290 lines
8.6 KiB
TypeScript
290 lines
8.6 KiB
TypeScript
import { ApiPath, Google, REQUEST_TIMEOUT_MS } from "@/app/constant";
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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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LLMUsage,
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SpeechOptions,
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} from "../api";
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import {
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useAccessStore,
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useAppConfig,
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useChatStore,
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usePluginStore,
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ChatMessageTool,
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} from "@/app/store";
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import { stream } from "@/app/utils/chat";
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import { getClientConfig } from "@/app/config/client";
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import { GEMINI_BASE_URL } from "@/app/constant";
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import {
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getMessageTextContent,
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getMessageImages,
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isVisionModel,
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} from "@/app/utils";
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import { preProcessImageContent } from "@/app/utils/chat";
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import { nanoid } from "nanoid";
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import { RequestPayload } from "./openai";
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import { fetch } from "@/app/utils/stream";
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export class GeminiProApi implements LLMApi {
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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.googleUrl;
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}
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const isApp = !!getClientConfig()?.isApp;
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if (baseUrl.length === 0) {
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baseUrl = isApp ? GEMINI_BASE_URL : ApiPath.Google;
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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.Google)) {
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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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let chatPath = [baseUrl, path].join("/");
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chatPath += chatPath.includes("?") ? "&alt=sse" : "?alt=sse";
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return chatPath;
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}
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extractMessage(res: any) {
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console.log("[Response] gemini-pro response: ", res);
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return (
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res?.candidates?.at(0)?.content?.parts.at(0)?.text ||
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res?.error?.message ||
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""
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);
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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): Promise<void> {
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const apiClient = this;
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let multimodal = false;
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// try get base64image from local cache image_url
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const _messages: ChatOptions["messages"] = [];
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for (const v of options.messages) {
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const content = await preProcessImageContent(v.content);
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_messages.push({ role: v.role, content });
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}
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const messages = _messages.map((v) => {
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let parts: any[] = [{ text: getMessageTextContent(v) }];
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if (isVisionModel(options.config.model)) {
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const images = getMessageImages(v);
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if (images.length > 0) {
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multimodal = true;
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parts = parts.concat(
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images.map((image) => {
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const imageType = image.split(";")[0].split(":")[1];
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const imageData = image.split(",")[1];
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return {
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inline_data: {
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mime_type: imageType,
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data: imageData,
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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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return {
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role: v.role.replace("assistant", "model").replace("system", "user"),
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parts: parts,
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};
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});
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// google requires that role in neighboring messages must not be the same
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for (let i = 0; i < messages.length - 1; ) {
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// Check if current and next item both have the role "model"
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if (messages[i].role === messages[i + 1].role) {
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// Concatenate the 'parts' of the current and next item
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messages[i].parts = messages[i].parts.concat(messages[i + 1].parts);
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// Remove the next item
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messages.splice(i + 1, 1);
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} else {
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// Move to the next item
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i++;
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}
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}
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// if (visionModel && messages.length > 1) {
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// options.onError?.(new Error("Multiturn chat is not enabled for models/gemini-pro-vision"));
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// }
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const accessStore = useAccessStore.getState();
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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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},
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};
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const requestPayload = {
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contents: messages,
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generationConfig: {
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// stopSequences: [
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// "Title"
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// ],
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temperature: modelConfig.temperature,
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maxOutputTokens: modelConfig.max_tokens,
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topP: modelConfig.top_p,
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// "topK": modelConfig.top_k,
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},
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safetySettings: [
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{
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category: "HARM_CATEGORY_HARASSMENT",
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threshold: accessStore.googleSafetySettings,
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},
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{
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category: "HARM_CATEGORY_HATE_SPEECH",
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threshold: accessStore.googleSafetySettings,
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},
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{
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category: "HARM_CATEGORY_SEXUALLY_EXPLICIT",
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threshold: accessStore.googleSafetySettings,
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},
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{
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category: "HARM_CATEGORY_DANGEROUS_CONTENT",
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threshold: accessStore.googleSafetySettings,
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},
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],
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};
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let 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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// https://github.com/google-gemini/cookbook/blob/main/quickstarts/rest/Streaming_REST.ipynb
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const chatPath = this.path(Google.ChatPath(modelConfig.model));
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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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// @ts-ignore
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tools.length > 0
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? [{ functionDeclarations: tools.map((tool) => tool.function) }]
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: [],
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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 chunkJson = JSON.parse(text);
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const functionCall = chunkJson?.candidates
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?.at(0)
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?.content.parts.at(0)?.functionCall;
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if (functionCall) {
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const { name, args } = functionCall;
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runTools.push({
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id: nanoid(),
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type: "function",
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function: {
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name,
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arguments: JSON.stringify(args), // utils.chat call function, using JSON.parse
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},
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});
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}
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return chunkJson?.candidates?.at(0)?.content.parts.at(0)?.text;
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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?.contents?.splice(
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// @ts-ignore
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requestPayload?.contents?.length,
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0,
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{
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role: "model",
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parts: toolCallMessage.tool_calls.map(
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(tool: ChatMessageTool) => ({
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functionCall: {
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name: tool?.function?.name,
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args: JSON.parse(tool?.function?.arguments as string),
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},
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}),
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),
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},
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// @ts-ignore
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...toolCallResult.map((result) => ({
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role: "function",
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parts: [
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{
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functionResponse: {
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name: result.name,
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response: {
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name: result.name,
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content: result.content, // TODO just text content...
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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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},
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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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if (resJson?.promptFeedback?.blockReason) {
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// being blocked
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options.onError?.(
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new Error(
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"Message is being blocked for reason: " +
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resJson.promptFeedback.blockReason,
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),
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);
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}
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const message = apiClient.extractMessage(resJson);
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options.onFinish(message);
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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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usage(): Promise<LLMUsage> {
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throw new Error("Method not implemented.");
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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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