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Mistral Large 2407 vs Muse Spark 1.3

Mistral Large 2407

Mistral AI

66#190
vs
Signal-by-Signal Comparison
SignalMistral Large 2407DeltaMuse Spark 1.3
Capabilities
50
-50
100
Benchmarks
55
+55
0
Pricing
94
-2
96
Context window size
81
-14
96
Recency
10
-90
100
Output Capacity
80
-15
96
Overall Result
1 wins
of 6
5 wins
Muse Spark 1.3 wins 5 of 6 signals

Score History

Score History (32 data points)
Mistral Large 2407Muse Spark 1.3
Mistral Large 2407

65.9

current score

Leader

Muse Spark 1.3

right now

Muse Spark 1.3

80.9

current score

LMMarketCap.com
Interactive Price Comparison
100Kcalls/month
1,000tokens (~1,333 chars)
500tokens (~667 chars)

Mistral Large 2407

Mistral AI

Per request$0.005000
Daily$16.67
Monthly$500.00
Annual$6000.00

Muse Spark 1.3

meta

Best Value
Per request$0.003375
Daily$11.25
Monthly$337.50
Annual$4050.00

Muse Spark 1.3 saves you $162.50/month

That's $1950.00/year compared to Mistral Large 2407 at your current usage level of 100K calls/month.

32% cheaper
Choose Muse Spark 1.3 for cost optimization

Mistral Large 2407 pricing:
Input:$2.00/M tokens
Output:$6.00/M tokens
Muse Spark 1.3 pricing:
Input:$1.25/M tokens
Output:$4.25/M tokens
Mistral Large 2407

Mistral AI

66

Composite Score

Winner
Muse Spark 1.3

meta

81

Composite Score

Signal-by-Signal Comparison
MetricMistral Large 2407Muse Spark 1.3Winner
Overall Score
66
81
Muse Spark 1.3
Rank#190#83
Muse Spark 1.3
Quality Rank#190#83
Muse Spark 1.3
Adoption Rank#190#83
Muse Spark 1.3
Parameters------
Context Window131K1049K
Muse Spark 1.3
Pricing$2.00/$6.00/M$1.25/$4.25/M--
Signal Scores
Capabilities
50
100
Muse Spark 1.3
Benchmarks
55
--
Mistral Large 2407
Pricing
94
96
Muse Spark 1.3
Context window size
81
96
Muse Spark 1.3
Recency
10
100
Muse Spark 1.3
Output Capacity
80
96
Muse Spark 1.3
Benchmark Head-to-Head(1 benchmarks)
Mistral Large: 0Muse Spark: 0
Mistral Large
Muse Spark
Normalized 0-100%
Arena Elo
1314-
Benchmark Interpretation

Our score (0-100) is driven by benchmark performance (90%) from Arena Elo ratings, MMLU, GPQA, HumanEval, SWE-bench, and 15+ standardized evaluations. Capabilities and context window serve as tiebreakers (10%). Learn more about our methodology.

Mistral Large 2407Competitive

Scores 66/100 (rank #190), placing it in the top 35% of all 290 models tracked.

Raw Quality0/100
Cost Efficiency0/100
Speed0/100
Muse Spark 1.3Strong Performer

Scores 81/100 (rank #83), placing it in the top 72% of all 290 models tracked.

Raw Quality0/100
Cost Efficiency0/100
Speed0/100

Muse Spark 1.3 has a 15-point advantage, which typically translates to noticeably better performance on complex reasoning, code generation, and multi-step tasks.

When to Use Each Model

Choose Mistral Large 2407 when you need:

  • Budget-friendly applications with moderate quality requirements

Choose Muse Spark 1.3 when you need:

  • Processing long documents or large codebases (1049K token context)
  • Multimodal workflows that require image understanding
  • Step-by-step reasoning and chain-of-thought problem solving
Cost-Performance Analysis
Mistral Large 2407
Input cost$2.00/M tokens
Output cost$6.00/M tokens
Cost per quality point$0.121
Est. monthly (1M tokens/day)$120.00
Muse Spark 1.3Best Value
Input cost$1.25/M tokens
Output cost$4.25/M tokens
Cost per quality point$0.068
Est. monthly (1M tokens/day)$82.50

Muse Spark 1.3 offers 31% better value per quality point. At 1M tokens/day, you'd spend $82.50/month with Muse Spark 1.3 vs $120.00/month with Mistral Large 2407 - a $37.50 monthly difference.

Latency & Speed
Mistral Large 2407Faster
Speed score0/100
Muse Spark 1.3
Speed score0/100

Both models have comparable response speeds. For most applications, the latency difference is negligible.

When latency matters most: Interactive chatbots, IDE code completion, real-time translation, and user-facing applications where response time directly impacts experience. For batch processing, background summarization, or offline analysis, latency is less critical.

Example Use Cases

Code generation & review

Based on overall model capabilities and architecture for coding tasks like generating functions, debugging, and refactoring

Mistral Large 2407

Customer support chatbot

Suitable for user-facing chat with competitive response times. Muse Spark 1.3 also offers lower per-token costs for high-volume support

Mistral Large 2407

Long document analysis

Larger context window (1049K tokens) can process longer documents, contracts, and research papers in a single pass

Muse Spark 1.3

Batch data extraction

Lower output pricing ($4.25/M) reduces costs when processing thousands of records daily

Muse Spark 1.3

Creative writing & content

Higher overall composite score (81/100) correlates with better nuance, coherence, and style in long-form content

Muse Spark 1.3

Image understanding & OCR

Supports vision input - can analyze screenshots, diagrams, photos, and scanned documents directly

Muse Spark 1.3
Which Should You Choose?
Our recommendation:
Muse Spark 1.3

Muse Spark 1.3 clearly outperforms Mistral Large 2407 with a significant 15-point lead. For most general use cases, Muse Spark 1.3 is the stronger choice. However, Mistral Large 2407 may still excel in niche scenarios.

by Mistral AI

  • Choose for Quality - Marginally better benchmark scores; both are excellent
  • Choose for Reliability - Higher uptime and faster response speeds
  • Choose for Prototyping - Stronger community support and better developer experience
  • Choose for Production - Wider enterprise adoption and proven at scale
Muse Spark 1.3
Recommended

by meta

  • Choose for Cost - 31% lower pricing; better value at scale
Capability Comparison
CapabilityMistral Large 2407Muse Spark 1.3
Vision (Image Input)differs
Function Calling
Streaming
JSON Mode
Reasoningdiffers
Web Searchdiffers
Image Output
Monthly Cost Calculator
1,000tokens (600 in / 400 out)
100requests/day (3,000/month)

Mistral Large 2407

Mistral AI

$10.80
estimated monthly cost

Muse Spark 1.3

meta

Best Value
$7.35
estimated monthly cost

Muse Spark 1.3 saves you $3.45/month

That's 32% cheaper than Mistral Large 2407 at 1,000 tokens/request and 100 requests/day.

Assumes 60% input / 40% output token ratio per request. Actual costs may vary based on your usage pattern.

Parameters & Context
ParameterMistral Large 2407Muse Spark 1.3
Context Window131K1.0M
Max Output Tokens104,857943,718
Open SourceNoNo
CreatedNov 19, 2024Sep 2, 2026
Last updated: 53m ago

相关对比

Mistral Large 2407 vs Muse Spark 1.3 (2026) | LM Market Cap