folder_tree_3d.py 24 KB

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  1. import tkinter as tk
  2. from tkinter import filedialog, ttk, messagebox
  3. import os
  4. import math
  5. from tkinter import Canvas
  6. class FolderTree3D:
  7. def __init__(self, root):
  8. self.root = root
  9. self.root.title("文件夹3D树状图")
  10. self.root.geometry("1200x800")
  11. # 创建主框架
  12. main_frame = ttk.Frame(root)
  13. main_frame.pack(fill=tk.BOTH, expand=True, padx=10, pady=10)
  14. # 输入区域
  15. input_frame = ttk.Frame(main_frame)
  16. input_frame.pack(fill=tk.X, pady=(0, 10))
  17. ttk.Label(input_frame, text="文件夹路径:").pack(side=tk.LEFT, padx=(0, 5))
  18. self.path_var = tk.StringVar()
  19. self.path_entry = ttk.Entry(input_frame, textvariable=self.path_var, width=80)
  20. self.path_entry.pack(side=tk.LEFT, padx=(0, 5), fill=tk.X, expand=True)
  21. browse_btn = ttk.Button(input_frame, text="浏览", command=self.browse_folder)
  22. browse_btn.pack(side=tk.LEFT, padx=(0, 5))
  23. show_btn = ttk.Button(input_frame, text="显示3D树状图", command=self.show_3d_tree)
  24. show_btn.pack(side=tk.LEFT)
  25. # 缩放控制
  26. zoom_frame = ttk.Frame(main_frame)
  27. zoom_frame.pack(fill=tk.X, pady=(0, 5))
  28. ttk.Label(zoom_frame, text="缩放:").pack(side=tk.LEFT, padx=(0, 5))
  29. self.zoom_var = tk.DoubleVar(value=1.0)
  30. self.zoom_scale = ttk.Scale(zoom_frame, from_=0.1, to=2.0, variable=self.zoom_var, command=self.on_zoom)
  31. self.zoom_scale.pack(side=tk.LEFT, fill=tk.X, expand=True, padx=(0, 5))
  32. self.zoom_label = ttk.Label(zoom_frame, text="100%")
  33. self.zoom_label.pack(side=tk.LEFT)
  34. # 3D显示区域
  35. self.canvas = Canvas(main_frame, bg="white")
  36. self.canvas.pack(fill=tk.BOTH, expand=True)
  37. # 缩放和平移支持
  38. self.scale = 1.0
  39. self.offset_x = 0
  40. self.offset_y = 0
  41. self.last_x = 0
  42. self.last_y = 0
  43. self.dragging = False
  44. # 绑定鼠标事件
  45. self.canvas.bind("<ButtonPress-1>", self.on_press)
  46. self.canvas.bind("<B1-Motion>", self.on_drag)
  47. self.canvas.bind("<ButtonRelease-1>", self.on_release)
  48. self.canvas.bind("<MouseWheel>", self.on_mouse_wheel)
  49. # 文件夹数据
  50. self.folder_data = {}
  51. self.max_depth = 0
  52. self.tree_data = [] # 存储所有节点数据,用于缩放重绘
  53. # 历史记录
  54. self.history = []
  55. self.max_history = 3
  56. self.history_file = "history.txt"
  57. # 加载历史记录
  58. self.load_history()
  59. # 历史记录显示区域
  60. history_frame = ttk.Frame(main_frame)
  61. history_frame.pack(fill=tk.X, pady=(10, 0))
  62. ttk.Label(history_frame, text="历史记录:").pack(side=tk.LEFT, padx=(0, 10))
  63. self.history_buttons = []
  64. for i in range(self.max_history):
  65. btn = ttk.Button(history_frame, text="", width=30, command=lambda idx=i: self.select_history(idx))
  66. btn.pack(side=tk.LEFT, padx=(0, 5))
  67. self.history_buttons.append(btn)
  68. # 更新历史记录显示
  69. self.update_history_display()
  70. def browse_folder(self):
  71. folder_path = filedialog.askdirectory()
  72. if folder_path:
  73. self.path_var.set(folder_path)
  74. def scan_folder(self, folder_path, depth=0):
  75. if depth > self.max_depth:
  76. self.max_depth = depth
  77. try:
  78. items = os.listdir(folder_path)
  79. folders = []
  80. files = []
  81. for item in items:
  82. item_path = os.path.join(folder_path, item)
  83. if os.path.isdir(item_path):
  84. folders.append(item)
  85. self.scan_folder(item_path, depth + 1)
  86. else:
  87. files.append(item)
  88. self.folder_data[folder_path] = {"folders": folders, "files": files, "depth": depth}
  89. except Exception as e:
  90. print(f"扫描文件夹出错: {e}")
  91. def draw_3d_tree(self):
  92. self.canvas.delete("all")
  93. self.tree_data = []
  94. if not self.folder_data:
  95. return
  96. # 收集树状数据
  97. self.collect_tree_data(self.path_var.get(), 0, self.canvas.winfo_width()//2, 100)
  98. # 绘制树状图
  99. self.draw_tree_from_data()
  100. def collect_tree_data(self, folder_path, depth=0, root_x=0, root_y=0):
  101. if folder_path not in self.folder_data:
  102. return
  103. data = self.folder_data[folder_path]
  104. folders = data["folders"]
  105. files = data["files"]
  106. # 计算当前节点位置
  107. node = {
  108. "type": "folder",
  109. "path": folder_path,
  110. "name": os.path.basename(folder_path),
  111. "x": root_x,
  112. "y": root_y,
  113. "depth": depth,
  114. "children": []
  115. }
  116. self.tree_data.append(node)
  117. # 收集所有层级的节点和父节点关系
  118. all_nodes = []
  119. self.collect_all_nodes(folder_path, depth, all_nodes)
  120. # 按层级分组
  121. level_nodes = {}
  122. for node_data in all_nodes:
  123. level = node_data["depth"]
  124. if level not in level_nodes:
  125. level_nodes[level] = []
  126. level_nodes[level].append(node_data)
  127. # 重新计算所有节点位置,使用扇区布局
  128. self.calculate_sector_positions(root_x, root_y, level_nodes)
  129. def collect_all_nodes(self, folder_path, depth, all_nodes):
  130. if folder_path not in self.folder_data:
  131. return
  132. data = self.folder_data[folder_path]
  133. folders = data["folders"]
  134. files = data["files"]
  135. # 添加当前文件夹的子节点
  136. for folder in folders:
  137. folder_path_full = os.path.join(folder_path, folder)
  138. node_data = {
  139. "type": "folder",
  140. "name": folder,
  141. "path": folder_path_full,
  142. "depth": depth + 1,
  143. "parent": folder_path
  144. }
  145. all_nodes.append(node_data)
  146. self.collect_all_nodes(folder_path_full, depth + 1, all_nodes)
  147. for file in files:
  148. node_data = {
  149. "type": "file",
  150. "name": file,
  151. "path": os.path.join(folder_path, file),
  152. "depth": depth + 1,
  153. "parent": folder_path
  154. }
  155. all_nodes.append(node_data)
  156. def calculate_sector_positions(self, root_x, root_y, level_nodes):
  157. # 清空原有数据,重新绘制
  158. self.tree_data = [{
  159. "type": "folder",
  160. "name": os.path.basename(self.path_var.get()),
  161. "path": self.path_var.get(),
  162. "x": root_x,
  163. "y": root_y,
  164. "depth": 0
  165. }]
  166. # 先计算所有节点的位置
  167. all_node_data = []
  168. # 为每个层级计算位置
  169. for level in sorted(level_nodes.keys()):
  170. nodes = level_nodes[level]
  171. total_nodes = len(nodes)
  172. if total_nodes == 0:
  173. continue
  174. radius = level * 100
  175. # 按父节点分组
  176. parent_groups = {}
  177. for node_data in nodes:
  178. parent = node_data["parent"]
  179. if parent not in parent_groups:
  180. parent_groups[parent] = []
  181. parent_groups[parent].append(node_data)
  182. # 为每个父节点的子节点计算位置
  183. for parent_path, group_nodes in parent_groups.items():
  184. parent_node = next((n for n in self.tree_data if n["path"] == parent_path), None)
  185. if not parent_node:
  186. continue
  187. # 计算当前层级的扇区范围
  188. # 父节点所在环的文件夹个数
  189. parent_level = parent_node["depth"]
  190. parent_level_nodes = []
  191. if parent_level in level_nodes:
  192. parent_level_nodes = [n for n in level_nodes[parent_level] if n["type"] == "folder"]
  193. else:
  194. parent_level_nodes = [parent_node] if parent_node["type"] == "folder" else []
  195. total_parent_folders = len(parent_level_nodes)
  196. if total_parent_folders == 0:
  197. total_parent_folders = 1
  198. # 每个文件夹分配360度/total_parent_folders的扇区
  199. sector_angle = 2 * math.pi / total_parent_folders
  200. # 找到父节点在同级中的位置
  201. parent_index = 0
  202. if parent_level in level_nodes and parent_node["type"] == "folder":
  203. for i, n in enumerate(parent_level_nodes):
  204. if n["path"] == parent_path:
  205. parent_index = i
  206. break
  207. # 计算父节点的扇区
  208. start_angle = parent_index * sector_angle
  209. end_angle = (parent_index + 1) * sector_angle
  210. sector_width = end_angle - start_angle
  211. # 在扇区内均匀分布子节点
  212. angle_step = sector_width / len(group_nodes)
  213. for i, node_data in enumerate(group_nodes):
  214. angle = start_angle + (i + 0.5) * angle_step
  215. # 文件夹在大圆上,文件在小圆上
  216. if node_data["type"] == "folder":
  217. current_radius = radius
  218. else:
  219. current_radius = radius - 40
  220. x = root_x + current_radius * math.cos(angle)
  221. y = root_y + current_radius * math.sin(angle)
  222. # 保存扇区信息
  223. node_data["sector_start"] = start_angle + i * angle_step
  224. node_data["sector_end"] = start_angle + (i + 1) * angle_step
  225. node_data["x"] = x
  226. node_data["y"] = y
  227. node_data["angle"] = angle
  228. all_node_data.append(node_data)
  229. self.tree_data.append({
  230. "type": node_data["type"],
  231. "name": node_data["name"],
  232. "path": node_data["path"],
  233. "x": x,
  234. "y": y,
  235. "depth": level,
  236. "parent_path": node_data["parent"],
  237. "sector_start": node_data["sector_start"],
  238. "sector_end": node_data["sector_end"],
  239. "angle": angle
  240. })
  241. # 保存扇区信息
  242. node_data["sector_start"] = start_angle + i * angle_step
  243. node_data["sector_end"] = start_angle + (i + 1) * angle_step
  244. # 调整父节点位置,使其与子节点中间位置对齐
  245. # 从最深层级开始向上调整
  246. max_level = max(level_nodes.keys()) if level_nodes else 0
  247. for level in range(max_level, 0, -1):
  248. if level not in level_nodes:
  249. continue
  250. # 找到当前层级的文件夹
  251. current_folders = [n for n in level_nodes[level] if n["type"] == "folder"]
  252. for folder in current_folders:
  253. # 找到该文件夹的所有子节点
  254. child_nodes = [n for n in all_node_data if n["parent"] == folder["path"]]
  255. if not child_nodes:
  256. continue
  257. # 计算子节点的平均角度
  258. total_angle = sum(n["angle"] for n in child_nodes)
  259. avg_angle = total_angle / len(child_nodes)
  260. # 找到父节点
  261. parent_node = next((n for n in self.tree_data if n["path"] == folder["path"]), None)
  262. if parent_node:
  263. # 调整父节点位置
  264. radius = level * 100
  265. x = root_x + radius * math.cos(avg_angle)
  266. y = root_y + radius * math.sin(avg_angle)
  267. parent_node["x"] = x
  268. parent_node["y"] = y
  269. parent_node["angle"] = avg_angle
  270. def draw_node(self, x, y, folder_path, depth, width, level_spacing):
  271. # 改为使用收集的数据进行绘制
  272. pass
  273. def draw_tree_from_data(self):
  274. self.canvas.delete("all")
  275. for node in self.tree_data:
  276. # 应用缩放和平移
  277. x = node["x"] * self.scale + self.offset_x
  278. y = node["y"] * self.scale + self.offset_y
  279. if node["type"] == "folder":
  280. node_radius = min(15, 15 * self.scale) # 缩小文件夹节点
  281. self.canvas.create_oval(x - node_radius, y - node_radius, x + node_radius, y + node_radius, fill="#4CAF50", outline="#2E7D32")
  282. font_size = min(8, int(8 * self.scale)) # 缩小字体
  283. self.canvas.create_text(x, y, text=node["name"][:8] + "..." if len(node["name"]) > 8 else node["name"], fill="white", font=("Arial", font_size, "bold"))
  284. else:
  285. file_width = min(20, 20 * self.scale) # 缩小文件节点
  286. file_height = min(15, 15 * self.scale)
  287. self.canvas.create_rectangle(x - file_width//2, y - file_height//2, x + file_width//2, y + file_height//2, fill="#2196F3", outline="#1565C0")
  288. font_size = min(6, int(6 * self.scale)) # 缩小字体
  289. self.canvas.create_text(x, y, text=node["name"][:6] + "..." if len(node["name"]) > 6 else node["name"], fill="white", font=("Arial", font_size))
  290. # 绘制连接线
  291. for node in self.tree_data:
  292. if "parent_path" in node:
  293. # 找到父节点
  294. parent_node = next((n for n in self.tree_data if n["path"] == node["parent_path"]), None)
  295. if parent_node:
  296. x1 = parent_node["x"] * self.scale + self.offset_x
  297. y1 = parent_node["y"] * self.scale + self.offset_y
  298. x2 = node["x"] * self.scale + self.offset_x
  299. y2 = node["y"] * self.scale + self.offset_y
  300. self.canvas.create_line(x1, y1, x2, y2, fill="#666666", width=1)
  301. # 绘制从圆心到文件夹的红色射线,向外射出
  302. root_node = self.tree_data[0]
  303. # 使用未缩放的坐标进行计算
  304. root_x_unscaled = root_node["x"]
  305. root_y_unscaled = root_node["y"]
  306. for node in self.tree_data:
  307. if node["type"] == "folder" and node["depth"] > 0: # 排除根节点
  308. # 使用未缩放的坐标进行计算
  309. folder_x_unscaled = node["x"]
  310. folder_y_unscaled = node["y"]
  311. # 计算射线方向向量(未缩放)
  312. dx_unscaled = folder_x_unscaled - root_x_unscaled
  313. dy_unscaled = folder_y_unscaled - root_y_unscaled
  314. # 计算向量长度(未缩放)
  315. distance_unscaled = math.sqrt(dx_unscaled * dx_unscaled + dy_unscaled * dy_unscaled)
  316. if distance_unscaled > 0:
  317. # 归一化方向向量(未缩放)
  318. unit_dx = dx_unscaled / distance_unscaled
  319. unit_dy = dy_unscaled / distance_unscaled
  320. # 计算射线延伸的终点(未缩放)
  321. extension_length_unscaled = 100 # 延伸长度,100像素(未缩放)
  322. end_x_unscaled = folder_x_unscaled + unit_dx * extension_length_unscaled
  323. end_y_unscaled = folder_y_unscaled + unit_dy * extension_length_unscaled
  324. # 应用缩放和偏移,准备绘制
  325. root_x = root_x_unscaled * self.scale + self.offset_x
  326. root_y = root_y_unscaled * self.scale + self.offset_y
  327. folder_x = folder_x_unscaled * self.scale + self.offset_x
  328. folder_y = folder_y_unscaled * self.scale + self.offset_y
  329. end_x = end_x_unscaled * self.scale + self.offset_x
  330. end_y = end_y_unscaled * self.scale + self.offset_y
  331. # 绘制红色射线,从圆心到延伸的终点
  332. self.canvas.create_line(root_x, root_y, end_x, end_y, fill="#FF0000", width=1)
  333. # 计算红色射线与文件所在圆圈的交点,并绘制绿色点
  334. # 文件所在圆圈的半径(基于文件的深度,未缩放)
  335. # 文件的深度是文件夹深度 + 1
  336. folder_depth = node["depth"]
  337. file_depth = folder_depth + 1
  338. file_circle_radius_unscaled = file_depth * 100 - 40
  339. # 计算射线与文件所在圆圈的交点(使用未缩放的坐标)
  340. # 使用勾股定理计算交点
  341. a = dx_unscaled * dx_unscaled + dy_unscaled * dy_unscaled
  342. b = 2 * (root_x_unscaled * dx_unscaled + root_y_unscaled * dy_unscaled)
  343. c = root_x_unscaled * root_x_unscaled + root_y_unscaled * root_y_unscaled - file_circle_radius_unscaled * file_circle_radius_unscaled
  344. # 计算判别式
  345. discriminant = b * b - 4 * a * c
  346. if discriminant >= 0:
  347. # 计算两个交点参数
  348. t1 = (-b + math.sqrt(discriminant)) / (2 * a)
  349. t2 = (-b - math.sqrt(discriminant)) / (2 * a)
  350. # 找到在射线方向上的交点(t>0)
  351. for t in [t1, t2]:
  352. if t > 0:
  353. # 计算交点(未缩放)
  354. intersection_x_unscaled = root_x_unscaled + t * dx_unscaled
  355. intersection_y_unscaled = root_y_unscaled + t * dy_unscaled
  356. # 应用缩放和偏移
  357. intersection_x = intersection_x_unscaled * self.scale + self.offset_x
  358. intersection_y = intersection_y_unscaled * self.scale + self.offset_y
  359. # 绘制绿色点
  360. self.canvas.create_oval(intersection_x - 3, intersection_y - 3, intersection_x + 3, intersection_y + 3, fill="#00FF00", outline="#00FF00", width=1)
  361. # 绘制同心圆
  362. max_level = max(node["depth"] for node in self.tree_data)
  363. # Get root node position after scale and offset
  364. root_node = self.tree_data[0]
  365. root_x = root_node["x"] * self.scale + self.offset_x
  366. root_y = root_node["y"] * self.scale + self.offset_y
  367. for level in range(1, max_level + 1):
  368. radius = level * 100 * self.scale
  369. self.canvas.create_oval(root_x - radius, root_y - radius, root_x + radius, root_y + radius, outline="#333333", width=1)
  370. # 在内侧40px处添加小同心圆
  371. inner_radius = radius - 40 * self.scale
  372. if inner_radius > 0:
  373. self.canvas.create_oval(root_x - inner_radius, root_y - inner_radius, root_x + inner_radius, root_y + inner_radius, outline="#666666", width=1)
  374. def draw_3d_line(self, x1, y1, x2, y2):
  375. # 绘制连接线,使用更细的线条
  376. self.canvas.create_line(x1, y1, x2, y2, fill="#757575", width=1)
  377. self.canvas.create_line(x1 + 1, y1 + 1, x2 + 1, y2 + 1, fill="#BDBDBD", width=0.5)
  378. def on_zoom(self, value):
  379. self.scale = float(value)
  380. self.zoom_label.config(text=f"{int(self.scale * 100)}%")
  381. if self.tree_data:
  382. self.draw_tree_from_data()
  383. def on_press(self, event):
  384. self.last_x = event.x
  385. self.last_y = event.y
  386. self.dragging = True
  387. def on_drag(self, event):
  388. if self.dragging:
  389. dx = event.x - self.last_x
  390. dy = event.y - self.last_y
  391. self.offset_x += dx
  392. self.offset_y += dy
  393. self.last_x = event.x
  394. self.last_y = event.y
  395. if self.tree_data:
  396. self.draw_tree_from_data()
  397. def on_release(self, event):
  398. self.dragging = False
  399. def on_mouse_wheel(self, event):
  400. # 鼠标滚轮缩放
  401. delta = event.delta
  402. if delta > 0:
  403. self.scale = min(2.0, self.scale * 1.1)
  404. else:
  405. self.scale = max(0.1, self.scale * 0.9)
  406. self.zoom_var.set(self.scale)
  407. self.zoom_label.config(text=f"{int(self.scale * 100)}%")
  408. if self.tree_data:
  409. self.draw_tree_from_data()
  410. def show_3d_tree(self):
  411. folder_path = self.path_var.get()
  412. if not folder_path or not os.path.isdir(folder_path):
  413. messagebox.showerror("错误", "请选择有效的文件夹路径")
  414. return
  415. # 添加到历史记录
  416. self.add_to_history(folder_path)
  417. self.folder_data = {}
  418. self.max_depth = 0
  419. self.scan_folder(folder_path)
  420. self.draw_3d_tree()
  421. def add_to_history(self, folder_path):
  422. # 如果路径已在历史记录中,先移除
  423. if folder_path in self.history:
  424. self.history.remove(folder_path)
  425. # 添加到历史记录开头
  426. self.history.insert(0, folder_path)
  427. # 限制历史记录数量
  428. if len(self.history) > self.max_history:
  429. self.history = self.history[:self.max_history]
  430. # 更新历史记录显示
  431. self.update_history_display()
  432. # 保存历史记录到文件
  433. self.save_history()
  434. def update_history_display(self):
  435. # 更新历史记录按钮
  436. for i in range(self.max_history):
  437. if i < len(self.history):
  438. # 显示路径的最后部分
  439. path_parts = self.history[i].split(os.sep)
  440. display_text = os.sep.join(path_parts[-3:])
  441. if len(display_text) > 28:
  442. display_text = "..." + display_text[-25:]
  443. self.history_buttons[i].config(text=display_text, state=tk.NORMAL)
  444. else:
  445. self.history_buttons[i].config(text="", state=tk.DISABLED)
  446. def select_history(self, index):
  447. if index < len(self.history):
  448. folder_path = self.history[index]
  449. self.path_var.set(folder_path)
  450. # 重新显示树状图
  451. self.show_3d_tree()
  452. def load_history(self):
  453. """加载历史记录"""
  454. try:
  455. if os.path.exists(self.history_file):
  456. with open(self.history_file, 'r', encoding='utf-8') as f:
  457. lines = f.readlines()
  458. self.history = [line.strip() for line in lines if line.strip()]
  459. # 限制历史记录数量
  460. if len(self.history) > self.max_history:
  461. self.history = self.history[:self.max_history]
  462. except Exception as e:
  463. print(f"加载历史记录出错: {e}")
  464. def save_history(self):
  465. """保存历史记录"""
  466. try:
  467. with open(self.history_file, 'w', encoding='utf-8') as f:
  468. for path in self.history:
  469. f.write(path + '\n')
  470. except Exception as e:
  471. print(f"保存历史记录出错: {e}")
  472. if __name__ == "__main__":
  473. root = tk.Tk()
  474. app = FolderTree3D(root)
  475. root.mainloop()