shm_broadcast.py 20.3 KB
Newer Older
1
import os
2
3
4
import pickle
import time
from contextlib import contextmanager
5
from dataclasses import dataclass, field
6
from multiprocessing import shared_memory
7
from typing import List, Optional
8
9
10
11
12
from unittest.mock import patch

import torch
import torch.distributed as dist
from torch.distributed import ProcessGroup
13
from zmq import IPV6  # type: ignore
14
from zmq import SUB, SUBSCRIBE, XPUB, XPUB_VERBOSE, Context  # type: ignore
15
16
17

import vllm.envs as envs
from vllm.logger import init_logger
18
from vllm.utils import get_ip, get_open_port, is_valid_ipv6_address
19
20
21
22
23
24
25
26
27
28
29
30
31
32
33
34
35
36
37
38
39
40
41
42
43
44
45
46
47
48
49
50
51
52
53
54
55

VLLM_RINGBUFFER_WARNING_INTERVAL = envs.VLLM_RINGBUFFER_WARNING_INTERVAL

logger = init_logger(__name__)


class ShmRingBuffer:

    def __init__(self,
                 n_reader: int,
                 max_chunk_bytes: int,
                 max_chunks: int,
                 name: Optional[str] = None):
        """
        A shared memory ring buffer implementation for broadcast communication.
        Essentially, it is a queue where only one will `enqueue` and multiple
        will `dequeue`. The max size of each item, together with the max number
        of items that can be stored in the buffer are known in advance.
        In this case, we don't need to synchronize the access to
         the buffer.
        
        Buffer memory layout:
                  data                                 metadata
                    |                                      |
                    | (current_idx)                        | (current_idx)
                    v                                      v
        +-------------------------------+----------------------------------------+
        | chunk0 | chunk1 | ... | chunk | metadata0 | metadata1 | ... | metadata |
        +-------------------------------+----------------------------------------+
        | max_chunks x max_chunk_bytes  | max_chunks x (1 + n_reader) bytes      |

        metadata memory layout: each byte is a flag, the first byte is the written
        flag, and the rest are reader flags. The flags are set to 0 by default.
        +--------------+--------------+--------------+-----+--------------+
        | written_flag | reader0_flag | reader1_flag | ... | readerN_flag |
        +--------------+--------------+--------------+-----+--------------+

56
57
58
59
60
61
62
63
64
65
66
67
68
69
70
71
72
73
74
75
        The state of metadata is as follows:

        (case 1) 0???...???: the block is not written yet, cannot read, can write
        (case 2) 1000...000: the block is just written, can read, cannot write
        (case 3) 1???...???: the block is written and read by some readers, can read if not read, cannot write
        (case 4) 1111...111: the block is written and read by all readers, cannot read, can write

        State transition for readers:

        When a reader finds a block that it can read (case 2 or 3), it can yield the block for caller to read.
        Only after the caller finishes reading the block, the reader can mark the block as read.
        Readers only mark the block as read (from 0 to 1), the writer marks the block as ready to read (from 1 to 0).

        State transition for writer:

        When the writer writes to a block (case 1 or 4), it first resets the written flag to 0, converting either case
        to case 1. Then it can yield the block for caller to write. After the caller finishes writing the block, the writer
        can reset the reader flags to 0, and mark the block as written (from 0 to 1).
        NOTE: the order is important here, first reset the reader flags (so that we are still in case 1), then mark the block as written. The state transition is atomic. If we do it in the reverse order, it will go through case 3 and then back to case 2, and readers might read the intermediate case 3, which is not correct.

76
77
78
79
80
81
82
83
84
85
86
87
88
89
90
91
92
93
94
95
96
97
98
99
100
101
102
103
104
105
106
        During creation, `name` is None and the buffer is created. We can pass the
        created object to other processes by pickling it. The other processes will
        get the name of the shared memory and open it, so that they can access the
        same shared memory buffer.
        """# noqa
        self.n_reader = n_reader
        self.metadata_size = 1 + n_reader
        self.max_chunk_bytes = max_chunk_bytes
        self.max_chunks = max_chunks
        self.total_bytes_of_buffer = (self.max_chunk_bytes +
                                      self.metadata_size) * self.max_chunks
        self.data_offset = 0
        self.metadata_offset = self.max_chunk_bytes * self.max_chunks

        if name is None:
            # we are creating a buffer
            self.is_creator = True
            self.shared_memory = shared_memory.SharedMemory(
                create=True, size=self.total_bytes_of_buffer)
            # initialize the metadata section to 0
            with memoryview(self.shared_memory.buf[self.metadata_offset:]
                            ) as metadata_buffer:
                torch.frombuffer(metadata_buffer, dtype=torch.uint8).fill_(0)
        else:
            # we are opening an existing buffer
            self.is_creator = False
            # fix to https://stackoverflow.com/q/62748654/9191338
            # Python incorrectly tracks shared memory even if it is not
            # created by the process. The following patch is a workaround.
            with patch("multiprocessing.resource_tracker.register",
                       lambda *args, **kwargs: None):
107
108
                try:
                    self.shared_memory = shared_memory.SharedMemory(name=name)
109
110
                    assert (
                        self.shared_memory.size == self.total_bytes_of_buffer)
111
112
113
114
115
                except FileNotFoundError:
                    # we might deserialize the object in a different node
                    # in this case, this object is not used,
                    # and we should suppress the error
                    pass
116
117
118
119
120
121
122
123
124

    def __reduce__(self):
        return (
            self.__class__,
            (self.n_reader, self.max_chunk_bytes, self.max_chunks,
             self.shared_memory.name),
        )

    def __del__(self):
125
126
127
128
        if hasattr(self, "shared_memory"):
            self.shared_memory.close()
            if self.is_creator:
                self.shared_memory.unlink()
129
130
131
132
133
134
135
136
137
138
139
140
141
142
143
144

    @contextmanager
    def get_data(self, current_idx: int):
        start = self.data_offset + current_idx * self.max_chunk_bytes
        end = start + self.max_chunk_bytes
        with memoryview(self.shared_memory.buf[start:end]) as buf:
            yield buf

    @contextmanager
    def get_metadata(self, current_idx: int):
        start = self.metadata_offset + current_idx * self.metadata_size
        end = start + self.metadata_size
        with memoryview(self.shared_memory.buf[start:end]) as buf:
            yield buf


145
146
147
148
@dataclass
class Handle:
    connect_ip: str
    local_reader_ranks: List[int] = field(default_factory=list)
149

150
151
152
153
154
155
156
157
158
159
160
161
162
163
164
165
166
167
168
169
170
171
172
173
174
    buffer: Optional[ShmRingBuffer] = None
    local_subscribe_port: Optional[int] = None
    remote_subscribe_port: Optional[int] = None


class MessageQueue:

    def __init__(
        self,
        n_reader,  # number of all readers
        n_local_reader,  # number of local readers through shared memory
        local_reader_ranks: Optional[List[int]] = None,
        max_chunk_bytes: int = 1024 * 1024 * 10,
        max_chunks: int = 10,
        connect_ip: Optional[str] = None,
    ):
        if local_reader_ranks is None:
            local_reader_ranks = list(range(n_local_reader))
        else:
            assert len(local_reader_ranks) == n_local_reader
        self.n_local_reader = n_local_reader
        n_remote_reader = n_reader - n_local_reader
        self.n_remote_reader = n_remote_reader

        if connect_ip is None:
175
            connect_ip = get_ip() if n_remote_reader > 0 else "127.0.0.1"
176
177
178
179
180
181
182
183
184
185

        context = Context()

        if n_local_reader > 0:
            # for local readers, we will:
            # 1. create a shared memory ring buffer to communicate small data
            # 2. create a publish-subscribe socket to communicate large data
            self.buffer = ShmRingBuffer(n_local_reader, max_chunk_bytes,
                                        max_chunks)

186
187
188
189
190
191
192
193
            # XPUB is very similar to PUB,
            # except that it can receive subscription messages
            # to confirm the number of subscribers
            self.local_socket = context.socket(XPUB)
            # set the verbose option so that we can receive every subscription
            # message. otherwise, we will only receive the first subscription
            # see http://api.zeromq.org/3-3:zmq-setsockopt for more details
            self.local_socket.setsockopt(XPUB_VERBOSE, True)
194
            local_subscribe_port = get_open_port()
195
196
197
            socket_addr = f"tcp://127.0.0.1:{local_subscribe_port}"
            logger.debug("Binding to %s", socket_addr)
            self.local_socket.bind(socket_addr)
198
199
200
201
202
203
204
205
206
207
208
209

            self.current_idx = 0

        else:
            self.buffer = None  # type: ignore
            local_subscribe_port = None
            self.local_socket = None
            self.current_idx = -1

        if n_remote_reader > 0:
            # for remote readers, we will:
            # create a publish-subscribe socket to communicate large data
210
211
            self.remote_socket = context.socket(XPUB)
            self.remote_socket.setsockopt(XPUB_VERBOSE, True)
212
            remote_subscribe_port = get_open_port()
213
214
            if is_valid_ipv6_address(connect_ip):
                self.remote_socket.setsockopt(IPV6, 1)
215
216
            socket_addr = f"tcp://*:{remote_subscribe_port}"
            self.remote_socket.bind(socket_addr)
217
218
219
220
221
222
223
224
225
226
227
228
229
230
231
232
233
234
235

        else:
            remote_subscribe_port = None
            self.remote_socket = None

        self._is_writer = True
        self._is_local_reader = False
        self.local_reader_rank = -1
        # rank does not matter for remote readers
        self._is_remote_reader = False

        self.handle = Handle(
            connect_ip=connect_ip,
            local_reader_ranks=local_reader_ranks,
            buffer=self.buffer,
            local_subscribe_port=local_subscribe_port,
            remote_subscribe_port=remote_subscribe_port,
        )

236
237
        logger.info("vLLM message queue communication handle: %s", self.handle)

238
239
240
241
242
243
244
245
246
247
248
249
250
251
252
253
254
255
256
257
258
    def export_handle(self) -> Handle:
        return self.handle

    @staticmethod
    def create_from_handle(handle: Handle, rank) -> "MessageQueue":
        self = MessageQueue.__new__(MessageQueue)
        self.handle = handle
        self._is_writer = False

        context = Context()

        if rank in handle.local_reader_ranks:
            assert handle.buffer is not None
            self.buffer = handle.buffer
            self.current_idx = 0
            self.local_reader_rank = handle.local_reader_ranks.index(rank)
            self._is_local_reader = True
            self._is_remote_reader = False

            self.local_socket = context.socket(SUB)
            self.local_socket.setsockopt_string(SUBSCRIBE, "")
259
260
261
            socket_addr = f"tcp://127.0.0.1:{handle.local_subscribe_port}"
            logger.debug("Connecting to %s", socket_addr)
            self.local_socket.connect(socket_addr)
262
263
264
265
266
267
268
269
270
271
272
273
274

            self.remote_socket = None
        else:
            self.buffer = None  # type: ignore
            self.current_idx = -1
            self.local_reader_rank = -1
            self._is_local_reader = False
            self._is_remote_reader = True

            self.local_socket = None

            self.remote_socket = context.socket(SUB)
            self.remote_socket.setsockopt_string(SUBSCRIBE, "")
275
276
            if is_valid_ipv6_address(handle.connect_ip):
                self.remote_socket.setsockopt(IPV6, 1)
277
278
279
            socket_addr = f"tcp://{handle.connect_ip}:{handle.remote_subscribe_port}"
            logger.debug("Connecting to %s", socket_addr)
            self.remote_socket.connect(socket_addr)
280
281
282
283
284
285
286
287
288
289
290
291

        return self

    def wait_until_ready(self):
        """This is a collective operation. All processes (including the
        readers and the writer) should call this function.
        """
        if self._is_writer:
            # wait for all readers to connect

            # local readers
            for i in range(self.n_local_reader):
292
293
                # wait for subscription messages from all local readers
                self.local_socket.recv()
294
            if self.n_local_reader > 0:
295
296
                # send a message to all local readers
                # to make sure the publish channel is working
297
298
299
300
                self.local_socket.send(b"READY")

            # remote readers
            for i in range(self.n_remote_reader):
301
302
                # wait for subscription messages from all remote readers
                self.remote_socket.recv()
303
            if self.n_remote_reader > 0:
304
305
                # send a message to all remote readers
                # to make sure the publish channel is working
306
307
                self.remote_socket.send(b"READY")
        elif self._is_local_reader:
308
            # wait for the writer to send a message
309
310
311
            recv = self.local_socket.recv()
            assert recv == b"READY"
        elif self._is_remote_reader:
312
            # wait for the writer to send a message
313
314
            recv = self.remote_socket.recv()
            assert recv == b"READY"
315
316
317
318

    @contextmanager
    def acquire_write(self):
        assert self._is_writer, "Only writers can acquire write"
319
        start_time = time.monotonic()
320
321
322
323
324
325
326
        n_warning = 1
        while True:
            with self.buffer.get_metadata(self.current_idx) as metadata_buffer:
                read_count = sum(metadata_buffer[1:])
                written_flag = metadata_buffer[0]
                if written_flag and read_count != self.buffer.n_reader:
                    # this block is written and not read by all readers
327
328
329
330
                    # for writers, `self.current_idx` is the next block to write
                    # if this block is not ready to write,
                    # we need to wait until it is read by all readers

331
332
                    # Release the processor to other threads
                    os.sched_yield()
333
334

                    # if we wait for a long time, we should warn the user
335
336
                    if (time.monotonic() - start_time >
                            VLLM_RINGBUFFER_WARNING_INTERVAL * n_warning):
337
338
339
340
341
                        logger.warning(
                            "No available block found in %s second. ",
                            VLLM_RINGBUFFER_WARNING_INTERVAL)
                        n_warning += 1

342
343
344
345
346
347
348
349
350
351
352
353
                    continue
                # found a block that is either
                # (1) not written
                # (2) read by all readers

                # mark the block as not written
                metadata_buffer[0] = 0
                # let caller write to the buffer
                with self.buffer.get_data(self.current_idx) as buf:
                    yield buf

                # caller has written to the buffer
354
355
356
357
                # NOTE: order is important here
                # first set the read flags to 0
                # then set the written flag to 1
                # otherwise, the readers may think they already read the block
358
359
360
                for i in range(1, self.buffer.n_reader + 1):
                    # set read flag to 0, meaning it is not read yet
                    metadata_buffer[i] = 0
361
362
                # mark the block as written
                metadata_buffer[0] = 1
363
364
                self.current_idx = (self.current_idx +
                                    1) % self.buffer.max_chunks
365
366
367
368
                break

    @contextmanager
    def acquire_read(self):
369
        assert self._is_local_reader, "Only readers can acquire read"
370
        start_time = time.monotonic()
371
372
373
        n_warning = 1
        while True:
            with self.buffer.get_metadata(self.current_idx) as metadata_buffer:
374
                read_flag = metadata_buffer[self.local_reader_rank + 1]
375
376
377
378
379
                written_flag = metadata_buffer[0]
                if not written_flag or read_flag:
                    # this block is either
                    # (1) not written
                    # (2) already read by this reader
380
381
382
383
384

                    # for readers, `self.current_idx` is the next block to read
                    # if this block is not ready,
                    # we need to wait until it is written

385
386
                    # Release the processor to other threads
                    os.sched_yield()
387
388

                    # if we wait for a long time, we should warn the user
389
390
                    if (time.monotonic() - start_time >
                            VLLM_RINGBUFFER_WARNING_INTERVAL * n_warning):
391
392
393
394
395
                        logger.warning(
                            "No available block found in %s second. ",
                            VLLM_RINGBUFFER_WARNING_INTERVAL)
                        n_warning += 1

396
397
398
399
400
401
402
403
                    continue
                # found a block that is not read by this reader
                # let caller read from the buffer
                with self.buffer.get_data(self.current_idx) as buf:
                    yield buf

                # caller has read from the buffer
                # set the read flag
404
                metadata_buffer[self.local_reader_rank + 1] = 1
405
406
                self.current_idx = (self.current_idx +
                                    1) % self.buffer.max_chunks
407
408
409
410
411
                break

    def enqueue(self, obj):
        assert self._is_writer, "Only writers can enqueue"
        serialized_obj = pickle.dumps(obj, protocol=pickle.HIGHEST_PROTOCOL)
412
413
414
415
416
417
418
419
420
421
422
        if self.n_local_reader > 0:
            if len(serialized_obj) >= self.buffer.max_chunk_bytes:
                with self.acquire_write() as buf:
                    buf[0] = 1  # overflow
                self.local_socket.send(serialized_obj)
            else:
                with self.acquire_write() as buf:
                    buf[0] = 0  # not overflow
                    buf[1:len(serialized_obj) + 1] = serialized_obj
        if self.n_remote_reader > 0:
            self.remote_socket.send(serialized_obj)
423
424

    def dequeue(self):
425
426
427
428
429
430
431
432
433
434
435
436
437
438
439
440
        if self._is_local_reader:
            with self.acquire_read() as buf:
                overflow = buf[0] == 1
                if not overflow:
                    # no need to know the size of serialized object
                    # pickle format contains the size information internally
                    # see https://docs.python.org/3/library/pickle.html
                    obj = pickle.loads(buf[1:])
            if overflow:
                recv = self.local_socket.recv()
                obj = pickle.loads(recv)
        elif self._is_remote_reader:
            recv = self.remote_socket.recv()
            obj = pickle.loads(recv)
        else:
            raise RuntimeError("Only readers can dequeue")
441
442
443
444
445
446
447
448
449
        return obj

    def broadcast_object(self, obj=None):
        if self._is_writer:
            self.enqueue(obj)
            return obj
        else:
            return self.dequeue()

450
    @staticmethod
451
452
453
    def create_from_process_group(pg: ProcessGroup,
                                  max_chunk_bytes,
                                  max_chunks,
454
                                  writer_rank=0) -> "MessageQueue":
455
456
457
        group_rank = dist.get_rank(pg)
        group_world_size = dist.get_world_size(pg)
        global_ranks = dist.get_process_group_ranks(pg)
458
459
460
461

        from vllm.distributed.parallel_state import in_the_same_node_as
        status = in_the_same_node_as(pg, source_rank=writer_rank)
        same_node_ranks = [i for i, s in enumerate(status) if s]
462
        n_reader = group_world_size - 1
463
464
465
        n_local_reader = len(same_node_ranks) - 1
        local_reader_ranks = [i for i in same_node_ranks if i != writer_rank]
        buffer_io: MessageQueue
466
        if group_rank == writer_rank:
467
468
469
470
471
472
473
474
475
            buffer_io = MessageQueue(
                n_reader=n_reader,
                n_local_reader=n_local_reader,
                local_reader_ranks=local_reader_ranks,
                max_chunk_bytes=max_chunk_bytes,
                max_chunks=max_chunks,
            )
            handle = buffer_io.export_handle()
            dist.broadcast_object_list([handle],
476
477
                                       src=global_ranks[writer_rank],
                                       group=pg)
478
479
        else:
            recv = [None]
480
481
482
            dist.broadcast_object_list(recv,
                                       src=global_ranks[writer_rank],
                                       group=pg)
483
484
485
486
            handle = recv[0]  # type: ignore
            buffer_io = MessageQueue.create_from_handle(handle, group_rank)
        buffer_io.wait_until_ready()
        return buffer_io