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Description
GLM-5.3-Flash is a multimodal foundation model from Z.ai built for high-efficiency reasoning, coding, agents, and visual understanding. The model contains 320 billion parameters in total but activates only 18 billion parameters during inference, helping reduce compute requirements. Its architecture combines linear attention with sparse attention so it can efficiently handle both local dependencies and relevant information spread across very long contexts. Z.ai also introduced IndexPool to reduce the memory and latency overhead associated with long-context retrieval at context lengths reaching one million tokens. The model was pretrained on a 30-trillion-token multimodal dataset that incorporates both textual and visual information. GLM-5.3-Flash is designed for software engineering tasks, autonomous workflows, frontend development, computer use, document analysis, and other professional workloads that benefit from visual reasoning. Its visual coding capabilities allow it to inspect rendered interfaces, identify layout or interaction problems, and use those observations to revise its work. Benchmark results published by Z.ai show that it improves substantially over GLM-5.2 on multiple coding and agentic tests while remaining competitive with more expensive frontier models. GLM-5.3-Flash can be accessed through Z.ai services and is also available as downloadable model weights for deployment through supported open inference frameworks.
Description
Mistral Medium 3.1 represents a significant advancement in multimodal foundation models, launched in August 2025, and is engineered to provide superior reasoning, coding, and multimodal functionalities while significantly simplifying deployment processes and minimizing costs. This model is an evolution of the highly efficient Mistral Medium 3 architecture, which is celebrated for delivering top-tier performance at a fraction of the cost—up to eight times less than many leading large models—while also improving tone consistency, responsiveness, and precision across a variety of tasks and modalities. It is designed to operate effectively in hybrid environments, including on-premises and virtual private cloud systems, and competes strongly with high-end models like Claude Sonnet 3.7, Llama 4 Maverick, and Cohere Command A. Mistral Medium 3.1 is particularly well-suited for professional and enterprise applications, excelling in areas such as coding, STEM reasoning, and language comprehension across multiple formats. Furthermore, it ensures extensive compatibility with personalized workflows and existing infrastructure, making it a versatile choice for various organizational needs. As businesses seek to leverage AI in more complex scenarios, Mistral Medium 3.1 stands out as a robust solution to meet those challenges.
API Access
Has API
API Access
Has API
Integrations
Cheaper Inference
Claude Code
DeepSeek Harness
GLM Coding Plan
Hermes Agent
Mistral Medium 3
OpenClaw
OpenCode Go
OpenCode Zen
OpenRouter
Integrations
Cheaper Inference
Claude Code
DeepSeek Harness
GLM Coding Plan
Hermes Agent
Mistral Medium 3
OpenClaw
OpenCode Go
OpenCode Zen
OpenRouter
Pricing Details
$0.15 per 1M tokens (input)
Input: $0.15 per 1M tokens
Output: $0.50 per 1M tokens
Cached input: $0.03 per 1M tokens
Output: $0.50 per 1M tokens
Cached input: $0.03 per 1M tokens
Free Trial
Free Version
Pricing Details
No price information available.
Free Trial
Free Version
Deployment
Web-Based
On-Premises
iPhone App
iPad App
Android App
Windows
Mac
Linux
Chromebook
Deployment
Web-Based
On-Premises
iPhone App
iPad App
Android App
Windows
Mac
Linux
Chromebook
Customer Support
Business Hours
Live Rep (24/7)
Online Support
Customer Support
Business Hours
Live Rep (24/7)
Online Support
Types of Training
Training Docs
Webinars
Live Training (Online)
In Person
Types of Training
Training Docs
Webinars
Live Training (Online)
In Person
Vendor Details
Company Name
Z.ai
Founded
2019
Country
China
Website
z.ai
Vendor Details
Company Name
Mistral AI
Founded
2023
Country
France
Website
docs.mistral.ai/getting-started/models/models_overview/