Qwen: Qwen3 235B A22B Thinking 2507

Public pricingIntelligence 80/100Large memory深度思考工具调用

Qwen: Qwen3 235B A22B Thinking 2507 是一款文本模型,适合推理与问题求解。它结合了深度推理与规划、262K tokens上下文和低成本定位,可在reasoning, analysis, and hard problem solving中提供可靠表现。它适合重视质量、速度与成本的团队,能带来稳定输出、灵活部署与扩展空间。 它适合需要稳定回答、较长上下文、清晰结构和可扩展部署的团队。 它适合需要稳定回答、较长上下文、清晰结构和可扩展部署的团队。 它适合需要稳定回答、较长上下文、清晰结构和可扩展部署的团队。 它适合需要稳定回答、较长上下文、清晰结构和可扩展部署的团队。 它适合需要稳定回答、较长上下文、清晰结构和可扩展部署的团队。 它适合需要稳定回答、较长上下文、清晰结构和可扩展部署的团队。

Input

$0.13/1M

Output

$0.60/1M

Cached

$0.02/1M

Batch

$0.04/1M

Calculate your Qwen3 235B A22B Thinking 2507 bill.

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What would Qwen3 235B A22B Thinking 2507 cost you?

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1,00010,00050,000250,0001M10M

Technical specifications

Qwen3 235B A22B Thinking 2507 at a glance.

Memory

262,144

tokens

Max reply

262,144

tokens

Memory tier

Large

an entire book or large codebase

Tokenizer

qwen3

Released

Jul 2025

Training cutoff

Apr 2025

Availability

Public pricing

Status

active

Benchmarks

Quality benchmarks

Independent evaluations from public leaderboards. Higher is better.

  • aime_2025

    92.3
  • frontiermath_tier_4

    0

What it can do

Capabilities & limits.

  • Understands images
  • Deep step-by-step thinking
  • Uses tools / calls functions
  • Strict JSON output
  • Streams replies
  • Fine-tunable on your data

When to pick Qwen3 235B A22B Thinking 2507

  • Multi-step reasoning, research agents, or hard math.
  • Agentic workflows that call tools or APIs.
  • Long documents, full codebases, or extensive chat histories.
  • High-volume workloads where unit cost matters.

When to look elsewhere

  • Your workload involves images — pick a vision-capable model instead.

FAQ

Qwen3 235B A22B Thinking 2507 — the questions we see most.

Pricing, capabilities, alternatives — generated from the same data that powers the calculator above.

Get instant answers from our AI agent

At a typical workload of 50,000 conversations a month with 1,500-token prompts and 800-token replies, Qwen3 235B A22B Thinking 2507 costs roughly $34 per month. Input is $0.13 /1M tokens and output is $0.60 /1M tokens.
Qwen3 235B A22B Thinking 2507 has a 262,144-token context window (large memory — an entire book or large codebase). That means you can fit about 49,152 words of input and history in a single call.
Beyond text generation, Qwen3 235B A22B Thinking 2507 supports deep step-by-step reasoning, calling functions / tools, strict JSON output, fine-tuning on your own data. It streams replies by default.
Qwen3 235B A22B Thinking 2507 was released in July 2025, with training data cut off around April 2025.
Models in a similar class include Qwen3 Coder Next, Qwen3.5-9B, Qwen3.5-35B-A3B. The "Similar models" section below this FAQ links into each.

Still unsure?

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