samyak152002 commited on
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Create app/annotations.py

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  1. app/annotations.py +147 -0
app/annotations.py ADDED
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+ # annotations.py
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+ # this is beta-1
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+ import fitz # PyMuPDF
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+ from typing import List, Dict, Any, Tuple
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+ import language_tool_python
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+ import io
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+
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+ def extract_pdf_text(file) -> str:
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+ """Extracts full text from a PDF file using PyMuPDF."""
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+ try:
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+ # Open the PDF file
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+ doc = fitz.open(stream=file.read(), filetype="pdf") if not isinstance(file, str) else fitz.open(file)
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+ full_text = ""
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+ for page_num, page in enumerate(doc, start=1):
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+ text = page.get_text("text")
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+ full_text += text + "\n"
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+ print(f"Extracted text from page {page_num}: {len(text)} characters.")
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+ doc.close()
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+ print(f"Total extracted text length: {len(full_text)} characters.")
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+ return full_text
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+ except Exception as e:
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+ print(f"Error extracting text from PDF: {e}")
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+ return ""
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+
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+ def check_language_issues(full_text: str) -> Dict[str, Any]:
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+ """Check for language issues using LanguageTool."""
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+ try:
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+ language_tool = language_tool_python.LanguageTool('en-US')
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+ matches = language_tool.check(full_text)
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+ issues = []
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+ for match in matches:
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+ issues.append({
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+ "message": match.message,
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+ "context": match.context.strip(),
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+ "suggestions": match.replacements[:3] if match.replacements else [],
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+ "category": match.category,
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+ "rule_id": match.ruleId,
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+ "offset": match.offset,
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+ "length": match.errorLength
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+ })
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+ print(f"Total language issues found: {len(issues)}")
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+ return {
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+ "total_issues": len(issues),
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+ "issues": issues
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+ }
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+ except Exception as e:
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+ print(f"Error checking language issues: {e}")
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+ return {"error": str(e)}
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+
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+ def highlight_issues_in_pdf(file, language_matches: List[Dict[str, Any]]) -> bytes:
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+ """
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+ Highlights language issues in the PDF and returns the annotated PDF as bytes.
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+ This function maps LanguageTool matches to specific words in the PDF
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+ and highlights those words.
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+ """
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+ try:
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+ # Open the PDF
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+ doc = fitz.open(stream=file.read(), filetype="pdf") if not isinstance(file, str) else fitz.open(file)
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+ print(f"Opened PDF with {len(doc)} pages.")
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+
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+ # Extract words with positions from each page
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+ word_list = [] # List of tuples: (page_number, word, x0, y0, x1, y1)
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+ for page_number in range(len(doc)):
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+ page = doc[page_number]
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+ words = page.get_text("words") # List of tuples: (x0, y0, x1, y1, "word", block_no, line_no, word_no)
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+ for w in words:
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+ word_text = w[4]
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+ # **Fix:** Insert a space before '[' to ensure "globally [2]" instead of "globally[2]"
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+ if '[' in word_text:
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+ word_text = word_text.replace('[', ' [')
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+ word_list.append((page_number, word_text, w[0], w[1], w[2], w[3]))
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+ print(f"Total words extracted: {len(word_list)}")
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+
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+ # Concatenate all words to form the full text
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+ concatenated_text = " ".join([w[1] for w in word_list])
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+ print(f"Concatenated text length: {len(concatenated_text)} characters.")
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+
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+ # Iterate over each language issue
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+ for idx, issue in enumerate(language_matches, start=1):
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+ offset = issue["offset"]
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+ length = issue["length"]
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+ error_text = concatenated_text[offset:offset+length]
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+ print(f"\nIssue {idx}: '{error_text}' at offset {offset} with length {length}")
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+
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+ # Find the words that fall within the error span
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+ current_pos = 0
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+ target_words = []
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+ for word in word_list:
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+ word_text = word[1]
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+ word_length = len(word_text) + 1 # +1 for the space
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+
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+ if current_pos + word_length > offset and current_pos < offset + length:
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+ target_words.append(word)
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+ current_pos += word_length
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+
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+ if not target_words:
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+ print("No matching words found for this issue.")
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+ continue
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+
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+ # Add highlight annotations to the target words
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+ for target in target_words:
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+ page_num, word_text, x0, y0, x1, y1 = target
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+ page = doc[page_num]
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+ # Define a rectangle around the word with some padding
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+ rect = fitz.Rect(x0 - 1, y0 - 1, x1 + 1, y1 + 1)
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+ # Add a highlight annotation
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+ highlight = page.add_highlight_annot(rect)
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+ highlight.set_colors(stroke=(1, 1, 0)) # Yellow color
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+ highlight.update()
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+ print(f"Highlighted '{word_text}' on page {page_num + 1} at position ({x0}, {y0}, {x1}, {y1})")
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+
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+ # Save annotated PDF to bytes
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+ byte_stream = io.BytesIO()
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+ doc.save(byte_stream)
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+ annotated_pdf_bytes = byte_stream.getvalue()
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+ doc.close()
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+
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+ # Save annotated PDF locally for verification
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+ with open("annotated_temp.pdf", "wb") as f:
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+ f.write(annotated_pdf_bytes)
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+ print("Annotated PDF saved as 'annotated_temp.pdf' for manual verification.")
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+
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+ return annotated_pdf_bytes
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+ except Exception as e:
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+ print(f"Error in highlighting PDF: {e}")
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+ return b""
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+
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+ def analyze_pdf(file) -> Tuple[Dict[str, Any], bytes]:
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+ """Analyzes the PDF for language issues and returns results and annotated PDF."""
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+ try:
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+ # Reset file pointer before reading
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+ file.seek(0)
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+ full_text = extract_pdf_text(file)
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+ if not full_text:
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+ return {"error": "Failed to extract text from PDF."}, None
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+
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+ language_issues = check_language_issues(full_text)
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+ if "error" in language_issues:
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+ return language_issues, None
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+
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+ issues = language_issues.get("issues", [])
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+ # Reset file pointer before highlighting
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+ file.seek(0)
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+ annotated_pdf = highlight_issues_in_pdf(file, issues) if issues else None
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+ return language_issues, annotated_pdf
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+ except Exception as e:
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+ return {"error": str(e)}, None