DeepSeek: deepseek-v3.2

deepseek-v3.2
128K context163.8K outToolsCacheStructuredPrefill
Released Dec 1, 2025Knowledge cutoff 2024Updated Dec 1, 2025

DeepSeek-V3.2 is a large language model designed to harmonize high computational efficiency with strong reasoning and agentic tool-use performance. It introduces DeepSeek Sparse Attention (DSA), a fine-grained sparse attention mechanism that reduces training and inference cost while preserving quality in long-context scenarios. A scalable reinforcement learning post-training framework further improves reasoning, with reported performance in the GPT-5 class, and the model has demonstrated gold-medal results on the 2025 IMO and IOI. V3.2 also uses a large-scale agentic task synthesis pipeline to better integrate reasoning into tool-use settings, boosting compliance and generalization in interactive environments. Users can control the reasoning behaviour with the reasoning enabled boolean. Learn more in our docs

Mode chatTokenizer DeepSeekQuantization fp8deepseek-ai/DeepSeek-V3.2

Pricing

Input price
$0.48/ 1M tokens$2.0076% off
Output price
$0.72/ 1M tokens$3.0076% off
Context window 128K tokensCompatible endpoints openaiVendor DeepSeek

Performance

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Usage & Ranking

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Supported parameters

All providers = every upstream serving this model supports it. Some providers = depends on which upstream handles the request. Default = the value sent when you leave the parameter unset.

ParameterProvidersDefault
frequency_penaltySome providersNot sent by default
include_reasoningAll providers-
logit_biasSome providers-
logprobsSome providers-
max_tokensAll providers-
min_pSome providers-
presence_penaltySome providersNot sent by default
reasoningAll providers-
repetition_penaltySome providersNot sent by default
response_formatSome providers-
seedSome providers-
stopSome providers-
structured_outputsSome providers-
temperatureAll providers1
tool_choiceSome providers-
toolsSome providers-
top_kSome providersNot sent by default
top_logprobsSome providers-
top_pAll providers0.95

Frequently asked questions

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