千问多模态向量模型,支持文本、图像和视频输入,用于跨模态检索与相似度计算。
Qwen tokenizer (tiktoken-compat)Scores on standardized evaluations. Higher percentages are better — and rank percentile shows
Metrics sourced fromArtificial Analysis 2026-09-30·Qwen3 Vl Embedding
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千问多模态向量模型,支持文本、图像和视频输入,用于跨模态检索与相似度计算。
Starting points for evaluation; supported inputs and options are listed in API access.
Check whether the endpoint returns embeddings or reranks documents. Keep indexing and query preprocessing consistent.
/v1/chat/completions| Parameter | Type | Default / range | Description |
|---|---|---|---|
inputrequired | string | — | Text or array of texts to embed |
dimensions | integer | >= 1 | Truncate embeddings to this many dimensions |
encoding_format | enum | = float | Wire encoding for the embedding vectors |
user | string | — | End-user identifier for abuse monitoring |
Replace <YOUR_API_KEY> with the API key from your token settings.
All requests must include Authorization: Bearer <TOKEN> header. Anthropic-formatted endpoints accept the x-api-key header instead.
Generate tokens from the Tokens page; you can scope them to specific models, groups, IPs, and rate-limits.
| Parameter | Type | Default / range | Description |
|---|---|---|---|
inputrequired | string | — | Text or array of texts to embed |
dimensions | integer | >= 1 | Truncate embeddings to this many dimensions |
encoding_format | enum | = float | Wire encoding for the embedding vectors |
user | string | — | End-user identifier for abuse monitoring |
| Supplier | RPM | TPM | RPD |
|---|---|---|---|
| Alibaba | Unlimited | Unlimited | Unlimited |
| official | Unlimited | Unlimited | Unlimited |
No restriction
千问多模态向量模型,支持文本、图像和视频输入,用于跨模态检索与相似度计算。
Create an API key with access to qwen3-vl-embedding, then use the exact model ID and a supported endpoint from the API access section. Request fields depend on the selected endpoint.
Pricing depends on the selected provider group and the model billing unit. The current input, output, request, or media prices are shown on this page before sign-up.
The model catalog lists a context window of 32000 tokens. Check the selected endpoint for request limits.
Check whether the endpoint returns embeddings or reranks documents. Keep indexing and query preprocessing consistent.