ChartPipeline / scripts /process_svg copy.py
Ray1ee01's picture
Upload folder using huggingface_hub
58e6885 verified
Raw
History Blame Contribute Delete
15.7 kB
#!/usr/bin/env python3
import os
import json
import subprocess
import tempfile
import re
from PIL import Image, ImageDraw
import argparse
import glob
import xml.etree.ElementTree as ET
import uuid
import numpy as np
import threading
from concurrent.futures import ThreadPoolExecutor, as_completed
import sys
# Add project root to path for imports
current_dir = os.path.dirname(os.path.abspath(__file__))
project_root = os.path.dirname(current_dir)
sys.path.append(project_root)
# Thread-safe print function
print_lock = threading.Lock()
def thread_safe_print(*args, **kwargs):
with print_lock:
print(*args, **kwargs)
def get_element_bbox(svg_file, element):
"""Get bounding box for a single SVG element."""
# Create a temporary SVG with just this element
with tempfile.NamedTemporaryFile(suffix='.svg', delete=False) as temp_svg:
temp_svg_path = temp_svg.name
# Create a new SVG with just this element
tree = ET.parse(svg_file)
root = tree.getroot()
new_root = ET.Element(root.tag, root.attrib)
new_root.extend(root.findall('./svg:defs', {'svg': 'http://www.w3.org/2000/svg'})) # Copy defs
new_root.append(element)
# Save the temporary SVG
new_tree = ET.ElementTree(new_root)
ET.register_namespace('', 'http://www.w3.org/2000/svg')
new_tree.write(temp_svg_path)
# Convert to PNG
with tempfile.NamedTemporaryFile(suffix='.png', delete=False) as temp_png:
temp_png_path = temp_png.name
svg_to_png(temp_svg_path, temp_png_path)
# Get bounding box
x_min, y_min, x_max, y_max = get_precise_bbox(temp_png_path)
# Clean up
os.unlink(temp_svg_path)
os.unlink(temp_png_path)
return x_min, y_min, x_max - x_min, y_max - y_min
def svg_to_png(svg_path, png_path):
"""Convert SVG to PNG using rsvg-convert with a white background."""
# Add --background-color=#FFFFFF to set white background
cmd = ['rsvg-convert', '--background-color=#FFFFFF', svg_path, '-o', png_path]
subprocess.run(cmd, check=True)
def is_mostly_white(png_path, threshold=0.95):
"""Check if the image is mostly white (more than threshold percentage)."""
img = Image.open(png_path).convert("RGBA")
# Convert image to numpy array for efficient processing
img_array = np.array(img)
# Get total pixel count
total_pixels = img_array.shape[0] * img_array.shape[1]
# Count white pixels (R,G,B values all > 240)
rgb = img_array[:, :, :3]
white_pixels = np.sum(np.all(rgb > 240, axis=2))
# Calculate percentage of white pixels
white_percentage = white_pixels / total_pixels
return white_percentage >= threshold
def get_precise_bbox(png_path):
"""Get precise bounding box by detecting the exact non-transparent pixels."""
img = Image.open(png_path).convert("RGBA")
width, height = img.size
# Convert image to numpy array for efficient processing
img_array = np.array(img)
# Get alpha channel and RGB values
alpha = img_array[:, :, 3]
rgb = img_array[:, :, :3]
# Consider white pixels (255,255,255) as transparent too
is_white = np.all(rgb > 240, axis=2)
# Find non-transparent and non-white pixels
non_transparent = (alpha > 0) & (~is_white)
# If there are no non-transparent pixels, return the full image dimensions
if not np.any(non_transparent):
return 0, 0, width, height
# Find the bounds of non-transparent pixels
rows = np.any(non_transparent, axis=1)
cols = np.any(non_transparent, axis=0)
# Get the boundaries
y_min, y_max = np.where(rows)[0][[0, -1]]
x_min, x_max = np.where(cols)[0][[0, -1]]
# Get full image dimensions
return x_min, y_min, x_max + 1, y_max + 1
def draw_bounding_boxes(image_path, bbox_data, output_path):
"""Draw bounding boxes on the image and save with _box suffix."""
# Open the image
img = Image.open(image_path)
draw = ImageDraw.Draw(img)
# Define colors for different classes
colors = {
"chart": (255, 0, 0), # Red
"image": (0, 255, 0), # Green
"text": (0, 0, 255) # Blue
}
# Draw each bounding box
for bbox_info in bbox_data:
x, y, width, height = bbox_info["bbox"]
class_name = bbox_info["class"]
color = colors.get(class_name, (255, 255, 0)) # Default to yellow
# Draw rectangle with 2-pixel width
for i in range(2):
draw.rectangle(
[(x-i, y-i), (x+width+i, y+height+i)],
outline=color,
width=1
)
# Optionally add class name text
draw.text((x, y-15), class_name, fill=color)
# Save the image
img.save(output_path)
return output_path
def extract_image_elements(svg_file, output_svg):
"""Extract all image elements from SVG and save to a new SVG file."""
tree = ET.parse(svg_file)
root = tree.getroot()
# Define SVG namespace
ns = {'svg': 'http://www.w3.org/2000/svg'}
# Find all image elements
image_elements = root.findall('.//svg:image', ns)
if not image_elements:
return False
# Create a new SVG with all found image elements
new_root = ET.Element(root.tag, root.attrib)
new_root.extend(root.findall('./svg:defs', ns)) # Copy defs if any
# Add all found image elements to the new SVG
for element in image_elements:
new_root.append(element)
# Save to a new SVG file
new_tree = ET.ElementTree(new_root)
ET.register_namespace('', 'http://www.w3.org/2000/svg')
new_tree.write(output_svg)
return True
def get_accumulated_transform(element, tree, ns):
"""Get accumulated transform translation from all parent elements."""
total_x = 0
total_y = 0
thread_safe_print(f"Starting get_accumulated_transform for element: {element.tag}")
# Get all ancestors of the element
ancestors = []
current = element
while current is not None:
thread_safe_print(f"Processing ancestor: {current.tag}")
ancestors.append(current)
# Find parent by searching from root
parent = None
for parent_candidate in tree.getroot().iter():
if current in list(parent_candidate):
parent = parent_candidate
break
current = parent
thread_safe_print(f"Found {len(ancestors)} ancestors")
# Process each ancestor (excluding the element itself)
for ancestor in ancestors[1:]: # Skip the element itself
thread_safe_print(f"Checking transform for ancestor: {ancestor.tag}")
# Check for transform attribute
transform = ancestor.get('transform', '')
if transform:
thread_safe_print(f"Found transform: {transform}")
# Look for translate(x,y) in transform
translate_match = re.search(r'translate\(\s*([-\d.]+)[,\s]+([-\d.]+)', transform)
if translate_match:
total_x += float(translate_match.group(1))
total_y += float(translate_match.group(2))
thread_safe_print(f"Added translation: x={translate_match.group(1)}, y={translate_match.group(2)}")
thread_safe_print(f"Final accumulated transform: x={total_x}, y={total_y}")
return total_x, total_y
def process_single_svg(svg_file, output_dir, stats):
"""Process a single SVG file - worker function for thread pool"""
try:
thread_safe_print(f"\nProcessing file: {svg_file}")
base_name = os.path.splitext(os.path.basename(svg_file))[0]
# Parse the SVG file
thread_safe_print("Parsing SVG file...")
tree = ET.parse(svg_file)
root = tree.getroot()
ns = {'svg': 'http://www.w3.org/2000/svg'}
# Check if there's a chart element
thread_safe_print("Checking for chart elements...")
chart_elements = root.findall('.//*[@class="chart"]', ns)
if not chart_elements:
thread_safe_print(f"Warning: No chart element found in {svg_file}, skipping.")
with stats['lock']:
stats['skipped_charts'] += 1
return
# Convert the whole SVG to PNG
thread_safe_print("Converting SVG to PNG...")
output_png = os.path.join(output_dir, f"{base_name}.png")
svg_to_png(svg_file, output_png)
# Get image dimensions
thread_safe_print("Getting image dimensions...")
img = Image.open(output_png)
full_width, full_height = img.size
thread_safe_print(f"Image dimensions: {full_width}x{full_height}")
# Initialize the bounding box JSON for this image
bbox_data = {
"image": output_png,
"width": full_width,
"height": full_height,
"bounding_boxes": []
}
# Process each element class
class_to_id = {"chart": 1, "image": 2, "text": 3}
# Process chart and text elements (top-level)
thread_safe_print("Processing chart and text elements...")
for class_name in ["chart", "text"]:
elements = root.findall(f'.//*[@class="{class_name}"]', ns)
thread_safe_print(f"Found {len(elements)} {class_name} elements")
for element in elements:
thread_safe_print(f"Processing {class_name} element: {element.tag}")
x_min, y_min, width, height = get_element_bbox(svg_file, element)
if width > 0 and height > 0:
bbox_data["bounding_boxes"].append({
"class": class_name,
"category_id": class_to_id[class_name],
"bbox": [int(x_min), int(y_min), int(width), int(height)]
})
# Process image elements
thread_safe_print("Processing image elements...")
image_elements = root.findall('.//svg:image', ns)
thread_safe_print(f"Found {len(image_elements)} image elements")
for element in image_elements:
thread_safe_print(f"Processing image element: {element.tag}")
# Get accumulated transform from all parents
translate_x, translate_y = get_accumulated_transform(element, tree, ns)
thread_safe_print(f"Accumulated transform for image: x={translate_x}, y={translate_y}")
# Create a temporary SVG with just this image element
with tempfile.NamedTemporaryFile(suffix='.svg', delete=False) as temp_svg:
temp_svg_path = temp_svg.name
# Create a new SVG with just this image element
new_root = ET.Element(root.tag, root.attrib)
# Don't copy defs to avoid conflicts
new_root.append(element)
# Save the temporary SVG
new_tree = ET.ElementTree(new_root)
ET.register_namespace('', 'http://www.w3.org/2000/svg')
new_tree.write(temp_svg_path)
# Convert to PNG
with tempfile.NamedTemporaryFile(suffix='.png', delete=False) as temp_png:
temp_png_path = temp_png.name
svg_to_png(temp_svg_path, temp_png_path)
# Get precise bounding box
x_min, y_min, x_max, y_max = get_precise_bbox(temp_png_path)
thread_safe_print(f"Bounding box for image: x_min={x_min}, y_min={y_min}, x_max={x_max}, y_max={y_max}")
# Calculate width and height
width = x_max - x_min
height = y_max - y_min
if width > 0 and height > 0:
# Add accumulated transform to the bounding box position
bbox_data["bounding_boxes"].append({
"class": "image",
"category_id": class_to_id["image"],
"bbox": [int(x_min + translate_x), int(y_min + translate_y), int(width), int(height)]
})
# Clean up temporary files
os.unlink(temp_png_path)
os.unlink(temp_svg_path)
# Write the bounding box JSON file
thread_safe_print("Writing JSON file...")
output_json = os.path.join(output_dir, f"{base_name}.json")
with open(output_json, 'w') as f:
json.dump(bbox_data, f, indent=4)
# Generate PNG with bounding boxes
thread_safe_print("Generating PNG with bounding boxes...")
#output_png_with_boxes = os.path.join(output_dir, f"{base_name}_with_boxes.png")
#draw_bounding_boxes(output_png, bbox_data["bounding_boxes"], output_png_with_boxes)
#thread_safe_print(f"Successfully processed {svg_file} -> {output_png}, {output_png_with_boxes} and {output_json}")
with stats['lock']:
stats['processed_files'] += 1
except Exception as e:
thread_safe_print(f"Error processing {svg_file}: {str(e)}")
import traceback
thread_safe_print("Traceback:")
thread_safe_print(traceback.format_exc())
with stats['lock']:
stats['errors'] += 1
def process_svg_files(input_dir, output_dir, num_threads=10):
"""Process all SVG files in the input directory using thread pool."""
os.makedirs(output_dir, exist_ok=True)
# Statistics with thread-safe counters
stats = {
'processed_files': 0,
'skipped_charts': 0,
'errors': 0,
'lock': threading.Lock()
}
svg_files = glob.glob(os.path.join(input_dir, "*.svg"))
total_files = len(svg_files)
if total_files == 0:
print(f"No SVG files found in {input_dir}")
return
print(f"Found {total_files} SVG files in {input_dir}")
print(f"Processing with {num_threads} threads...")
# Use ThreadPoolExecutor to process files in parallel
with ThreadPoolExecutor(max_workers=num_threads) as executor:
# Submit all tasks and collect futures
futures = [executor.submit(process_single_svg, svg_file, output_dir, stats)
for svg_file in svg_files]
# Process as they complete (optional progress tracking)
for i, future in enumerate(as_completed(futures)):
# This just ensures we wait for each future to complete
# The actual processing and updates happen in process_single_svg
try:
future.result() # Get result to propagate any exceptions
except Exception as e:
thread_safe_print(f"Error in worker thread: {str(e)}")
# Optional progress reporting
if (i + 1) % 10 == 0 or (i + 1) == total_files:
thread_safe_print(f"Progress: {i + 1}/{total_files} files ({((i + 1)/total_files)*100:.1f}%)")
print(f"Finished processing {total_files} SVG files:")
print(f"- Successfully processed: {stats['processed_files']} files")
print(f"- Skipped charts (empty/white): {stats['skipped_charts']} files")
print(f"- Errors: {stats['errors']} files")
if __name__ == "__main__":
parser = argparse.ArgumentParser(description='Process SVG files and generate annotations.')
parser.add_argument('input', help='Directory containing SVG files')
parser.add_argument('output', help='Directory to save output files')
parser.add_argument('--threads', type=int, default=5, help='Number of concurrent threads (default: 10)')
args = parser.parse_args()
process_svg_files(args.input, args.output, args.threads)