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// SPDX-FileCopyrightText: Copyright (c) 2024-2026 NVIDIA CORPORATION & AFFILIATES. All rights reserved.
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// SPDX-License-Identifier: Apache-2.0

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use std::{
    collections::HashSet,
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    fmt::Display,
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    sync::Arc,
    time::{SystemTime, UNIX_EPOCH},
};

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use axum::{
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    Json, Router,
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    body::Body,
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    extract::State,
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    http::Request,
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    http::{HeaderMap, StatusCode},
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    middleware::{self, Next},
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    response::{
        IntoResponse, Response,
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        sse::{KeepAlive, Sse},
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    },
    routing::{get, post},
};
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use dynamo_runtime::config::environment_names::llm as env_llm;
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use dynamo_runtime::{
    pipeline::{AsyncEngineContextProvider, Context},
    protocols::annotated::AnnotationsProvider,
};
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use futures::{StreamExt, stream};
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use serde::{Deserialize, Serialize};

use super::{
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    RouteDoc,
    disconnect::{ConnectionHandle, create_connection_monitor, monitor_for_disconnects},
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    error::HttpError,
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    metrics::{
        Endpoint, EventConverter, process_response_and_observe_metrics,
        process_response_using_event_converter_and_observe_metrics,
    },
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    service_v2,
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};
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use crate::engines::ValidateRequest;
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use crate::protocols::openai::chat_completions::aggregator::ChatCompletionAggregator;
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use crate::protocols::openai::nvext::apply_header_routing_overrides;
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use crate::protocols::openai::{
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    chat_completions::{
        NvCreateChatCompletionRequest, NvCreateChatCompletionResponse,
        NvCreateChatCompletionStreamResponse,
    },
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    completions::{NvCreateCompletionRequest, NvCreateCompletionResponse},
    embeddings::{NvCreateEmbeddingRequest, NvCreateEmbeddingResponse},
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    images::{NvCreateImageRequest, NvImagesResponse},
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    responses::{NvCreateResponse, NvResponse, ResponseParams, chat_completion_to_response},
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    videos::{NvCreateVideoRequest, NvVideosResponse},
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};
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use crate::request_template::RequestTemplate;
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use crate::types::Annotated;
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use dynamo_runtime::logging::get_distributed_tracing_context;
use tracing::Instrument;
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pub const DYNAMO_REQUEST_ID_HEADER: &str = "x-dynamo-request-id";

/// Dynamo Annotation for the request ID
pub const ANNOTATION_REQUEST_ID: &str = "request_id";

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const VALIDATION_PREFIX: &str = "Validation: ";

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// Default axum max body limit without configuring is 2MB: https://docs.rs/axum/latest/axum/extract/struct.DefaultBodyLimit.html
/// Default body limit in bytes (45MB) to support 500k+ token payloads.
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/// Can be configured at runtime using the DYN_HTTP_BODY_LIMIT_MB environment variable.
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pub(super) fn get_body_limit() -> usize {
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    std::env::var(env_llm::DYN_HTTP_BODY_LIMIT_MB)
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        .ok()
        .and_then(|s| s.parse::<usize>().ok())
        .map(|mb| mb * 1024 * 1024)
        .unwrap_or(45 * 1024 * 1024)
}

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pub type ErrorResponse = (StatusCode, Json<ErrorMessage>);

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#[derive(Serialize, Deserialize, Debug)]
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pub(crate) struct ErrorMessage {
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    message: String,
    #[serde(rename = "type")]
    error_type: String,
    code: u16,
}

fn map_error_code_to_error_type(code: StatusCode) -> String {
    match code.canonical_reason() {
        Some(reason) => reason.to_string(),
        None => "UnknownError".to_string(),
    }
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}

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impl ErrorMessage {
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    /// Not Found Error
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    pub fn model_not_found() -> ErrorResponse {
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        let code = StatusCode::NOT_FOUND;
        let error_type = map_error_code_to_error_type(code);
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        (
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            code,
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            Json(ErrorMessage {
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                message: "Model not found".to_string(),
                error_type,
                code: code.as_u16(),
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            }),
        )
    }

    /// Service Unavailable
    /// This is returned when the service is live, but not ready.
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    pub fn _service_unavailable() -> ErrorResponse {
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        let code = StatusCode::SERVICE_UNAVAILABLE;
        let error_type = map_error_code_to_error_type(code);
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        (
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            code,
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            Json(ErrorMessage {
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                message: "Service is not ready".to_string(),
                error_type,
                code: code.as_u16(),
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            }),
        )
    }

    /// Internal Service Error
    /// Return this error when the service encounters an internal error.
    /// We should return a generic message to the client instead of the real error.
    /// Internal Services errors are the result of misconfiguration or bugs in the service.
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    pub fn internal_server_error(msg: &str) -> ErrorResponse {
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        tracing::error!("Internal server error: {msg}");
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        let code = StatusCode::INTERNAL_SERVER_ERROR;
        let error_type = map_error_code_to_error_type(code);
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        (
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            code,
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            Json(ErrorMessage {
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                message: msg.to_string(),
                error_type,
                code: code.as_u16(),
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            }),
        )
    }

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    /// Not Implemented Error
    /// Return this error when the client requests a feature that is not yet implemented.
    /// This should be used for features that are planned but not available.
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    pub fn not_implemented_error<T: Display>(msg: T) -> ErrorResponse {
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        tracing::error!("Not Implemented error: {msg}");
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        let code = StatusCode::NOT_IMPLEMENTED;
        let error_type = map_error_code_to_error_type(code);
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        (
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            code,
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            Json(ErrorMessage {
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                message: msg.to_string(),
                error_type,
                code: code.as_u16(),
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            }),
        )
    }

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    /// The OAI endpoints call an [`dynamo.runtime::engine::AsyncEngine`] which are specialized to return
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    /// an [`anyhow::Error`]. This method will convert the [`anyhow::Error`] into an [`HttpError`].
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    /// If successful, it will return the [`HttpError`] as an [`ErrorMessage::internal_server_error`]
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    /// with the details of the error.
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    pub fn from_anyhow(err: anyhow::Error, alt_msg: &str) -> ErrorResponse {
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        // First check for PipelineError::ServiceOverloaded
        if let Some(pipeline_err) =
            err.downcast_ref::<dynamo_runtime::pipeline::error::PipelineError>()
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            && matches!(
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                pipeline_err,
                dynamo_runtime::pipeline::error::PipelineError::ServiceOverloaded(_)
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            )
        {
            return (
                StatusCode::SERVICE_UNAVAILABLE,
                Json(ErrorMessage {
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                    message: pipeline_err.to_string(),
                    error_type: map_error_code_to_error_type(StatusCode::SERVICE_UNAVAILABLE),
                    code: StatusCode::SERVICE_UNAVAILABLE.as_u16(),
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                }),
            );
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        }

        // Then check for HttpError
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        match err.downcast::<HttpError>() {
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            Ok(http_error) => ErrorMessage::from_http_error(http_error),
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            Err(err) => ErrorMessage::internal_server_error(&format!("{alt_msg}: {err:#}")),
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        }
    }

    /// Implementers should only be able to throw 400-499 errors.
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    pub fn from_http_error(err: HttpError) -> ErrorResponse {
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        if err.code < 400 || err.code >= 500 {
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            return ErrorMessage::internal_server_error(&err.message);
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        }
        match StatusCode::from_u16(err.code) {
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            Ok(code) => (
                code,
                Json(ErrorMessage {
                    message: err.message,
                    error_type: map_error_code_to_error_type(code),
                    code: code.as_u16(),
                }),
            ),
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            Err(_) => ErrorMessage::internal_server_error(&err.message),
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        }
    }
}

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impl From<HttpError> for ErrorMessage {
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    fn from(err: HttpError) -> Self {
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        ErrorMessage {
            message: err.message,
            error_type: map_error_code_to_error_type(
                StatusCode::from_u16(err.code).unwrap_or(StatusCode::INTERNAL_SERVER_ERROR),
            ),
            code: err.code,
        }
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    }
}

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// Problem: Currently we are using JSON from axum as the request validator. Whenever there is an invalid JSON, it will return a 422.
// But all the downstream apps that relies on openai based APIs, expects to get 400 for all these cases otherwise they fail badly
// Solution: Intercept the response from handlers and convert ANY 422 status codes to 400 with the actual error message.
pub async fn smart_json_error_middleware(request: Request<Body>, next: Next) -> Response {
    let response = next.run(request).await;

    if response.status() == StatusCode::UNPROCESSABLE_ENTITY {
        let (_parts, body) = response.into_parts();
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        let body_bytes = axum::body::to_bytes(body, get_body_limit())
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            .await
            .unwrap_or_default();
        let error_message = String::from_utf8_lossy(&body_bytes).to_string();
        (
            StatusCode::BAD_REQUEST,
            Json(ErrorMessage {
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                message: error_message,
                error_type: map_error_code_to_error_type(StatusCode::BAD_REQUEST),
                code: StatusCode::BAD_REQUEST.as_u16(),
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            }),
        )
            .into_response()
    } else {
        // Pass through if it is not a 422
        response
    }
}

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/// Get the request ID from a primary source, or next from the headers, or lastly create a new one if not present
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// TODO: Similar function exists in lib/llm/src/grpc/service/openai.rs but with different signature and simpler logic
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pub(super) fn get_or_create_request_id(primary: Option<&str>, headers: &HeaderMap) -> String {
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    // Try to get request id from trace context
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    if let Some(trace_context) = get_distributed_tracing_context()
        && let Some(x_dynamo_request_id) = trace_context.x_dynamo_request_id
    {
        return x_dynamo_request_id;
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    }

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    // Try to get the request ID from the primary source
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    if let Some(primary) = primary
        && let Ok(uuid) = uuid::Uuid::parse_str(primary)
    {
        return uuid.to_string();
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    }

    // Try to get the request ID header as a string slice
    let request_id_opt = headers
        .get(DYNAMO_REQUEST_ID_HEADER)
        .and_then(|h| h.to_str().ok());

    // Try to parse the request ID as a UUID, or generate a new one if missing/invalid
    let uuid = match request_id_opt {
        Some(request_id) => {
            uuid::Uuid::parse_str(request_id).unwrap_or_else(|_| uuid::Uuid::new_v4())
        }
        None => uuid::Uuid::new_v4(),
    };

    uuid.to_string()
}

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/// OpenAI Completions Request Handler
///
/// This method will handle the incoming request for the `/v1/completions endpoint`. The endpoint is a "source"
/// for an [`super::OpenAICompletionsStreamingEngine`] and will return a stream of
/// responses which will be forward to the client.
///
/// Note: For all requests, streaming or non-streaming, we always call the engine with streaming enabled. For
/// non-streaming requests, we will fold the stream into a single response as part of this handler.
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async fn handler_completions(
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    State(state): State<Arc<service_v2::State>>,
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    headers: HeaderMap,
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    Json(mut request): Json<NvCreateCompletionRequest>,
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) -> Result<Response, ErrorResponse> {
    // return a 503 if the service is not ready
    check_ready(&state)?;

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    request.nvext = apply_header_routing_overrides(request.nvext.take(), &headers);

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    // create the context for the request
    let request_id = get_or_create_request_id(request.inner.user.as_deref(), &headers);
    let request = Context::with_id(request, request_id);
    let context = request.context();

    // create the connection handles
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    let (mut connection_handle, stream_handle) =
        create_connection_monitor(context.clone(), Some(state.metrics_clone())).await;
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    // possibly long running task
    // if this returns a streaming response, the stream handle will be armed and captured by the response stream
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    let response = tokio::spawn(completions(state, request, stream_handle).in_current_span())
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        .await
        .map_err(|e| {
            ErrorMessage::internal_server_error(&format!(
                "Failed to await chat completions task: {:?}",
                e,
            ))
        })?;

    // if we got here, then we will return a response and the potentially long running task has completed successfully
    // without need to be cancelled.
    connection_handle.disarm();

    response
}

#[tracing::instrument(skip_all)]
async fn completions(
    state: Arc<service_v2::State>,
    request: Context<NvCreateCompletionRequest>,
    stream_handle: ConnectionHandle,
) -> Result<Response, ErrorResponse> {
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    use crate::protocols::openai::completions::get_prompt_batch_size;

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    // return a 503 if the service is not ready
    check_ready(&state)?;

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    // Validate stream_options is only used when streaming (NVBug 5662680)
    validate_completion_stream_options(&request)?;

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    validate_completion_fields_generic(&request)?;

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    // Detect batch prompts
    let batch_size = get_prompt_batch_size(&request.inner.prompt);
    let n = request.inner.n.unwrap_or(1);

    // If single prompt or single-element batch, use original flow
    if batch_size == 1 {
        return completions_single(state, request, stream_handle).await;
    }

    // Batch processing: handle multiple prompts
    completions_batch(state, request, stream_handle, batch_size, n).await
}

/// Handle single prompt completions (original logic)
#[tracing::instrument(skip_all)]
async fn completions_single(
    state: Arc<service_v2::State>,
    request: Context<NvCreateCompletionRequest>,
    stream_handle: ConnectionHandle,
) -> Result<Response, ErrorResponse> {
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    let request_id = request.id().to_string();
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    // todo - decide on default
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    let streaming = request.inner.stream.unwrap_or(false);
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    // todo - make the protocols be optional for model name
    // todo - when optional, if none, apply a default
    let model = request.inner.model.clone();
    // Create http_queue_guard early - tracks time waiting to be processed
    let http_queue_guard = state.metrics_clone().create_http_queue_guard(&model);

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    // todo - error handling should be more robust
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    let (engine, parsing_options) = state
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        .manager()
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        .get_completions_engine_with_parsing(&model)
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        .map_err(|_| ErrorMessage::model_not_found())?;
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    let mut response_collector = state.metrics_clone().create_response_collector(&model);
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    // prepare to process any annotations
    let annotations = request.annotations();
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    // Create inflight_guard before calling engine to ensure errors are counted
    let mut inflight_guard =
        state
            .metrics_clone()
            .create_inflight_guard(&model, Endpoint::Completions, streaming);

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    // issue the generate call on the engine
    let stream = engine
        .generate(request)
        .await
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        .map_err(|e| ErrorMessage::from_anyhow(e, "Failed to generate completions"))?;
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    // capture the context to cancel the stream if the client disconnects
    let ctx = stream.context();

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    let annotations = annotations.map_or(Vec::new(), |annotations| {
        annotations
            .iter()
            .filter_map(|annotation| {
                if annotation == ANNOTATION_REQUEST_ID {
                    Annotated::<NvCreateCompletionResponse>::from_annotation(
                        ANNOTATION_REQUEST_ID,
                        &request_id,
                    )
                    .ok()
                } else {
                    None
                }
            })
            .collect::<Vec<_>>()
    });

    // apply any annotations to the front of the stream
    let stream = stream::iter(annotations).chain(stream);
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    if streaming {
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        // For streaming, we'll drop the http_queue_guard on the first token
        let mut http_queue_guard = Some(http_queue_guard);
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        let stream = stream
            .map(move |response| {
                // Calls observe_response() on each token
                process_response_using_event_converter_and_observe_metrics(
                    EventConverter::from(response),
                    &mut response_collector,
                    &mut http_queue_guard,
                )
            })
            .filter_map(|result| {
                use futures::future;
                // Transpose Result<Option<T>> -> Option<Result<T>>
                future::ready(result.transpose())
            });
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        let stream = monitor_for_disconnects(stream, ctx, inflight_guard, stream_handle);
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        let mut sse_stream = Sse::new(stream);

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        if let Some(keep_alive) = state.sse_keep_alive() {
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            sse_stream = sse_stream.keep_alive(KeepAlive::default().interval(keep_alive));
        }

        Ok(sse_stream.into_response())
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    } else {
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        // Tap the stream to collect metrics for non-streaming requests without altering items
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        let mut http_queue_guard = Some(http_queue_guard);
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        let stream = stream.inspect(move |response| {
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            // Calls observe_response() on each token - drops http_queue_guard on first token
            process_response_and_observe_metrics(
                response,
                &mut response_collector,
                &mut http_queue_guard,
            );
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        });

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        let response = NvCreateCompletionResponse::from_annotated_stream(stream, parsing_options)
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            .await
            .map_err(|e| {
                tracing::error!(
                    "Failed to fold completions stream for {}: {:?}",
                    request_id,
                    e
                );
                ErrorMessage::internal_server_error(&format!(
                    "Failed to fold completions stream for {}: {:?}",
                    request_id, e
                ))
            })?;

        inflight_guard.mark_ok();
        Ok(Json(response).into_response())
    }
}

/// Handle batch prompt completions (multiple prompts with n choices each)
#[tracing::instrument(skip_all)]
async fn completions_batch(
    state: Arc<service_v2::State>,
    request: Context<NvCreateCompletionRequest>,
    stream_handle: ConnectionHandle,
    batch_size: usize,
    n: u8,
) -> Result<Response, ErrorResponse> {
    use crate::protocols::openai::completions::extract_single_prompt;
    use futures::stream::{self, StreamExt};

    let request_id = request.id().to_string();
    let streaming = request.inner.stream.unwrap_or(false);
    let model = request.inner.model.clone();

    // Create http_queue_guard early - tracks time waiting to be processed
    let http_queue_guard = state.metrics_clone().create_http_queue_guard(&model);

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    let (engine, parsing_options) = state
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        .manager()
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        .get_completions_engine_with_parsing(&model)
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        .map_err(|_| ErrorMessage::model_not_found())?;

    let mut response_collector = state.metrics_clone().create_response_collector(&model);

    // prepare to process any annotations
    let annotations = request.annotations();

    // Create inflight_guard before calling engine to ensure errors are counted
    let mut inflight_guard =
        state
            .metrics_clone()
            .create_inflight_guard(&model, Endpoint::Completions, streaming);

    // Generate streams for each prompt in the batch
    let mut all_streams = Vec::new();
    let mut first_ctx = None;

    for prompt_idx in 0..batch_size {
        // Extract single prompt at this index
        let single_prompt = extract_single_prompt(&request.inner.prompt, prompt_idx);

        // Create a new request with this single prompt
        let mut single_request = request.content().clone();
        single_request.inner.prompt = single_prompt;

        // Generate unique request_id for each prompt: original_id-{prompt_idx}
        let unique_request_id = format!("{}-{}", request.id(), prompt_idx);
        let single_request_context = Context::with_id(single_request, unique_request_id);

        // Generate stream for this prompt
        let stream = engine
            .generate(single_request_context)
            .await
            .map_err(|e| ErrorMessage::from_anyhow(e, "Failed to generate completions"))?;

        // Capture context from first stream
        if first_ctx.is_none() {
            first_ctx = Some(stream.context());
        }

        // Remap choice indices: choice.index += prompt_idx * n
        let prompt_idx_u32 = prompt_idx as u32;
        let n_u32 = n as u32;
        let remapped_stream = stream.map(move |mut response| {
            if let Some(ref mut data) = response.data {
                for choice in &mut data.inner.choices {
                    choice.index += prompt_idx_u32 * n_u32;
                }
            }
            response
        });

        all_streams.push(remapped_stream);
    }

    // Merge all streams
    let merged_stream = stream::select_all(all_streams);

    // capture the context to cancel the stream if the client disconnects
    let ctx = first_ctx.expect("At least one stream should be generated");

    let annotations_vec = annotations.map_or(Vec::new(), |annotations| {
        annotations
            .iter()
            .filter_map(|annotation| {
                if annotation == ANNOTATION_REQUEST_ID {
                    Annotated::<NvCreateCompletionResponse>::from_annotation(
                        ANNOTATION_REQUEST_ID,
                        &request_id,
                    )
                    .ok()
                } else {
                    None
                }
            })
            .collect::<Vec<_>>()
    });

    // apply any annotations to the front of the stream
    let merged_stream = stream::iter(annotations_vec).chain(merged_stream);

    if streaming {
        // For streaming, we'll drop the http_queue_guard on the first token
        let mut http_queue_guard = Some(http_queue_guard);
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        let stream = merged_stream
            .map(move |response| {
                // Calls observe_response() on each token
                process_response_using_event_converter_and_observe_metrics(
                    EventConverter::from(response),
                    &mut response_collector,
                    &mut http_queue_guard,
                )
            })
            .filter_map(|result| {
                use futures::future;
                // Transpose Result<Option<T>> -> Option<Result<T>>
                future::ready(result.transpose())
            });
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        let stream = monitor_for_disconnects(stream, ctx, inflight_guard, stream_handle);

        let mut sse_stream = Sse::new(stream);

        if let Some(keep_alive) = state.sse_keep_alive() {
            sse_stream = sse_stream.keep_alive(KeepAlive::default().interval(keep_alive));
        }

        Ok(sse_stream.into_response())
    } else {
        // Tap the stream to collect metrics for non-streaming requests without altering items
        let mut http_queue_guard = Some(http_queue_guard);
        let stream = merged_stream.inspect(move |response| {
            // Calls observe_response() on each token - drops http_queue_guard on first token
            process_response_and_observe_metrics(
                response,
                &mut response_collector,
                &mut http_queue_guard,
            );
        });

        let response = NvCreateCompletionResponse::from_annotated_stream(stream, parsing_options)
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            .await
            .map_err(|e| {
                tracing::error!(
                    "Failed to fold completions stream for {}: {:?}",
                    request_id,
                    e
                );
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                ErrorMessage::internal_server_error(&format!(
                    "Failed to fold completions stream for {}: {:?}",
                    request_id, e
                ))
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            })?;

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        inflight_guard.mark_ok();
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        Ok(Json(response).into_response())
    }
}

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#[tracing::instrument(skip_all)]
async fn embeddings(
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    State(state): State<Arc<service_v2::State>>,
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    headers: HeaderMap,
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    Json(request): Json<NvCreateEmbeddingRequest>,
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) -> Result<Response, ErrorResponse> {
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    // return a 503 if the service is not ready
    check_ready(&state)?;

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    let request_id = get_or_create_request_id(request.inner.user.as_deref(), &headers);
    let request = Context::with_id(request, request_id);
    let request_id = request.id().to_string();
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    // Embeddings are typically not streamed, so we default to non-streaming
    let streaming = false;

    // todo - make the protocols be optional for model name
    // todo - when optional, if none, apply a default
    let model = &request.inner.model;

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    // Create http_queue_guard early - tracks time waiting to be processed
    let http_queue_guard = state.metrics_clone().create_http_queue_guard(model);

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    // todo - error handling should be more robust
    let engine = state
        .manager()
        .get_embeddings_engine(model)
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        .map_err(|_| ErrorMessage::model_not_found())?;
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    // this will increment the inflight gauge for the model
    let mut inflight =
        state
            .metrics_clone()
            .create_inflight_guard(model, Endpoint::Embeddings, streaming);

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    let mut response_collector = state.metrics_clone().create_response_collector(model);

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    // issue the generate call on the engine
    let stream = engine
        .generate(request)
        .await
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        .map_err(|e| ErrorMessage::from_anyhow(e, "Failed to generate embeddings"))?;
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    // Process stream to collect metrics and drop http_queue_guard on first token
    let mut http_queue_guard = Some(http_queue_guard);
    let stream = stream.inspect(move |response| {
        // Calls observe_response() on each token - drops http_queue_guard on first token
        process_response_and_observe_metrics(
            response,
            &mut response_collector,
            &mut http_queue_guard,
        );
    });

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    // Embeddings are typically returned as a single response (non-streaming)
    // so we fold the stream into a single response
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    let response = NvCreateEmbeddingResponse::from_annotated_stream(stream)
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        .await
        .map_err(|e| {
            tracing::error!(
                "Failed to fold embeddings stream for {}: {:?}",
                request_id,
                e
            );
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            ErrorMessage::internal_server_error("Failed to fold embeddings stream")
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        })?;

    inflight.mark_ok();
    Ok(Json(response).into_response())
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}

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async fn handler_chat_completions(
    State((state, template)): State<(Arc<service_v2::State>, Option<RequestTemplate>)>,
    headers: HeaderMap,
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    Json(mut request): Json<NvCreateChatCompletionRequest>,
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) -> Result<Response, ErrorResponse> {
    // return a 503 if the service is not ready
    check_ready(&state)?;

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    request.nvext = apply_header_routing_overrides(request.nvext.take(), &headers);

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    // create the context for the request
    let request_id = get_or_create_request_id(request.inner.user.as_deref(), &headers);
    let request = Context::with_id(request, request_id);
    let context = request.context();

    // create the connection handles
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    let (mut connection_handle, stream_handle) =
        create_connection_monitor(context.clone(), Some(state.metrics_clone())).await;
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    let response =
        tokio::spawn(chat_completions(state, template, request, stream_handle).in_current_span())
            .await
            .map_err(|e| {
                ErrorMessage::internal_server_error(&format!(
                    "Failed to await chat completions task: {:?}",
                    e,
                ))
            })?;
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    // if we got here, then we will return a response and the potentially long running task has completed successfully
    // without need to be cancelled.
    connection_handle.disarm();

    response
}

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/// Checks if an Annotated event represents a backend error and extracts error information.
/// Returns Some((message, status_code)) if it's an error, None otherwise.
fn extract_backend_error_if_present<T: serde::Serialize>(
    event: &Annotated<T>,
) -> Option<(String, StatusCode)> {
    #[derive(serde::Deserialize)]
    struct ErrorPayload {
        message: Option<String>,
        code: Option<u16>,
    }

    // Check if event type is "error" (from postprocessor when FinishReason::Error is encountered)
    if let Some(event_type) = &event.event
        && event_type == "error"
    {
        let comment_str = event
            .comment
            .as_ref()
            .map(|c| c.join(", "))
            .unwrap_or_else(|| "Unknown error".to_string());

        // Try to parse comment as error JSON to extract status code
        if let Ok(error_payload) = serde_json::from_str::<ErrorPayload>(&comment_str) {
            let code = error_payload
                .code
                .and_then(|c| StatusCode::from_u16(c).ok())
                .unwrap_or(StatusCode::INTERNAL_SERVER_ERROR);
            let message = error_payload.message.unwrap_or(comment_str);
            return Some((message, code));
        }

        return Some((comment_str, StatusCode::INTERNAL_SERVER_ERROR));
    }

    // Check if the data payload itself contains an error structure with code >= 400
    if let Some(data) = &event.data
        && let Ok(json_value) = serde_json::to_value(data)
        && let Ok(error_payload) = serde_json::from_value::<ErrorPayload>(json_value.clone())
        && let Some(code_num) = error_payload.code
        && code_num >= 400
    {
        let code = StatusCode::from_u16(code_num).unwrap_or(StatusCode::INTERNAL_SERVER_ERROR);
        let message = error_payload
            .message
            .unwrap_or_else(|| json_value.to_string());
        return Some((message, code));
    }

    // Check if comment contains error information (without event: error)
    if let Some(comments) = &event.comment
        && !comments.is_empty()
    {
        let comment_str = comments.join(", ");

        // Try to parse comment as error JSON with code >= 400
        if let Ok(error_payload) = serde_json::from_str::<ErrorPayload>(&comment_str)
            && let Some(code_num) = error_payload.code
            && code_num >= 400
        {
            let code = StatusCode::from_u16(code_num).unwrap_or(StatusCode::INTERNAL_SERVER_ERROR);
            let message = error_payload.message.unwrap_or(comment_str);
            return Some((message, code));
        }

        // Comments present with no data AND no event type indicates error
        // (events with event types like "request_id" or "event.dynamo.test.sentinel" are annotations)
        if event.data.is_none() && event.event.is_none() {
            return Some((comment_str, StatusCode::INTERNAL_SERVER_ERROR));
        }
    }

    None
}

/// Checks if the first event in the stream is a backend error.
/// Returns Err(ErrorResponse) if error detected, Ok(stream) otherwise.
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pub(super) async fn check_for_backend_error(
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    mut stream: impl futures::Stream<Item = Annotated<NvCreateChatCompletionStreamResponse>>
    + Send
    + Unpin
    + 'static,
) -> Result<
    impl futures::Stream<Item = Annotated<NvCreateChatCompletionStreamResponse>> + Send,
    ErrorResponse,
> {
    use futures::stream::StreamExt;

    // Peek at the first event
    if let Some(first_event) = stream.next().await {
        // Check if it's an error event
        if let Some((error_msg, status_code)) = extract_backend_error_if_present(&first_event) {
            return Err((
                status_code,
                Json(ErrorMessage {
                    message: error_msg,
                    error_type: map_error_code_to_error_type(status_code),
                    code: status_code.as_u16(),
                }),
            ));
        }

        // Not an error - reconstruct stream with first event
        let reconstructed_stream = futures::stream::iter(vec![first_event]).chain(stream);
        Ok(reconstructed_stream)
    } else {
        // Empty stream - this shouldn't happen but handle gracefully
        Ok(futures::stream::iter(vec![]).chain(stream))
    }
}

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/// OpenAI Chat Completions Request Handler
///
/// This method will handle the incoming request for the /v1/chat/completions endpoint. The endpoint is a "source"
/// for an [`super::OpenAIChatCompletionsStreamingEngine`] and will return a stream of responses which will be
/// forward to the client.
///
/// Note: For all requests, streaming or non-streaming, we always call the engine with streaming enabled. For
/// non-streaming requests, we will fold the stream into a single response as part of this handler.
async fn chat_completions(
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    state: Arc<service_v2::State>,
    template: Option<RequestTemplate>,
    mut request: Context<NvCreateChatCompletionRequest>,
    mut stream_handle: ConnectionHandle,
) -> Result<Response, ErrorResponse> {
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    // return a 503 if the service is not ready
    check_ready(&state)?;

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    let request_id = request.id().to_string();

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    // Handle unsupported fields - if Some(resp) is returned by
    // validate_chat_completion_unsupported_fields,
    // then a field was used that is unsupported. We will log an error message
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    // and early return a 501 NOT_IMPLEMENTED status code. Otherwise, proceed.
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    validate_chat_completion_unsupported_fields(&request)?;
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    // Handle required fields like messages shouldn't be empty.
    validate_chat_completion_required_fields(&request)?;

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    // Validate stream_options is only used when streaming (NVBug 5662680)
    validate_chat_completion_stream_options(&request)?;

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    // Handle Rest of Validation Errors
    validate_chat_completion_fields_generic(&request)?;

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    // Apply template values if present
    if let Some(template) = template {
        if request.inner.model.is_empty() {
            request.inner.model = template.model.clone();
        }
        if request.inner.temperature.unwrap_or(0.0) == 0.0 {
            request.inner.temperature = Some(template.temperature);
        }
        if request.inner.max_completion_tokens.unwrap_or(0) == 0 {
            request.inner.max_completion_tokens = Some(template.max_completion_tokens);
        }
    }
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    tracing::trace!("Received chat completions request: {:?}", request.content());
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    // todo - decide on default
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    let streaming = request.inner.stream.unwrap_or(false);
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    // todo - make the protocols be optional for model name
    // todo - when optional, if none, apply a default
    // todo - determine the proper error code for when a request model is not present
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    let model = request.inner.model.clone();

    // Create HTTP queue guard after template resolution so labels are correct
    let http_queue_guard = state.metrics_clone().create_http_queue_guard(&model);

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    tracing::trace!("Getting chat completions engine for model: {}", model);

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    let (engine, parsing_options) = state
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        .manager()
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        .get_chat_completions_engine_with_parsing(&model)
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        .map_err(|_| ErrorMessage::model_not_found())?;
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    let mut response_collector = state.metrics_clone().create_response_collector(&model);

    let annotations = request.annotations();

    // Create inflight_guard before calling engine to ensure errors are counted
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    let mut inflight_guard =
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        state
            .metrics_clone()
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            .create_inflight_guard(&model, Endpoint::ChatCompletions, streaming);
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    // issue the generate call on the engine
    let stream = engine
        .generate(request)
        .await
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        .map_err(|e| ErrorMessage::from_anyhow(e, "Failed to generate completions"))?;
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    // capture the context to cancel the stream if the client disconnects
    let ctx = stream.context();

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    // prepare any requested annotations
    let annotations = annotations.map_or(Vec::new(), |annotations| {
        annotations
            .iter()
            .filter_map(|annotation| {
                if annotation == ANNOTATION_REQUEST_ID {
                    Annotated::from_annotation(ANNOTATION_REQUEST_ID, &request_id).ok()
                } else {
                    None
                }
            })
            .collect::<Vec<_>>()
    });

    // apply any annotations to the front of the stream
    let stream = stream::iter(annotations).chain(stream);

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    // todo - tap the stream and propagate request level metrics
    // note - we might do this as part of the post processing set to make it more generic

    if streaming {
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        // For streaming responses, we return HTTP 200 immediately without checking for errors.
        // Once HTTP 200 OK is sent, we cannot change the status code, so any backend errors
        // must be delivered as SSE events with `event: error` in the stream (handled by
        // EventConverter and monitor_for_disconnects). This is standard SSE behavior.
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        stream_handle.arm(); // allows the system to detect client disconnects and cancel the LLM generation
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        let mut http_queue_guard = Some(http_queue_guard);
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        let stream = stream
            .map(move |response| {
                // Calls observe_response() on each token
                // EventConverter will detect `event: "error"` and convert to SSE error events
                process_response_using_event_converter_and_observe_metrics(
                    EventConverter::from(response),
                    &mut response_collector,
                    &mut http_queue_guard,
                )
            })
            .filter_map(|result| {
                use futures::future;
                // Transpose Result<Option<T>> -> Option<Result<T>>
                future::ready(result.transpose())
            });
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        let stream = monitor_for_disconnects(stream, ctx, inflight_guard, stream_handle);
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        let mut sse_stream = Sse::new(stream);

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        if let Some(keep_alive) = state.sse_keep_alive() {
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            sse_stream = sse_stream.keep_alive(KeepAlive::default().interval(keep_alive));
        }

        Ok(sse_stream.into_response())
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    } else {
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        // Check first event for backend errors before aggregating (non-streaming only)
        let stream_with_check =
            check_for_backend_error(stream)
                .await
                .map_err(|error_response| {
                    tracing::error!(request_id, "Backend error detected: {:?}", error_response);
                    error_response
                })?;

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        let mut http_queue_guard = Some(http_queue_guard);
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        let stream = stream_with_check.inspect(move |response| {
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            // Calls observe_response() on each token - drops http_queue_guard on first token
            process_response_and_observe_metrics(
                response,
                &mut response_collector,
                &mut http_queue_guard,
            );
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        });

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        let response =
            NvCreateChatCompletionResponse::from_annotated_stream(stream, parsing_options.clone())
                .await
                .map_err(|e| {
                    tracing::error!(
                        request_id,
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                    );
                    ErrorMessage::internal_server_error(&format!(
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                        e
                    ))
                })?;
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        inflight_guard.mark_ok();
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        Ok(Json(response).into_response())
    }
}

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/// Checks for unsupported fields in the request.
/// Returns Some(response) if unsupported fields are present.
#[allow(deprecated)]
pub fn validate_chat_completion_unsupported_fields(
    request: &NvCreateChatCompletionRequest,
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) -> Result<(), ErrorResponse> {
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    let inner = &request.inner;

    if inner.function_call.is_some() {
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        return Err(ErrorMessage::not_implemented_error(
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            VALIDATION_PREFIX.to_string()
                + "`function_call` is deprecated. Please migrate to use `tool_choice` instead.",
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        ));
    }

    if inner.functions.is_some() {
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        return Err(ErrorMessage::not_implemented_error(
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            VALIDATION_PREFIX.to_string()
                + "`functions` is deprecated. Please migrate to use `tools` instead.",
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        ));
    }

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    Ok(())
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}

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/// Validates that required fields are present and valid in the chat completion request
pub fn validate_chat_completion_required_fields(
    request: &NvCreateChatCompletionRequest,
) -> Result<(), ErrorResponse> {
    let inner = &request.inner;

    if inner.messages.is_empty() {
        return Err(ErrorMessage::from_http_error(HttpError {
            code: 400,
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            message: VALIDATION_PREFIX.to_string()
                + "The 'messages' field cannot be empty. At least one message is required.",
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        }));
    }

    Ok(())
}

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/// Validates that stream_options is only used when stream=true for chat completions (NVBug 5662680)
pub fn validate_chat_completion_stream_options(
    request: &NvCreateChatCompletionRequest,
) -> Result<(), ErrorResponse> {
    let inner = &request.inner;
    let streaming = inner.stream.unwrap_or(false);
    if !streaming && inner.stream_options.is_some() {
        return Err(ErrorMessage::from_http_error(HttpError {
            code: 400,
            message: VALIDATION_PREFIX.to_string()
                + "The 'stream_options' field is only allowed when 'stream' is set to true.",
        }));
    }
    Ok(())
}

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/// Validates a chat completion request and returns an error response if validation fails.
///
/// This function calls the `validate` method implemented for `NvCreateChatCompletionRequest`.
/// If validation fails, it maps the error into an OpenAI-compatible error response.
pub fn validate_chat_completion_fields_generic(
    request: &NvCreateChatCompletionRequest,
) -> Result<(), ErrorResponse> {
    request.validate().map_err(|e| {
        ErrorMessage::from_http_error(HttpError {
            code: 400,
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            message: VALIDATION_PREFIX.to_string() + &e.to_string(),
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        })
    })
}

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/// Validates that stream_options is only used when stream=true for completions (NVBug 5662680)
pub fn validate_completion_stream_options(
    request: &NvCreateCompletionRequest,
) -> Result<(), ErrorResponse> {
    let inner = &request.inner;
    let streaming = inner.stream.unwrap_or(false);
    if !streaming && inner.stream_options.is_some() {
        return Err(ErrorMessage::from_http_error(HttpError {
            code: 400,
            message: VALIDATION_PREFIX.to_string()
                + "The 'stream_options' field is only allowed when 'stream' is set to true.",
        }));
    }
    Ok(())
}

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/// Validates a completion request and returns an error response if validation fails.
///
/// This function calls the `validate` method implemented for `NvCreateCompletionRequest`.
/// If validation fails, it maps the error into an OpenAI-compatible error response.
pub fn validate_completion_fields_generic(
    request: &NvCreateCompletionRequest,
) -> Result<(), ErrorResponse> {
    request.validate().map_err(|e| {
        ErrorMessage::from_http_error(HttpError {
            code: 400,
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            message: VALIDATION_PREFIX.to_string() + &e.to_string(),
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        })
    })
}

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/// OpenAI Responses Request Handler
///
/// This method will handle the incoming request for the /v1/responses endpoint.
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async fn handler_responses(
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    State((state, template)): State<(Arc<service_v2::State>, Option<RequestTemplate>)>,
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    headers: HeaderMap,
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    Json(mut request): Json<NvCreateResponse>,
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) -> Result<Response, ErrorResponse> {
    // return a 503 if the service is not ready
    check_ready(&state)?;

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    request.nvext = apply_header_routing_overrides(request.nvext.take(), &headers);

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    // create the context for the request
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    let request_id = get_or_create_request_id(None, &headers);
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    let request = Context::with_id(request, request_id);
    let context = request.context();

    // create the connection handles
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    let (mut connection_handle, stream_handle) =
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        create_connection_monitor(context.clone(), Some(state.metrics_clone())).await;
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    let response =
        tokio::spawn(responses(state, template, request, stream_handle).in_current_span())
            .await
            .map_err(|e| {
                ErrorMessage::internal_server_error(&format!(
                    "Failed to await responses task: {:?}",
                    e,
                ))
            })?;
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    // if we got here, then we will return a response and the potentially long running task has completed successfully
    // without need to be cancelled.
    connection_handle.disarm();

    response
}

#[tracing::instrument(level = "debug", skip_all, fields(request_id = %request.id()))]
async fn responses(
    state: Arc<service_v2::State>,
    template: Option<RequestTemplate>,
    mut request: Context<NvCreateResponse>,
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    mut stream_handle: ConnectionHandle,
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) -> Result<Response, ErrorResponse> {
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    // return a 503 if the service is not ready
    check_ready(&state)?;

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    // Create http_queue_guard early - tracks time waiting to be processed
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    // model is Option<String> in upstream; extract to String, defaulting to empty
    let model = request.inner.model.clone().unwrap_or_default();
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    let http_queue_guard = state.metrics_clone().create_http_queue_guard(&model);

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    // Handle unsupported fields - if Some(resp) is returned by validate_unsupported_fields,
    // then a field was used that is unsupported. We will log an error message
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    // and early return a 501 NOT_IMPLEMENTED status code. Otherwise, proceed.
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    if let Some(resp) = validate_response_unsupported_fields(&request) {
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        return Ok(resp.into_response());
    }

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    // Apply template values if present, with sensible defaults for the Responses API.
    // Unlike chat completions where backends may have their own defaults, the Responses API
    // should provide a generous default to avoid truncated responses (especially with
    // reasoning models that emit <think> tokens).
    const DEFAULT_MAX_OUTPUT_TOKENS: u32 = 4096;
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    if let Some(template) = template {
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        if request.inner.model.as_deref().unwrap_or("").is_empty() {
            request.inner.model = Some(template.model.clone());
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        }
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        if request.inner.temperature.is_none() {
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            request.inner.temperature = Some(template.temperature);
        }
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        if request.inner.max_output_tokens.is_none() {
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            request.inner.max_output_tokens = Some(template.max_completion_tokens);
        }
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    } else if request.inner.max_output_tokens.is_none() {
        request.inner.max_output_tokens = Some(DEFAULT_MAX_OUTPUT_TOKENS);
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    }
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    tracing::trace!("Received responses request: {:?}", request.inner);

    // Extract request parameters before into_parts() consumes the request.
    // These are echoed back in the Response object per the OpenAI spec.
    let response_params = ResponseParams {
        temperature: request.inner.temperature,
        top_p: request.inner.top_p,
        max_output_tokens: request.inner.max_output_tokens,
        store: request.inner.store,
        tools: request.inner.tools.clone(),
        tool_choice: request.inner.tool_choice.clone(),
        instructions: request.inner.instructions.clone(),
    };
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    let streaming = request.inner.stream.unwrap_or(false);
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    let request_id = request.id().to_string();
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    let (orig_request, context) = request.into_parts();
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    let mut chat_request: NvCreateChatCompletionRequest =
        orig_request.try_into().map_err(|e: anyhow::Error| {
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            tracing::error!(
                request_id,
                error = %e,
                "Failed to convert NvCreateResponse to NvCreateChatCompletionRequest",
            );
            ErrorMessage::not_implemented_error(
                VALIDATION_PREFIX.to_string()
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                    + "Failed to convert responses request: "
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                    + &e.to_string(),
            )
        })?;
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    // For non-streaming responses, we still use internal streaming for aggregation,
    // but we set the chat completion stream flag appropriately.
    if !streaming {
        chat_request.inner.stream = Some(true); // Internal streaming for aggregation
    }

    let request = context.map(|mut _req| chat_request);
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    tracing::trace!("Getting chat completions engine for model: {}", model);

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    let (engine, parsing_options) = state
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        .manager()
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        .get_chat_completions_engine_with_parsing(&model)
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        .map_err(|_| ErrorMessage::model_not_found())?;
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    let mut response_collector = state.metrics_clone().create_response_collector(&model);
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    tracing::trace!("Issuing generate call for responses");
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    // issue the generate call on the engine
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    let engine_stream = engine
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        .generate(request)
        .await
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        .map_err(|e| ErrorMessage::from_anyhow(e, "Failed to generate completions"))?;
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    // Capture the context to cancel the stream if the client disconnects
    let ctx = engine_stream.context();

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    // Create inflight_guard now that actual processing has begun
    let mut inflight_guard =
        state
            .metrics_clone()
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            .create_inflight_guard(&model, Endpoint::Responses, streaming);
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    if streaming {
        // For streaming responses, we return HTTP 200 immediately without checking for errors.
        // Once HTTP 200 OK is sent, we cannot change the status code, so any backend errors
        // must be delivered as SSE events in the stream. This is standard SSE behavior.
        stream_handle.arm(); // allows the system to detect client disconnects and cancel the LLM generation
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        // Streaming path: convert chat completion stream chunks to Responses API SSE events.
        // The engine yields Annotated<NvCreateChatCompletionStreamResponse>. We extract the
        // inner stream response data and convert it to Responses API events.
        use crate::protocols::openai::responses::stream_converter::ResponseStreamConverter;
        use std::sync::atomic::{AtomicBool, Ordering};

        let mut converter = ResponseStreamConverter::new(model.clone(), response_params);
        let start_events = converter.emit_start_events();

        // Use std::sync::Mutex (not tokio) since process_chunk/emit_end_events are
        // synchronous -- no .await while lock is held. Avoids async lock overhead per token.
        let converter = std::sync::Arc::new(std::sync::Mutex::new(converter));
        let converter_end = converter.clone();

        // Track whether the backend sent an error event during the stream.
        // Shared between event_stream (writer) and done_stream (reader).
        let saw_error = std::sync::Arc::new(AtomicBool::new(false));
        let saw_error_end = saw_error.clone();

        let mut http_queue_guard = Some(http_queue_guard);

        // Process each annotated chunk: extract the stream response data, convert to events
        let event_stream = engine_stream
            .inspect(move |response| {
                process_response_and_observe_metrics(
                    response,
                    &mut response_collector,
                    &mut http_queue_guard,
                );
            })
            .filter_map(move |annotated_chunk| {
                let converter = converter.clone();
                let saw_error = saw_error.clone();
                async move {
                    // Check for backend error before extracting data.
                    // Error events have data: None and event: Some("error").
                    if annotated_chunk.data.is_none() {
                        if annotated_chunk.event.as_deref() == Some("error") {
                            saw_error.store(true, Ordering::Release);
                        }
                        return None;
                    }
                    let stream_resp = annotated_chunk.data?;
                    let mut conv = converter.lock().expect("converter lock poisoned");
                    let events = conv.process_chunk(&stream_resp);
                    Some(stream::iter(events))
                }
            })
            .flatten();

        // Chain: start_events -> chunk_events -> end_events
        let start_stream = stream::iter(start_events);

        let done_stream = stream::once(async move {
            let mut conv = converter_end.lock().expect("converter lock poisoned");
            let end_events = if saw_error_end.load(Ordering::Acquire) {
                conv.emit_error_events()
            } else {
                conv.emit_end_events()
            };
            stream::iter(end_events)
        })
        .flatten();

        let full_stream = start_stream.chain(event_stream).chain(done_stream);

        let full_stream = full_stream.map(|result| result.map_err(axum::Error::new));

        // Wrap with disconnect monitoring: detects client disconnects, cancels generation,
        // and defers inflight_guard.mark_ok() until the stream completes.
        let stream = monitor_for_disconnects(full_stream, ctx, inflight_guard, stream_handle);

        let mut sse_stream = Sse::new(stream);
        if let Some(keep_alive) = state.sse_keep_alive() {
            sse_stream = sse_stream.keep_alive(KeepAlive::default().interval(keep_alive));
        }

        Ok(sse_stream.into_response())
    } else {
        // Non-streaming path: aggregate stream into single response

        // Check first event for backend errors before aggregating (non-streaming only)
        let stream_with_check =
            check_for_backend_error(engine_stream)
                .await
                .map_err(|error_response| {
                    tracing::error!(request_id, "Backend error detected: {:?}", error_response);
                    error_response
                })?;

        let mut http_queue_guard = Some(http_queue_guard);
        let stream = stream_with_check.inspect(move |response| {
            process_response_and_observe_metrics(
                response,
                &mut response_collector,
                &mut http_queue_guard,
            );
        });

        let response =
            NvCreateChatCompletionResponse::from_annotated_stream(stream, parsing_options.clone())
                .await
                .map_err(|e| {
                    tracing::error!(request_id, "Failed to fold responses stream: {:?}", e);
                    ErrorMessage::internal_server_error(&format!(
                        "Failed to fold responses stream: {}",
                        e
                    ))
                })?;

        // Convert NvCreateChatCompletionResponse --> NvResponse
        let response: NvResponse = chat_completion_to_response(response, &response_params)
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            .map_err(|e| {
                tracing::error!(
                    request_id,
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                    "Failed to convert NvCreateChatCompletionResponse to NvResponse: {:?}",
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                    e
                );
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                ErrorMessage::internal_server_error("Failed to convert internal response")
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            })?;
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        inflight_guard.mark_ok();
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        Ok(Json(response).into_response())
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    }
}

/// Checks for unsupported fields in the request.
/// Returns Some(response) if unsupported fields are present.
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pub fn validate_response_unsupported_fields(
    request: &NvCreateResponse,
) -> Option<impl IntoResponse> {
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    let inner = &request.inner;

    if inner.background == Some(true) {
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        return Some(ErrorMessage::not_implemented_error(
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            VALIDATION_PREFIX.to_string() + "`background: true` is not supported.",
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        ));
    }
    if inner.include.is_some() {
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        return Some(ErrorMessage::not_implemented_error(
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            VALIDATION_PREFIX.to_string() + "`include` is not supported.",
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        ));
    }
    if inner.previous_response_id.is_some() {
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        return Some(ErrorMessage::not_implemented_error(
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            VALIDATION_PREFIX.to_string() + "`previous_response_id` is not supported.",
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        ));
    }
    if inner.prompt.is_some() {
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        return Some(ErrorMessage::not_implemented_error(
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            VALIDATION_PREFIX.to_string() + "`prompt` is not supported.",
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        ));
    }
    if inner.reasoning.is_some() {
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        return Some(ErrorMessage::not_implemented_error(
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            VALIDATION_PREFIX.to_string() + "`reasoning` is not supported.",
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        ));
    }
    if inner.service_tier.is_some() {
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        return Some(ErrorMessage::not_implemented_error(
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            VALIDATION_PREFIX.to_string() + "`service_tier` is not supported.",
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        ));
    }
    if inner.store == Some(true) {
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        return Some(ErrorMessage::not_implemented_error(
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            VALIDATION_PREFIX.to_string() + "`store: true` is not supported.",
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        ));
    }
    if inner.text.is_some() {
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        return Some(ErrorMessage::not_implemented_error(
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            VALIDATION_PREFIX.to_string() + "`text` is not supported.",
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        ));
    }
    if inner.truncation.is_some() {
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        return Some(ErrorMessage::not_implemented_error(
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            VALIDATION_PREFIX.to_string() + "`truncation` is not supported.",
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        ));
    }
    None
}

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// todo - abstract this to the top level lib.rs to be reused
// todo - move the service_observer to its own state/arc
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fn check_ready(_state: &Arc<service_v2::State>) -> Result<(), ErrorResponse> {
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    // if state.service_observer.stage() != ServiceStage::Ready {
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    //     return Err(ErrorMessage::service_unavailable());
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    // }
    Ok(())
}

/// openai compatible format
/// Example:
/// {
///  "object": "list",
///  "data": [
///    {
///      "id": "model-id-0",
///      "object": "model",
///      "created": 1686935002,
///      "owned_by": "organization-owner"
///    },
///    ]
/// }
async fn list_models_openai(
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    State(state): State<Arc<service_v2::State>>,
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) -> Result<Response, ErrorResponse> {
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    check_ready(&state)?;

    let created = SystemTime::now()
        .duration_since(UNIX_EPOCH)
        .unwrap()
        .as_secs();
    let mut data = Vec::new();

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    let models: HashSet<String> = state.manager().model_display_names();
    for model_name in models {
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        data.push(ModelListing {
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            id: model_name.clone(),
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            object: "model", // Per OpenAI spec, this should be "model"
            created,
            owned_by: "nvidia".to_string(),
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        });
    }

    let out = ListModelOpenAI {
        object: "list",
        data,
    };
    Ok(Json(out).into_response())
}

#[derive(Serialize)]
struct ListModelOpenAI {
    object: &'static str, // always "list"
    data: Vec<ModelListing>,
}

#[derive(Serialize)]
struct ModelListing {
    id: String,
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    object: &'static str, // always "model" per OpenAI spec
    created: u64,         // Seconds since epoch
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    owned_by: String,
}

/// Create an Axum [`Router`] for the OpenAI API Completions endpoint
/// If not path is provided, the default path is `/v1/completions`
pub fn completions_router(
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    state: Arc<service_v2::State>,
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    path: Option<String>,
) -> (Vec<RouteDoc>, Router) {
    let path = path.unwrap_or("/v1/completions".to_string());
    let doc = RouteDoc::new(axum::http::Method::POST, &path);
    let router = Router::new()
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        .route(&path, post(handler_completions))
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        .layer(middleware::from_fn(smart_json_error_middleware))
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        .layer(axum::extract::DefaultBodyLimit::max(get_body_limit()))
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        .with_state(state);
    (vec![doc], router)
}

/// Create an Axum [`Router`] for the OpenAI API Chat Completions endpoint
/// If not path is provided, the default path is `/v1/chat/completions`
pub fn chat_completions_router(
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    template: Option<RequestTemplate>,
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    path: Option<String>,
) -> (Vec<RouteDoc>, Router) {
    let path = path.unwrap_or("/v1/chat/completions".to_string());
    let doc = RouteDoc::new(axum::http::Method::POST, &path);
    let router = Router::new()
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        .route(&path, post(handler_chat_completions))
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        .layer(middleware::from_fn(smart_json_error_middleware))
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        .layer(axum::extract::DefaultBodyLimit::max(get_body_limit()))
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    (vec![doc], router)
}

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/// Create an Axum [`Router`] for the OpenAI API Embeddings endpoint
/// If not path is provided, the default path is `/v1/embeddings`
pub fn embeddings_router(
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    state: Arc<service_v2::State>,
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    path: Option<String>,
) -> (Vec<RouteDoc>, Router) {
    let path = path.unwrap_or("/v1/embeddings".to_string());
    let doc = RouteDoc::new(axum::http::Method::POST, &path);
    let router = Router::new()
        .route(&path, post(embeddings))
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        .layer(middleware::from_fn(smart_json_error_middleware))
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        .layer(axum::extract::DefaultBodyLimit::max(get_body_limit()))
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        .with_state(state);
    (vec![doc], router)
}

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/// List Models
pub fn list_models_router(
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    state: Arc<service_v2::State>,
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    path: Option<String>,
) -> (Vec<RouteDoc>, Router) {
    // Standard OpenAI compatible list models endpoint
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    let openai_path = path.unwrap_or("/v1/models".to_string());
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    let doc_for_openai = RouteDoc::new(axum::http::Method::GET, &openai_path);

    let router = Router::new()
        .route(&openai_path, get(list_models_openai))
        .with_state(state);

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}

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/// Create an Axum [`Router`] for the OpenAI API Responses endpoint
/// If not path is provided, the default path is `/v1/responses`
pub fn responses_router(
    state: Arc<service_v2::State>,
    template: Option<RequestTemplate>,
    path: Option<String>,
) -> (Vec<RouteDoc>, Router) {
    let path = path.unwrap_or("/v1/responses".to_string());
    let doc = RouteDoc::new(axum::http::Method::POST, &path);
    let router = Router::new()
Ryan Olson's avatar
Ryan Olson committed
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        .route(&path, post(handler_responses))
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        .layer(middleware::from_fn(smart_json_error_middleware))
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        .layer(axum::extract::DefaultBodyLimit::max(get_body_limit()))
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        .with_state((state, template));
    (vec![doc], router)
}

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async fn images(
    State(state): State<Arc<service_v2::State>>,
    headers: HeaderMap,
    Json(request): Json<NvCreateImageRequest>,
) -> Result<Response, ErrorResponse> {
    // return a 503 if the service is not ready
    check_ready(&state)?;

    let request_id = get_or_create_request_id(request.inner.user.as_deref(), &headers);
    let request = Context::with_id(request, request_id);
    let request_id = request.id().to_string();

    // Images are typically not streamed, so we default to non-streaming
    let streaming = false;

    // Get the model name from the request (diffusion model)
    let model = request
        .inner
        .model
        .as_ref()
        .map(|m| match m {
            dynamo_async_openai::types::ImageModel::DallE2 => "dall-e-2".to_string(),
            dynamo_async_openai::types::ImageModel::DallE3 => "dall-e-3".to_string(),
            dynamo_async_openai::types::ImageModel::Other(s) => s.clone(),
        })
        .unwrap_or_else(|| "diffusion".to_string());

    // Create http_queue_guard early - tracks time waiting to be processed
    let http_queue_guard = state.metrics_clone().create_http_queue_guard(&model);

    // Get the image generation engine
    let engine = state
        .manager()
        .get_images_engine(&model)
        .map_err(|_| ErrorMessage::model_not_found())?;

    // this will increment the inflight gauge for the model
    let mut inflight =
        state
            .metrics_clone()
            .create_inflight_guard(&model, Endpoint::Images, streaming);

    let mut response_collector = state.metrics_clone().create_response_collector(&model);

    // Issue the generate call on the engine
    // Note: This uses ServerStreamingEngine for internal routing/distribution,
    // NOT for client-facing SSE streaming. The stream is immediately folded into
    // a single response below.
    let stream = engine
        .generate(request)
        .await
        .map_err(|e| ErrorMessage::from_anyhow(e, "Failed to generate images"))?;

    // Process stream to collect metrics and drop http_queue_guard on first response
    let mut http_queue_guard = Some(http_queue_guard);
    let stream = stream.inspect(move |response| {
        // Calls observe_response() on each item - drops http_queue_guard on first item
        process_response_and_observe_metrics(
            response,
            &mut response_collector,
            &mut http_queue_guard,
        );
    });

    // Images are returned as a single response (non-streaming to client)
    // Fold the internal stream into a single response
    let response = NvImagesResponse::from_annotated_stream(stream)
        .await
        .map_err(|e| {
            tracing::error!("Failed to fold images stream for {}: {:?}", request_id, e);
            ErrorMessage::internal_server_error("Failed to fold images stream")
        })?;

    inflight.mark_ok();
    Ok(Json(response).into_response())
}

/// Create an Axum [`Router`] for the OpenAI API Images endpoint
/// If not path is provided, the default path is `/v1/images/generations`
pub fn images_router(
    state: Arc<service_v2::State>,
    path: Option<String>,
) -> (Vec<RouteDoc>, Router) {
    let path = path.unwrap_or("/v1/images/generations".to_string());
    let doc = RouteDoc::new(axum::http::Method::POST, &path);
    let router = Router::new()
        .route(&path, post(images))
        .layer(middleware::from_fn(smart_json_error_middleware))
        .layer(axum::extract::DefaultBodyLimit::max(get_body_limit()))
        .with_state(state);
    (vec![doc], router)
}

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async fn videos(
    State(state): State<Arc<service_v2::State>>,
    headers: HeaderMap,
    Json(request): Json<NvCreateVideoRequest>,
) -> Result<Response, ErrorResponse> {
    // return a 503 if the service is not ready
    check_ready(&state)?;

    let request_id = get_or_create_request_id(request.user.as_deref(), &headers);
    let request = Context::with_id(request, request_id);
    let request_id = request.id().to_string();

    // Videos are typically not streamed, so we default to non-streaming
    let streaming = false;

    // Get the model name from the request (video generation model)
    let model = request.model.clone();

    // Create http_queue_guard early - tracks time waiting to be processed
    let http_queue_guard = state.metrics_clone().create_http_queue_guard(&model);

    // Get the video generation engine
    let engine = state
        .manager()
        .get_videos_engine(&model)
        .map_err(|_| ErrorMessage::model_not_found())?;

    // this will increment the inflight gauge for the model
    let mut inflight =
        state
            .metrics_clone()
            .create_inflight_guard(&model, Endpoint::Videos, streaming);

    let mut response_collector = state.metrics_clone().create_response_collector(&model);

    // issue the generate call on the engine
    let stream = engine
        .generate(request)
        .await
        .map_err(|e| ErrorMessage::from_anyhow(e, "Failed to generate videos"))?;

    // Process stream to collect metrics and drop http_queue_guard on first token
    let mut http_queue_guard = Some(http_queue_guard);
    let stream = stream.inspect(move |response| {
        // Calls observe_response() on each token - drops http_queue_guard on first token
        process_response_and_observe_metrics(
            response,
            &mut response_collector,
            &mut http_queue_guard,
        );
    });

    // Videos are typically returned as a single response (non-streaming)
    // so we fold the stream into a single response
    let response = NvVideosResponse::from_annotated_stream(stream)
        .await
        .map_err(|e| {
            tracing::error!("Failed to fold videos stream for {}: {:?}", request_id, e);
            ErrorMessage::internal_server_error("Failed to fold videos stream")
        })?;

    inflight.mark_ok();
    Ok(Json(response).into_response())
}

/// Create an Axum [`Router`] for the OpenAI API Videos endpoint
/// If no path is provided, the default path is `/v1/videos`
pub fn videos_router(
    state: Arc<service_v2::State>,
    path: Option<String>,
) -> (Vec<RouteDoc>, Router) {
    let path = path.unwrap_or("/v1/videos".to_string());
    let doc = RouteDoc::new(axum::http::Method::POST, &path);
    let router = Router::new()
        .route(&path, post(videos))
        .layer(middleware::from_fn(smart_json_error_middleware))
        .layer(axum::extract::DefaultBodyLimit::max(get_body_limit()))
        .with_state(state);
    (vec![doc], router)
}

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#[cfg(test)]
mod tests {
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    use super::*;
    use crate::discovery::ModelManagerError;
    use crate::protocols::openai::chat_completions::NvCreateChatCompletionRequest;
    use crate::protocols::openai::common_ext::CommonExt;
    use crate::protocols::openai::completions::NvCreateCompletionRequest;
    use crate::protocols::openai::responses::NvCreateResponse;
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    use dynamo_async_openai::types::responses::{
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        CreateResponse, IncludeEnum, Input, PromptConfig, ServiceTier, TextConfig,
        TextResponseFormat, Truncation,
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    };
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    use dynamo_async_openai::types::{
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        ChatCompletionRequestMessage, ChatCompletionRequestUserMessage,
        ChatCompletionRequestUserMessageContent, CreateChatCompletionRequest,
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        CreateCompletionRequest,
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    };
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    const BACKUP_ERROR_MESSAGE: &str = "Failed to generate completions";

    fn http_error_from_engine(code: u16) -> Result<(), anyhow::Error> {
        Err(HttpError {
            code,
            message: "custom error message".to_string(),
        })?
    }

    fn other_error_from_engine() -> Result<(), anyhow::Error> {
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        Err(ModelManagerError::ModelNotFound("foo".to_string()))?
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    }

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    fn make_base_request() -> NvCreateResponse {
        NvCreateResponse {
            inner: CreateResponse {
                input: Input::Text("hello".into()),
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                model: Some("test-model".into()),
                ..Default::default()
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            },
            nvext: None,
        }
    }

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    #[test]
    fn test_http_error_response_from_anyhow() {
        let err = http_error_from_engine(400).unwrap_err();
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        let response = ErrorMessage::from_anyhow(err, BACKUP_ERROR_MESSAGE);
        assert_eq!(response.0, StatusCode::BAD_REQUEST);
        assert_eq!(response.1.message, "custom error message");
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    }

    #[test]
    fn test_error_response_from_anyhow_out_of_range() {
        let err = http_error_from_engine(399).unwrap_err();
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        let response = ErrorMessage::from_anyhow(err, BACKUP_ERROR_MESSAGE);
        assert_eq!(response.0, StatusCode::INTERNAL_SERVER_ERROR);
        assert_eq!(response.1.message, "custom error message");
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        let err = http_error_from_engine(500).unwrap_err();
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        let response = ErrorMessage::from_anyhow(err, BACKUP_ERROR_MESSAGE);
        assert_eq!(response.0, StatusCode::INTERNAL_SERVER_ERROR);
        assert_eq!(response.1.message, "custom error message");
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        let err = http_error_from_engine(501).unwrap_err();
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        let response = ErrorMessage::from_anyhow(err, BACKUP_ERROR_MESSAGE);
        assert_eq!(response.0, StatusCode::INTERNAL_SERVER_ERROR);
        assert_eq!(response.1.message, "custom error message");
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    }

    #[test]
    fn test_other_error_response_from_anyhow() {
        let err = other_error_from_engine().unwrap_err();
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        let response = ErrorMessage::from_anyhow(err, BACKUP_ERROR_MESSAGE);
        assert_eq!(response.0, StatusCode::INTERNAL_SERVER_ERROR);
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        assert_eq!(
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            response.1.message,
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            format!(
                "{}: {}",
                BACKUP_ERROR_MESSAGE,
                other_error_from_engine().unwrap_err()
            )
        );
    }
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    #[test]
    fn test_service_overloaded_error_response_from_anyhow() {
        use dynamo_runtime::pipeline::error::PipelineError;

        let err: anyhow::Error = PipelineError::ServiceOverloaded(
            "All workers are busy, please retry later".to_string(),
        )
        .into();
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        let response = ErrorMessage::from_anyhow(err, BACKUP_ERROR_MESSAGE);
        assert_eq!(response.0, StatusCode::SERVICE_UNAVAILABLE);
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        assert_eq!(
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            response.1.message,
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            "Service temporarily unavailable: All workers are busy, please retry later"
        );
    }

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    #[test]
    fn test_validate_unsupported_fields_accepts_clean_request() {
        let request = make_base_request();
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        let result = validate_response_unsupported_fields(&request);
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        assert!(result.is_none());
    }

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    #[test]
    fn test_validate_unsupported_fields_accepts_parallel_tool_calls() {
        let mut request = make_base_request();
        request.inner.parallel_tool_calls = Some(true);
        let result = validate_response_unsupported_fields(&request);
        assert!(result.is_none(), "parallel_tool_calls should be supported");
    }

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    #[test]
    fn test_validate_unsupported_fields_detects_flags() {
        #[allow(clippy::type_complexity)]
        let unsupported_cases: Vec<(&str, Box<dyn FnOnce(&mut CreateResponse)>)> = vec![
            ("background", Box::new(|r| r.background = Some(true))),
            (
                "include",
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                Box::new(|r| r.include = Some(vec![IncludeEnum::FileSearchCallResults])),
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            ),
            (
                "previous_response_id",
                Box::new(|r| r.previous_response_id = Some("prev-id".into())),
            ),
            (
                "prompt",
                Box::new(|r| {
                    r.prompt = Some(PromptConfig {
                        id: "template-id".into(),
                        version: None,
                        variables: None,
                    })
                }),
            ),
            (
                "reasoning",
                Box::new(|r| r.reasoning = Some(Default::default())),
            ),
            (
                "service_tier",
                Box::new(|r| r.service_tier = Some(ServiceTier::Auto)),
            ),
            ("store", Box::new(|r| r.store = Some(true))),
            (
                "text",
                Box::new(|r| {
                    r.text = Some(TextConfig {
                        format: TextResponseFormat::Text,
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                        verbosity: None,
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                    })
                }),
            ),
            (
                "truncation",
                Box::new(|r| r.truncation = Some(Truncation::Auto)),
            ),
        ];

        for (field, set_field) in unsupported_cases {
            let mut req = make_base_request();
            (set_field)(&mut req.inner);
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            let result = validate_response_unsupported_fields(&req);
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            assert!(result.is_some(), "Expected rejection for `{field}`");
        }
    }
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    #[test]
    fn test_validate_chat_completion_required_fields_empty_messages() {
        let request = NvCreateChatCompletionRequest {
            inner: CreateChatCompletionRequest {
                model: "test-model".to_string(),
                messages: vec![],
                ..Default::default()
            },
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            common: Default::default(),
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            nvext: None,
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            chat_template_args: None,
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            media_io_kwargs: None,
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            unsupported_fields: Default::default(),
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        };
        let result = validate_chat_completion_required_fields(&request);
        assert!(result.is_err());
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        if let Err(error_response) = result {
            assert_eq!(error_response.0, StatusCode::BAD_REQUEST);
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            assert_eq!(
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                error_response.1.message,
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                format!(
                    "{VALIDATION_PREFIX}The 'messages' field cannot be empty. At least one message is required."
                )
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            );
        }
    }

    #[test]
    fn test_validate_chat_completion_required_fields_with_messages() {
        let request = NvCreateChatCompletionRequest {
            inner: CreateChatCompletionRequest {
                model: "test-model".to_string(),
                messages: vec![ChatCompletionRequestMessage::User(
                    ChatCompletionRequestUserMessage {
                        content: ChatCompletionRequestUserMessageContent::Text("Hello".to_string()),
                        name: None,
                    },
                )],
                ..Default::default()
            },
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            common: Default::default(),
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            nvext: None,
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            chat_template_args: None,
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            media_io_kwargs: None,
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            unsupported_fields: Default::default(),
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        };
        let result = validate_chat_completion_required_fields(&request);
        assert!(result.is_ok());
    }
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    #[test]
    // Test for all Bad Requests Example for Chat Completion
    // 1. Echo:  Should be a boolean : Not Done
    // 2. Frequency Penalty: Should be a float between -2.0 and 2.0 : Done
    // 3. logprobs: Done
    // 4. Model Format: Should be a string : Not Done
    // 5. Prompt or Messages Validation
    // 6. Max Tokens: Should be a positive integer
    // 7. Presence Penalty: Should be a float between -2.0 and 2.0 : Done
    // 8. Stop : Should be a string or an array of strings : Not Done
    // 9. Invalid or Out of range temperature: Done
    // 10.Invalid or out of range top_p: Done
    // 11. Repetition Penalty: Should be a float between 0.0 and 2.0 : Done
    // 12. Logprobs: Should be a positive integer between 0 and 5 : Done
    // invalid or non existing user : Only empty string is not allowed validation is there. How can we check non-extisting user ?
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    // Unknown fields : Done (rejected via extra_fields catch-all)
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    // guided_whitespace_pattern null or invalid : Not Done
    // "response_format": { "type": "invalid_format" } : Not Done
    // "logit_bias": { "invalid_token": "not_a_number" }, : Partial Validation is already there
    fn test_bad_base_request_for_completion() {
        // Frequency Penalty: Should be a float between -2.0 and 2.0
        let request = NvCreateCompletionRequest {
            inner: CreateCompletionRequest {
                model: "test-model".to_string(),
                prompt: "Hello".into(),
                frequency_penalty: Some(-3.0),
                ..Default::default()
            },
            common: Default::default(),
            nvext: None,
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            metadata: None,
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            unsupported_fields: Default::default(),
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        };

        let result = validate_completion_fields_generic(&request);
        assert!(result.is_err());
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        if let Err(error_response) = result {
            assert_eq!(error_response.0, StatusCode::BAD_REQUEST);
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            assert_eq!(
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                error_response.1.message,
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                format!("{VALIDATION_PREFIX}Frequency penalty must be between -2 and 2, got -3")
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            );
        }

        // Presence Penalty: Should be a float between -2.0 and 2.0
        let request = NvCreateCompletionRequest {
            inner: CreateCompletionRequest {
                model: "test-model".to_string(),
                prompt: "Hello".into(),
                presence_penalty: Some(-3.0),
                ..Default::default()
            },
            common: Default::default(),
            nvext: None,
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            metadata: None,
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            unsupported_fields: Default::default(),
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        };
        let result = validate_completion_fields_generic(&request);
        assert!(result.is_err());
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        if let Err(error_response) = result {
            assert_eq!(error_response.0, StatusCode::BAD_REQUEST);
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            assert_eq!(
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                error_response.1.message,
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                format!("{VALIDATION_PREFIX}Presence penalty must be between -2 and 2, got -3")
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            );
        }

        // Temperature: Should be a float between 0.0 and 2.0
        let request = NvCreateCompletionRequest {
            inner: CreateCompletionRequest {
                model: "test-model".to_string(),
                prompt: "Hello".into(),
                temperature: Some(-3.0),
                ..Default::default()
            },
            common: Default::default(),
            nvext: None,
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            metadata: None,
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            unsupported_fields: Default::default(),
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        };
        let result = validate_completion_fields_generic(&request);
        assert!(result.is_err());
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        if let Err(error_response) = result {
            assert_eq!(error_response.0, StatusCode::BAD_REQUEST);
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            assert_eq!(
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                error_response.1.message,
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                format!("{VALIDATION_PREFIX}Temperature must be between 0 and 2, got -3")
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            );
        }

        // Top P: Should be a float between 0.0 and 1.0
        let request = NvCreateCompletionRequest {
            inner: CreateCompletionRequest {
                model: "test-model".to_string(),
                prompt: "Hello".into(),
                top_p: Some(-3.0),
                ..Default::default()
            },
            common: Default::default(),
            nvext: None,
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            unsupported_fields: Default::default(),
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        };
        let result = validate_completion_fields_generic(&request);
        assert!(result.is_err());
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        if let Err(error_response) = result {
            assert_eq!(error_response.0, StatusCode::BAD_REQUEST);
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            assert_eq!(
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                error_response.1.message,
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                format!("{VALIDATION_PREFIX}Top_p must be between 0 and 1, got -3")
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            );
        }

        // Repetition Penalty: Should be a float between 0.0 and 2.0
        let request = NvCreateCompletionRequest {
            inner: CreateCompletionRequest {
                model: "test-model".to_string(),
                prompt: "Hello".into(),
                ..Default::default()
            },
            common: CommonExt::builder()
                .repetition_penalty(-3.0)
                .build()
                .unwrap(),
            nvext: None,
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            unsupported_fields: Default::default(),
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        };
        let result = validate_completion_fields_generic(&request);
        assert!(result.is_err());
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        if let Err(error_response) = result {
            assert_eq!(error_response.0, StatusCode::BAD_REQUEST);
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            assert_eq!(
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                error_response.1.message,
2143
                format!("{VALIDATION_PREFIX}Repetition penalty must be between 0 and 2, got -3")
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            );
        }

        // Logprobs: Should be a positive integer between 0 and 5
        let request = NvCreateCompletionRequest {
            inner: CreateCompletionRequest {
                model: "test-model".to_string(),
                prompt: "Hello".into(),
                logprobs: Some(6),
                ..Default::default()
            },
            common: Default::default(),
            nvext: None,
2157
            metadata: None,
2158
            unsupported_fields: Default::default(),
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2161
        };
        let result = validate_completion_fields_generic(&request);
        assert!(result.is_err());
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        if let Err(error_response) = result {
            assert_eq!(error_response.0, StatusCode::BAD_REQUEST);
2164
            assert_eq!(
2165
                error_response.1.message,
2166
                format!("{VALIDATION_PREFIX}Logprobs must be between 0 and 5, got 6")
2167
2168
2169
2170
            );
        }
    }

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    #[test]
    fn test_metadata_field_nested() {
        use serde_json::json;

        // Test metadata field with nested object
        let request = NvCreateCompletionRequest {
            inner: CreateCompletionRequest {
                model: "test-model".to_string(),
                prompt: "Hello".into(),
                ..Default::default()
            },
            common: Default::default(),
            nvext: None,
            metadata: json!({
                "user": {"id": 1, "name": "user-1"},
                "session": {"id": "session-1", "timestamp": 1640995200}
            })
            .into(),
2189
            unsupported_fields: Default::default(),
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        };

        let result = validate_completion_fields_generic(&request);
        assert!(result.is_ok());

        // Verify metadata is accessible
        assert!(request.metadata.is_some());
        assert_eq!(request.metadata.as_ref().unwrap()["user"]["id"], 1);
    }

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    #[test]
    fn test_bad_base_request_for_chatcompletion() {
        // Frequency Penalty: Should be a float between -2.0 and 2.0
        let request = NvCreateChatCompletionRequest {
            inner: CreateChatCompletionRequest {
                model: "test-model".to_string(),
                messages: vec![ChatCompletionRequestMessage::User(
                    ChatCompletionRequestUserMessage {
                        content: ChatCompletionRequestUserMessageContent::Text("Hello".to_string()),
                        name: None,
                    },
                )],
                frequency_penalty: Some(-3.0),
                ..Default::default()
            },
            common: Default::default(),
            nvext: None,
2217
            chat_template_args: None,
2218
            media_io_kwargs: None,
2219
            unsupported_fields: Default::default(),
2220
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2223
        };

        let result = validate_chat_completion_fields_generic(&request);
        assert!(result.is_err());
2224
2225
        if let Err(error_response) = result {
            assert_eq!(error_response.0, StatusCode::BAD_REQUEST);
2226
            assert_eq!(
2227
                error_response.1.message,
2228
                format!("{VALIDATION_PREFIX}Frequency penalty must be between -2 and 2, got -3")
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            );
        }

        // Presence Penalty: Should be a float between -2.0 and 2.0
        let request = NvCreateChatCompletionRequest {
            inner: CreateChatCompletionRequest {
                model: "test-model".to_string(),
                messages: vec![ChatCompletionRequestMessage::User(
                    ChatCompletionRequestUserMessage {
                        content: ChatCompletionRequestUserMessageContent::Text("Hello".to_string()),
                        name: None,
                    },
                )],
                presence_penalty: Some(-3.0),
                ..Default::default()
            },
            common: Default::default(),
            nvext: None,
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            chat_template_args: None,
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            media_io_kwargs: None,
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            unsupported_fields: Default::default(),
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        };
        let result = validate_chat_completion_fields_generic(&request);
        assert!(result.is_err());
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        if let Err(error_response) = result {
            assert_eq!(error_response.0, StatusCode::BAD_REQUEST);
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            assert_eq!(
2256
                error_response.1.message,
2257
                format!("{VALIDATION_PREFIX}Presence penalty must be between -2 and 2, got -3")
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            );
        }

        // Temperature: Should be a float between 0.0 and 2.0
        let request = NvCreateChatCompletionRequest {
            inner: CreateChatCompletionRequest {
                model: "test-model".to_string(),
                messages: vec![ChatCompletionRequestMessage::User(
                    ChatCompletionRequestUserMessage {
                        content: ChatCompletionRequestUserMessageContent::Text("Hello".to_string()),
                        name: None,
                    },
                )],
                temperature: Some(-3.0),
                ..Default::default()
            },
            common: Default::default(),
            nvext: None,
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            chat_template_args: None,
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            media_io_kwargs: None,
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            unsupported_fields: Default::default(),
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        };
        let result = validate_chat_completion_fields_generic(&request);
        assert!(result.is_err());
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        if let Err(error_response) = result {
            assert_eq!(error_response.0, StatusCode::BAD_REQUEST);
2284
            assert_eq!(
2285
                error_response.1.message,
2286
                format!("{VALIDATION_PREFIX}Temperature must be between 0 and 2, got -3")
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            );
        }

        // Top P: Should be a float between 0.0 and 1.0
        let request = NvCreateChatCompletionRequest {
            inner: CreateChatCompletionRequest {
                model: "test-model".to_string(),
                messages: vec![ChatCompletionRequestMessage::User(
                    ChatCompletionRequestUserMessage {
                        content: ChatCompletionRequestUserMessageContent::Text("Hello".to_string()),
                        name: None,
                    },
                )],
                top_p: Some(-3.0),
                ..Default::default()
            },
            common: Default::default(),
            nvext: None,
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            chat_template_args: None,
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            media_io_kwargs: None,
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            unsupported_fields: Default::default(),
2308
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        };
        let result = validate_chat_completion_fields_generic(&request);
        assert!(result.is_err());
2311
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        if let Err(error_response) = result {
            assert_eq!(error_response.0, StatusCode::BAD_REQUEST);
2313
            assert_eq!(
2314
                error_response.1.message,
2315
                format!("{VALIDATION_PREFIX}Top_p must be between 0 and 1, got -3")
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            );
        }

        // Repetition Penalty: Should be a float between 0.0 and 2.0
        let request = NvCreateChatCompletionRequest {
            inner: CreateChatCompletionRequest {
                model: "test-model".to_string(),
                messages: vec![ChatCompletionRequestMessage::User(
                    ChatCompletionRequestUserMessage {
                        content: ChatCompletionRequestUserMessageContent::Text("Hello".to_string()),
                        name: None,
                    },
                )],
                ..Default::default()
            },
            common: CommonExt::builder()
                .repetition_penalty(-3.0)
                .build()
                .unwrap(),
            nvext: None,
2336
            chat_template_args: None,
2337
            media_io_kwargs: None,
2338
            unsupported_fields: Default::default(),
2339
2340
2341
        };
        let result = validate_chat_completion_fields_generic(&request);
        assert!(result.is_err());
2342
2343
        if let Err(error_response) = result {
            assert_eq!(error_response.0, StatusCode::BAD_REQUEST);
2344
            assert_eq!(
2345
                error_response.1.message,
2346
                format!("{VALIDATION_PREFIX}Repetition penalty must be between 0 and 2, got -3")
2347
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            );
        }

        // Top Logprobs: Should be a positive integer between 0 and 20
        let request = NvCreateChatCompletionRequest {
            inner: CreateChatCompletionRequest {
                model: "test-model".to_string(),
                messages: vec![ChatCompletionRequestMessage::User(
                    ChatCompletionRequestUserMessage {
                        content: ChatCompletionRequestUserMessageContent::Text("Hello".to_string()),
                        name: None,
                    },
                )],
                top_logprobs: Some(25),
                ..Default::default()
            },
            common: Default::default(),
            nvext: None,
2365
            chat_template_args: None,
2366
            media_io_kwargs: None,
2367
            unsupported_fields: Default::default(),
2368
2369
2370
        };
        let result = validate_chat_completion_fields_generic(&request);
        assert!(result.is_err());
2371
2372
        if let Err(error_response) = result {
            assert_eq!(error_response.0, StatusCode::BAD_REQUEST);
2373
            assert_eq!(
2374
                error_response.1.message,
2375
                format!("{VALIDATION_PREFIX}Top_logprobs must be between 0 and 20, got 25")
2376
2377
2378
            );
        }
    }
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2380

    #[test]
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2382
    fn test_chat_completions_unknown_fields_rejected() {
        // Test that known unsupported fields are rejected and all shown in error message
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2387
        let json = r#"{
            "messages": [{"role": "user", "content": "Hello"}],
            "model": "test-model",
            "add_special_tokens": true,
            "documents": ["doc1"],
2388
            "chat_template": "custom"
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        }"#;

        let request: NvCreateChatCompletionRequest = serde_json::from_str(json).unwrap();

        // Verify all unsupported fields were captured
        assert!(
            request
                .unsupported_fields
                .contains_key("add_special_tokens")
        );
        assert!(request.unsupported_fields.contains_key("documents"));
        assert!(request.unsupported_fields.contains_key("chat_template"));

        let result = validate_chat_completion_fields_generic(&request);
        assert!(result.is_err());
        if let Err(error_response) = result {
            assert_eq!(error_response.0, StatusCode::BAD_REQUEST);
            let msg = &error_response.1.message;
            assert!(msg.contains("Unsupported parameter"));
            // Verify all fields appear in the error message
            assert!(msg.contains("add_special_tokens"));
            assert!(msg.contains("documents"));
            assert!(msg.contains("chat_template"));
        }
    }
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2445

    #[test]
    fn test_completions_unsupported_fields_rejected() {
        // Test that known unsupported fields are rejected and all shown in error message
        let json = r#"{
            "model": "test-model",
            "prompt": "Hello",
            "add_special_tokens": true,
            "response_format": {"type": "json_object"}
        }"#;

        let request: NvCreateCompletionRequest = serde_json::from_str(json).unwrap();

        // Verify both unsupported fields were captured
        assert!(
            request
                .unsupported_fields
                .contains_key("add_special_tokens")
        );
        assert!(request.unsupported_fields.contains_key("response_format"));

        let result = validate_completion_fields_generic(&request);
        assert!(result.is_err());
        if let Err(error_response) = result {
            assert_eq!(error_response.0, StatusCode::BAD_REQUEST);
            let msg = &error_response.1.message;
            assert!(msg.contains("Unsupported parameter"));
            // Verify both fields appear in error message
            assert!(msg.contains("add_special_tokens"));
            assert!(msg.contains("response_format"));
        }
    }
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2577

    #[tokio::test]
    async fn test_check_for_backend_error_with_error_event() {
        use crate::types::openai::chat_completions::NvCreateChatCompletionStreamResponse;
        use futures::stream;

        // Create an error event
        let error_event = Annotated::<NvCreateChatCompletionStreamResponse> {
            data: None,
            id: None,
            event: Some("error".to_string()),
            comment: Some(vec!["Backend service unavailable".to_string()]),
        };

        let test_stream = stream::iter(vec![error_event]);
        let result = check_for_backend_error(test_stream).await;

        // Should return an error
        assert!(result.is_err());
        if let Err(error_response) = result {
            assert_eq!(error_response.0, StatusCode::INTERNAL_SERVER_ERROR);
            assert_eq!(error_response.1.message, "Backend service unavailable");
        }
    }

    #[tokio::test]
    async fn test_check_for_backend_error_with_json_error_and_code() {
        use crate::types::openai::chat_completions::NvCreateChatCompletionStreamResponse;
        use futures::stream;

        // Create an error event with JSON payload containing error code in comment
        let error_json =
            r#"{"message":"prompt > max_seq_len","type":"Internal Server Error","code":500}"#;
        let error_event = Annotated::<NvCreateChatCompletionStreamResponse> {
            data: None,
            id: None,
            event: Some("error".to_string()),
            comment: Some(vec![error_json.to_string()]),
        };

        let test_stream = stream::iter(vec![error_event]);
        let result = check_for_backend_error(test_stream).await;

        // Should return an error with correct status code extracted from JSON
        assert!(result.is_err());
        if let Err(error_response) = result {
            assert_eq!(error_response.0, StatusCode::INTERNAL_SERVER_ERROR);
            assert_eq!(error_response.1.message, "prompt > max_seq_len");
            assert_eq!(error_response.1.code, 500);
        }
    }

    #[tokio::test]
    async fn test_check_for_backend_error_with_normal_event() {
        use crate::types::openai::chat_completions::NvCreateChatCompletionStreamResponse;
        use dynamo_async_openai::types::CreateChatCompletionStreamResponse;
        use futures::stream::{self, StreamExt};

        // Create a normal data event
        let normal_event = Annotated::<NvCreateChatCompletionStreamResponse> {
            data: Some(CreateChatCompletionStreamResponse {
                id: "test-id".to_string(),
                choices: vec![],
                created: 0,
                model: "test-model".to_string(),
                system_fingerprint: None,
                object: "chat.completion.chunk".to_string(),
                service_tier: None,
                usage: None,
                nvext: None,
            }),
            id: Some("msg-1".to_string()),
            event: None,
            comment: None,
        };

        let test_stream = stream::iter(vec![normal_event.clone()]);
        let result = check_for_backend_error(test_stream).await;

        // Should return Ok with the stream
        assert!(result.is_ok());
        let mut returned_stream = result.unwrap();

        // Verify we can read the event back from the stream
        let first = returned_stream.next().await;
        assert!(first.is_some());
        let first_event = first.unwrap();
        assert_eq!(first_event.id, Some("msg-1".to_string()));
    }

    #[tokio::test]
    async fn test_check_for_backend_error_with_empty_stream() {
        use crate::types::openai::chat_completions::NvCreateChatCompletionStreamResponse;
        use futures::stream::{self, StreamExt};

        // Create an empty stream
        let test_stream =
            stream::iter::<Vec<Annotated<NvCreateChatCompletionStreamResponse>>>(vec![]);
        let result = check_for_backend_error(test_stream).await;

        // Should return Ok with an empty stream
        assert!(result.is_ok());
        let mut returned_stream = result.unwrap();

        // Verify stream is empty
        let first = returned_stream.next().await;
        assert!(first.is_none());
    }

    #[tokio::test]
    async fn test_check_for_backend_error_with_comment_but_no_event_type() {
        use crate::types::openai::chat_completions::NvCreateChatCompletionStreamResponse;
        use futures::stream;

        // Create an event with comment but no event type and no data (error indicator)
        let error_event = Annotated::<NvCreateChatCompletionStreamResponse> {
            data: None,
            id: None,
            event: None,
            comment: Some(vec!["Connection timeout".to_string()]),
        };

        let test_stream = stream::iter(vec![error_event]);
        let result = check_for_backend_error(test_stream).await;

        // Should return an error based on is_backend_error_event logic
        assert!(result.is_err());
        if let Err(error_response) = result {
            assert_eq!(error_response.0, StatusCode::INTERNAL_SERVER_ERROR);
            assert_eq!(error_response.1.message, "Connection timeout");
        }
    }
2578
}