Add examples for returning hidden states when using the server (#4074)
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@@ -33,7 +33,7 @@
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"source": [
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"source": [
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"## Advanced Usage\n",
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"## Advanced Usage\n",
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"\n",
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"\n",
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"The engine supports [vlm inference](https://github.com/sgl-project/sglang/blob/main/examples/runtime/engine/offline_batch_inference_vlm.py) as well as [extracting hidden states](https://github.com/sgl-project/sglang/blob/main/examples/runtime/engine/hidden_states.py). \n",
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"The engine supports [vlm inference](https://github.com/sgl-project/sglang/blob/main/examples/runtime/engine/offline_batch_inference_vlm.py) as well as [extracting hidden states](https://github.com/sgl-project/sglang/blob/main/examples/runtime/hidden_states). \n",
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"\n",
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"\n",
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"Please see [the examples](https://github.com/sgl-project/sglang/tree/main/examples/runtime/engine) for further use cases."
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"Please see [the examples](https://github.com/sgl-project/sglang/tree/main/examples/runtime/engine) for further use cases."
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]
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]
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@@ -17,7 +17,7 @@ The `/generate` endpoint accepts the following parameters in JSON format. For in
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* `stream: bool = False` Whether to stream the output.
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* `stream: bool = False` Whether to stream the output.
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* `lora_path: Optional[Union[List[Optional[str]], Optional[str]]] = None` Path to LoRA weights.
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* `lora_path: Optional[Union[List[Optional[str]], Optional[str]]] = None` Path to LoRA weights.
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* `custom_logit_processor: Optional[Union[List[Optional[str]], str]] = None` Custom logit processor for advanced sampling control. For usage see below.
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* `custom_logit_processor: Optional[Union[List[Optional[str]], str]] = None` Custom logit processor for advanced sampling control. For usage see below.
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* `return_hidden_states: bool = False` Whether to return hidden states of the model. Note that each time it changes, the cuda graph will be recaptured, which might lead to a performance hit. See the [examples](https://github.com/sgl-project/sglang/blob/main/examples/runtime/engine/hidden_states.py) for more information.
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* `return_hidden_states: bool = False` Whether to return hidden states of the model. Note that each time it changes, the cuda graph will be recaptured, which might lead to a performance hit. See the [examples](https://github.com/sgl-project/sglang/blob/main/examples/runtime/hidden_states) for more information.
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## Sampling params
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## Sampling params
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69
examples/runtime/hidden_states/hidden_states_server.py
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69
examples/runtime/hidden_states/hidden_states_server.py
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"""
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Usage:
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python hidden_states_server.py
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Note that each time you change the `return_hidden_states` parameter,
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the cuda graph will be recaptured, which might lead to a performance hit.
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So avoid getting hidden states and completions alternately.
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"""
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import requests
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from sglang.test.test_utils import is_in_ci
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from sglang.utils import print_highlight, terminate_process, wait_for_server
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if is_in_ci():
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from docs.backend.patch import launch_server_cmd
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else:
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from sglang.utils import launch_server_cmd
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def main():
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# Launch the server
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server_process, port = launch_server_cmd(
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"python -m sglang.launch_server --model-path Alibaba-NLP/gte-Qwen2-1.5B-instruct --host 0.0.0.0"
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)
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wait_for_server(f"http://localhost:{port}")
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prompts = [
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"Hello, my name is",
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"The president of the United States is",
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"The capital of France is",
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"The future of AI is",
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]
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sampling_params = {
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"temperature": 0.8,
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"top_p": 0.95,
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"max_new_tokens": 10,
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}
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json_data = {
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"text": prompts,
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"sampling_params": sampling_params,
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"return_hidden_states": True,
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}
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response = requests.post(
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f"http://localhost:{port}/generate",
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json=json_data,
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)
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outputs = response.json()
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for prompt, output in zip(prompts, outputs):
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print("===============================")
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print(
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f"Prompt: {prompt}\n"
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f"Generated text: {output['text']}\n"
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f"Prompt_Tokens: {output['meta_info']['prompt_tokens']}\t"
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f"Completion_tokens: {output['meta_info']['completion_tokens']}\n"
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f"Hidden states: {output['meta_info']['hidden_states']}"
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)
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print()
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terminate_process(server_process)
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if __name__ == "__main__":
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main()
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