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160 lines
4.5 KiB
TypeScript
160 lines
4.5 KiB
TypeScript
import type {
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HuggingFaceChatParams,
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HuggingFaceChatResponse,
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HuggingFaceMessage,
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HuggingFaceRequestBody,
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} from '@/tools/huggingface/types'
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import type { ToolConfig } from '@/tools/types'
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export const chatTool: ToolConfig<HuggingFaceChatParams, HuggingFaceChatResponse> = {
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id: 'huggingface_chat',
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name: 'Hugging Face Chat',
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description: 'Generate completions using Hugging Face Inference API',
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version: '1.0',
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params: {
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systemPrompt: {
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type: 'string',
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required: false,
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visibility: 'user-or-llm',
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description: 'System prompt to guide the model behavior',
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},
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content: {
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type: 'string',
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required: true,
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visibility: 'user-or-llm',
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description: 'The user message content to send to the model',
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},
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provider: {
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type: 'string',
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required: true,
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visibility: 'user-only',
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description: 'The provider to use for the API request (e.g., novita, cerebras, etc.)',
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},
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model: {
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type: 'string',
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required: true,
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visibility: 'user-or-llm',
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description:
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'Model to use for chat completions (e.g., "deepseek/deepseek-v3-0324", "meta-llama/Llama-3.3-70B-Instruct")',
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},
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maxTokens: {
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type: 'number',
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required: false,
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visibility: 'user-only',
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description: 'Maximum number of tokens to generate',
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},
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temperature: {
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type: 'number',
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required: false,
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visibility: 'user-only',
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description: 'Sampling temperature (0-2). Higher values make output more random',
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},
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apiKey: {
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type: 'string',
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required: true,
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visibility: 'user-only',
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description: 'Hugging Face API token',
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},
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},
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request: {
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method: 'POST',
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url: (params) => {
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// Provider-specific endpoint mapping
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const endpointMap: Record<string, string> = {
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novita: '/v3/openai/chat/completions',
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cerebras: '/v1/chat/completions',
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cohere: '/v1/chat/completions',
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fal: '/v1/chat/completions',
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fireworks: '/v1/chat/completions',
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hyperbolic: '/v1/chat/completions',
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'hf-inference': '/v1/chat/completions',
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nebius: '/v1/chat/completions',
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nscale: '/v1/chat/completions',
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replicate: '/v1/chat/completions',
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sambanova: '/v1/chat/completions',
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together: '/v1/chat/completions',
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}
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const endpoint = endpointMap[params.provider] || '/v1/chat/completions'
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return `https://router.huggingface.co/${params.provider}${endpoint}`
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},
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headers: (params) => ({
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Authorization: `Bearer ${params.apiKey}`,
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'Content-Type': 'application/json',
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}),
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body: (params) => {
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const messages: HuggingFaceMessage[] = []
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// Add system prompt if provided
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if (params.systemPrompt) {
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messages.push({
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role: 'system',
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content: params.systemPrompt,
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})
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}
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// Add user message
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messages.push({
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role: 'user',
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content: params.content,
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})
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const body: HuggingFaceRequestBody = {
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model: params.model,
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messages: messages,
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stream: false,
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}
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// Add optional parameters if provided
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if (params.temperature !== undefined) {
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body.temperature = Number(params.temperature)
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}
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if (params.maxTokens !== undefined) {
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body.max_tokens = Number(params.maxTokens)
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}
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return body
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},
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},
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transformResponse: async (response: Response) => {
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const data = await response.json()
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return {
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success: true,
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output: {
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content: data.choices?.[0]?.message?.content || '',
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model: data.model || 'unknown',
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usage: data.usage ?? { prompt_tokens: 0, completion_tokens: 0, total_tokens: 0 },
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},
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}
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},
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outputs: {
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success: { type: 'boolean', description: 'Operation success status' },
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output: {
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type: 'object',
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description: 'Chat completion results',
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properties: {
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content: { type: 'string', description: 'Generated text content' },
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model: { type: 'string', description: 'Model used for generation' },
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usage: {
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type: 'object',
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description: 'Token usage information',
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properties: {
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prompt_tokens: { type: 'number', description: 'Number of tokens in the prompt' },
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completion_tokens: {
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type: 'number',
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description: 'Number of tokens in the completion',
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},
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total_tokens: { type: 'number', description: 'Total number of tokens used' },
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},
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},
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},
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},
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},
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}
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