JT-35B-Flash Intelligence, Performance & Price Analysis
Model summary
Intelligence
Speed
Input Price
USD per 1M tokens
Output Price
Verbosity
JT-35B-Flash is amongst the leading models in intelligence and well priced when comparing to other non-reasoning models of similar price. The model supports text input, outputs text, and has a 256k tokens context window.
JT-35B-Flash scores 36 on the Artificial Analysis Intelligence Index, placing it well above average among comparable models (averaging 11). When evaluating the Intelligence Index, it generated 17M tokens, which is very verbose in comparison to the average of 7.5M.
Pricing for JT-35B-Flash is $0.00 per 1M input tokens (competitively priced, average: $0.00) and $0.00 per 1M output tokens (competitively priced, average: $0.00). In total, it cost $0.00 to evaluate JT-35B-Flash on the Intelligence Index.
| Reasoning | No This page shows the non-reasoning version of this model. A reasoning variant may also exist. |
|---|---|
| Input modality | Supports: text |
| Output modality | Supports: text |
| Context window | 256k ~384 A4 pages of size 12 Arial font |
Metrics are compared against models of the same class:
- Non-reasoning models → compared only with other non-reasoning models
- Reasoning models → compared across both reasoning and non-reasoning
- Open weights models → compared only with other open weights models of the same size class:
- Tiny: ≤4B parameters
- Small: 4B–40B parameters
- Medium: 40B–150B parameters
- Large: >150B parameters
- Proprietary models → compared across proprietary and open weights models of the same price range, using a blended 3:1 input/output price ratio:
- <$0.15 per 1M tokens
- $0.15–$1 per 1M tokens
- >$1 per 1M tokens
Highlights
Intelligence
Artificial Analysis Intelligence Index
Artificial Analysis Intelligence Index by Open Weights / Proprietary
Intelligence Evaluations
Agentic real-world work tasks, (ELO-500)/2000
Agentic coding & terminal use
Agentic tool use
Long context reasoning
Knowledge
1 - hallucination rate
Reasoning & knowledge
Scientific reasoning
Coding
Instruction following
Physics reasoning
Long-horizon agentic tasks
Visual reasoning
Openness
Artificial Analysis Openness Index: Results
Intelligence Index Comparisons
Intelligence vs. Price
Intelligence Index Token Use & Cost
Output Tokens Used to Run Artificial Analysis Intelligence Index
Cost to Run Artificial Analysis Intelligence Index
Context Window
Context Window
Pricing
Pricing now includes a “Cache Hit Price” alongside Input and Output pricing, with new blend ratios.
Pricing: Cache Hit, Input, and Output
Speed
Measured by Output Speed (tokens per second)
Output Speed
Output Speed vs. Price
Latency
Measured by Time (seconds) to First Token
Latency: Time To First Answer Token
End-to-End Response Time
Seconds to output 500 tokens, calculated based on time to first token, 'thinking' time for reasoning models, and output speed
End-to-End Response Time
Model Size (Open Weights Models Only)
Model Size: Total and Active Parameters
Frequently Asked Questions
Common questions about JT-35B-Flash
JT-35B-Flash was created by China Mobile.
JT-35B-Flash scores 36 on the Artificial Analysis Intelligence Index, placing it well above average among other non-reasoning models in a similar price tier (median: 11).
When evaluated on the Intelligence Index, JT-35B-Flash generated 17M output tokens, which is at the higher end compared to other non-reasoning models in a similar price tier (median: 7.5M).
No, JT-35B-Flash is not a reasoning model. It provides direct responses without extended chain-of-thought reasoning.
JT-35B-Flash supports text input.
JT-35B-Flash supports text output.
No, JT-35B-Flash does not support image input. It can only process text.
No, JT-35B-Flash is not multimodal. It only supports text input.
JT-35B-Flash has a context window of 260k tokens. This determines how much text and conversation history the model can process in a single request.
No, JT-35B-Flash is proprietary. The model weights are not publicly available.
JT-35B-Flash has 35 billion parameters.
JT-35B-Flash achieves a score of 36 on the Artificial Analysis Intelligence Index. This composite benchmark evaluates models across reasoning, knowledge, mathematics, and coding.
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