GPT-5.4 Nano API400K context
GPT-5.4 nano is the most lightweight and cost-efficient variant of the GPT-5.4 family, optimized for speed-critical and high-volume tasks.
Pricing & specs mirror our live pricing as of July 2026 (pay-as-you-go).
What is GPT-5.4 Nano?
GPT-5.4 nano is the most lightweight and cost-efficient variant of the GPT-5.4 family, optimized for speed-critical and high-volume tasks. It supports text and image inputs and is designed for low-latency...
GPT-5.4 Nano on the release timeline
GPT-5.4 Nano pricing
Pay-as-you-go on DataLLM Lab — these are our live list prices (identical to the pricing page):
| Model | Input / 1M | Output / 1M | Cache read | Cache write | Context |
|---|---|---|---|---|---|
| GPT-5.4 Nano | $0.20 | $1.25 | $0.02 | — | 400K |
On output price, GPT-5.4 Nano is cheaper than 54% of the 309 models in the catalog. It is served by 2 providers; the best combined rate at our last snapshot was ≈ $0.20 / $1.25 per 1M via Azure.
What GPT-5.4 Nano costs per month
| Workload | Tokens in / out (monthly) | Est. cost |
|---|---|---|
| Support chatbot | 40M / 12M | $23.00 |
| RAG / knowledge base | 200M / 20M | $65.00 |
| Coding agent | 80M / 25M | $47.25 |
| Batch extraction | 150M / 8M | $40.00 |
| Content generation | 20M / 40M | $54.00 |
Estimate your own monthly cost
Cost = input price × input volume + output price × output volume. The same five workloads run on every model page, so any two compare directly.
GPT-5.4 Nano vs alternatives
| Model | Input / 1M | Output / 1M | Context | Our test |
|---|---|---|---|---|
| GPT-5.4 Nano | $0.20 | $1.25 | 400K | — |
| GPT-3.5 Turbo | $0.50 | $1.50 | 16K | — |
| GPT-4.1 Mini | $0.40 | $1.60 | 1M | — |
| GPT-4o-mini | $0.15 | $0.60 | 128K | — |
| Claude 3 Haiku | $0.25 | $1.25 | 200K | — |
| ERNIE 4.5 VL 424B A47B | $0.42 | $1.25 | 131K | — |
Specs
| Model ID | openai/gpt-5.4-nano |
| Modality | text+image+file->text (input: file, image, text) |
| Context window | 400,000 tokens |
| Max output | 128,000 tokens |
| Tool / function calling | ✅ Yes |
| Structured output (JSON) | ✅ Yes |
| Released | 2026-03-17 |
| Knowledge cutoff | 2025-08-31 |
| Open weights | — (hosted API only) |
How to call GPT-5.4 Nano
from openai import OpenAI
client = OpenAI(base_url="https://api.datallmlab.com/v1", api_key="YOUR_DATALLM_LAB_KEY")
resp = client.chat.completions.create(
model="openai/gpt-5.4-nano",
messages=[{"role": "user", "content": "Hello"}],
# supports tools=[...] and tool_choice
)
print(resp.choices[0].message.content)curl https://api.datallmlab.com/v1/chat/completions \
-H "Authorization: Bearer YOUR_KEY" \
-H "Content-Type: application/json" \
-d '{"model":"openai/gpt-5.4-nano","messages":[{"role":"user","content":"Hello"}]}'import OpenAI from "openai";
const client = new OpenAI({ baseURL: "https://api.datallmlab.com/v1", apiKey: process.env.DATALLM_KEY });
const r = await client.chat.completions.create({
model: "openai/gpt-5.4-nano",
messages: [{ role: "user", content: "Hello" }],
});
console.log(r.choices[0].message.content);The same key routes GPT-5.4 Nano and 300+ other models — switch models by changing one string. How OpenAI-compatible APIs work.
Prompting tips for GPT-5.4 Nano
- State the goal, not every step. GPT-5.4 Nano reasons internally — give it the objective, constraints and success criteria and let it plan the approach; over-scripting each step tends to lower quality. Turn effort up for hard problems.
- Huge 400K context — but anchor the ask. You can paste whole documents or codebases; models attend most to the start and end, so put the key instruction at the top and restate it after long inputs.
- It reads images. Send image parts alongside your text and ask for specific outputs (named JSON fields, a table, "what changed") rather than "describe this".
- Give it real tools. Pass a
tools=[...]schema instead of asking it to "pretend" — let GPT-5.4 Nano emit tool calls, execute them, and feed results back for the next turn. - Constrain JSON with a schema. Use
response_format/ structured outputs rather than "reply in JSON" to get valid, parseable objects every time.
Tips are derived from GPT-5.4 Nano's actual capabilities — context window, tool & JSON support, modality and price tier — not generic advice.
Open-source tools for GPT-5.4 Nano
Popular open-source frameworks and agents to build with GPT-5.4 Nano over the API — star counts pulled from GitHub (July 2026).
Listed by GitHub stars; inclusion is by ecosystem relevance (agent frameworks, SDKs and gateways), not affiliation. Stars change — see each repo for current numbers.
Migrating to GPT-5.4 Nano
Coming from OpenAI or another gateway? On an OpenAI-compatible setup the only changes are base_url → https://api.datallmlab.com/v1 and model → openai/gpt-5.4-nano. Messages, streaming, tool calls and the rest of your code stay the same. Routing & failover guide.
Rate limits & reliability
Rate limits here are the DataLLM Lab gateway's, not the upstream vendor's. On 429 (rate limited) or 503 (provider busy), retry with exponential backoff; because GPT-5.4 Nano is served by 2 providers, requests can fail over to a healthy one automatically. See the error-code guide and failover setup.
Related reading
Call GPT-5.4 Nano with one key
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Get an API keyCompare pricingFrequently asked questions
What is GPT-5.4 Nano?
GPT-5.4 nano is the most lightweight and cost-efficient variant of the GPT-5.4 family, optimized for speed-critical and high-volume tasks. It accepts file, image, text input with a 400K-token context window and was released on 2026-03-17. On DataLLM Lab it is callable through one OpenAI-compatible endpoint.
How much does GPT-5.4 Nano cost?
On DataLLM Lab it is $0.20 per 1M input tokens and $1.25 per 1M output tokens, with cached input at $0.02/1M — cheaper than about 54% of the 309-model catalog on output price. Pay-as-you-go, no subscription.
What is the context window of GPT-5.4 Nano?
400K tokens, with up to 128K max output tokens.
Is GPT-5.4 Nano open source?
No open weights are published — it is available through hosted API access only.
How do I call the GPT-5.4 Nano API?
Point any OpenAI SDK at https://api.datallmlab.com/v1 and set model to "openai/gpt-5.4-nano". One DataLLM Lab key routes this model and 300+ others; no code changes beyond the base URL and model string.
What are good alternatives to GPT-5.4 Nano?
Close options by price and capability include GPT-3.5 Turbo, GPT-4.1 Mini, GPT-4o-mini — all callable with the same DataLLM Lab key.