Implement local OCR and batch processing CLI flag
Implemented optical character recognition (OCR) in the image_to_anki function to vastly enhance performance. Additionally, allowed batch processing of images via explicitly specified batch size in command-line arguments
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@ -1,6 +1,7 @@
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import base64
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from typing import Any
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from typing import Any, Optional
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import pytesseract
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import requests
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from PIL import Image
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from io import BytesIO
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@ -50,8 +51,18 @@ def crop_image_to_left_side(image: Image, crop_width) -> Image:
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# Resize the image and get base64 string
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# resized_image = resize_image(image_path, 1024, 512)
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def image_to_anki(image_paths: str | list[str]) -> tuple[str | None, Any]:
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# Function to perform OCR
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def ocr(image: Image, lang: Optional[str] = 'eng') -> str:
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text = pytesseract.image_to_string(image, lang=lang)
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return text
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def image_to_anki(image_paths: str | list[str], do_ocr: bool = False, lang: Optional[str] = None) -> tuple[
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str | None, Any]:
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images = []
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ocr_results = []
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if isinstance(image_paths, str):
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image_paths = [image_paths]
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for image_path in image_paths:
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@ -62,11 +73,41 @@ def image_to_anki(image_paths: str | list[str]) -> tuple[str | None, Any]:
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# exit(1)
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base64_image = encode_image(cropped_image)
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images.append(base64_image)
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if do_ocr:
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original_image = Image.open(image_path)
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print("doing local ocr...", end='')
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ocr_text = ocr(original_image, lang)
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print(f" done. local ocr resulted in {len(ocr_text)} characters.")
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# print(ocr_text) # or save it somewhere, or add it to your payload for further processing
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ocr_results.append(ocr_text)
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# print(resized_image.size)
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# exit(1)
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# generate image payload
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image_msgs = []
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for i, base64_image in enumerate(images):
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image_payload = {
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"type": "image_url",
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"image_url": {
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"url": f"data:image/jpeg;base64,{base64_image}",
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"detail": "high"
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}
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}
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if do_ocr:
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ocr_payload = {
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"type": "text",
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"text": "Here are OCR results for the following page. These might be flawed. Use them to improve your "
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"performance:\n " +
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ocr_results[i]
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}
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image_msgs.append(ocr_payload)
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image_msgs.append(image_payload)
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headers = {
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"Content-Type": "application/json",
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"Authorization": f"Bearer {api_key}"
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@ -97,18 +138,11 @@ def image_to_anki(image_paths: str | list[str]) -> tuple[str | None, Any]:
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# "url": f"data:image/jpeg;base64,{base64_image}"
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# }
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# }
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] + [{
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"type": "image_url",
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"image_url": {
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"url": f"data:image/jpeg;base64,{base64_image}",
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"detail": "high"
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}
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}
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for base64_image in images]
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] + image_msgs
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}
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],
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"max_tokens": 600 * len(images), # in general, around 350 tokens per page, so around double to be safe
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"temperature": 0.0,
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"temperature": 0.2,
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}
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response = requests.post("https://api.openai.com/v1/chat/completions", headers=headers, json=payload)
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@ -133,11 +167,12 @@ def test():
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# image_path = 'tmp.jpg'
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image_path = [
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'./.img/dict.pdf_7.png',
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'./.img/dict.pdf_8.png',
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# './.img/dict.pdf_7.png',
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# './.img/dict.pdf_8.png',
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'./.img/dict.pdf_103.png',
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]
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text, meta = image_to_anki(image_path)
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text, meta = image_to_anki(image_path, do_ocr=False, lang='eng+chi_sim')
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print(text)
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@ -148,10 +183,9 @@ def test():
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print(
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f'approx. cost: 0.0075$ per picture, {usage["prompt_tokens"] * 0.01 / 1000}$ for prompt tokens and {usage["completion_tokens"] * 0.01 / 1000}$ for completion tokens')
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cost_this = usage["prompt_tokens"] * 0.01 / 1000 + usage["completion_tokens"] * 0.01 / 1000 + 0.0075
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cost_this = usage["prompt_tokens"] * 0.01 / 1000 + usage["completion_tokens"] * 0.03 / 1000 # + 0.0075
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print(f'this page: {cost_this}$')
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if __name__ == '__main__':
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test()
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11
main.py
11
main.py
@ -18,6 +18,8 @@ def main():
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parser.add_argument('--pages', type=str, required=True, help='Specify pages to parse in format <num>-<num>')
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parser.add_argument('--output-file', type=str, default='out.md', help='Specify output file')
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parser.add_argument('--images-path', type=str, default='./.img/', help='Specify output file')
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parser.add_argument('--ocr', type=str, default=None, help='If present, send ocr=true to the image_to_anki method, and give the string value to the lang parameter')
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parser.add_argument('--batch-size', type=int, default=3, help='Decide how many pages are processed in parallel')
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parser.add_argument('pdf_file', type=str, help='Specify PDF file name')
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args = parser.parse_args()
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@ -62,11 +64,12 @@ def main():
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break_outer = False
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for i in range(len(paths) // IMGS_PER_REQUEST + 1):
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for i in range(len(paths) // args.batch_size + 1): # the batch size argument is used here
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# print(i)
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# collect images
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while True:
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to_process = paths[i * IMGS_PER_REQUEST:i * IMGS_PER_REQUEST + IMGS_PER_REQUEST]
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to_process = paths[i * args.batch_size:i * args.batch_size + args.batch_size] # the batch size argument is used here
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# print(to_process)
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if len(to_process) == 0:
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# skip if remaining list is empty (e.g. if 4 pages at package size 2)
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@ -74,7 +77,9 @@ def main():
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print(f'processing {len(to_process)} image{"s" if len(to_process) != 1 else ""}')
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cards, meta = dict_to_anki.image_to_anki(to_process)
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ocr = True if args.ocr else False # set OCR to True if --ocr parameter is present
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cards, meta = dict_to_anki.image_to_anki(to_process, do_ocr=ocr, lang=args.ocr)
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if not cards:
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print("Error processing! Response: " + meta)
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28
poetry.lock
generated
28
poetry.lock
generated
@ -269,6 +269,17 @@ typing-extensions = ">=4.7,<5"
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[package.extras]
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datalib = ["numpy (>=1)", "pandas (>=1.2.3)", "pandas-stubs (>=1.1.0.11)"]
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[[package]]
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name = "packaging"
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version = "23.2"
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description = "Core utilities for Python packages"
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optional = false
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python-versions = ">=3.7"
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files = [
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{file = "packaging-23.2-py3-none-any.whl", hash = "sha256:8c491190033a9af7e1d931d0b5dacc2ef47509b34dd0de67ed209b5203fc88c7"},
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{file = "packaging-23.2.tar.gz", hash = "sha256:048fb0e9405036518eaaf48a55953c750c11e1a1b68e0dd1a9d62ed0c092cfc5"},
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]
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[[package]]
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name = "pdf2image"
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version = "1.17.0"
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@ -478,6 +489,21 @@ files = [
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[package.dependencies]
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typing-extensions = ">=4.6.0,<4.7.0 || >4.7.0"
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[[package]]
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name = "pytesseract"
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version = "0.3.10"
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description = "Python-tesseract is a python wrapper for Google's Tesseract-OCR"
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optional = false
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python-versions = ">=3.7"
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files = [
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{file = "pytesseract-0.3.10-py3-none-any.whl", hash = "sha256:8f22cc98f765bf13517ead0c70effedb46c153540d25783e04014f28b55a5fc6"},
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{file = "pytesseract-0.3.10.tar.gz", hash = "sha256:f1c3a8b0f07fd01a1085d451f5b8315be6eec1d5577a6796d46dc7a62bd4120f"},
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]
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[package.dependencies]
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packaging = ">=21.3"
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Pillow = ">=8.0.0"
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[[package]]
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name = "requests"
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version = "2.31.0"
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@ -561,4 +587,4 @@ zstd = ["zstandard (>=0.18.0)"]
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[metadata]
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lock-version = "2.0"
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python-versions = "^3.10"
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content-hash = "1df31140161c62d430257e30b1ebbff75524b5614888dfc7809f90d5f09a5737"
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content-hash = "07e8002d23153d51441fa4c4a70af0d6022d127f2c6c9c900cb194741e9bbe6c"
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@ -12,6 +12,7 @@ openai = "^1.10.0"
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requests = "^2.31.0"
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pillow = "^10.2.0"
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pdf2image = "^1.17.0"
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pytesseract = "^0.3.10"
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[build-system]
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