relaying/ RPC
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@@ -120,6 +120,10 @@ $env:HF_HOME = "D:\DEV\models"
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--port 8005
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```
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The example above starts the Windows node as the second half of a split Qwen
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model. To run the full model on Windows instead, omit `--shard-start` and
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`--shard-end`.
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`--host 0.0.0.0` binds the node to all Windows interfaces. `--advertise-host`
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is what the tracker gives to other nodes, so it must be the Windows LAN IP that
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the tracker and peer nodes can actually reach.
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@@ -139,10 +143,10 @@ lines like:
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curl http://192.168.0.42:8005/v1/health
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```
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If that endpoint returns 404, that is okay: it still proves the TCP connection
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reached the node process. If it times out or connection-refuses, check the
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Windows Firewall rule, `--host 0.0.0.0`, the selected LAN IP, and that the node is
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still running.
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If that endpoint returns 404 or 501, that is okay: it still proves the TCP
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connection reached the node process. If it times out or connection-refuses, check
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the Windows Firewall rule, `--host 0.0.0.0`, the selected LAN IP, and that the
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node is still running.
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### Public tracker + WSS relay
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@@ -452,6 +452,7 @@ def test_default_cli_passes_advertise_host(monkeypatch):
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"meshnet-node",
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"--tracker", "http://192.168.0.179:8081",
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"--advertise-host", "192.168.0.42",
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"--debug",
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"--no-tui",
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])
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@@ -465,3 +466,4 @@ def test_default_cli_passes_advertise_host(monkeypatch):
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assert captured["tracker_url"] == "http://192.168.0.179:8081"
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assert captured["advertise_host"] == "192.168.0.42"
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assert captured["debug"] is True
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@@ -81,6 +81,38 @@ class _FakeFullBackend(_FakeBackend):
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return 1
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class _FakeChatTokenizer:
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eos_token = ""
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def apply_chat_template(self, messages, add_generation_prompt=True, tokenize=False):
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assert add_generation_prompt is True
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assert tokenize is False
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return "debug prompt"
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class _FakePipelineHeadBackend(_FakeBackend):
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tokenizer = _FakeChatTokenizer()
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def encode_prompt(self, prompt: str) -> TensorPayload:
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assert prompt == "debug prompt"
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return TensorPayload(
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body=b"\x00" * (1 * 6 * 8 * 2),
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shape=[1, 6, 8],
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attention_mask_header=None,
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position_ids_header=None,
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)
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class _FakePipelineTailBackend(_FakeTailBackend):
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def __init__(self) -> None:
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self.start_layers: list[int | None] = []
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def forward_bytes(self, body, shape, attention_mask_header, position_ids_header, start_layer=None):
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self.start_layers.append(start_layer)
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assert len(body) == 1 * 6 * 8 * 2
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return " token"
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def test_quantization_flag_validation():
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assert validate_quantization("bfloat16") == "bfloat16"
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assert validate_quantization("int8") == "int8"
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@@ -198,6 +230,75 @@ def test_full_model_chat_completion_uses_generation_not_single_token_decode():
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node.stop()
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def test_pipeline_hop_logs_are_suppressed_without_debug(capsys):
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tail_backend = _FakePipelineTailBackend()
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head = TorchNodeServer(backend=_FakePipelineHeadBackend(), tracker_mode=True)
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tail = TorchNodeServer(backend=tail_backend)
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head_port = head.start()
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tail_port = tail.start()
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try:
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payload = json.dumps({
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"model": "fake-model",
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"messages": [{"role": "user", "content": "hello"}],
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"max_tokens": 1,
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}).encode()
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req = urllib.request.Request(
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f"http://127.0.0.1:{head_port}/v1/chat/completions",
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data=payload,
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headers={
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"Content-Type": "application/json",
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"X-Meshnet-Route": json.dumps([
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{"endpoint": f"http://127.0.0.1:{tail_port}", "start_layer": 22},
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]),
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},
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method="POST",
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)
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with urllib.request.urlopen(req, timeout=5) as resp:
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body = json.loads(resp.read())
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finally:
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head.stop()
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tail.stop()
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out = capsys.readouterr().out
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assert body["choices"][0]["message"]["content"] == " token"
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assert tail_backend.start_layers == [22]
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assert "pipeline hop 0:" not in out
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assert "pipeline hop 0 returned text" not in out
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def test_pipeline_hop_logs_are_enabled_with_debug(capsys):
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head = TorchNodeServer(backend=_FakePipelineHeadBackend(), tracker_mode=True, debug=True)
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tail = TorchNodeServer(backend=_FakePipelineTailBackend())
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head_port = head.start()
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tail_port = tail.start()
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try:
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payload = json.dumps({
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"model": "fake-model",
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"messages": [{"role": "user", "content": "hello"}],
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"max_tokens": 1,
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}).encode()
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req = urllib.request.Request(
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f"http://127.0.0.1:{head_port}/v1/chat/completions",
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data=payload,
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headers={
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"Content-Type": "application/json",
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"X-Meshnet-Route": json.dumps([
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{"endpoint": f"http://127.0.0.1:{tail_port}", "start_layer": 22},
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]),
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},
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method="POST",
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)
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with urllib.request.urlopen(req, timeout=5) as resp:
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json.loads(resp.read())
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finally:
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head.stop()
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tail.stop()
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out = capsys.readouterr().out
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assert f" [node] pipeline hop 0: http://127.0.0.1:{tail_port} start_layer=22" in out
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assert " [node] pipeline hop 0 returned text=' token'" in out
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def test_int_tensor_header_serializes_torch_tensors():
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torch = pytest.importorskip("torch")
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