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qwen/qwen3-next-80b-a3b-instruct

qwen/qwen3-next-80b-a3b-instruct

262,144 context · $0.15/M input tokens · $1.50/M output tokens

Qwen3-Next-80B-A3B-Instruct is an instruction-tuned chat model in the Qwen3-Next series optimized for fast, stable responses without “thinking” traces. It targets complex tasks across reasoning, code generation, knowledge QA, and multilingual...

Precios

Pago por uso

Sin costos iniciales, paga solo por lo que uses

Entrada$0.15 / M Tokens
Salida$1.50 / M Tokens

Probar el modelo

qwen/qwen3-next-80b-a3b-instruct
En línea
alibaba
¡Hola! Soy un asistente de IA útil. ¿En qué puedo ayudarte?

Uso de API

Usa los siguientes ejemplos de código para integrar con nuestra API:

from openai import OpenAI

client = OpenAI(
    api_key="YOUR_API_KEY",
    base_url="https://llm.wavespeed.ai/v1"
)

response = client.chat.completions.create(
    model="qwen/qwen3-next-80b-a3b-instruct",
    messages=[
        {"role": "user", "content": "Hello!"}
    ]
)

print(response.choices[0].message.content)

Introducción del modelo

Qwen qwen3-next-80b-a3b-instruct

Qwen3-Next-80B-A3B-Instruct is an instruction-tuned chat model in the Qwen3-Next series optimized for fast, stable responses without “thinking” traces

Qwen3-Next-80B-A3B-Instruct is an instruction-tuned chat model in the Qwen3-Next series optimized for fast, stable responses without “thinking” traces. It targets complex tasks across reasoning, code generation, knowledge QA, and multilingual use, while remaining robust on alignment and formatting. Compared with prior Qwen3 instruct variants, it focuses on higher throughput and stability on ultra-long inputs and multi-turn dialogues, making it well-suited for RAG, tool use, and agentic workflows that require consistent final answers rather than visible chain-of-thought.

The model employs scaling-efficient training and decoding to improve parameter efficiency and inference speed, and has been validated on a broad set of public benchmarks where it reaches or approaches larger Qwen3 systems in several categories while outperforming earlier mid-sized baselines. It is best used as a general assistant, code helper, and long-context task solver in production settings where deterministic, ins


Why It Looks Great

  • Large Language Model architecture for efficient processing
  • 262144 context window for long document handling
  • Competitive pricing at $0.1/$1.2 per million tokens

Key Features

  • Context Window: 262144 tokens
  • Max Output: N/A tokens
  • Vision: Supported
  • Function Calling: Supported

Specifications

SpecificationValue
ProviderQwen
Model TypeLarge Language Model (LLM)
ArchitectureN/A
Context Window262144 tokens
Max Outputtokens
InputText
OutputText
VisionSupported
Function CallingSupported

Pricing

Token TypeCost per Million Tokens
Input$0.1
Output$1.2

How to Use

  1. Write your prompt — describe the task, provide context, and specify desired output format.
  2. Submit — the model processes your request and returns the response.

API Integration

Base URL: https://llm.wavespeed.ai/v1 API Endpoint: chat/completions Model ID: qwen/qwen3-next-80b-a3b-instruct


API Usage

Python SDK

from openai import OpenAI

client = OpenAI(
    api_key="YOUR_API_KEY",
    base_url="https://llm.wavespeed.ai/v1"
)

response = client.chat.completions.create(
    model="qwen/qwen3-next-80b-a3b-instruct",
    messages=[
        {"role": "user", "content": "Hello!"}
    ]
)

print(response.choices[0].message.content)

cURL

curl https://llm.wavespeed.ai/v1/chat/completions \
  -H "Content-Type: application/json" \
  -H "Authorization: Bearer YOUR_API_KEY" \
  -d '{
    "model": "qwen/qwen3-next-80b-a3b-instruct",
    "messages": [{"role": "user", "content": "Hello!"}]
  }'

Notes

  • Model: qwen/qwen3-next-80b-a3b-instruct
  • Provider: Qwen

Información

Proveedoralibaba
Tipollm

Funcionalidades compatibles

Entrada
Texto
Salida
Texto
Contexto262,144
Salida máxima-
Visión-
Function Calling✓ Compatible

Guía de acceso a la API

Base URLhttps://llm.wavespeed.ai/v1
API Endpointchat/completions
ID del modeloqwen/qwen3-next-80b-a3b-instruct

Qwen3 Next 80b A3b Instruct API

qwen/qwen3-next-80b-a3b-instruct

Qwen3-Next-80B-A3B-Instruct is an instruction-tuned chat model in the Qwen3-Next series optimized for fast, stable responses without “thinking” traces. It targets complex tasks across reasoning, code generation, knowledge QA, and multilingual...

Entrada

$0.15 /M

Salida

$1.5 /M

Contexto

262K

Uso de herramientas

Compatible

Prueba Qwen3 Next 80b A3b Instruct en WaveSpeedAI

Accede a Qwen3 Next 80b A3b Instruct mediante nuestra API unificada — compatible con OpenAI, sin arranques en frío, precios transparentes.

Preguntas frecuentes sobre Qwen3 Next 80b A3b Instruct

¿Cuánto cuesta Qwen3 Next 80b A3b Instruct a través de la API?+

Precios en WaveSpeedAI: $0.15 por millón de tokens de entrada y $1.50 por millón de tokens de salida. El prompt caching y el procesamiento por lotes se facturan por separado y reducen el coste efectivo en cargas largas y repetitivas.

¿Cuál es la ventana de contexto de Qwen3 Next 80b A3b Instruct?+

Qwen3 Next 80b A3b Instruct admite hasta 262K tokens de contexto y hasta — tokens de salida por solicitud.

¿Es Qwen3 Next 80b A3b Instruct compatible con OpenAI?+

Sí. WaveSpeedAI expone Qwen3 Next 80b A3b Instruct a través de un endpoint compatible con OpenAI en https://llm.wavespeed.ai/v1. Apunta el SDK oficial de OpenAI a esta base URL con tu clave API de WaveSpeedAI — sin más cambios de código.

¿Cómo empiezo con Qwen3 Next 80b A3b Instruct?+

Inicia sesión en WaveSpeedAI, crea una clave API en Access Keys y envía una solicitud a https://llm.wavespeed.ai/v1/chat/completions con el id de modelo mostrado arriba. Las cuentas nuevas reciben créditos gratuitos para evaluar Qwen3 Next 80b A3b Instruct antes de pagar por token.

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