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Z-AI
GLM 5.3 Flash
$ 
Access Z.ai’s first natively multimodal GLM-5 model through GPTProto. Send text, images, videos, or files, retain up to 1M tokens of context, and use one API key and shared balance across 200+ supported models.

模態

輸入: 文字輸入: 圖像輸入: 影片輸入: 文件
輸出: 文字

/

GLM 5.3 Flash pricing

Estimate a request with real work scenarios using current GPTProto rates.

Cost calculator

Multi-turn agent with cached context.
TokensRateCost
$0.15 / 1M$0.000225
$0.5 / 1M$0.0004
$0.03 / 1M$0.00075
Cost per request$0.001375

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GPTProto vs official pricing.
Requests
You pay$100
You receive$100.00
相關模型
所有模型
模型輸入 → 輸出
GLM 5.3 Flash目前
——$0.15 / $0.50 每 1M— / $0.03 每 1M
輸入: 文字輸入: 圖像輸入: 影片輸入: 文件
輸出: 文字
DeepSeek v4 Flash Vision Exp
——$0.44 / $1.32 每 1M— / $0.01 每 1M
輸入: 文字輸入: 圖像
輸出: 文字
GLM 5.3
1.05M$1.26 / $3.96 每 1M— / $0.23 每 1M
輸入: 文字輸入: 圖像輸入: 文件
輸出: 文字
Gemini 3.7 Flash
1.05M$0.45 / $2.25 每 1M— / $0.04 每 1M
輸入: 文字輸入: 圖像輸入: 文件
輸出: 文字
Grok 4.6
500K$1.20 / $3.60 每 1M— / $0.30 每 1M
輸入: 文字輸入: 圖像
輸出: 文字
Qwen3.8 Max
1M$1.80 / $5.40 每 1M$2.25 / $0.23 每 1M
輸入: 文字輸入: 圖像輸入: 影片輸入: 文件
輸出: 文字
Claude Opus 5
1M$4.50 / $22.50 每 1M$5.63 / $0.45 每 1M
輸入: 文字輸入: 圖像輸入: 文件
輸出: 文字
Gemini 3.6 Flash
1.05M$0.45 / $2.25 每 1M— / $0.04 每 1M
輸入: 文字輸入: 圖像輸入: 文件
輸出: 文字
Gemini 3.5 Flash Lite
1.05M$0.18 / $1.50 每 1M$0.02 / $0.02 每 1M
輸入: 文字輸入: 圖像輸入: 文件
輸出: 文字
Kimi K3
1.05M$2.70 / $13.50 每 1M$0.27 / $0.27 每 1M
輸入: 文字輸入: 圖像輸入: 文件
輸出: 文字
GPT 5.6 Luna
1.05M$0.16 / $0.96 每 1M$0.20 / $0.02 每 1M
輸入: 文字輸入: 圖像輸入: 文件
輸出: 文字
GPT 5.6 Terra
1.05M$1.60 / $9.60 每 1M$2.00 / $0.16 每 1M
輸入: 文字輸入: 圖像輸入: 文件
輸出: 文字
GPT 5.6 Sol
1.05M$4.00 / $24.00 每 1M$5.00 / $0.40 每 1M
輸入: 文字輸入: 圖像輸入: 文件
輸出: 文字
Grok 4.5
500K$1.20 / $3.60 每 1M$0.30 / $0.30 每 1M
輸入: 文字輸入: 圖像
輸出: 文字
Claude Sonnet 5
1M$1.80 / $9.00 每 1M$2.25 / $0.18 每 1M
輸入: 文字輸入: 文件
輸出: 文字
MiniMax M3
1.05M$0.48 / $0.96 每 1M$0.10 / $0.10 每 1M
輸入: 文字輸入: 圖像輸入: 文件
輸出: 文字
GLM 5.2
1.05M$1.26 / $3.96 每 1M$0.23 / $0.23 每 1M
輸入: 文字輸入: 圖像輸入: 文件
輸出: 文字
Claude Fable 5
1M$9.00 / $45.00 每 1M$11.25 / $0.90 每 1M
輸入: 文字輸入: 文件
輸出: 文字
Qwen3.7 Max
1M$0.36 / $1.44 每 1M$0.07 / $0.07 每 1M
輸入: 文字輸入: 文件
輸出: 文字
DeepSeek v4 Flash
—1.05M$0.44 / $1.32 每 1M— / $0.01 每 1M
輸入: 文字
輸出: 文字
DeepSeek v4 Pro
—1.05M$1.32 / $3.96 每 1M— / $0.04 每 1M
輸入: 文字
輸出: 文字
Grok 4.3
1M$0.75 / $1.50 每 1M$0.12 / $0.12 每 1M
輸入: 文字輸入: 圖像
輸出: 文字
Kimi K2.6
262K$0.85 / $3.60 每 1M$0.14 / $0.14 每 1M
輸入: 文字輸入: 文件
輸出: 文字
GLM 5.1
205K$1.26 / $3.96 每 1M$0.23 / $0.23 每 1M
輸入: 文字輸入: 文件
輸出: 文字
GLM 5 Turbo
203K$1.08 / $3.60 每 1M$0.22 / $0.22 每 1M
輸入: 文字輸入: 文件
輸出: 文字
MiniMax M2.5
205K$0.24 / $0.96 每 1M$0.30 / $0.02 每 1M
輸入: 文字輸入: 文件
輸出: 文字
Kimi K2.5
262K$0.54 / $2.70 每 1M$0.09 / $0.09 每 1M
輸入: 文字輸入: 文件
輸出: 文字
GLM 5
205K$0.90 / $2.88 每 1M$0.18 / $0.18 每 1M
輸入: 文字輸入: 文件
輸出: 文字
Qwen Turbo
—$0.04 / $0.18 每 1M$0.009 / $0.009 每 1M
輸入: 文字
輸出: 文字
Doubao Seed 1.6 Thinking (Build 250715)
262K$0.10 / $0.97 每 1M—
輸入: 文字輸入: 圖像
輸出: 文字
Doubao Seed 1.6 Thinking (Build 250615)
262K$0.10 / $0.97 每 1M—
輸入: 文字輸入: 圖像
輸出: 文字
Doubao Seed 1.6 Flash (Build 250615)
262K$0.02 / $0.18 每 1M—
輸入: 文字輸入: 圖像
輸出: 文字

GLM-5.3 Flash API for Multimodal Coding and Agent Workflows

Use the GLM-5.3 Flash API for visual coding, long-context analysis, document workflows, and tool-driven agents. GPTProto provides OpenAI-compatible access at 10% below standard list pricing, with a playground for testing prompts before integration.

Native Multimodal Input

Process text, screenshots, page designs, charts, videos, and files in the same request. Use visual context to inspect interfaces, understand documents, and verify rendered results.

1M-Token Context

Keep large repositories, long documents, conversation history, tool results, and visual references within a context window of up to one million tokens.

Lower Long-Context Compute

Hybrid sparse and linear attention reduces attention computation by 3.01× and KV-cache size by 4.44× compared with GLM-5.3, according to Z.ai.

Open Weights and Agent Features

Use MIT-licensed model weights or hosted API access. The model supports function calling, structured JSON output, context caching, response streaming, and streamed tool arguments.

What Is the GLM-5.3 Flash API?

The GLM-5.3 Flash API provides programmatic access to Z.ai’s first natively multimodal model in the GLM-5 family. Released on August 26, 2026, it was previously tested anonymously as ox-alpha before its model identity and open weights were announced.

Despite the similar name, GLM-5.3 Flash is not a compressed or lower-effort configuration of GLM-5.3. Standard GLM-5.3 extends the GLM-5.2 base model through additional post-training, while Flash begins from a newly trained multimodal base model. It uses 320 billion total parameters but activates approximately 18 billion parameters per token.

Its architecture combines sparse attention, linear attention, and Manifold-Constrained Hyper-Connections. This design reduces the compute and memory required for long-context inference while retaining a 1M-token window. The result is an affordable GLM-5.3 Flash API option for frequent coding, visual reasoning, document analysis, and agent calls.

Specification GLM-5.3 Flash
Provider Z.ai
Release date August 26, 2026
Official model code glm-5.3-flash
Architecture Mixture of Experts with hybrid sparse and linear attention
Parameters 320B total / 18B activated
Supported input Text, images, videos, and files
Output Text and tool calls
Context window Up to 1M tokens
Reasoning Always enabled
Recommended reasoning effort Max
API features Function calling, context caching, streaming, streamed tool arguments, structured output
Open-weight status Yes, MIT license
Local inference frameworks SGLang, vLLM, TokenSpeed, and KTransformers

GLM-5.3 Flash API Applications

Visual Coding and Frontend Reconstruction

Provide screenshots, page sequences, design references, or recordings of an interface. The model can identify shared components, navigation relationships, interaction states, responsive behavior, and visual inconsistencies before generating or revising the implementation.

For better results, connect the model to browser or computer-use tools so it can render the application, inspect the result, and correct differences instead of stopping after the first code output.

Repository-Scale Coding

Use the 1M-token context window to inspect source files, specifications, tests, configuration, issue history, and tool output in one agent session. This is useful when a coding task depends on relationships across multiple directories rather than a single isolated file.

Document and Office Workflows

The model can interpret text, tables, charts, screenshots, and document layouts together. In an agent environment, it can help organize reports, generate structured content, review spreadsheets, or inspect presentation layouts.

The API itself returns text and tool calls. Creating a PPTX, DOCX, XLSX, or PDF still requires an application or agent with the appropriate file-generation tools.

Video Understanding

GLM-5.3 Flash can inspect video input for scenes, visible text, speakers, events, and timeline relationships. Developers can use it to create shot lists, editing plans, subtitle workflows, or content summaries.

This is video understanding rather than direct video generation. A separate editing or generation tool is required to produce the final media file.

GUI and Computer-Use Agents

Native visual input allows an agent to observe software interfaces, decide where to click or type, inspect the result, and continue through a workflow. Use explicit permissions, action limits, timeouts, and confirmation steps around any real computer-use implementation.

Is GLM-5.3 Flash Open Source?

GLM-5.3 Flash is an open-weight model released under the MIT license. Its weights can be downloaded and deployed with supported inference frameworks, making it suitable for teams that require model-level control, private infrastructure, or custom serving configurations.

“Open weight” and “hosted API” describe two different access methods. Running the weights locally gives you infrastructure control but also makes your team responsible for deployment, capacity planning, monitoring, upgrades, and multimodal serving.

Using GPTProto removes that serving workload. Developers can access the model through a hosted endpoint, test it in the GLM-5.3 Flash API playground, and use the same key and balance for fallback or comparison models. This is usually the more practical route for evaluation, variable traffic, or applications that need several model providers.

GLM-5.3 Flash vs Other Coding and Agent Models

The closest alternative depends on whether your workload prioritizes multimodal input, API cost, maximum output, provider ecosystem, or local deployment. “Flash” should not automatically be interpreted as the lowest-latency option for every request.

Model Core difference Choose it when Important trade-off
GLM-5.3 Flash Native multimodal model with 1M context, 320B/18B MoE architecture, and MIT weights You need visual coding, document or video understanding, open weights, and low standard token rates Reasoning cannot be disabled; actual latency depends on prompt length and provider load
GLM-5.3 Text-only flagship derived from the GLM-5.2 base through expanded post-training You have already validated standard GLM-5.3 for difficult text-only coding, terminal, or cybersecurity workflows Higher standard token cost and no native visual input
DeepSeek V4 Flash Text-focused 1M-context model with switchable thinking and a larger published output ceiling You need low-cost text generation, FIM completion, Codex-style workflows, or optional non-thinking mode Native vision requires the separate experimental Vision model
GPT-5.6 Closed model family with Luna, Terra, and Sol tiers You rely on the OpenAI ecosystem or need a higher-capability tier for demanding coding and knowledge work Closed weights and generally higher token pricing
Gemini 3.7 Flash Closed multimodal 1M-context model with Google tools and adjustable thinking You build around Google AI Studio, Google Cloud, or Gemini’s built-in tool ecosystem Closed weights; introductory pricing changes after its promotional period
Kimi K3 Native multimodal, open-weight 2.8T/104B model with 1M context You need Kimi-specific agent behavior, its model license, or have infrastructure for a substantially larger checkpoint Heavier local deployment and higher hosted API cost in many routes

For frequent multimodal calls, visual coding, and cost-sensitive agent workloads, GLM-5.3 Flash is the strongest default candidate in this group. For text-only calls where non-thinking mode or very long completion output matters, DeepSeek V4 Flash may be a better fit. GPT-5.6 and Gemini 3.7 Flash remain relevant when their provider-specific tools or managed ecosystems are part of the application.

Run the same tasks, tool schemas, context, and acceptance tests across candidates before routing production traffic. A model that uses fewer retries can be less expensive at the workflow level even when its token rate is higher.

GLM-5.3 Flash vs GLM-5.3: Which Should You Choose?

Choose GLM-5.3 Flash when your application needs image, video, file, or screenshot input; when the model must inspect rendered interfaces; or when you need substantially lower standard token rates for repeated calls. It is also the relevant version if downloadable MIT-licensed weights are part of your deployment plan.

Choose standard GLM-5.3 when the workload is text-only and you have already validated its post-trained coding, terminal, or defensive code-review behavior. Do not treat the two model IDs as interchangeable: they use different base models and have different input capabilities, architectures, and cost profiles.

GPTProto’s shared API key makes an A/B rollout easier. Keep both model IDs behind configuration, compare success rate, latency, output-token use, and invalid tool calls, and route each workload to the version that meets its acceptance criteria.

When Should You Choose GLM-5.3 Flash?

Choose this model when at least one of the following conditions matters:

  • The task combines code with screenshots, design references, charts, documents, or video.

  • A coding agent needs to render and visually inspect its own frontend, game, or 3D output.

  • The prompt, repository, tool history, and generated output require a 1M-token context window.

  • Function calling, streamed tool arguments, structured JSON, and context caching are required.

  • You want access to MIT-licensed model weights as well as a hosted API route.

  • Your application makes enough requests for standard per-token cost to be a major selection factor.

Do not select it only because “Flash” sounds faster. Test time to first answer, total completion time, reasoning-token use, and output verbosity with your real workload. For a short classification endpoint or another task that must disable reasoning, select a model with an explicit non-thinking mode.

GLM-5.3 Flash API: Common Technical Questions

How much does the GLM-5.3 Flash API cost on GPTProto?

GPTProto provides the model at 10% below its standard list token rates. Input, cached-input, and output tokens are billed separately. Refer to the live API Pricing panel for the current rates because provider promotions and token prices can change.

How can I get a GLM-5.3 Flash API key?

Create a GPTProto account, add balance, and generate a key from the dashboard. The same key can access GLM-5.3 Flash and other supported models, so you do not need a separate provider account or credit balance for every model.

What model string should I use?

The official Z.ai model code is glm-5.3-flash. For GPTProto requests, copy the exact model string displayed in the API Usage or Quick Start panel so that it matches the currently deployed route.

Does the GLM-5.3 Flash API accept images and videos?

Yes. It is a native multimodal model that accepts text, images, videos, and files. Images can be supplied through image_url content blocks using a URL or Base64 Data URL. The model returns text or tool calls rather than generating images or videos.

What is the GLM-5.3 Flash context window?

The model supports up to one million tokens of context. Your prompt, conversation history, multimodal content representation, tool results, and generated output all consume the available context budget.

Can reasoning be disabled?

No. The official API only supports enabled thinking. Z.ai recommends reasoning_effort: max for its strongest results, although developers should test the supported reasoning settings and token use on their own tasks.

Is GLM-5.3 Flash open weight or open source?

Its model weights are publicly available under the MIT license. It can be deployed with frameworks including SGLang, vLLM, TokenSpeed, and KTransformers. Hosted API access is still useful when you do not want to operate the required inference infrastructure.

Is GLM-5.3 Flash the same model as GLM-5.3?

No. Standard GLM-5.3 is a text-focused post-training upgrade built on the GLM-5.2 base. GLM-5.3 Flash begins from a different, natively multimodal base model and introduces a hybrid sparse-and-linear attention architecture.

Does GPTProto provide a GLM-5.3 Flash API playground?

Yes. Use the playground to test text and multimodal prompts, inspect responses, and compare the model with other available LLMs before adding it to your application.

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