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DeepSeek: DeepSeek V3.2 Exp

DeepSeek
Text
Paid

DeepSeek-V3.2-Exp is an experimental large language model released by DeepSeek as an intermediate step between V3.1 and future architectures. It introduces DeepSeek Sparse Attention (DSA), a fine-grained sparse attention mechanism designed to improve training and inference efficiency in long-context scenarios while maintaining output quality. Users can control the reasoning behaviour with the `reasoning` `enabled` boolean. [Learn more in our docs](https://openrouter.ai/docs/use-cases/reasoning-tokens#enable-reasoning-with-default-config) The model was trained under conditions aligned with V3.1-Terminus to enable direct comparison. Benchmarking shows performance roughly on par with V3.1 across reasoning, coding, and agentic tool-use tasks, with minor tradeoffs and gains depending on the domain. This release focuses on validating architectural optimizations for extended context lengths rather than advancing raw task accuracy, making it primarily a research-oriented model for exploring efficient transformer designs.

Parameters

-

Context Window

163,840

tokens

Input Price

$0.27

per 1M tokens

Output Price

$0.4

per 1M tokens

Capabilities

Model capabilities and supported modalities

Performance

Reasoning

Excellent reasoning capabilities with strong logical analysis

Math

-

Coding

-

Knowledge

-

Modalities

Input Modalities

text

Output Modalities

text

LLM Price Calculator

Calculate the cost of using this model

$0.000405
$0.001200
Input Cost:$0.000405
Output Cost:$0.001200
Total Cost:$0.001605
Estimated usage: 4,500 tokens

Monthly Cost Estimator

Based on different usage levels

Light Usage
$0.0067
~10 requests
Moderate Usage
$0.0670
~100 requests
Heavy Usage
$0.6700
~1000 requests
Enterprise
$6.7000
~10,000 requests
Note: Estimates based on current token count settings per request.
Last Updated: 1970/01/21