openai.rs 111 KB
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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 base64::Engine as _;
use bytes::Bytes;
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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::{
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        Endpoint, ErrorType, EventConverter, process_response_and_observe_metrics,
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        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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/// Classify error for metrics based on status code and message
fn classify_error_for_metrics(code: StatusCode, message: &str) -> ErrorType {
    match code {
        StatusCode::BAD_REQUEST => {
            // 400
            if message.starts_with("Validation:") {
                ErrorType::Validation
            } else {
                ErrorType::Internal
            }
        }
        StatusCode::NOT_FOUND => ErrorType::NotFound, // 404
        StatusCode::NOT_IMPLEMENTED => ErrorType::NotImplemented, // 501
        StatusCode::TOO_MANY_REQUESTS => ErrorType::Overload, // 429
        StatusCode::SERVICE_UNAVAILABLE => ErrorType::Overload, // 503
        StatusCode::INTERNAL_SERVER_ERROR => ErrorType::Internal, // 500
        _ if code.is_client_error() => ErrorType::Validation, // other 4xx
        _ => ErrorType::Internal,                     // everything else
    }
}

/// Extract ErrorType from ErrorResponse for metrics
fn extract_error_type_from_response(response: &ErrorResponse) -> ErrorType {
    classify_error_for_metrics(response.0, &response.1.message)
}

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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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        }

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        // Check for DynamoError with InvalidArgument → HTTP 400
        if let Some(dynamo_err) = err.downcast_ref::<dynamo_runtime::error::DynamoError>()
            && dynamo_err.error_type() == dynamo_runtime::error::ErrorType::InvalidArgument
        {
            return (
                StatusCode::BAD_REQUEST,
                Json(ErrorMessage {
                    message: dynamo_err.message().to_string(),
                    error_type: map_error_code_to_error_type(StatusCode::BAD_REQUEST),
                    code: StatusCode::BAD_REQUEST.as_u16(),
                }),
            );
        }

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

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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
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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(|_| {
            let err_response = ErrorMessage::model_not_found();
            inflight_guard.mark_error(extract_error_type_from_response(&err_response));
            err_response
        })?;
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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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    // issue the generate call on the engine
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    let stream = engine.generate(request).await.map_err(|e| {
        let err_response = ErrorMessage::from_anyhow(e, "Failed to generate completions");
        inflight_guard.mark_error(extract_error_type_from_response(&err_response));
        err_response
    })?;
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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
                );
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                let err_response = ErrorMessage::internal_server_error(&format!(
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                    "Failed to fold completions stream for {}: {:?}",
                    request_id, e
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                ));
                inflight_guard.mark_error(extract_error_type_from_response(&err_response));
                err_response
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            })?;

        inflight_guard.mark_ok();
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        // If the engine context was killed (client disconnect), the response was
        // assembled but never delivered. Override to cancelled.
        if ctx.is_killed() {
            inflight_guard.mark_error(ErrorType::Cancelled);
        }
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        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();

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

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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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    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(|_| {
            let err_response = ErrorMessage::model_not_found();
            inflight_guard.mark_error(extract_error_type_from_response(&err_response));
            err_response
        })?;
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    let mut response_collector = state.metrics_clone().create_response_collector(&model);

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

    // 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
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        let stream = engine.generate(single_request_context).await.map_err(|e| {
            let err_response = ErrorMessage::from_anyhow(e, "Failed to generate completions");
            inflight_guard.mark_error(extract_error_type_from_response(&err_response));
            err_response
        })?;
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        // 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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                let err_response = ErrorMessage::internal_server_error(&format!(
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                    "Failed to fold completions stream for {}: {:?}",
                    request_id, e
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                ));
                inflight_guard.mark_error(extract_error_type_from_response(&err_response));
                err_response
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            })?;

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        inflight_guard.mark_ok();
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        // If the engine context was killed (client disconnect), the response was
        // assembled but never delivered. Override to cancelled.
        if ctx.is_killed() {
            inflight_guard.mark_error(ErrorType::Cancelled);
        }
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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 inflight_guard early to ensure all errors are counted
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    let mut inflight =
        state
            .metrics_clone()
            .create_inflight_guard(model, Endpoint::Embeddings, streaming);

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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);

    // todo - error handling should be more robust
    let engine = state.manager().get_embeddings_engine(model).map_err(|_| {
        let err_response = ErrorMessage::model_not_found();
        inflight.mark_error(extract_error_type_from_response(&err_response));
        err_response
    })?;

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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
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    let stream = engine.generate(request).await.map_err(|e| {
        let err_response = ErrorMessage::from_anyhow(e, "Failed to generate embeddings");
        inflight.mark_error(extract_error_type_from_response(&err_response));
        err_response
    })?;
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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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            let err_response =
                ErrorMessage::internal_server_error("Failed to fold embeddings stream");
            inflight.mark_error(extract_error_type_from_response(&err_response));
            err_response
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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"
    {
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        // Extract error string: prefer DynamoError field, fallback to legacy comment.
        // Use message() instead of to_string() for DynamoError to avoid prefixing
        // the ErrorType (e.g., "Unknown: {...}"), which would break JSON parsing.
        let error_str = if let Some(ref dynamo_err) = event.error {
            let mut parts = Vec::new();
            let mut current: Option<&dyn std::error::Error> = Some(dynamo_err);
            while let Some(e) = current {
                if let Some(de) = e.downcast_ref::<dynamo_runtime::error::DynamoError>() {
                    parts.push(de.message().to_string());
                } else {
                    parts.push(e.to_string());
                }
                current = e.source();
            }
            parts.join(", ")
        } else {
            event
                .comment
                .as_ref()
                .map(|c| c.join(", "))
                .unwrap_or_else(|| "Unknown error".to_string())
        };

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

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

    // 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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    // Determine streaming mode early
    // todo - decide on default
    let streaming = request.inner.stream.unwrap_or(false);
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    // Apply template values first to resolve the model before creating metrics guards
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    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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    // Capture the resolved model after template application for metrics and engine lookup
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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();

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    tracing::trace!("Received chat completions request: {:?}", request.content());

    // Create inflight_guard early to ensure all errors (including validation) are counted
    let mut inflight_guard =
        state
            .metrics_clone()
            .create_inflight_guard(&model, Endpoint::ChatCompletions, streaming);

    // 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
    // and early return a 501 NOT_IMPLEMENTED status code. Otherwise, proceeed.
    if let Err(err_response) = validate_chat_completion_unsupported_fields(&request) {
        inflight_guard.mark_error(extract_error_type_from_response(&err_response));
        return Err(err_response);
    }

    // Handle required fields like messages shouldn't be empty.
    if let Err(err_response) = validate_chat_completion_required_fields(&request) {
        inflight_guard.mark_error(extract_error_type_from_response(&err_response));
        return Err(err_response);
    }

    // Validate stream_options is only used when streaming (NVBug 5662680)
    if let Err(err_response) = validate_chat_completion_stream_options(&request) {
        inflight_guard.mark_error(extract_error_type_from_response(&err_response));
        return Err(err_response);
    }

    // Handle Rest of Validation Errors
    if let Err(err_response) = validate_chat_completion_fields_generic(&request) {
        inflight_guard.mark_error(extract_error_type_from_response(&err_response));
        return Err(err_response);
    }

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    // 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(|_| {
            let err_response = ErrorMessage::model_not_found();
            inflight_guard.mark_error(extract_error_type_from_response(&err_response));
            err_response
        })?;
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    let mut response_collector = state.metrics_clone().create_response_collector(&model);

    let annotations = request.annotations();

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    // issue the generate call on the engine
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    let stream = engine.generate(request).await.map_err(|e| {
        let err_response = ErrorMessage::from_anyhow(e, "Failed to generate completions");
        inflight_guard.mark_error(extract_error_type_from_response(&err_response));
        err_response
    })?;
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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);
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                    inflight_guard.mark_error(extract_error_type_from_response(&error_response));
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                    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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                        "Failed to parse chat completion response: {:?}",
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                        e
                    );
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                    let err_response = ErrorMessage::internal_server_error(&format!(
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                        "Failed to parse chat completion response: {}",
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                        e
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                    ));
                    inflight_guard.mark_error(extract_error_type_from_response(&err_response));
                    err_response
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                })?;
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        inflight_guard.mark_ok();
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        // If the engine context was killed (client disconnect), the response was
        // assembled but never delivered. Override to cancelled.
        if ctx.is_killed() {
            inflight_guard.mark_error(ErrorType::Cancelled);
        }
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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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        })
    })
}

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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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    // 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);

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    let model = request.inner.model.clone().unwrap_or_default();
    let streaming = request.inner.stream.unwrap_or(false);

    // Create http_queue_guard early - tracks time waiting to be processed
    let http_queue_guard = state.metrics_clone().create_http_queue_guard(&model);
    let mut inflight_guard =
        state
            .metrics_clone()
            .create_inflight_guard(&model, Endpoint::Responses, streaming);

    // 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
    // and early return a 501 NOT_IMPLEMENTED status code.
    if let Some(resp) = validate_response_unsupported_fields(&request) {
        inflight_guard.mark_error(ErrorType::NotImplemented);
        return Ok(resp.into_response());
    }

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    // 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 {
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        model: request.inner.model.clone(),
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        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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        reasoning: request.inner.reasoning.clone(),
        text: request.inner.text.clone(),
        service_tier: request.inner.service_tier,
        include: request.inner.include.clone(),
        truncation: request.inner.truncation,
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    };
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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",
            );
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            let err_response = ErrorMessage::not_implemented_error(
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                    + "Failed to convert responses request: "
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                    + &e.to_string(),
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            );
            inflight_guard.mark_error(extract_error_type_from_response(&err_response));
            err_response
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        })?;
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    // Always use internal streaming for aggregation.
    // Set stream_options.include_usage so the backend sends token counts in the final chunk.
    chat_request.inner.stream = Some(true);
    chat_request.inner.stream_options =
        Some(dynamo_async_openai::types::ChatCompletionStreamOptions {
            include_usage: true,
            continuous_usage_stats: false,
        });
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    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(|_| {
            let err_response = ErrorMessage::model_not_found();
            inflight_guard.mark_error(extract_error_type_from_response(&err_response));
            err_response
        })?;
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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.generate(request).await.map_err(|e| {
        let err_response = ErrorMessage::from_anyhow(e, "Failed to generate completions");
        inflight_guard.mark_error(extract_error_type_from_response(&err_response));
        err_response
    })?;
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    // Capture the context to cancel the stream if the client disconnects
    let ctx = engine_stream.context();

    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);
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                    inflight_guard.mark_error(extract_error_type_from_response(&error_response));
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                    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);
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                        "Failed to fold responses stream: {}",
                        e
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                    ));
                    inflight_guard.mark_error(extract_error_type_from_response(&err_response));
                    err_response
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                })?;

        // 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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                let err_response =
                    ErrorMessage::internal_server_error("Failed to convert internal response");
                inflight_guard.mark_error(extract_error_type_from_response(&err_response));
                err_response
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            })?;
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        inflight_guard.mark_ok();
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        // If the engine context was killed (client disconnect), the response was
        // assembled but never delivered. Override to cancelled.
        if ctx.is_killed() {
            inflight_guard.mark_error(ErrorType::Cancelled);
        }
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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.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.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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        ));
    }
    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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    state: Arc<service_v2::State>,
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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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        .with_state((state, template));
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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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    (vec![doc_for_openai], router)
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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()
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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())
}

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/// [EXPERIMENTAL] MJPEG streaming handler for `/v1/videos/stream`.
///
/// The backend is expected to yield one [`NvVideosResponse`] per frame, carrying a
/// JPEG-encoded frame as `data[0].b64_json`. This handler decodes each frame and
/// writes it as an MJPEG multipart boundary so the client receives a live
/// `multipart/x-mixed-replace` stream viewable directly in a browser `<img>` tag
/// or via `ffplay http://.../v1/videos/stream`.
async fn video_stream(
    State(state): State<Arc<service_v2::State>>,
    headers: HeaderMap,
    Json(request): Json<NvCreateVideoRequest>,
) -> Result<Response, ErrorResponse> {
    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 model = request.model.clone();

    let http_queue_guard = state.metrics_clone().create_http_queue_guard(&model);

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

    let mut inflight = state
        .metrics_clone()
        .create_inflight_guard(&model, Endpoint::Videos, true);

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

    let stream = engine
        .generate(request)
        .await
        .map_err(|e| ErrorMessage::from_anyhow(e, "Failed to start video stream"))?;

    // Capture the context to cancel the stream if the client disconnects.
    let ctx = stream.context();

    // Create connection monitor. The connection_handle is disarmed immediately because
    // video_stream returns the streaming body directly (graceful handler exit).
    // The stream_handle is armed below and lives inside the monitored stream so that
    // a client disconnect (body drop) signals the engine context to cancel.
    let (mut connection_handle, mut stream_handle) =
        create_connection_monitor(ctx.clone(), Some(state.metrics_clone())).await;
    connection_handle.disarm();

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

    // Map each annotated NvVideosResponse to an MJPEG boundary chunk.
    // The backend yields one response per frame with the JPEG in data[0].b64_json.
    let mjpeg_stream = stream.filter_map(|annotated| async move {
        let ann = match annotated.ok() {
            Ok(a) => a,
            Err(e) => {
                tracing::error!("Video stream error: {e}");
                return None;
            }
        };
        let response = ann.data?;
        let frame = response.data.into_iter().next()?;
        let b64 = frame.b64_json?;
        let jpeg_bytes = match base64::prelude::BASE64_STANDARD.decode(&b64) {
            Ok(b) => b,
            Err(e) => {
                tracing::warn!("Failed to decode frame base64: {e}");
                return None;
            }
        };
        let header = format!(
            "--frame\r\nContent-Type: image/jpeg\r\nContent-Length: {}\r\n\r\n",
            jpeg_bytes.len()
        );
        let mut chunk = Vec::with_capacity(header.len() + jpeg_bytes.len() + 2);
        chunk.extend_from_slice(header.as_bytes());
        chunk.extend_from_slice(&jpeg_bytes);
        chunk.extend_from_slice(b"\r\n");
        Some(Ok::<Bytes, std::convert::Infallible>(Bytes::from(chunk)))
    });

    // Arm the stream handle and monitor for client disconnects or context cancellation.
    // inflight.mark_ok() is deferred until the stream ends naturally. If the stream is
    // dropped early (client disconnect), the armed stream_handle signals the connection
    // monitor, which cancels the engine context.
    stream_handle.arm();
    let monitored_stream = async_stream::stream! {
        tokio::pin!(mjpeg_stream);
        loop {
            tokio::select! {
                frame = mjpeg_stream.next() => {
                    match frame {
                        Some(item) => yield item,
                        None => {
                            // Stream ended naturally: mark inflight OK and disarm the handle.
                            inflight.mark_ok();
                            stream_handle.disarm();
                            break;
                        }
                    }
                }
                _ = ctx.stopped() => {
                    tracing::trace!("Context stopped; breaking MJPEG stream");
                    break;
                }
            }
        }
    };

    axum::http::Response::builder()
        .status(axum::http::StatusCode::OK)
        .header(
            axum::http::header::CONTENT_TYPE,
            "multipart/x-mixed-replace; boundary=frame",
        )
        .body(Body::from_stream(monitored_stream))
        .map(|r| r.into_response())
        .map_err(|e| {
            ErrorMessage::internal_server_error(&format!("Failed to build MJPEG response: {e}"))
        })
}

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/// Create an Axum [`Router`] for the OpenAI API Videos endpoint
/// If no path is provided, the default path is `/v1/videos`
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///
/// Two routes are registered:
/// - `POST /v1/videos`        — non-streaming, returns a single JSON response
/// - `POST /v1/videos/stream` — MJPEG streaming via `multipart/x-mixed-replace`
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pub fn videos_router(
    state: Arc<service_v2::State>,
    path: Option<String>,
) -> (Vec<RouteDoc>, Router) {
    let path = path.unwrap_or("/v1/videos".to_string());
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    let stream_path = format!("{}/stream", path);
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    let router = Router::new()
        .route(&path, post(videos))
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        .layer(middleware::from_fn(smart_json_error_middleware))
        .layer(axum::extract::DefaultBodyLimit::max(get_body_limit()))
        .with_state(state);
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}

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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::{
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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);
2112
        assert_eq!(
2113
            response.1.message,
2114
2115
2116
2117
2118
2119
2120
            format!(
                "{}: {}",
                BACKUP_ERROR_MESSAGE,
                other_error_from_engine().unwrap_err()
            )
        );
    }
2121

2122
2123
2124
2125
2126
2127
2128
2129
    #[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();
2130
2131
        let response = ErrorMessage::from_anyhow(err, BACKUP_ERROR_MESSAGE);
        assert_eq!(response.0, StatusCode::SERVICE_UNAVAILABLE);
2132
        assert_eq!(
2133
            response.1.message,
2134
2135
2136
2137
            "Service temporarily unavailable: All workers are busy, please retry later"
        );
    }

2138
2139
2140
    #[test]
    fn test_validate_unsupported_fields_accepts_clean_request() {
        let request = make_base_request();
2141
        let result = validate_response_unsupported_fields(&request);
2142
2143
2144
        assert!(result.is_none());
    }

2145
2146
2147
2148
2149
2150
2151
2152
    #[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");
    }

2153
2154
2155
2156
2157
2158
2159
2160
2161
2162
2163
2164
2165
2166
2167
2168
2169
2170
2171
2172
2173
2174
2175
2176
2177
    #[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))),
            (
                "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,
                    })
                }),
            ),
            ("store", Box::new(|r| r.store = Some(true))),
        ];

        for (field, set_field) in unsupported_cases {
            let mut req = make_base_request();
            (set_field)(&mut req.inner);
2178
            let result = validate_response_unsupported_fields(&req);
2179
2180
2181
            assert!(result.is_some(), "Expected rejection for `{field}`");
        }
    }
2182
2183
2184
2185
2186
2187
2188
2189
2190

    #[test]
    fn test_validate_chat_completion_required_fields_empty_messages() {
        let request = NvCreateChatCompletionRequest {
            inner: CreateChatCompletionRequest {
                model: "test-model".to_string(),
                messages: vec![],
                ..Default::default()
            },
2191
            common: Default::default(),
2192
            nvext: None,
2193
            chat_template_args: None,
2194
            media_io_kwargs: None,
2195
            unsupported_fields: Default::default(),
2196
2197
2198
        };
        let result = validate_chat_completion_required_fields(&request);
        assert!(result.is_err());
2199
2200
        if let Err(error_response) = result {
            assert_eq!(error_response.0, StatusCode::BAD_REQUEST);
2201
            assert_eq!(
2202
                error_response.1.message,
2203
2204
2205
                format!(
                    "{VALIDATION_PREFIX}The 'messages' field cannot be empty. At least one message is required."
                )
2206
2207
2208
2209
2210
2211
2212
2213
2214
2215
2216
2217
2218
2219
2220
2221
2222
            );
        }
    }

    #[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()
            },
2223
            common: Default::default(),
2224
            nvext: None,
2225
            chat_template_args: None,
2226
            media_io_kwargs: None,
2227
            unsupported_fields: Default::default(),
2228
2229
2230
2231
        };
        let result = validate_chat_completion_required_fields(&request);
        assert!(result.is_ok());
    }
2232
2233
2234
2235
2236
2237
2238
2239
2240
2241
2242
2243
2244
2245
2246
2247

    #[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 ?
2248
    // Unknown fields : Done (rejected via extra_fields catch-all)
2249
2250
2251
2252
2253
2254
2255
2256
2257
2258
2259
2260
2261
2262
    // 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,
2263
            metadata: None,
2264
            unsupported_fields: Default::default(),
2265
2266
2267
2268
        };

        let result = validate_completion_fields_generic(&request);
        assert!(result.is_err());
2269
2270
        if let Err(error_response) = result {
            assert_eq!(error_response.0, StatusCode::BAD_REQUEST);
2271
            assert_eq!(
2272
                error_response.1.message,
2273
                format!("{VALIDATION_PREFIX}Frequency penalty must be between -2 and 2, got -3")
2274
2275
2276
2277
2278
2279
2280
2281
2282
2283
2284
2285
2286
            );
        }

        // 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,
2287
            metadata: None,
2288
            unsupported_fields: Default::default(),
2289
2290
2291
        };
        let result = validate_completion_fields_generic(&request);
        assert!(result.is_err());
2292
2293
        if let Err(error_response) = result {
            assert_eq!(error_response.0, StatusCode::BAD_REQUEST);
2294
            assert_eq!(
2295
                error_response.1.message,
2296
                format!("{VALIDATION_PREFIX}Presence penalty must be between -2 and 2, got -3")
2297
2298
2299
2300
2301
2302
2303
2304
2305
2306
2307
2308
2309
            );
        }

        // 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,
2310
            metadata: None,
2311
            unsupported_fields: Default::default(),
2312
2313
2314
        };
        let result = validate_completion_fields_generic(&request);
        assert!(result.is_err());
2315
2316
        if let Err(error_response) = result {
            assert_eq!(error_response.0, StatusCode::BAD_REQUEST);
2317
            assert_eq!(
2318
                error_response.1.message,
2319
                format!("{VALIDATION_PREFIX}Temperature must be between 0 and 2, got -3")
2320
2321
2322
2323
2324
2325
2326
2327
2328
2329
2330
2331
2332
            );
        }

        // 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,
2333
            metadata: None,
2334
            unsupported_fields: Default::default(),
2335
2336
2337
        };
        let result = validate_completion_fields_generic(&request);
        assert!(result.is_err());
2338
2339
        if let Err(error_response) = result {
            assert_eq!(error_response.0, StatusCode::BAD_REQUEST);
2340
            assert_eq!(
2341
                error_response.1.message,
2342
                format!("{VALIDATION_PREFIX}Top_p must be between 0 and 1, got -3")
2343
2344
2345
2346
2347
2348
2349
2350
2351
2352
2353
2354
2355
2356
2357
            );
        }

        // 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,
2358
            metadata: None,
2359
            unsupported_fields: Default::default(),
2360
2361
2362
        };
        let result = validate_completion_fields_generic(&request);
        assert!(result.is_err());
2363
2364
        if let Err(error_response) = result {
            assert_eq!(error_response.0, StatusCode::BAD_REQUEST);
2365
            assert_eq!(
2366
                error_response.1.message,
2367
                format!("{VALIDATION_PREFIX}Repetition penalty must be between 0 and 2, got -3")
2368
2369
2370
2371
2372
2373
2374
2375
2376
2377
2378
2379
2380
            );
        }

        // 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,
2381
            metadata: None,
2382
            unsupported_fields: Default::default(),
2383
2384
2385
        };
        let result = validate_completion_fields_generic(&request);
        assert!(result.is_err());
2386
2387
        if let Err(error_response) = result {
            assert_eq!(error_response.0, StatusCode::BAD_REQUEST);
2388
            assert_eq!(
2389
                error_response.1.message,
2390
                format!("{VALIDATION_PREFIX}Logprobs must be between 0 and 5, got 6")
2391
2392
2393
2394
            );
        }
    }

2395
2396
2397
2398
2399
2400
2401
2402
2403
2404
2405
2406
2407
2408
2409
2410
2411
2412
    #[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(),
2413
            unsupported_fields: Default::default(),
2414
2415
2416
2417
2418
2419
2420
2421
2422
2423
        };

        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);
    }

2424
2425
2426
2427
2428
2429
2430
2431
2432
2433
2434
2435
2436
2437
2438
2439
2440
    #[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,
2441
            chat_template_args: None,
2442
            media_io_kwargs: None,
2443
            unsupported_fields: Default::default(),
2444
2445
2446
2447
        };

        let result = validate_chat_completion_fields_generic(&request);
        assert!(result.is_err());
2448
2449
        if let Err(error_response) = result {
            assert_eq!(error_response.0, StatusCode::BAD_REQUEST);
2450
            assert_eq!(
2451
                error_response.1.message,
2452
                format!("{VALIDATION_PREFIX}Frequency penalty must be between -2 and 2, got -3")
2453
2454
2455
2456
2457
2458
2459
2460
2461
2462
2463
2464
2465
2466
2467
2468
2469
2470
            );
        }

        // 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,
2471
            chat_template_args: None,
2472
            media_io_kwargs: None,
2473
            unsupported_fields: Default::default(),
2474
2475
2476
        };
        let result = validate_chat_completion_fields_generic(&request);
        assert!(result.is_err());
2477
2478
        if let Err(error_response) = result {
            assert_eq!(error_response.0, StatusCode::BAD_REQUEST);
2479
            assert_eq!(
2480
                error_response.1.message,
2481
                format!("{VALIDATION_PREFIX}Presence penalty must be between -2 and 2, got -3")
2482
2483
2484
2485
2486
2487
2488
2489
2490
2491
2492
2493
2494
2495
2496
2497
2498
2499
            );
        }

        // 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,
2500
            chat_template_args: None,
2501
            media_io_kwargs: None,
2502
            unsupported_fields: Default::default(),
2503
2504
2505
        };
        let result = validate_chat_completion_fields_generic(&request);
        assert!(result.is_err());
2506
2507
        if let Err(error_response) = result {
            assert_eq!(error_response.0, StatusCode::BAD_REQUEST);
2508
            assert_eq!(
2509
                error_response.1.message,
2510
                format!("{VALIDATION_PREFIX}Temperature must be between 0 and 2, got -3")
2511
2512
2513
2514
2515
2516
2517
2518
2519
2520
2521
2522
2523
2524
2525
2526
2527
2528
            );
        }

        // 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,
2529
            chat_template_args: None,
2530
            media_io_kwargs: None,
2531
            unsupported_fields: Default::default(),
2532
2533
2534
        };
        let result = validate_chat_completion_fields_generic(&request);
        assert!(result.is_err());
2535
2536
        if let Err(error_response) = result {
            assert_eq!(error_response.0, StatusCode::BAD_REQUEST);
2537
            assert_eq!(
2538
                error_response.1.message,
2539
                format!("{VALIDATION_PREFIX}Top_p must be between 0 and 1, got -3")
2540
2541
2542
2543
2544
2545
2546
2547
2548
2549
2550
2551
2552
2553
2554
2555
2556
2557
2558
2559
            );
        }

        // 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,
2560
            chat_template_args: None,
2561
            media_io_kwargs: None,
2562
            unsupported_fields: Default::default(),
2563
2564
2565
        };
        let result = validate_chat_completion_fields_generic(&request);
        assert!(result.is_err());
2566
2567
        if let Err(error_response) = result {
            assert_eq!(error_response.0, StatusCode::BAD_REQUEST);
2568
            assert_eq!(
2569
                error_response.1.message,
2570
                format!("{VALIDATION_PREFIX}Repetition penalty must be between 0 and 2, got -3")
2571
2572
2573
2574
2575
2576
2577
2578
2579
2580
2581
2582
2583
2584
2585
2586
2587
2588
            );
        }

        // 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,
2589
            chat_template_args: None,
2590
            media_io_kwargs: None,
2591
            unsupported_fields: Default::default(),
2592
2593
2594
        };
        let result = validate_chat_completion_fields_generic(&request);
        assert!(result.is_err());
2595
2596
        if let Err(error_response) = result {
            assert_eq!(error_response.0, StatusCode::BAD_REQUEST);
2597
            assert_eq!(
2598
                error_response.1.message,
2599
                format!("{VALIDATION_PREFIX}Top_logprobs must be between 0 and 20, got 25")
2600
2601
2602
            );
        }
    }
2603
2604

    #[test]
2605
2606
    fn test_chat_completions_unknown_fields_rejected() {
        // Test that known unsupported fields are rejected and all shown in error message
2607
2608
2609
2610
2611
        let json = r#"{
            "messages": [{"role": "user", "content": "Hello"}],
            "model": "test-model",
            "add_special_tokens": true,
            "documents": ["doc1"],
2612
            "chat_template": "custom"
2613
2614
2615
2616
2617
2618
2619
2620
2621
2622
2623
2624
2625
2626
2627
2628
2629
2630
2631
2632
2633
2634
2635
2636
2637
        }"#;

        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"));
        }
    }
2638
2639
2640
2641
2642
2643
2644
2645
2646
2647
2648
2649
2650
2651
2652
2653
2654
2655
2656
2657
2658
2659
2660
2661
2662
2663
2664
2665
2666
2667
2668
2669

    #[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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    #[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()]),
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            error: None,
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        };

        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()]),
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            error: None,
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        };

        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,
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            error: None,
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        };

        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()]),
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            error: None,
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        };

        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");
        }
    }
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    #[test]
    fn test_classify_error_for_metrics_validation() {
        // 400 with "Validation:" prefix to validation
        let error_type =
            classify_error_for_metrics(StatusCode::BAD_REQUEST, "Validation: Invalid parameter");
        assert_eq!(error_type, ErrorType::Validation);

        // 400 WITHOUT "Validation:" to internal (fallback)
        let error_type = classify_error_for_metrics(StatusCode::BAD_REQUEST, "Some other error");
        assert_eq!(error_type, ErrorType::Internal);
    }

    #[test]
    fn test_classify_error_for_metrics_status_codes() {
        assert_eq!(
            classify_error_for_metrics(StatusCode::NOT_FOUND, "Model not found"),
            ErrorType::NotFound
        );
        assert_eq!(
            classify_error_for_metrics(StatusCode::NOT_IMPLEMENTED, "Feature not supported"),
            ErrorType::NotImplemented
        );
        assert_eq!(
            classify_error_for_metrics(StatusCode::TOO_MANY_REQUESTS, "Rate limit exceeded"),
            ErrorType::Overload
        );
        assert_eq!(
            classify_error_for_metrics(StatusCode::SERVICE_UNAVAILABLE, "Overloaded"),
            ErrorType::Overload
        );
        assert_eq!(
            classify_error_for_metrics(StatusCode::INTERNAL_SERVER_ERROR, "Panic"),
            ErrorType::Internal
        );
    }

    #[test]
    fn test_classify_error_for_metrics_client_errors() {
        // Other 4xx errors should be classified as validation
        assert_eq!(
            classify_error_for_metrics(StatusCode::UNAUTHORIZED, "Unauthorized"),
            ErrorType::Validation
        );
        assert_eq!(
            classify_error_for_metrics(StatusCode::FORBIDDEN, "Forbidden"),
            ErrorType::Validation
        );
    }

    #[test]
    fn test_extract_error_type_from_response_validation() {
        let response = ErrorMessage::from_http_error(HttpError {
            code: 400,
            message: "Validation: bad input".to_string(),
        });
        assert_eq!(
            extract_error_type_from_response(&response),
            ErrorType::Validation
        );
    }

    #[test]
    fn test_extract_error_type_from_response_not_found() {
        let response = ErrorMessage::model_not_found();
        assert_eq!(
            extract_error_type_from_response(&response),
            ErrorType::NotFound
        );
    }

    #[test]
    fn test_extract_error_type_from_response_internal() {
        let response = ErrorMessage::internal_server_error("Something went wrong");
        assert_eq!(
            extract_error_type_from_response(&response),
            ErrorType::Internal
        );
    }

    #[test]
    fn test_extract_error_type_from_response_not_implemented() {
        let response = ErrorMessage::not_implemented_error("Feature not available");
        assert_eq!(
            extract_error_type_from_response(&response),
            ErrorType::NotImplemented
        );
    }
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}