lib.rs 15.9 KB
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// SPDX-FileCopyrightText: Copyright (c) 2024-2025 NVIDIA CORPORATION & AFFILIATES. All rights reserved.
// SPDX-License-Identifier: Apache-2.0
//
// Licensed under the Apache License, Version 2.0 (the "License");
// you may not use this file except in compliance with the License.
// You may obtain a copy of the License at
//
// http://www.apache.org/licenses/LICENSE-2.0
//
// Unless required by applicable law or agreed to in writing, software
// distributed under the License is distributed on an "AS IS" BASIS,
// WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
// See the License for the specific language governing permissions and
// limitations under the License.

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#[cfg(any(feature = "vllm", feature = "sglang"))]
use std::{future::Future, pin::Pin};
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use dynemo_llm::{
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    backend::ExecutionContext,
    model_card::model::ModelDeploymentCard,
    types::{
        openai::chat_completions::{
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            NvCreateChatCompletionRequest, NvCreateChatCompletionStreamResponse,
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            OpenAIChatCompletionsStreamingEngine,
        },
        Annotated,
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    },
};
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use dynemo_runtime::{component::Client, protocols::Endpoint, DistributedRuntime};
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mod flags;
pub use flags::Flags;
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mod input;
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#[cfg(any(feature = "vllm", feature = "sglang"))]
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mod net;
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mod opt;
mod output;
pub use opt::{Input, Output};

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/// How we identify a namespace/component/endpoint URL.
/// Technically the '://' is not part of the scheme but it eliminates several string
/// concatenations.
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const ENDPOINT_SCHEME: &str = "dyn://";
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/// How we identify a python string endpoint
#[cfg(feature = "python")]
const PYTHON_STR_SCHEME: &str = "pystr:";

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/// How we identify a python token endpoint
#[cfg(feature = "python")]
const PYTHON_TOK_SCHEME: &str = "pytok:";

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pub enum EngineConfig {
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    /// An remote networked engine we don't know about yet
    /// We don't have the pre-processor yet so this is only text requests. Type will change later.
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    Dynamic(Client<NvCreateChatCompletionRequest, Annotated<NvCreateChatCompletionStreamResponse>>),
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    /// A Full service engine does it's own tokenization and prompt formatting.
    StaticFull {
        service_name: String,
        engine: OpenAIChatCompletionsStreamingEngine,
    },
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    /// A core engine expects to be wrapped with pre/post processors that handle tokenization.
    StaticCore {
        service_name: String,
        engine: ExecutionContext,
        card: Box<ModelDeploymentCard>,
    },
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    /// vllm multi-node doesn't run an engine on nodes other than 0. 'ray' does all the work.
    None,
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}

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#[allow(unused_mut)]
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pub async fn run(
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    runtime: dynemo_runtime::Runtime,
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    mut in_opt: Input, // mut because vllm and sglang multi-node can change it
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    out_opt: Output,
    flags: Flags,
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    #[allow(unused_variables)] zmq_socket_prefix: Option<String>,
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) -> anyhow::Result<()> {
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    let cancel_token = runtime.primary_token();

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    // Turn relative paths into absolute paths
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    let model_path = flags
        .model_path_pos
        .or(flags.model_path_flag)
        .and_then(|p| p.canonicalize().ok());
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    // Serve the model under the name provided, or the name of the GGUF file or HF repo.
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    let model_name = flags.model_name.or_else(|| {
        model_path
            .as_ref()
            .and_then(|p| p.iter().last())
            .map(|n| n.to_string_lossy().into_owned())
    });
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    // Load the model deployment card, if any
    // Only used by some engines, so without those feature flags it's unused.
    #[allow(unused_variables)]
    let (maybe_card_path, maybe_card) = match (&model_path, &flags.model_config) {
        // --model-config takes precedence
        (_, Some(model_config)) => {
            let card = ModelDeploymentCard::from_local_path(model_config, model_name.as_deref())
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                .await
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                .ok();
            (Some(model_config.clone()), card)
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        }
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        // If --model-path is an HF repo use that
        (Some(model_path), _) if model_path.is_dir() => {
            let card = ModelDeploymentCard::from_local_path(model_path, model_name.as_deref())
                .await
                .ok();
            (Some(model_path.clone()), card)
        }
        // Otherwise we don't have one, but we only need it if we're tokenizing
        _ => (None, None),
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    };
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    #[cfg(any(feature = "vllm", feature = "sglang"))]
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    let mut extra: Option<Pin<Box<dyn Future<Output = ()> + Send>>> = None; // vllm and sglang sub-process
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    // Create the engine matching `out`
    let engine_config = match out_opt {
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        Output::EchoFull => {
            let Some(model_name) = model_name else {
                anyhow::bail!(
                    "Pass --model-name or --model-path so we know which model to imitate"
                );
            };
            EngineConfig::StaticFull {
                service_name: model_name,
                engine: output::echo_full::make_engine_full(),
            }
        }
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        Output::EchoCore => {
            let Some(mut card) = maybe_card.clone() else {
                anyhow::bail!(
                    "out=echo_core need to find the tokenizer. Pass flag --model-path <path>"
                );
            };
            card.requires_preprocessing = true;
            EngineConfig::StaticCore {
                service_name: card.service_name.clone(),
                engine: output::echo_core::make_engine_core(),
                card: Box::new(card),
            }
        }
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        Output::Endpoint(path) => {
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            let endpoint: Endpoint = path.parse()?;

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            // This will attempt to connect to NATS and etcd
            let distributed_runtime = DistributedRuntime::from_settings(runtime.clone()).await?;

            let client = distributed_runtime
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                .namespace(endpoint.namespace)?
                .component(endpoint.component)?
                .endpoint(endpoint.name)
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                .client::<NvCreateChatCompletionRequest, Annotated<NvCreateChatCompletionStreamResponse>>()
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                .await?;

            tracing::info!("Waiting for remote {}...", client.path());
            tokio::select! {
                _ = cancel_token.cancelled() => {
                    return Ok(());
                }
                r = client.wait_for_endpoints() => {
                    r?;
                }
            }

            EngineConfig::Dynamic(client)
        }
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        #[cfg(feature = "mistralrs")]
        Output::MistralRs => {
            let Some(model_path) = model_path else {
                anyhow::bail!("out=mistralrs requires flag --model-path=<full-path-to-model-gguf>");
            };
            let Some(model_name) = model_name else {
                unreachable!("We checked model_path earlier, and set model_name from model_path");
            };
            EngineConfig::StaticFull {
                service_name: model_name,
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                engine: dynemo_llm::engines::mistralrs::make_engine(&model_path).await?,
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            }
        }
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        #[cfg(feature = "sglang")]
        Output::SgLang => {
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            use dynemo_llm::engines::sglang;
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            let Some(model_path) = model_path else {
                anyhow::bail!("out=sglang requires flag --model-path=<full-path-to-model-dir>");
            };
            if !model_path.is_dir() {
                anyhow::bail!("`--model-path should point at a HuggingFace repo checkout");
            }
            // Safety: Earlier we build maybe_card from model_path, which we checked right above
            let card = maybe_card.clone().unwrap();
            let Some(sock_prefix) = zmq_socket_prefix else {
                anyhow::bail!("sglang requires zmq_socket_prefix");
            };
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            let node_conf = dynemo_llm::engines::MultiNodeConfig {
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                num_nodes: flags.num_nodes,
                node_rank: flags.node_rank,
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                leader_addr: flags.leader_addr.unwrap_or_default(),
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            };
            if node_conf.num_nodes > 1 {
                if let Ok(Some(if_name)) = net::get_primary_interface().await {
                    tracing::info!("If you see 'gloo' errors from sglang try setting these environment variables:");
                    tracing::info!("export GLOO_SOCKET_IFNAME={if_name}");
                    tracing::info!("export NCCL_SOCKET_IFNAME={if_name}");
                }
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                if node_conf.node_rank != 0 {
                    // Follower nodes take input from leader node over pytorch distributed, not
                    // from user.
                    in_opt = Input::None;
                }
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            }

            let (engine, sglang_process) = sglang::make_engine(
                cancel_token.clone(),
                &model_path,
                &sock_prefix,
                node_conf,
                flags.tensor_parallel_size,
                flags.base_gpu_id,
            )
            .await?;
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            extra = Some(Box::pin(async move {
                let _ = sglang_process.await;
            }));
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            EngineConfig::StaticCore {
                service_name: card.service_name.clone(),
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                engine,
                card: Box::new(card),
            }
        }
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        #[cfg(feature = "vllm")]
        Output::Vllm => {
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            use dynemo_llm::engines::vllm;
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            if flags.base_gpu_id != 0 {
                anyhow::bail!("vllm does not support base_gpu_id. Set environment variable CUDA_VISIBLE_DEVICES instead.");
            }
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            let Some(model_path) = model_path else {
                anyhow::bail!(
                    "out=vllm requires flag --model-path=<full-path-to-hf-repo-or-model-gguf>"
                );
            };
            let Some(card_path) = maybe_card_path else {
                // If we have a gguf we also need a model card because we don't currently parse
                // tokenizer et al out of gguf.
                anyhow::bail!(
                    "Running GGUF files also requires a `--model-config` for the tokenizer et al."
                );
            };
            let Some(card) = maybe_card.clone() else {
                anyhow::bail!(
                    "out=vllm requires --model-path to be an HF repo, or for GGUF add flag --model-config <hf-repo>"
                );
            };
            let Some(sock_prefix) = zmq_socket_prefix else {
                anyhow::bail!("vllm requires zmq_socket_prefix");
            };
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            let node_conf = dynemo_llm::engines::MultiNodeConfig {
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                num_nodes: flags.num_nodes,
                node_rank: flags.node_rank,
                leader_addr: flags.leader_addr.unwrap_or_default(),
            };
            if node_conf.num_nodes > 1 {
                if let Ok(Some(if_name)) = net::get_primary_interface().await {
                    tracing::info!("If you see network errors from vllm try setting this environment variable:");
                    tracing::info!("export NCCL_SOCKET_IFNAME={if_name}");
                }
                if node_conf.node_rank != 0 {
                    // Only node 0 runs vllm, the others communicate over ray
                    in_opt = Input::None;
                }
            }
            if node_conf.node_rank == 0 {
                // vllm multi-node only the leader runs vllm
                let (engine, vllm_future) = vllm::make_leader_engine(
                    cancel_token.clone(),
                    &card_path,
                    &model_path,
                    &sock_prefix,
                    node_conf,
                    flags.tensor_parallel_size,
                )
                .await?;
                extra = Some(Box::pin(async move {
                    let _ = vllm_future.await;
                }));
                EngineConfig::StaticCore {
                    service_name: card.service_name.clone(),
                    engine,
                    card: Box::new(card),
                }
            } else {
                // Nodes rank > 0 only run 'ray'
                let stop_future = vllm::start_follower(cancel_token.clone(), node_conf).await?;
                extra = Some(Box::pin(stop_future));
                EngineConfig::None
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            }
        }
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        #[cfg(feature = "llamacpp")]
        Output::LlamaCpp => {
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            use dynemo_llm::engines::llamacpp;
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            let Some(model_path) = model_path else {
                anyhow::bail!("out=llamacpp requires flag --model-path=<full-path-to-model-gguf>");
            };
            if !model_path.is_file() {
                anyhow::bail!("--model-path should refer to a GGUF file. llama_cpp does not support safetensors.");
            }
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            let Some(card) = maybe_card else {
                anyhow::bail!(
                    "Pass --model-config so we can find the tokenizer, should be an HF checkout."
                );
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            };
            let engine = llamacpp::make_engine(cancel_token.clone(), &model_path).await?;
            EngineConfig::StaticCore {
                service_name: card.service_name.clone(),
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                engine,
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                card: Box::new(card),
            }
        }
        #[cfg(feature = "trtllm")]
        Output::TrtLLM => {
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            use dynemo_llm::engines::trtllm;
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            let Some(model_path) = model_path else {
                anyhow::bail!("out=trtllm requires flag --model-path=<full-path-to-model-dir>");
            };
            if !model_path.is_dir() {
                anyhow::bail!(
                    "--model-path should point at a directory containing `.engine` files."
                );
            }
            // Safety: Earlier we build maybe_card from model_path, which we checked right above
            let card = maybe_card.clone().unwrap();
            let engine = trtllm::make_engine(model_path.display(), flags.tensor_parallel_size)?;
            EngineConfig::StaticCore {
                service_name: card.service_name.clone(),
                engine,
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                card: Box::new(card),
            }
        }
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        #[cfg(feature = "python")]
        Output::PythonStr(path_str) => {
            use dynemo_llm::engines::python;
            let Some(model_name) = model_name else {
                anyhow::bail!("Provide model service name as `--model-name <this>`");
            };
            let p = std::path::PathBuf::from(path_str);
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            let engine = python::make_string_engine(cancel_token.clone(), &p).await?;
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            EngineConfig::StaticFull {
                service_name: model_name,
                engine,
            }
        }
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        #[cfg(feature = "python")]
        Output::PythonTok(path_str) => {
            use dynemo_llm::engines::python;
            let Some(card) = maybe_card.clone() else {
                anyhow::bail!("Could not find tokenizer. Pass flag --model-path <path>");
            };
            let Some(model_name) = model_name else {
                unreachable!("If we have a card we must have a model name");
            };
            let p = std::path::PathBuf::from(path_str);
            let engine = python::make_token_engine(cancel_token.clone(), &p).await?;
            EngineConfig::StaticCore {
                service_name: model_name.clone(),
                engine,
                card: Box::new(card),
            }
        }
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    };

    match in_opt {
        Input::Http => {
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            crate::input::http::run(runtime.clone(), flags.http_port, engine_config).await?;
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        }
        Input::Text => {
            crate::input::text::run(cancel_token.clone(), engine_config).await?;
        }
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        Input::Endpoint(path) => {
            crate::input::endpoint::run(runtime.clone(), path, engine_config).await?;
        }
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        Input::None => {
            // Multi-node setup. The engine sub-process has been started and is talking
            // to it's node_rank 0 controller. We do nothing.
            // TODO: Acquire an etcd lease, we are running
            cancel_token.cancelled().await;
        }
    }

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    #[cfg(any(feature = "vllm", feature = "sglang"))]
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    // Allow engines to ask main thread to wait on an extra future.
    if let Some(extra) = extra {
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        extra.await;
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    }

    Ok(())
}