 |
|
|
|
| 344 |
|
|
Suspending a coro can be useful when you want to keep the coro from |
| 345 |
|
|
running, but you don't want to destroy it, or when you want to |
| 346 |
|
|
temporarily freeze a coro (e.g. for debugging) to resume it later. |
| 347 |
|
|
|
| 348 |
|
|
A scenario for the former would be to suspend all (other) coros |
| 349 |
|
|
after a fork and keep them alive, so their destructors aren't |
| 350 |
|
|
called, but new coros can be created. |
| 351 |
|
|
|
| 352 |
|
|
$coro->resume |
| 353 |
|
|
If the specified coro was suspended, it will be resumed. Note that |
| 354 |
|
|
when the coro was in the ready queue when it was suspended, it might |
| 355 |
|
|
have been unreadied by the scheduler, so an activation might have |
| 356 |
|
|
been lost. |
| 357 |
|
|
|
| 358 |
|
|
To avoid this, it is best to put a suspended coro into the ready |
| 359 |
|
|
queue unconditionally, as every synchronisation mechanism must |
| 360 |
|
|
protect itself against spurious wakeups, and the one in the Coro |
| 361 |
|
|
family certainly do that. |
| 362 |
|
|
|
| 363 |
root |
1.21 |
$is_ready = $coro->is_ready |
| 364 |
|
|
Returns true iff the Coro object is in the ready queue. Unless the |
| 365 |
|
|
Coro object gets destroyed, it will eventually be scheduled by the |
| 366 |
|
|
scheduler. |
| 367 |
|
|
|
| 368 |
|
|
$is_running = $coro->is_running |
| 369 |
|
|
Returns true iff the Coro object is currently running. Only one Coro |
| 370 |
|
|
object can ever be in the running state (but it currently is |
| 371 |
|
|
possible to have multiple running Coro::States). |
| 372 |
|
|
|
| 373 |
|
|
$is_suspended = $coro->is_suspended |
| 374 |
|
|
Returns true iff this Coro object has been suspended. Suspended |
| 375 |
|
|
Coros will not ever be scheduled. |
| 376 |
|
|
|
| 377 |
|
|
$coro->cancel (arg...) |
| 378 |
|
|
Terminates the given Coro and makes it return the given arguments as |
| 379 |
|
|
status (default: the empty list). Never returns if the Coro is the |
| 380 |
|
|
current Coro. |
| 381 |
|
|
|
| 382 |
|
|
$coro->schedule_to |
| 383 |
|
|
Puts the current coro to sleep (like "Coro::schedule"), but instead |
| 384 |
|
|
of continuing with the next coro from the ready queue, always switch |
| 385 |
|
|
to the given coro object (regardless of priority etc.). The |
| 386 |
|
|
readyness state of that coro isn't changed. |
| 387 |
root |
1.18 |
|
| 388 |
|
|
This is an advanced method for special cases - I'd love to hear |
| 389 |
|
|
about any uses for this one. |
| 390 |
|
|
|
| 391 |
root |
1.21 |
$coro->cede_to |
| 392 |
|
|
Like "schedule_to", but puts the current coro into the ready queue. |
| 393 |
|
|
This has the effect of temporarily switching to the given coro, and |
| 394 |
|
|
continuing some time later. |
| 395 |
root |
1.18 |
|
| 396 |
|
|
This is an advanced method for special cases - I'd love to hear |
| 397 |
|
|
about any uses for this one. |
| 398 |
|
|
|
| 399 |
root |
1.21 |
$coro->throw ([$scalar]) |
| 400 |
root |
1.17 |
If $throw is specified and defined, it will be thrown as an |
| 401 |
root |
1.21 |
exception inside the coro at the next convenient point in time. |
| 402 |
root |
1.17 |
Otherwise clears the exception object. |
| 403 |
|
|
|
| 404 |
root |
1.18 |
Coro will check for the exception each time a schedule-like-function |
| 405 |
|
|
returns, i.e. after each "schedule", "cede", |
| 406 |
|
|
"Coro::Semaphore->down", "Coro::Handle->readable" and so on. Most of |
| 407 |
|
|
these functions detect this case and return early in case an |
| 408 |
|
|
exception is pending. |
| 409 |
|
|
|
| 410 |
root |
1.17 |
The exception object will be thrown "as is" with the specified |
| 411 |
|
|
scalar in $@, i.e. if it is a string, no line number or newline will |
| 412 |
|
|
be appended (unlike with "die"). |
| 413 |
|
|
|
| 414 |
root |
1.21 |
This can be used as a softer means than "cancel" to ask a coro to |
| 415 |
|
|
end itself, although there is no guarantee that the exception will |
| 416 |
|
|
lead to termination, and if the exception isn't caught it might well |
| 417 |
|
|
end the whole program. |
| 418 |
root |
1.17 |
|
| 419 |
|
|
You might also think of "throw" as being the moral equivalent of |
| 420 |
root |
1.21 |
"kill"ing a coro with a signal (in this case, a scalar). |
| 421 |
root |
1.17 |
|
| 422 |
root |
1.21 |
$coro->join |
| 423 |
|
|
Wait until the coro terminates and return any values given to the |
| 424 |
|
|
"terminate" or "cancel" functions. "join" can be called concurrently |
| 425 |
|
|
from multiple coro, and all will be resumed and given the status |
| 426 |
|
|
return once the $coro terminates. |
| 427 |
|
|
|
| 428 |
|
|
$coro->on_destroy (\&cb) |
| 429 |
|
|
Registers a callback that is called when this coro gets destroyed, |
| 430 |
|
|
but before it is joined. The callback gets passed the terminate |
| 431 |
|
|
arguments, if any, and *must not* die, under any circumstances. |
| 432 |
|
|
|
| 433 |
|
|
$oldprio = $coro->prio ($newprio) |
| 434 |
|
|
Sets (or gets, if the argument is missing) the priority of the coro. |
| 435 |
|
|
Higher priority coro get run before lower priority coro. Priorities |
| 436 |
|
|
are small signed integers (currently -4 .. +3), that you can refer |
| 437 |
|
|
to using PRIO_xxx constants (use the import tag :prio to get then): |
| 438 |
root |
1.1 |
|
| 439 |
|
|
PRIO_MAX > PRIO_HIGH > PRIO_NORMAL > PRIO_LOW > PRIO_IDLE > PRIO_MIN |
| 440 |
|
|
3 > 1 > 0 > -1 > -3 > -4 |
| 441 |
|
|
|
| 442 |
|
|
# set priority to HIGH |
| 443 |
root |
1.21 |
current->prio (PRIO_HIGH); |
| 444 |
root |
1.1 |
|
| 445 |
root |
1.21 |
The idle coro ($Coro::idle) always has a lower priority than any |
| 446 |
|
|
existing coro. |
| 447 |
root |
1.1 |
|
| 448 |
root |
1.21 |
Changing the priority of the current coro will take effect |
| 449 |
|
|
immediately, but changing the priority of coro in the ready queue |
| 450 |
|
|
(but not running) will only take effect after the next schedule (of |
| 451 |
|
|
that coro). This is a bug that will be fixed in some future version. |
| 452 |
root |
1.1 |
|
| 453 |
root |
1.21 |
$newprio = $coro->nice ($change) |
| 454 |
root |
1.1 |
Similar to "prio", but subtract the given value from the priority |
| 455 |
|
|
(i.e. higher values mean lower priority, just as in unix). |
| 456 |
|
|
|
| 457 |
root |
1.21 |
$olddesc = $coro->desc ($newdesc) |
| 458 |
root |
1.1 |
Sets (or gets in case the argument is missing) the description for |
| 459 |
root |
1.21 |
this coro. This is just a free-form string you can associate with a |
| 460 |
|
|
coro. |
| 461 |
root |
1.4 |
|
| 462 |
root |
1.21 |
This method simply sets the "$coro->{desc}" member to the given |
| 463 |
root |
1.10 |
string. You can modify this member directly if you wish. |
| 464 |
|
|
|
| 465 |
root |
1.19 |
GLOBAL FUNCTIONS |
| 466 |
root |
1.5 |
Coro::nready |
| 467 |
root |
1.21 |
Returns the number of coro that are currently in the ready state, |
| 468 |
|
|
i.e. that can be switched to by calling "schedule" directory or |
| 469 |
|
|
indirectly. The value 0 means that the only runnable coro is the |
| 470 |
|
|
currently running one, so "cede" would have no effect, and |
| 471 |
root |
1.14 |
"schedule" would cause a deadlock unless there is an idle handler |
| 472 |
root |
1.21 |
that wakes up some coro. |
| 473 |
root |
1.5 |
|
| 474 |
root |
1.6 |
my $guard = Coro::guard { ... } |
| 475 |
root |
1.21 |
This function still exists, but is deprecated. Please use the |
| 476 |
|
|
"Guard::guard" function instead. |
| 477 |
root |
1.6 |
|
| 478 |
root |
1.4 |
unblock_sub { ... } |
| 479 |
|
|
This utility function takes a BLOCK or code reference and "unblocks" |
| 480 |
root |
1.14 |
it, returning a new coderef. Unblocking means that calling the new |
| 481 |
|
|
coderef will return immediately without blocking, returning nothing, |
| 482 |
|
|
while the original code ref will be called (with parameters) from |
| 483 |
root |
1.21 |
within another coro. |
| 484 |
root |
1.4 |
|
| 485 |
root |
1.8 |
The reason this function exists is that many event libraries (such |
| 486 |
root |
1.21 |
as the venerable Event module) are not thread-safe (a weaker form of |
| 487 |
|
|
reentrancy). This means you must not block within event callbacks, |
| 488 |
|
|
otherwise you might suffer from crashes or worse. The only event |
| 489 |
|
|
library currently known that is safe to use without "unblock_sub" is |
| 490 |
|
|
EV. |
| 491 |
root |
1.4 |
|
| 492 |
|
|
This function allows your callbacks to block by executing them in |
| 493 |
root |
1.21 |
another coro where it is safe to block. One example where blocking |
| 494 |
|
|
is handy is when you use the Coro::AIO functions to save results to |
| 495 |
|
|
disk, for example. |
| 496 |
root |
1.4 |
|
| 497 |
|
|
In short: simply use "unblock_sub { ... }" instead of "sub { ... }" |
| 498 |
|
|
when creating event callbacks that want to block. |
| 499 |
root |
1.1 |
|
| 500 |
root |
1.14 |
If your handler does not plan to block (e.g. simply sends a message |
| 501 |
root |
1.21 |
to another coro, or puts some other coro into the ready queue), |
| 502 |
|
|
there is no reason to use "unblock_sub". |
| 503 |
root |
1.14 |
|
| 504 |
|
|
Note that you also need to use "unblock_sub" for any other callbacks |
| 505 |
|
|
that are indirectly executed by any C-based event loop. For example, |
| 506 |
|
|
when you use a module that uses AnyEvent (and you use |
| 507 |
|
|
Coro::AnyEvent) and it provides callbacks that are the result of |
| 508 |
|
|
some event callback, then you must not block either, or use |
| 509 |
|
|
"unblock_sub". |
| 510 |
|
|
|
| 511 |
root |
1.18 |
$cb = Coro::rouse_cb |
| 512 |
|
|
Create and return a "rouse callback". That's a code reference that, |
| 513 |
root |
1.19 |
when called, will remember a copy of its arguments and notify the |
| 514 |
root |
1.21 |
owner coro of the callback. |
| 515 |
root |
1.18 |
|
| 516 |
|
|
See the next function. |
| 517 |
|
|
|
| 518 |
|
|
@args = Coro::rouse_wait [$cb] |
| 519 |
root |
1.19 |
Wait for the specified rouse callback (or the last one that was |
| 520 |
root |
1.21 |
created in this coro). |
| 521 |
root |
1.18 |
|
| 522 |
root |
1.19 |
As soon as the callback is invoked (or when the callback was invoked |
| 523 |
|
|
before "rouse_wait"), it will return the arguments originally passed |
| 524 |
root |
1.25 |
to the rouse callback. In scalar context, that means you get the |
| 525 |
|
|
*last* argument, just as if "rouse_wait" had a "return ($a1, $a2, |
| 526 |
|
|
$a3...)" statement at the end. |
| 527 |
root |
1.18 |
|
| 528 |
|
|
See the section HOW TO WAIT FOR A CALLBACK for an actual usage |
| 529 |
|
|
example. |
| 530 |
|
|
|
| 531 |
|
|
HOW TO WAIT FOR A CALLBACK |
| 532 |
root |
1.21 |
It is very common for a coro to wait for some callback to be called. |
| 533 |
|
|
This occurs naturally when you use coro in an otherwise event-based |
| 534 |
|
|
program, or when you use event-based libraries. |
| 535 |
root |
1.18 |
|
| 536 |
|
|
These typically register a callback for some event, and call that |
| 537 |
root |
1.21 |
callback when the event occured. In a coro, however, you typically want |
| 538 |
|
|
to just wait for the event, simplyifying things. |
| 539 |
root |
1.18 |
|
| 540 |
|
|
For example "AnyEvent->child" registers a callback to be called when a |
| 541 |
|
|
specific child has exited: |
| 542 |
|
|
|
| 543 |
|
|
my $child_watcher = AnyEvent->child (pid => $pid, cb => sub { ... }); |
| 544 |
|
|
|
| 545 |
root |
1.21 |
But from within a coro, you often just want to write this: |
| 546 |
root |
1.18 |
|
| 547 |
|
|
my $status = wait_for_child $pid; |
| 548 |
|
|
|
| 549 |
|
|
Coro offers two functions specifically designed to make this easy, |
| 550 |
|
|
"Coro::rouse_cb" and "Coro::rouse_wait". |
| 551 |
|
|
|
| 552 |
|
|
The first function, "rouse_cb", generates and returns a callback that, |
| 553 |
root |
1.21 |
when invoked, will save its arguments and notify the coro that created |
| 554 |
|
|
the callback. |
| 555 |
root |
1.18 |
|
| 556 |
|
|
The second function, "rouse_wait", waits for the callback to be called |
| 557 |
|
|
(by calling "schedule" to go to sleep) and returns the arguments |
| 558 |
|
|
originally passed to the callback. |
| 559 |
|
|
|
| 560 |
|
|
Using these functions, it becomes easy to write the "wait_for_child" |
| 561 |
|
|
function mentioned above: |
| 562 |
|
|
|
| 563 |
|
|
sub wait_for_child($) { |
| 564 |
|
|
my ($pid) = @_; |
| 565 |
|
|
|
| 566 |
|
|
my $watcher = AnyEvent->child (pid => $pid, cb => Coro::rouse_cb); |
| 567 |
|
|
|
| 568 |
|
|
my ($rpid, $rstatus) = Coro::rouse_wait; |
| 569 |
|
|
$rstatus |
| 570 |
|
|
} |
| 571 |
|
|
|
| 572 |
|
|
In the case where "rouse_cb" and "rouse_wait" are not flexible enough, |
| 573 |
|
|
you can roll your own, using "schedule": |
| 574 |
|
|
|
| 575 |
|
|
sub wait_for_child($) { |
| 576 |
|
|
my ($pid) = @_; |
| 577 |
|
|
|
| 578 |
root |
1.21 |
# store the current coro in $current, |
| 579 |
root |
1.18 |
# and provide result variables for the closure passed to ->child |
| 580 |
|
|
my $current = $Coro::current; |
| 581 |
|
|
my ($done, $rstatus); |
| 582 |
|
|
|
| 583 |
|
|
# pass a closure to ->child |
| 584 |
|
|
my $watcher = AnyEvent->child (pid => $pid, cb => sub { |
| 585 |
|
|
$rstatus = $_[1]; # remember rstatus |
| 586 |
|
|
$done = 1; # mark $rstatus as valud |
| 587 |
|
|
}); |
| 588 |
|
|
|
| 589 |
|
|
# wait until the closure has been called |
| 590 |
|
|
schedule while !$done; |
| 591 |
|
|
|
| 592 |
|
|
$rstatus |
| 593 |
|
|
} |
| 594 |
|
|
|
| 595 |
root |
1.1 |
BUGS/LIMITATIONS |
| 596 |
root |
1.18 |
fork with pthread backend |
| 597 |
|
|
When Coro is compiled using the pthread backend (which isn't |
| 598 |
|
|
recommended but required on many BSDs as their libcs are completely |
| 599 |
root |
1.21 |
broken), then coro will not survive a fork. There is no known |
| 600 |
root |
1.18 |
workaround except to fix your libc and use a saner backend. |
| 601 |
|
|
|
| 602 |
|
|
perl process emulation ("threads") |
| 603 |
|
|
This module is not perl-pseudo-thread-safe. You should only ever use |
| 604 |
root |
1.19 |
this module from the first thread (this requirement might be removed |
| 605 |
root |
1.18 |
in the future to allow per-thread schedulers, but Coro::State does |
| 606 |
|
|
not yet allow this). I recommend disabling thread support and using |
| 607 |
|
|
processes, as having the windows process emulation enabled under |
| 608 |
|
|
unix roughly halves perl performance, even when not used. |
| 609 |
|
|
|
| 610 |
root |
1.21 |
coro switching is not signal safe |
| 611 |
|
|
You must not switch to another coro from within a signal handler |
| 612 |
|
|
(only relevant with %SIG - most event libraries provide safe |
| 613 |
root |
1.18 |
signals). |
| 614 |
|
|
|
| 615 |
|
|
That means you *MUST NOT* call any function that might "block" the |
| 616 |
root |
1.21 |
current coro - "cede", "schedule" "Coro::Semaphore->down" or |
| 617 |
root |
1.18 |
anything that calls those. Everything else, including calling |
| 618 |
|
|
"ready", works. |
| 619 |
root |
1.1 |
|
| 620 |
|
|
SEE ALSO |
| 621 |
root |
1.14 |
Event-Loop integration: Coro::AnyEvent, Coro::EV, Coro::Event. |
| 622 |
root |
1.12 |
|
| 623 |
|
|
Debugging: Coro::Debug. |
| 624 |
|
|
|
| 625 |
|
|
Support/Utility: Coro::Specific, Coro::Util. |
| 626 |
root |
1.2 |
|
| 627 |
root |
1.19 |
Locking and IPC: Coro::Signal, Coro::Channel, Coro::Semaphore, |
| 628 |
root |
1.2 |
Coro::SemaphoreSet, Coro::RWLock. |
| 629 |
|
|
|
| 630 |
root |
1.19 |
I/O and Timers: Coro::Timer, Coro::Handle, Coro::Socket, Coro::AIO. |
| 631 |
root |
1.14 |
|
| 632 |
root |
1.19 |
Compatibility with other modules: Coro::LWP (but see also AnyEvent::HTTP |
| 633 |
|
|
for a better-working alternative), Coro::BDB, Coro::Storable, |
| 634 |
|
|
Coro::Select. |
| 635 |
root |
1.12 |
|
| 636 |
root |
1.14 |
XS API: Coro::MakeMaker. |
| 637 |
root |
1.2 |
|
| 638 |
root |
1.19 |
Low level Configuration, Thread Environment, Continuations: Coro::State. |
| 639 |
root |
1.1 |
|
| 640 |
|
|
AUTHOR |
| 641 |
|
|
Marc Lehmann <schmorp@schmorp.de> |
| 642 |
|
|
http://home.schmorp.de/ |
| 643 |
|
|
|