Registry indexed
OpenUI generative UI with LangChain/LangGraph backend. Supports ChatOpenAI and ChatAnthropic.
OpenUI generative UI with LangChain/LangGraph backend. Supports ChatOpenAI and ChatAnthropic.
Source documentation, not instructions for this website. Review permissions before running any commands.
Build generative UI apps with OpenUI + LangChain. Stream from ChatOpenAI or ChatAnthropic, convert to OpenAI NDJSON.
OPENAI_API_KEY or ANTHROPIC_API_KEY setnpm install @openuidev/react-ui @openuidev/react-headless @openuidev/react-lang lucide-react zod @langchain/openai @langchain/core
# For Anthropic: npm install @langchain/anthropic
app/layout.tsx:import "@openuidev/react-ui/components.css";
npm run dev and testapp/api/chat/route.tsimport { openuiChatLibrary } from "@openuidev/react-ui/genui-lib";
import { ChatOpenAI } from "@langchain/openai";
import { HumanMessage, SystemMessage, AIMessage } from "@langchain/core/messages";
const model = new ChatOpenAI({ model: process.env.OPENAI_MODEL ?? "gpt-5.5", streaming: true });
export async function POST(req: Request) {
const { messages } = await req.json();
const systemPrompt = openuiChatLibrary.prompt({
preamble: "You are a helpful assistant that generates interactive UIs.",
});
const lcMessages = [
new SystemMessage(systemPrompt),
...messages.map((m: { role: string; content: string }) =>
m.role === "user" ? new HumanMessage(m.content) : new AIMessage(m.content)
),
];
const stream = await model.stream(lcMessages);
const encoder = new TextEncoder();
const id = `chatcmpl-${Date.now()}`;
const readableStream = new ReadableStream({
async start(controller) {
for await (const chunk of stream) {
const text = typeof chunk.content === "string" ? chunk.content : "";
if (!text) continue;
const payload = {
id,
object: "chat.completion.chunk",
choices: [{ index: 0, delta: { content: text }, finish_reason: null }],
};
controller.enqueue(encoder.encode(`data: ${JSON.stringify(payload)}\n\n`));
}
const done = {
id,
object: "chat.completion.chunk",
choices: [{ index: 0, delta: {}, finish_reason: "stop" }],
};
controller.enqueue(encoder.encode(`data: ${JSON.stringify(done)}\n\n`));
controller.enqueue(encoder.encode("data: [DONE]\n\n"));
controller.close();
},
});
return new Response(readableStream, {
headers: { "Content-Type": "text/event-stream" },
});
}
app/api/chat/route.tsReplace the model initialization and import:
import { ChatAnthropic } from "@langchain/anthropic";
const model = new ChatAnthropic({
model: process.env.ANTHROPIC_MODEL ?? "claude-sonnet-4-6",
maxTokens: 4096,
streaming: true,
});
Everything else (message mapping, stream conversion, response) stays identical.
app/chat/page.tsx"use client";
import { FullScreen } from "@openuidev/react-ui";
import { openuiChatLibrary } from "@openuidev/react-ui/genui-lib";
import {
openAIAdapter,
openAIMessageFormat,
} from "@openuidev/react-headless";
export default function ChatPage() {
return (
<FullScreen
componentLibrary={openuiChatLibrary}
streamProtocol={openAIAdapter()}
messageFormat={openAIMessageFormat}
apiUrl="/api/chat"
/>
);
}
The backend emits SSE (
data: {json}\n\n). Pair it withopenAIAdapter()on the frontend. (langGraphAdapteris also exported from@openuidev/react-headlessif you stream LangGraph events natively rather than converting to OpenAI shape.)
import { defineComponent } from "@openuidev/react-lang";
import { z } from "zod";
export const MetricCard = defineComponent({
name: "MetricCard",
description: "Displays a metric with label, value, and optional trend",
props: z.object({
label: z.string().describe("Metric name"),
value: z.number().describe("Current metric value"),
trend: z.enum(["up", "down", "flat"]).optional().describe("Trend direction"),
}),
component: ({ props }) => (
<div style={{ padding: 16, border: "1px solid #e5e7eb", borderRadius: 8 }}>
<div style={{ fontSize: 14, color: "#6b7280" }}>{props.label}</div>
<div style={{ fontSize: 24, fontWeight: 700 }}>{props.value}</div>
{props.trend && <span>{props.trend === "up" ? "+" : props.trend === "down" ? "-" : "="}</span>}
</div>
),
});
npx @openuidev/cli generate ./src/lib/library.ts --out src/generated/system-prompt.txt
@langchain/openai or @langchain/anthropic installeddata: prefixfinish_reason: "stop" and ends with data: [DONE]streamProtocol={openAIAdapter()} and openAIMessageFormat| Error | Cause | Fix |
|---|---|---|
| Empty chunks in stream | LangChain AIMessageChunk content may be empty | Skip chunks where text is empty |
| Type error on messages | Wrong LangChain message class | Map user to HumanMessage, assistant to AIMessage |
| Module not found | Missing LangChain provider package | Install @langchain/openai or @langchain/anthropic |
| Stream hangs | Missing [DONE] sentinel | Always send final stop chunk and [DONE] |
| CORS error | Cross-origin frontend | Add CORS headers if frontend/backend are split |
name: openui-forge-langchain description: OpenUI generative UI with LangChain/LangGraph backend. Supports ChatOpenAI and ChatAnthropic. version: 1.2.0 author: OthmanAdi
---
name: openui-forge-langchain
description: OpenUI generative UI with LangChain/LangGraph backend. Supports ChatOpenAI and ChatAnthropic.
version: 1.2.0
author: OthmanAdi
---
# OpenUI Forge — LangChain
Build generative UI apps with OpenUI + LangChain. Stream from ChatOpenAI or ChatAnthropic, convert to OpenAI NDJSON.
## Activation Triggers
- "openui langchain", "openui langgraph", "openui langsmith"
- "generative ui langchain", "langchain streaming ui"
## Prerequisites
- Node.js >= 22 (24 LTS recommended), React >= 18.3.1 (19+ recommended)
- `OPENAI_API_KEY` or `ANTHROPIC_API_KEY` set
- Next.js project (App Router recommended)
## Quick Start
1. Install dependencies (pick one or both LLM providers):
```bash
npm install @openuidev/react-ui @openuidev/react-headless @openuidev/react-lang lucide-react zod @langchain/openai @langchain/core
# For Anthropic: npm install @langchain/anthropic
```
2. Add the CSS import to `app/layout.tsx`:
```tsx
import "@openuidev/react-ui/components.css";
```
3. Create the API route and frontend page below
4. Run `npm run dev` and test
## Full Code
### Backend (OpenAI): `app/api/chat/route.ts`
```typescript
import { openuiChatLibrary } from "@openuidev/react-ui/genui-lib";
import { ChatOpenAI } from "@langchain/openai";
import { HumanMessage, SystemMessage, AIMessage } from "@langchain/core/messages";
const model = new ChatOpenAI({ model: process.env.OPENAI_MODEL ?? "gpt-5.5", streaming: true });
export async function POST(req: Request) {
const { messages } = await req.json();
const systemPrompt = openuiChatLibrary.prompt({
preamble: "You are a helpful assistant that generates interactive UIs.",
});
const lcMessages = [
new SystemMessage(systemPrompt),
...messages.map((m: { role: string; content: string }) =>
m.role === "user" ? new HumanMessage(m.content) : new AIMessage(m.content)
),
];
const stream = await model.stream(lcMessages);
const encoder = new TextEncoder();
const id = `chatcmpl-${Date.now()}`;
const readableStream = new ReadableStream({
async start(controller) {
for await (const chunk of stream) {
const text = typeof chunk.content === "string" ? chunk.content : "";
if (!text) continue;
const payload = {
id,
object: "chat.completion.chunk",
choices: [{ index: 0, delta: { content: text }, finish_reason: null }],
};
controller.enqueue(encoder.encode(`data: ${JSON.stringify(payload)}\n\n`));
}
const done = {
id,
object: "chat.completion.chunk",
choices: [{ index: 0, delta: {}, finish_reason: "stop" }],
};
controller.enqueue(encoder.encode(`data: ${JSON.stringify(done)}\n\n`));
controller.enqueue(encoder.encode("data: [DONE]\n\n"));
controller.close();
},
});
return new Response(readableStream, {
headers: { "Content-Type": "text/event-stream" },
});
}
```
### Backend (Anthropic variant): `app/api/chat/route.ts`
Replace the model initialization and import:
```typescript
import { ChatAnthropic } from "@langchain/anthropic";
const model = new ChatAnthropic({
model: process.env.ANTHROPIC_MODEL ?? "claude-sonnet-4-6",
maxTokens: 4096,
streaming: true,
});
```
Everything else (message mapping, stream conversion, response) stays identical.
### Frontend: `app/chat/page.tsx`
```tsx
"use client";
import { FullScreen } from "@openuidev/react-ui";
import { openuiChatLibrary } from "@openuidev/react-ui/genui-lib";
import {
openAIAdapter,
openAIMessageFormat,
} from "@openuidev/react-headless";
export default function ChatPage() {
return (
<FullScreen
componentLibrary={openuiChatLibrary}
streamProtocol={openAIAdapter()}
messageFormat={openAIMessageFormat}
apiUrl="/api/chat"
/>
);
}
```
> The backend emits SSE (`data: {json}\n\n`). Pair it with `openAIAdapter()` on the frontend. (`langGraphAdapter` is also exported from `@openuidev/react-headless` if you stream LangGraph events natively rather than converting to OpenAI shape.)
## Component Creation
```tsx
import { defineComponent } from "@openuidev/react-lang";
import { z } from "zod";
export const MetricCard = defineComponent({
name: "MetricCard",
description: "Displays a metric with label, value, and optional trend",
props: z.object({
label: z.string().describe("Metric name"),
value: z.number().describe("Current metric value"),
trend: z.enum(["up", "down", "flat"]).optional().describe("Trend direction"),
}),
component: ({ props }) => (
<div style={{ padding: 16, border: "1px solid #e5e7eb", borderRadius: 8 }}>
<div style={{ fontSize: 14, color: "#6b7280" }}>{props.label}</div>
<div style={{ fontSize: 24, fontWeight: 700 }}>{props.value}</div>
{props.trend && <span>{props.trend === "up" ? "+" : props.trend === "down" ? "-" : "="}</span>}
</div>
),
});
```
## System Prompt Generation
```bash
npx @openuidev/cli generate ./src/lib/library.ts --out src/generated/system-prompt.txt
```
## Validation Checklist
- [ ] LLM provider API key is set
- [ ] `@langchain/openai` or `@langchain/anthropic` installed
- [ ] Messages correctly mapped to LangChain message types
- [ ] Stream chunks converted to OpenAI-compatible SSE with `data:` prefix
- [ ] Final chunk has `finish_reason: "stop"` and ends with `data: [DONE]`
- [ ] Frontend uses `streamProtocol={openAIAdapter()}` and `openAIMessageFormat`
- [ ] CSS import in root layout
## Error Patterns
| Error | Cause | Fix |
|-------|-------|-----|
| Empty chunks in stream | LangChain AIMessageChunk content may be empty | Skip chunks where `text` is empty |
| Type error on messages | Wrong LangChain message class | Map `user` to `HumanMessage`, `assistant` to `AIMessage` |
| Module not found | Missing LangChain provider package | Install `@langchain/openai` or `@langchain/anthropic` |
| Stream hangs | Missing `[DONE]` sentinel | Always send final stop chunk and `[DONE]` |
| CORS error | Cross-origin frontend | Add CORS headers if frontend/backend are split |
Skill source recorded
Skill instructions are recorded. This is not a runtime test, safety guarantee or compatibility certification.
Review before install: Avoid automatic install
License: MIT
Listed tools are metadata hints, not tested compatibility. Agent prompts are suggested handoffs.
Repository metadata and review signals are advisory. Popularity, source discovery and successful execution are different facts.
Version reported in registry metadata; check source releases before relying on it.
Quality
49/100
Needs review
Trust
56
This page exposes the same decision, trust, audit, use-case, and install signals through the Registry API, so agents can rank this skill without scraping the UI.
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Do not auto-install
Audit
67/100
Needs review
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