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			201 lines
		
	
	
		
			5.6 KiB
		
	
	
	
		
			TypeScript
		
	
	
	
	
	
			
		
		
	
	
			201 lines
		
	
	
		
			5.6 KiB
		
	
	
	
		
			TypeScript
		
	
	
	
	
	
"use client";
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// azure and openai, using same models. so using same LLMApi.
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import {
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  ApiPath,
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  MOONSHOT_BASE_URL,
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  Moonshot,
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  REQUEST_TIMEOUT_MS,
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} from "@/app/constant";
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import {
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  useAccessStore,
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  useAppConfig,
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  useChatStore,
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  ChatMessageTool,
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  usePluginStore,
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} from "@/app/store";
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import { stream } from "@/app/utils/chat";
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import {
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  ChatOptions,
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  getHeaders,
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  LLMApi,
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  LLMModel,
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  SpeechOptions,
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} from "../api";
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import { getClientConfig } from "@/app/config/client";
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import { getMessageTextContent } from "@/app/utils";
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import { RequestPayload } from "./openai";
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import { fetch } from "@/app/utils/stream";
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export class MoonshotApi implements LLMApi {
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  private disableListModels = true;
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  path(path: string): string {
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    const accessStore = useAccessStore.getState();
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    let baseUrl = "";
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    if (accessStore.useCustomConfig) {
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      baseUrl = accessStore.moonshotUrl;
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    }
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    if (baseUrl.length === 0) {
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      const isApp = !!getClientConfig()?.isApp;
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      const apiPath = ApiPath.Moonshot;
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      baseUrl = isApp ? MOONSHOT_BASE_URL : apiPath;
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    }
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    if (baseUrl.endsWith("/")) {
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      baseUrl = baseUrl.slice(0, baseUrl.length - 1);
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    }
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    if (!baseUrl.startsWith("http") && !baseUrl.startsWith(ApiPath.Moonshot)) {
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      baseUrl = "https://" + baseUrl;
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    }
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    console.log("[Proxy Endpoint] ", baseUrl, path);
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    return [baseUrl, path].join("/");
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  }
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  extractMessage(res: any) {
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    return res.choices?.at(0)?.message?.content ?? "";
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  }
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  speech(options: SpeechOptions): Promise<ArrayBuffer> {
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    throw new Error("Method not implemented.");
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  }
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  async chat(options: ChatOptions) {
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    const messages: ChatOptions["messages"] = [];
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    for (const v of options.messages) {
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      const content = getMessageTextContent(v);
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      messages.push({ role: v.role, content });
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    }
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    const modelConfig = {
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      ...useAppConfig.getState().modelConfig,
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      ...useChatStore.getState().currentSession().mask.modelConfig,
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      ...{
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        model: options.config.model,
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        providerName: options.config.providerName,
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      },
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    };
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    const requestPayload: RequestPayload = {
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      messages,
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      stream: options.config.stream,
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      model: modelConfig.model,
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      temperature: modelConfig.temperature,
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      presence_penalty: modelConfig.presence_penalty,
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      frequency_penalty: modelConfig.frequency_penalty,
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      top_p: modelConfig.top_p,
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      // max_tokens: Math.max(modelConfig.max_tokens, 1024),
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      // Please do not ask me why not send max_tokens, no reason, this param is just shit, I dont want to explain anymore.
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    };
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    console.log("[Request] openai payload: ", requestPayload);
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    const shouldStream = !!options.config.stream;
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    const controller = new AbortController();
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    options.onController?.(controller);
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    try {
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      const chatPath = this.path(Moonshot.ChatPath);
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      const chatPayload = {
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        method: "POST",
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        body: JSON.stringify(requestPayload),
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        signal: controller.signal,
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        headers: getHeaders(),
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      };
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      // make a fetch request
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      const requestTimeoutId = setTimeout(
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        () => controller.abort(),
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        REQUEST_TIMEOUT_MS,
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      );
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      if (shouldStream) {
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        const [tools, funcs] = usePluginStore
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          .getState()
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          .getAsTools(
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            useChatStore.getState().currentSession().mask?.plugin || [],
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          );
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        return stream(
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          chatPath,
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          requestPayload,
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          getHeaders(),
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          tools as any,
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          funcs,
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          controller,
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          // parseSSE
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          (text: string, runTools: ChatMessageTool[]) => {
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            // console.log("parseSSE", text, runTools);
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            const json = JSON.parse(text);
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            const choices = json.choices as Array<{
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              delta: {
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                content: string;
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                tool_calls: ChatMessageTool[];
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              };
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            }>;
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            const tool_calls = choices[0]?.delta?.tool_calls;
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            if (tool_calls?.length > 0) {
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              const index = tool_calls[0]?.index;
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              const id = tool_calls[0]?.id;
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              const args = tool_calls[0]?.function?.arguments;
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              if (id) {
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                runTools.push({
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                  id,
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                  type: tool_calls[0]?.type,
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                  function: {
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                    name: tool_calls[0]?.function?.name as string,
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                    arguments: args,
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                  },
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                });
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              } else {
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                // @ts-ignore
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                runTools[index]["function"]["arguments"] += args;
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              }
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            }
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            return choices[0]?.delta?.content;
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          },
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          // processToolMessage, include tool_calls message and tool call results
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          (
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            requestPayload: RequestPayload,
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            toolCallMessage: any,
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            toolCallResult: any[],
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          ) => {
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            // @ts-ignore
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            requestPayload?.messages?.splice(
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              // @ts-ignore
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              requestPayload?.messages?.length,
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              0,
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              toolCallMessage,
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              ...toolCallResult,
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            );
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          },
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          options,
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        );
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      } else {
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        const res = await fetch(chatPath, chatPayload);
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        clearTimeout(requestTimeoutId);
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        const resJson = await res.json();
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        const message = this.extractMessage(resJson);
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        options.onFinish(message, res);
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      }
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    } catch (e) {
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      console.log("[Request] failed to make a chat request", e);
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      options.onError?.(e as Error);
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    }
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  }
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  async usage() {
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    return {
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      used: 0,
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      total: 0,
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    };
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  }
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  async models(): Promise<LLMModel[]> {
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    return [];
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  }
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}
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