AI model comparison

Qwen3.8 Max Preview vs Muse Spark 1.1

Compare recorded price, context, output limits, speed, latency, capabilities, and input/output support. Every missing value stays visible, and unsourced benchmarks are excluded.

Qwen3.8 Max Preview and Muse Spark 1.1 both come up when teams are choosing a model for production work, and the honest answer usually depends on your workload rather than a leaderboard. This page puts their published specifications side by side — context window, token pricing, supported inputs and outputs — so you can see where they actually differ.

Side-by-sideReviewed by our team

Alibaba

Qwen3.8 Max Preview

Preview Qwen flagship for million-token multimodal reasoning and long-horizon agentic workflows

Context
1M
Max output
131.1K
Input / 1M
$1.50
Output / 1M
$5.00
Output speed

Accepts

  • Text input
  • Image input
  • Video input

Produces

  • Text output
VS

Meta

Muse Spark 1.1

Muse Spark is a natively multimodal reasoning model with support for tool-use, visual chain of thought, and multi-agent orchestration.

Context
1M
Max output
32K
Input / 1M
$1.25
Output / 1M
$4.25
Output speed

Accepts

  • Text input
  • Image input
  • PDF input
  • Video input

Produces

  • Text output

At a glance

Decision snapshot

This is a directional summary of the values recorded in this directory—not a universal quality verdict. Test the finalists on your own prompts before committing.

Where Qwen3.8 Max Preview leads in recorded data

  • Maximum output: 131.1K

Where Muse Spark 1.1 leads in recorded data

  • Input price: $1.25
  • Output price: $4.25

Context capacity

Higher listed limit

Qwen3.8 Max Preview:1M

Muse Spark 1.1:1M

Same recorded value

Maximum output

Higher listed limit

Qwen3.8 Max Preview:131.1K

Muse Spark 1.1:32K

Qwen3.8 Max Preview

Input price

Lower recorded price

Qwen3.8 Max Preview:$1.50

Muse Spark 1.1:$1.25

Muse Spark 1.1

Output price

Lower recorded price

Qwen3.8 Max Preview:$5.00

Muse Spark 1.1:$4.25

Muse Spark 1.1

Output speed

Higher recorded throughput

Qwen3.8 Max Preview:

Muse Spark 1.1:

No complete comparison

Time to first token

Lower recorded latency

Qwen3.8 Max Preview:

Muse Spark 1.1:

No complete comparison

Intelligence Index

Higher directory index

Qwen3.8 Max Preview:

Muse Spark 1.1:

No complete comparison

Evidence

Verified shared benchmarks

A score appears only when both records include a verified source. It is not treated as a universal ranking.

These two models haven't been measured on the same benchmark yet, so there's nothing meaningful to chart. Comparing scores from different tests would tell you more about the tests than the models — the specs and pricing above are the better guide here.

Specifications

Pricing, limits and capabilities

SpecificationQwen3.8 Max PreviewMuse Spark 1.1
ProviderAlibabaMeta
Model familyqwenmuse
Accepted inputstext, image, videotext, image, pdf, video
Produced outputstexttext
Context window1M1M
Max output131.1KRecorded lead32K
Intelligence Index
Input price / 1M$1.50$1.25Recorded lead
Output price / 1M$5.00$4.25Recorded lead
Output speed
Time to first token
Reasoning modeDocumentedDocumented
Tool callingDocumentedDocumented
Image inputDocumentedDocumented
Audio inputNot documentedNot documented
Structured outputNot documentedDocumented
LicenseProprietaryProprietary
ReleasedJul 19, 2026Apr 8, 2026

Workload guidance

Which model should you choose?

On the published numbers, Muse Spark 1.1 accepts the larger context window and Muse Spark 1.1 is cheaper per input token. Which matters more depends on whether your bottleneck is document size or spend — the table above has the exact figures.

Provenance

Sources and data limits

Prices and hosted performance can change. SyncDev records source references and clearly separates documented specifications from measured values; confirm commercial terms with the provider before deployment.

Questions people ask

It compares recorded context and output limits, token prices, output speed, time to first token, Intelligence Index, modality support, tool and structured-output capabilities, release information, and only source-linked benchmarks verified on both records. Missing information is labeled rather than inferred.

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Choose any two approved model records and review them with the same evidence rules.

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