Ling-2.6-1T: A Trillion-Parameter Comprehensive Flagship Model for Complex Tasks
Today, we are thrilled to open-source
Lingâ2.6â1T
from the Ling family.
Tailored for realâworld, complex scenarios, this trillionâparameter model introduces targeted optimizations across inference efficiency, token overhead, and agentic capabilities, making it highly effective for
coding and daily workflows
.
Key upgrades in
Lingâ2.6â1T
include:
High Inference Efficiency:
By adopting a hybrid architecture combining
MLA and Linear Attention
, we dramatically reduce latency and VRAM footprint for long contexts. It delivers superior throughput and lower perâtoken computational costs without sacrificing expressivity, ensuring realâtime responsiveness for complex reasoning and tool calling.
Lower Token Overhead via "Fast Thinking":
We introduce a
Contextual Process Redundancy Suppression
reward strategy during postâtraining. This reduces reliance on verbose chainsâofâthought (CoT), utilizing a "fast thinking" mechanism to reach answers directly and compress output costs while maintaining topâtier intelligence.
Reliable MultiâStep Execution:
With enhanced reasoning, agentic coding, and instruction following, Lingâ2.6â1T achieves
openâsource SOTA
on executionâheavy benchmarks, including AIME26, SWEâbench Verified, BFCLâV4, TAU2âBench, and IFBench.
ProductionâReady for Agent Workflows:
Designed for endâtoâend engineeringâfrom code generation to bug fixingâLingâ2.6â1T integrates seamlessly with mainstream agent frameworks like
Claude Code, OpenClaw, OpenCode, and CodeBuddy
, effortlessly handling multiâtool, multiâstep constraints in enterprise environments.
Unlocking Robust Intelligence with Superior Efficiency
On
Artificial Analysis
,
Ling-2.6-1T
achieved an
Intelligence Index of 34
with approximately 16M output tokens, representing a significant generational leap over the previous Ling-1T. This positioning underscores its ability to deliver high-tier intelligence with optimized token consumption.
Enhancing Execution Stability for Complex Multi-Step Tasks
Ling-2.6-1T demonstrates balanced excellence across reasoning, coding, and tool-calling, achieving
open-source SOTA
status on multiple execution-heavy benchmarks:
Advanced Reasoning:
Significantly leads non-thinking models on
AIME26
, showcasing superior complex problem-solving capabilities.
First-Tier Agent Execution:
Ranks among the top models on
SWE-bench Verified, TAU2-Bench, Claw-Eval, BFCL-V4, and PinchBench
, proving high reliability in real-world workflows.
Context & Constraints:
Strong performance on
MRCR (16Kâ256K)
and
IFBench
ensures logical consistency and precision under complex instructions and long contexts.
Note: If you are interested in the previous version, please visit the past model collections on
Huggingface
or
ModelScope
.
2. Inference with MTP (Multi-Token Prediction)
The current official SGLang implementation of MTP contains a bug. For better inference performance, we recommend installing our patched version. Our fix is currently under review and is expected to be merged into the official SGLang library shortly.
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Ling-2.6-1T huggingface.co is an online trial and call api platform, which integrates Ling-2.6-1T's modeling effects, including api services, and provides a free online trial of Ling-2.6-1T, you can try Ling-2.6-1T online for free by clicking the link below.
inclusionAI Ling-2.6-1T online free url in huggingface.co:
Ling-2.6-1T is an open source model from GitHub that offers a free installation service, and any user can find Ling-2.6-1T on GitHub to install. At the same time, huggingface.co provides the effect of Ling-2.6-1T install, users can directly use Ling-2.6-1T installed effect in huggingface.co for debugging and trial. It also supports api for free installation.