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Model details

GLM 5.3

GLM 5.3 is a frontier coding-focused model from Z.ai that shares its base architecture with the previous GLM 5.2 release and draws every reported improvement from scaled post-training rather than from a new pretraining run. The post-training stack rests on three research pillars developed for the prior version: IndexShare for efficient long-context processing, SAO for reinforcement learning on long-horizon tasks, and the slime framework for large-scale asynchronous training, all exercised over an expanding library of task environments and compute. Rather than rebuilding the foundation, the team concentrated on longer and more diverse agentic environments to push the same base toward harder software and security work.

The result is a model positioned for complex software engineering and emerging cybersecurity use cases. On the Z.ai in-house Code Bench, GLM 5.3 posts a roughly fifty percent lift over GLM 5.2, and it reaches open-source state-of-the-art results on public benchmarks such as Terminal Bench 3.0 and Agents' Last Exam, with additional strong showings on DeepSWE v1.1, NL2Repo, ProgramBench, FrontierSWE, SWE-Marathon, and PostTrainBench. Cyber capability scaled faster than expected during post-training, putting GLM 5.3 at the top of CyberGym for vulnerability discovery and more than doubling GLM 5.2 on exploitation benchmarks, which makes it a practical fit for teams that want a single open-weights model for long-horizon coding agents, code review, and security-oriented research workflows.

ZenMuxz-ai/glm-5.3glm

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Provider
ZenMux
Model key
z-ai/glm-5.3
Release date
Aug 14, 2026
Last updated
Aug 14, 2026
Input modalities
Output modalities
Capabilities

Cost

Input token cost
$1.40
Output token cost
$4.40

Limits

Output tokens
128,000 tokens
Context window
1,000,000 tokens

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Rates are shown per one million tokens. Combined means one million input plus one million output tokens.

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Latest news about GLM 5.3

ZenMux

Official sourceAnnouncement

Z.ai announced GLM-5.3 on August 14, 2026 as a post-training-only release built on the same base model as GLM-5.2, with all gains coming from scaling post-training on long-horizon task environments using the IndexShare, SAO, and slime stack. The model shows a 50% improvement over GLM-5.2 on Z.ai's in-house Code Bench a Z.ai reports that as post-training scaled, cyber capability emerged faster than expected, with GLM-5.3 reaching state-of-the-art on CyberGym for vulnerability discovery and more than doubling GLM-5.2 on exploitation benchmarks (ExploitGym 2h/6h: 105/130 vs 29/39). The company stated open weights would be released two w

ZenMux

Coverage

NIST's CAISI published an independent assessment of GLM-5.3's cyber capabilities on September 17, 2026, finding it to be "the most cyber-capable open-weight model released to date." The assessment evaluated the model on four benchmarks covering vulnerability discovery and exploit development, comparing results against CAISI's key finding is that while GLM-5.3 leads among open-weight models, its cyber capabilities lag current U.S. frontier models by approximately four months on an aggregate measure of performance across CAISI cyber benchmarks. The assessment confirms Z.ai publicly released GLM-5.3's weights two weeks after the August

ZenMux

Coverage

Interconnects' Nathan Lambert analyzes GLM-5.3's release on August 14, 2026, noting it was initially available only in Z.ai's coding plan with API and open-weight releases (via Hugging Face, two weeks post-launch) to follow. The piece emphasizes Z.ai's post-training strength, describing GLM-5.3 as reaching the frontier The analysis situates GLM-5.3 within the broader competitive landscape, noting it surpasses Moonshot AI's Kimi K3 on many benchmarks and matches or exceeds Claude Fable 5 and GPT-5.6-Sol on some. Lambert frames Z.ai's approach as a post-training mastery in contrast to Kimi's pretraining-focused strategy, suggesting Chi

ZenMux

CoverageBenchmark

InferenceX provides a detailed technical profile distinguishing GLM-5.3 from its predecessor GLM-5.2 (released June 16, 2026 as MIT-licensed open weights with 1M-token context). GLM-5.3, announced August 14, 2026, is documented as text-only, always-reasoning, with a 1M-token context, 128K max output, and three effort l The analysis highlights Z.ai's real-world security findings: working with security teams in China, GLM-5.3 surfaced 2,436 vulnerabilities across 269 projects, including 1,097 medium-to-high severity issues, with an average latent lifetime of 26.6 years and the oldest flaw introduced in 1981. Licensing and availability

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