perf(sam2): code
This commit is contained in:
@@ -2267,6 +2267,7 @@ const LabelPage = ({
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// 追踪
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if (e.key === "i") {
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e.preventDefault()
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// sam2 暂未有图片接口
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paperContainerRef.current.renderTrackingAnnotation()
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}
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@@ -108,18 +108,6 @@ export const getLabelImage = (activeImage: string, path: string) => {
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})
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}
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// 辅助标注
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export const getAuxiliaryAnnotation = (data: any) => {
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return httpFetch<any>({
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url: BASE_LABEL_API + "/api/model_server/sam2/sa",
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method: "POST",
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body: JSON.stringify(data),
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headerAttr: {
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responseType: "arraybuffer",
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},
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})
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}
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const BASE_SAM_API =
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process.env.NEXT_PUBLIC_ENV === "production"
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? "http://172.16.103.224:8000"
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@@ -127,7 +115,7 @@ const BASE_SAM_API =
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? "http://172.30.21.211:8000"
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: "http://172.30.21.211:8000"
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export const getAuxiliaryAnnotation2 = (data: {
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export const getAuxiliaryAnnotation = (data: {
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project_id: number
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image_name: string
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prompt: {
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@@ -146,18 +134,6 @@ export const getAuxiliaryAnnotation2 = (data: {
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})
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}
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// 模型标注 追踪
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export const getTrackingAuxiliaryAnnotation = (data: any) => {
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return httpFetch<any>({
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url: BASE_LABEL_API + "/api/model_server/sam2/vos",
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method: "POST",
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body: JSON.stringify(data),
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headerAttr: {
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responseType: "arraybuffer",
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},
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})
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}
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// 用户登录
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export const userLogin = (data: { name: string; password: string }) => {
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return httpFetch<LoginInfo>({
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@@ -1,96 +0,0 @@
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# `renderTrackingAnnotation` 流程说明
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来源文件:
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- `labelimage/components/label/components/PaperContainer.tsx`
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- `labelimage/components/label/LabelNossr.tsx`
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- `labelimage/components/label/api/label/index.ts`
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## 概述
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`renderTrackingAnnotation` 是单对象跨帧追踪的入口方法。
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它会把当前激活图片上选中的标注对象作为 seed,将其轮廓数据发送给追踪模型接口,再把模型返回的后续帧轮廓结果写回 `label store`。
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## Mermaid
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```mermaid
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flowchart TD
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A["在 `LabelNossr.tsx` 中按下 `i`"] --> B["调用 `paperContainerRef.current.renderTrackingAnnotation()`"]
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B --> C["执行 `updateLoadingFlag(true)`<br/>并显示加载通知"]
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C --> D["从 store 读取运行时状态:<br/>`selectedPath[activeImage]`<br/>`selectedItems`<br/>`rasterSize[activeImage]`<br/>`rasterScale[activeImage]`"]
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D --> E{"是否恰好选中了一个标注对象?"}
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E -->|未选中| F["提示错误:<br/>`请先选中标注对象后再进行模型调用`"]
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E -->|选中了多个| G["提示错误:<br/>`请勿选择多个标注对象进行模型调用`"]
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E -->|是| H["在 `label.get(activeImage)` 中查找<br/>满足 `item[0] === id` 的标注对象"]
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H --> I{"是否找到 `categoryId` 和 `data`?"}
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I -->|否| Z["跳过请求参数构造"]
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I -->|是| J["提取源标注几何数据:<br/>`data[1]` => 外轮廓 `segmentation`<br/>`data[3]` => 镂空轮廓 `hollow_segmentation`"]
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J --> K["将画布坐标转换为原图坐标:<br/>`Math.round(x / currentScale)`<br/>`Math.round(y / currentScale)`"]
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K --> L["构造请求参数:<br/>`project_id`<br/>`file_names = [activeImage, ...selectedItems]`<br/>`image_hw = [height, width]`<br/>`contours`<br/>`hollows`"]
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L --> M["使用 `msgpack.encode(params)` 序列化"]
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M --> N["通过 `getTrackingAuxiliaryAnnotation()`<br/>POST 到 `/api/model_server/sam2/vos`"]
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N --> O["以 `arraybuffer` 形式接收响应体"]
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O --> P["使用<br/>`msgpack.decode(new Uint8Array(res))`<br/>解码响应数据"]
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P --> Q{"resData.msg === 'success'?"}
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Q -->|否| R["内层流程仅执行 `console.log(error/resData)`"]
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Q -->|是| S["读取响应中的 `future_contours`"]
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S --> T["克隆当前 `label store`:<br/>`safeClone(useLabelStore.getState().label)`"]
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T --> U["遍历每个未来帧结果:<br/>目标文件 = `file_names[index + 1]`"]
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U --> V["读取目标帧缩放比例:<br/>`rasterScale[fileName]`"]
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V --> W["基于 `pathIds` 生成 `newId` 并注册"]
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W --> X["将原图坐标还原为画布坐标:<br/>`x * imgScale`<br/>`y * imgScale`"]
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X --> Y["将返回轮廓拆分为:<br/>`segmentation`<br/>`hollow_segmentation`"]
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Y --> AA["构造标注元组:<br/>`[newId, segmentation, detail, hollow_segmentation]`"]
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AA --> AB["将结果合并到<br/>`Map<fileName, Map<categoryId, annotation[]>>`"]
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AB --> AC["持久化结果:<br/>`setLabel(nowTaskData)`<br/>`pushStateStack(nowTaskData)`"]
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AC --> AD["显示成功通知"]
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F --> AE["finally:执行 `updateLoadingFlag(false)`"]
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G --> AE
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Z --> AE
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R --> AE
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AD --> AE
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C --> AF["外层 `try/catch`"]
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AF -->|异常| AG["显示通用失败通知:<br/>`模型生成失败`"]
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AG --> AE
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```
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## 数据结构
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被追踪的源标注对象,使用和普通多边形标注一致的元组结构:
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```ts
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;[id, segmentation, detail, hollow_segmentation]
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```
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各字段含义:
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- `item[0]`:标注 id
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- `item[1]`:外轮廓多边形
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- `item[2]`:详情元数据
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- `item[3]`:镂空轮廓多边形
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## 为什么使用 `arraybuffer`
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这条追踪请求并不是从头到尾都按普通 JSON 方式传输。
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- 请求参数先通过 `msgpack.encode(params)` 打包。
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- API 封装层把这份打包后的数据发给后端。
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- 响应体以 `arraybuffer` 的形式返回。
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- `renderTrackingAnnotation` 再通过 `msgpack.decode(new Uint8Array(res))` 还原出 JavaScript 对象。
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因此这里必须配置 `responseType: "arraybuffer"`,因为前端预期拿到的是二进制响应体,再自行解码。
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## 备注
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- 当前帧是 seed 帧,模型返回的结果会写入 `file_names[index + 1]` 对应的后续帧。
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- 这个方法更新的是 `label store`,不会直接在当前页面把其他帧的结果立刻画出来。
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- 这个方法只支持一次追踪一个被选中的对象。
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- 内层请求失败时目前主要是 `console.log`,不一定总会显示专门的失败提示。
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- 这个方法里生成的 `detail.image_id` 使用的是 `activeImage`,建议再结合整体数据模型确认一下是否符合预期。
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@@ -18,7 +18,7 @@ import {
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import { useForm } from "@mantine/form"
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import { notifications } from "@mantine/notifications"
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import dayjs from "dayjs"
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import msgpack from "msgpack-lite"
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// import msgpack from "msgpack-lite"
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import paper from "paper"
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import React, {
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DispatchWithoutAction,
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@@ -31,12 +31,7 @@ import React, {
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useRef,
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useState,
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} from "react"
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import {
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getAuxiliaryAnnotation,
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getAuxiliaryAnnotation2,
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getServerImage,
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getTrackingAuxiliaryAnnotation,
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} from "../api/label"
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import { getAuxiliaryAnnotation, getServerImage } from "../api/label"
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import { Project } from "../api/project/typing"
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import { labelimagePerformanceConfig } from "../config/performance"
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import { LabelState } from "../LabelNossr"
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@@ -185,6 +180,7 @@ const PaperContainer = (
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ref: React.Ref<unknown> | undefined
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) => {
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const { forceUpdate, projectDetail, labelState, updateLoadingFlag } = props
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false && updateLoadingFlag
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const containerRef = useRef<any>(null)
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const contextMenuRef = useRef<HTMLDivElement>(null)
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const [imgSize, setImageSize] = useState<{
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@@ -884,164 +880,6 @@ const PaperContainer = (
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}, [clearPendingFrameSwitch, loadingData])
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const renderSupportAnnotation = useCallback(
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async (
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points: Array<[number, number]>,
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tags: number[],
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clear_previous_state = false
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) => {
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try {
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notifications.show({
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id: "sam2",
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message: "模型生成中",
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loading: true,
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autoClose: false,
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})
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const operationSchema =
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projectDetail?.label_schema_list?.find(
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(item) =>
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item.category_id === +useTopToolsStore.getState().activeOperation
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) || null
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const strokeColor = operationSchema
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? `rgb(${operationSchema.color[0]},${operationSchema.color[1]},${operationSchema.color[2]})`
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: "rgb(0,0,0)"
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const fillColor = operationSchema
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? `rgba(${operationSchema.color[0]},${operationSchema.color[1]},${operationSchema.color[2]},0.3)`
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: "rgba(0,0,0,0.3)"
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const blankColor = operationSchema
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? `rgba(${operationSchema.color[0]},${operationSchema.color[1]},${operationSchema.color[2]},0.01)`
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: "rgba(0,0,0,0.01)"
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const currentScale =
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usePaperStore.getState().rasterScale[activeImage] ?? 1
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const draw = () => {
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points.forEach((point, index) => {
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const drawPoint = new paper.Path.Circle({
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center: point,
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radius: 2,
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fillColor: tags[index] === 1 ? "red" : "blue",
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strokeColor: tags[index] === 1 ? "red" : "blue",
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data: {
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id: "support",
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type: "point",
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},
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})
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drawPoint.parent = usePaperStore.getState().group!
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const raster = usePaperStore
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.getState()
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.group!.getItems({ data: { name: "pic" } })[0]
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if (!raster.contains(drawPoint.position)) {
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throw new Error("点位超出图片范围")
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}
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})
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}
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console.log(points, tags)
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// 绘制点位
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clearSupportAnnotationItem()
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draw()
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const picSize = usePaperStore.getState().rasterSize[activeImage]
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const params = {
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project_id: projectDetail?.id || 0,
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file_name: activeImage,
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image_hw:
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picSize && picSize.length ? [picSize[1], picSize[0]] : [0, 0],
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points_and_box: points.map(([x, y]) => [
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Math.round(x / currentScale),
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Math.round(y / currentScale),
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]),
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tags,
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clear_previous_state,
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}
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try {
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const res = await getAuxiliaryAnnotation(
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msgpack.encode(params) as any
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)
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const data = msgpack.decode(new Uint8Array(res))
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console.log(data)
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if (data.msg === "success") {
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const { contours, hollows } = data
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const outerPaths: any[] = []
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const innerPaths: any[] = []
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contours.forEach((contour: any, index: number) => {
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if (contour.length > 3) {
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const path = new paper.Path({
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segments: contour.map(([x, y]: [number, number]) => [
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x * currentScale,
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y * currentScale,
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]),
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fillColor: blankColor,
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strokeColor: strokeColor,
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closed: true,
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data: {
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id: "support",
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type: "polygon",
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isHollowPolygon: false,
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fillColor,
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strokeColor,
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blankColor,
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},
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parent: usePaperStore.getState().group,
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strokeScaling: false,
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})
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if (
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Math.abs(path.area) < useTopToolsStore.getState().checkSize
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) {
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path.remove()
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} else {
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// path.scaling = usePaperStore.getState().group!.scaling;
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if (hollows[index]) {
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// 更新标志位
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path.data.isHollowPolygon = true
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innerPaths.push(path)
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} else {
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// 上色
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path.fillColor = new paper.Color(fillColor)
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outerPaths.push(path)
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}
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}
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}
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})
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const compoundPath = new paper.CompoundPath({
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children: [...outerPaths, ...innerPaths],
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data: {
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id: "support",
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type: "parent",
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},
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strokeColor: strokeColor,
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strokeWidth: 2,
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fillColor: fillColor,
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})
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compoundPath.parent = usePaperStore.getState().group!
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notifications.show({
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id: "sam2",
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message: "模型生成成功",
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color: "green",
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})
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}
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} catch (error) {
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console.log(error)
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}
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} catch (error: any) {
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console.log(error)
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notifications.show({
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id: "sam2",
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message: error.message ?? "模型生成失败",
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color: "red",
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})
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if (error.message === "点位超出图片范围") {
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usePaperStore
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.getState()
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.supportTool?.emit("keydown", { key: "escape" })
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}
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}
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},
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[activeImage, projectDetail]
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)
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false && renderSupportAnnotation
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const renderSupportAnnotation2 = useCallback(
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async (
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points: Array<[number, number]>,
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tags: number[],
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@@ -1145,7 +983,7 @@ const PaperContainer = (
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// const picSize = usePaperStore.getState().rasterSize[activeImage]
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try {
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const data = await getAuxiliaryAnnotation2({
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const data = await getAuxiliaryAnnotation({
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project_id: projectId,
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image_name: activeImage,
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// project_id: "image_test_bk",
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@@ -1233,180 +1071,174 @@ const PaperContainer = (
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[activeImage, projectDetail]
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)
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const renderTrackingAnnotation = useCallback(async () => {
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updateLoadingFlag(true)
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try {
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notifications.show({
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id: "sam2",
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message: "模型生成中",
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loading: true,
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autoClose: false,
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})
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const ids =
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useObjectStore.getState().selectedPath[
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useBottomToolsStore.getState().activeImage
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]
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const picArr = useBottomToolsStore.getState().selectedItems
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const [width, height] = usePaperStore.getState().rasterSize[
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activeImage
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] ?? [0, 0]
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const currentScale =
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usePaperStore.getState().rasterScale[activeImage] ?? 1
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if (ids.length === 1) {
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const id = ids[0]
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let categoryId: any = null
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let data: any = null
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const activeImageData = useLabelStore.getState().label.get(activeImage)!
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for (let [category, objArr] of activeImageData.entries()) {
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objArr.forEach((item) => {
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if (item[0] === id) {
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categoryId = category
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data = item
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}
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})
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}
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if (categoryId && data) {
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const contours: [number, number][] = []
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const tags: boolean[] = []
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data[1].forEach((item: any) => {
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contours.push(
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item.map(([x, y]: any) => [
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Math.round(x / currentScale),
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Math.round(y / currentScale),
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])
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)
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tags.push(false)
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})
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data[3].forEach((item: any) => {
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contours.push(
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item.map(([x, y]: any) => [
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Math.round(x / currentScale),
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Math.round(y / currentScale),
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])
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)
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tags.push(true)
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})
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const file_names = [...new Set([activeImage, ...picArr])]
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const params = {
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project_id: projectDetail?.id || 0,
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file_names,
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image_hw: [height, width],
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contours,
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hollows: tags,
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}
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console.log("传参", params)
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try {
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const res = await getTrackingAuxiliaryAnnotation(
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msgpack.encode(params)
|
||||
)
|
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const resData = msgpack.decode(new Uint8Array(res))
|
||||
if (resData.msg === "success") {
|
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const {
|
||||
future_contours,
|
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}: {
|
||||
future_contours: {
|
||||
contours: [number, number][][]
|
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hollows: boolean[]
|
||||
}[]
|
||||
} = resData
|
||||
const nowTaskData = safeClone(useLabelStore.getState().label)
|
||||
future_contours.forEach(({ contours, hollows }, index) => {
|
||||
const fileName = file_names[index + 1]
|
||||
const imgScale =
|
||||
usePaperStore.getState().rasterScale[fileName] ?? 1
|
||||
let newId =
|
||||
useRightToolsStore
|
||||
.getState()
|
||||
.pathIds.reduce((a, b) => Math.max(a, b), 0) + 1
|
||||
useRightToolsStore.getState().pushPathId(newId)
|
||||
// 处理点位数据
|
||||
let segmentation: Array<[number, number][]> = []
|
||||
let hollow_segmentation: Array<[number, number][]> = []
|
||||
contours.forEach((contour, index) => {
|
||||
if (!hollows[index])
|
||||
segmentation.push(
|
||||
contour.map(([x, y]: any) => [x * imgScale, y * imgScale])
|
||||
)
|
||||
else
|
||||
hollow_segmentation.push(
|
||||
contour.map(([x, y]: any) => [x * imgScale, y * imgScale])
|
||||
)
|
||||
})
|
||||
// 详情数据
|
||||
let detail = {
|
||||
...initialDetail,
|
||||
uid: usePermissionStore.getState().user_id,
|
||||
comment: [...useLabelStore.getState().labelDefaultComments],
|
||||
create_timestamp: dayjs().unix(),
|
||||
sub_attributes: {},
|
||||
image_id: activeImage,
|
||||
category_id: categoryId,
|
||||
}
|
||||
const updateData: any = [
|
||||
newId,
|
||||
segmentation,
|
||||
detail,
|
||||
hollow_segmentation,
|
||||
]
|
||||
if (nowTaskData.has(fileName)) {
|
||||
const categoryMap = nowTaskData.get(fileName)!
|
||||
if (categoryMap.has(categoryId)) {
|
||||
const existArr = categoryMap.get(categoryId)
|
||||
existArr?.push(updateData)
|
||||
} else {
|
||||
categoryMap.set(categoryId, [updateData])
|
||||
}
|
||||
} else {
|
||||
let m = new Map()
|
||||
m.set(categoryId, [updateData])
|
||||
nowTaskData.set(fileName, m)
|
||||
}
|
||||
})
|
||||
console.log(nowTaskData)
|
||||
useLabelStore.getState().setLabel(nowTaskData)
|
||||
useLabelStore.getState().pushStateStack(nowTaskData)
|
||||
notifications.show({
|
||||
id: "sam2",
|
||||
message: "模型生成成功",
|
||||
color: "green",
|
||||
})
|
||||
}
|
||||
} catch (error) {
|
||||
console.log(error)
|
||||
}
|
||||
}
|
||||
} else if (!ids.length) {
|
||||
notifications.show({
|
||||
id: "sam2",
|
||||
message: "请先选中标注对象后再进行模型调用",
|
||||
color: "red",
|
||||
})
|
||||
} else {
|
||||
notifications.show({
|
||||
id: "sam2",
|
||||
message: "请勿选择多个标注对象进行模型调用",
|
||||
color: "red",
|
||||
})
|
||||
}
|
||||
} catch (error) {
|
||||
console.log(error)
|
||||
notifications.show({
|
||||
id: "sam2",
|
||||
message: "模型生成失败",
|
||||
color: "red",
|
||||
})
|
||||
} finally {
|
||||
updateLoadingFlag(false)
|
||||
}
|
||||
}, [activeImage, projectDetail?.id, updateLoadingFlag])
|
||||
// const renderTrackingAnnotation = useCallback(async () => {
|
||||
// updateLoadingFlag(true)
|
||||
// try {
|
||||
// notifications.show({
|
||||
// id: "sam2",
|
||||
// message: "模型生成中",
|
||||
// loading: true,
|
||||
// autoClose: false,
|
||||
// })
|
||||
// const ids =
|
||||
// useObjectStore.getState().selectedPath[
|
||||
// useBottomToolsStore.getState().activeImage
|
||||
// ]
|
||||
// const picArr = useBottomToolsStore.getState().selectedItems
|
||||
// const [width, height] = usePaperStore.getState().rasterSize[
|
||||
// activeImage
|
||||
// ] ?? [0, 0]
|
||||
// const currentScale =
|
||||
// usePaperStore.getState().rasterScale[activeImage] ?? 1
|
||||
// if (ids.length === 1) {
|
||||
// const id = ids[0]
|
||||
// let categoryId: any = null
|
||||
// let data: any = null
|
||||
// const activeImageData = useLabelStore.getState().label.get(activeImage)!
|
||||
// for (let [category, objArr] of activeImageData.entries()) {
|
||||
// objArr.forEach((item) => {
|
||||
// if (item[0] === id) {
|
||||
// categoryId = category
|
||||
// data = item
|
||||
// }
|
||||
// })
|
||||
// }
|
||||
// if (categoryId && data) {
|
||||
// const contours: [number, number][] = []
|
||||
// const tags: boolean[] = []
|
||||
// data[1].forEach((item: any) => {
|
||||
// contours.push(
|
||||
// item.map(([x, y]: any) => [
|
||||
// Math.round(x / currentScale),
|
||||
// Math.round(y / currentScale),
|
||||
// ])
|
||||
// )
|
||||
// tags.push(false)
|
||||
// })
|
||||
// data[3].forEach((item: any) => {
|
||||
// contours.push(
|
||||
// item.map(([x, y]: any) => [
|
||||
// Math.round(x / currentScale),
|
||||
// Math.round(y / currentScale),
|
||||
// ])
|
||||
// )
|
||||
// tags.push(true)
|
||||
// })
|
||||
// const file_names = [...new Set([activeImage, ...picArr])]
|
||||
// const params = {
|
||||
// project_id: projectDetail?.id || 0,
|
||||
// file_names,
|
||||
// image_hw: [height, width],
|
||||
// contours,
|
||||
// hollows: tags,
|
||||
// }
|
||||
// console.log("传参", params)
|
||||
// try {
|
||||
// const res = await getTrackingAuxiliaryAnnotation(
|
||||
// msgpack.encode(params)
|
||||
// )
|
||||
// const resData = msgpack.decode(new Uint8Array(res))
|
||||
// if (resData.msg === "success") {
|
||||
// const {
|
||||
// future_contours,
|
||||
// }: {
|
||||
// future_contours: {
|
||||
// contours: [number, number][][]
|
||||
// hollows: boolean[]
|
||||
// }[]
|
||||
// } = resData
|
||||
// const nowTaskData = safeClone(useLabelStore.getState().label)
|
||||
// future_contours.forEach(({ contours, hollows }, index) => {
|
||||
// const fileName = file_names[index + 1]
|
||||
// const imgScale =
|
||||
// usePaperStore.getState().rasterScale[fileName] ?? 1
|
||||
// let newId =
|
||||
// useRightToolsStore
|
||||
// .getState()
|
||||
// .pathIds.reduce((a, b) => Math.max(a, b), 0) + 1
|
||||
// useRightToolsStore.getState().pushPathId(newId)
|
||||
// // 处理点位数据
|
||||
// let segmentation: Array<[number, number][]> = []
|
||||
// let hollow_segmentation: Array<[number, number][]> = []
|
||||
// contours.forEach((contour, index) => {
|
||||
// if (!hollows[index])
|
||||
// segmentation.push(
|
||||
// contour.map(([x, y]: any) => [x * imgScale, y * imgScale])
|
||||
// )
|
||||
// else
|
||||
// hollow_segmentation.push(
|
||||
// contour.map(([x, y]: any) => [x * imgScale, y * imgScale])
|
||||
// )
|
||||
// })
|
||||
// // 详情数据
|
||||
// let detail = {
|
||||
// ...initialDetail,
|
||||
// uid: usePermissionStore.getState().user_id,
|
||||
// comment: [...useLabelStore.getState().labelDefaultComments],
|
||||
// create_timestamp: dayjs().unix(),
|
||||
// sub_attributes: {},
|
||||
// image_id: activeImage,
|
||||
// category_id: categoryId,
|
||||
// }
|
||||
// const updateData: any = [
|
||||
// newId,
|
||||
// segmentation,
|
||||
// detail,
|
||||
// hollow_segmentation,
|
||||
// ]
|
||||
// if (nowTaskData.has(fileName)) {
|
||||
// const categoryMap = nowTaskData.get(fileName)!
|
||||
// if (categoryMap.has(categoryId)) {
|
||||
// const existArr = categoryMap.get(categoryId)
|
||||
// existArr?.push(updateData)
|
||||
// } else {
|
||||
// categoryMap.set(categoryId, [updateData])
|
||||
// }
|
||||
// } else {
|
||||
// let m = new Map()
|
||||
// m.set(categoryId, [updateData])
|
||||
// nowTaskData.set(fileName, m)
|
||||
// }
|
||||
// })
|
||||
// console.log(nowTaskData)
|
||||
// useLabelStore.getState().setLabel(nowTaskData)
|
||||
// useLabelStore.getState().pushStateStack(nowTaskData)
|
||||
// notifications.show({
|
||||
// id: "sam2",
|
||||
// message: "模型生成成功",
|
||||
// color: "green",
|
||||
// })
|
||||
// }
|
||||
// } catch (error) {
|
||||
// console.log(error)
|
||||
// }
|
||||
// }
|
||||
// } else if (!ids.length) {
|
||||
// notifications.show({
|
||||
// id: "sam2",
|
||||
// message: "请先选中标注对象后再进行模型调用",
|
||||
// color: "red",
|
||||
// })
|
||||
// } else {
|
||||
// notifications.show({
|
||||
// id: "sam2",
|
||||
// message: "请勿选择多个标注对象进行模型调用",
|
||||
// color: "red",
|
||||
// })
|
||||
// }
|
||||
// } catch (error) {
|
||||
// console.log(error)
|
||||
// notifications.show({
|
||||
// id: "sam2",
|
||||
// message: "模型生成失败",
|
||||
// color: "red",
|
||||
// })
|
||||
// } finally {
|
||||
// updateLoadingFlag(false)
|
||||
// }
|
||||
// }, [activeImage, projectDetail?.id, updateLoadingFlag])
|
||||
|
||||
// const getBase64 = (file: any): Promise<string> =>
|
||||
// new Promise((resolve, reject) => {
|
||||
// const reader = new FileReader();
|
||||
// reader.readAsDataURL(file);
|
||||
// reader.onload = () => resolve(reader.result as string);
|
||||
// reader.onerror = (error) => reject(error);
|
||||
// });
|
||||
const renderTrackingAnnotation = useCallback(async () => {}, [])
|
||||
|
||||
useEffect(() => {
|
||||
if (setup) {
|
||||
@@ -1439,7 +1271,7 @@ const PaperContainer = (
|
||||
let pointTool = new paper.Tool()
|
||||
initPointTool(pointTool, renderCircle, renderPath, forceUpdate)
|
||||
let supportTool = new paper.Tool()
|
||||
initSupportTool(supportTool, renderSupportAnnotation2)
|
||||
initSupportTool(supportTool, renderSupportAnnotation)
|
||||
}
|
||||
return () => {
|
||||
newGroup.remove()
|
||||
@@ -1455,7 +1287,7 @@ const PaperContainer = (
|
||||
initRectangleTool,
|
||||
initSupportTool,
|
||||
initViewTool,
|
||||
renderSupportAnnotation2,
|
||||
renderSupportAnnotation,
|
||||
setup,
|
||||
])
|
||||
|
||||
@@ -4148,7 +3980,7 @@ const PaperContainer = (
|
||||
renderPolygons,
|
||||
handleCrosshairMove,
|
||||
renderTrackingAnnotation,
|
||||
renderSupportAnnotation2,
|
||||
renderSupportAnnotation,
|
||||
saveSupportAnnotationData,
|
||||
copyAnnotationDataToMultiFrame,
|
||||
}))
|
||||
|
||||
Reference in New Issue
Block a user