| Signal | DeepSeek V3.1 | Delta | Codestral 2508 |
|---|---|---|---|
Capabilities | 67 | +17 | |
Pricing | 1 | 0 | |
Context window size | 72 | -14 | |
Recency | 95 | +4 | |
Output Capacity | 64 | +44 | |
| Overall Result | 3 wins | of 5 | 2 wins |
30
days ranked higher
0
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DeepSeek
Mistral AI
DeepSeek V3.1 saves you $22.50/month
That's $270.00/year compared to Codestral 2508 at your current usage level of 100K calls/month.
| Metric | DeepSeek V3.1 | Codestral 2508 | Winner |
|---|---|---|---|
| Overall Score | 73 | 61 | DeepSeek V3.1 |
| Rank | #100 | #193 | DeepSeek V3.1 |
| Quality Rank | #100 | #193 | DeepSeek V3.1 |
| Adoption Rank | #100 | #193 | DeepSeek V3.1 |
| Parameters | -- | -- | -- |
| Context Window | 33K | 256K | Codestral 2508 |
| Pricing | $0.15/$0.75/M | $0.30/$0.90/M | -- |
| Signal Scores | |||
| Capabilities | 67 | 50 | DeepSeek V3.1 |
| Pricing | 1 | 1 | Codestral 2508 |
| Context window size | 72 | 86 | Codestral 2508 |
| Recency | 95 | 92 | DeepSeek V3.1 |
| Output Capacity | 64 | 20 | DeepSeek V3.1 |
Our composite score (0–100) combines six weighted signals: benchmark performance (25%), pricing efficiency (25%), context window size (15%), model recency (15%), output capacity (10%), and capability versatility (10%). Here's what the scores mean for these two models:
Scores 73/100 (rank #100), placing it in the top 66% of all 290 models tracked.
Scores 61/100 (rank #193), placing it in the top 34% of all 290 models tracked.
DeepSeek V3.1 has a 12-point advantage, which typically translates to noticeably better performance on complex reasoning, code generation, and multi-step tasks.
DeepSeek V3.1 offers 25% better value per quality point. At 1M tokens/day, you'd spend $13.50/month with DeepSeek V3.1 vs $18.00/month with Codestral 2508 — a $4.50 monthly difference.
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.
Code generation & review
Higher benchmark score (0/100) indicates stronger performance on coding tasks like generating functions, debugging, and refactoring
Customer support chatbot
Faster response time (speed score 0/100) is critical for user-facing chat. DeepSeek V3.1 also offers lower per-token costs for high-volume support
Long document analysis
Larger context window (256K tokens) can process longer documents, contracts, and research papers in a single pass
Batch data extraction
Lower output pricing ($0.75/M) reduces costs when processing thousands of records daily
Creative writing & content
Higher overall composite score (73/100) correlates with better nuance, coherence, and style in long-form content
DeepSeek V3.1 clearly outperforms Codestral 2508 with a significant 12-point lead. For most general use cases, DeepSeek V3.1 is the stronger choice. However, Codestral 2508 may still excel in niche scenarios.
Best for Quality
DeepSeek V3.1
Marginally better benchmark scores; both are excellent
Best for Cost
DeepSeek V3.1
25% lower pricing; better value at scale
Best for Reliability
DeepSeek V3.1
Higher uptime and faster response speeds
Best for Prototyping
DeepSeek V3.1
Stronger community support and better developer experience
Best for Production
DeepSeek V3.1
Wider enterprise adoption and proven at scale
by DeepSeek
| Capability | DeepSeek V3.1 | Codestral 2508 |
|---|---|---|
| Vision (Image Input) | ||
| Function Calling | ||
| Streaming | ||
| JSON Mode | ||
| Reasoningdiffers | ||
| Web Search | ||
| Image Output |
DeepSeek
Mistral AI
DeepSeek V3.1 saves you $0.4500/month
That's 28% cheaper than Codestral 2508 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.
| Parameter | DeepSeek V3.1 | Codestral 2508 |
|---|---|---|
| Context Window | 33K | 256K |
| Max Output Tokens | 7,168 | -- |
| Open Source | Yes | No |
| Created | Aug 21, 2025 | Aug 1, 2025 |
DeepSeek V3.1 scores 73/100 (rank #100) compared to Codestral 2508's 61/100 (rank #193), giving it a 12-point advantage. DeepSeek V3.1 is the stronger overall choice, though Codestral 2508 may excel in specific areas like certain benchmarks.
DeepSeek V3.1 is ranked #100 and Codestral 2508 is ranked #193 out of 290+ AI models. Rankings use a composite score combining benchmark performance (25%), pricing (25%), context window (15%), recency (15%), output capacity (10%), and versatility (10%). Scores update hourly.
DeepSeek V3.1 is cheaper at $0.75/M output tokens vs Codestral 2508's $0.90/M output tokens — 1.2x more expensive. Input token pricing: DeepSeek V3.1 at $0.15/M vs Codestral 2508 at $0.30/M.
Codestral 2508 has a larger context window of 256,000 tokens compared to DeepSeek V3.1's 32,768 tokens. A larger context window means the model can process longer documents and conversations.