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feat(vlm): Dynamic prompts (#1808)
* Unify temperature options for Vlm models * Dynamic prompt support with example * DCO Remediation Commit for Shkarupa Alex <shkarupa.alex@gmail.com> I, Shkarupa Alex <shkarupa.alex@gmail.com>, hereby add my Signed-off-by to this commit:34d446cb98I, Shkarupa Alex <shkarupa.alex@gmail.com>, hereby add my Signed-off-by to this commit:9c595d574fSigned-off-by: Shkarupa Alex <shkarupa.alex@gmail.com> * Replace Page with SegmentedPage * Fix example HF repo link Signed-off-by: Christoph Auer <60343111+cau-git@users.noreply.github.com> * Sign-off Signed-off-by: Shkarupa Alex <shkarupa.alex@gmail.com> * DCO Remediation Commit for Shkarupa Alex <shkarupa.alex@gmail.com> I, Shkarupa Alex <shkarupa.alex@gmail.com>, hereby add my Signed-off-by to this commit:1a162066ddSigned-off-by: Shkarupa Alex <shkarupa.alex@gmail.com> Signed-off-by: Shkarupa Alex <shkarupa.alex@gmail.com> * Use lmstudio-community model Signed-off-by: Christoph Auer <60343111+cau-git@users.noreply.github.com> * Swap inference engine to LM Studio Signed-off-by: Shkarupa Alex <shkarupa.alex@gmail.com> --------- Signed-off-by: Shkarupa Alex <shkarupa.alex@gmail.com> Signed-off-by: Christoph Auer <60343111+cau-git@users.noreply.github.com> Co-authored-by: Christoph Auer <60343111+cau-git@users.noreply.github.com>
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71
docs/examples/vlm_pipeline_api_model.py
vendored
71
docs/examples/vlm_pipeline_api_model.py
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@@ -1,8 +1,10 @@
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import logging
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import os
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from pathlib import Path
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from typing import Optional
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import requests
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from docling_core.types.doc.page import SegmentedPage
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from dotenv import load_dotenv
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from docling.datamodel.base_models import InputFormat
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@@ -32,6 +34,69 @@ def lms_vlm_options(model: str, prompt: str, format: ResponseFormat):
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return options
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#### Using LM Studio with OlmOcr model
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def lms_olmocr_vlm_options(model: str):
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def _dynamic_olmocr_prompt(page: Optional[SegmentedPage]):
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if page is None:
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return (
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"Below is the image of one page of a document. Just return the plain text"
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" representation of this document as if you were reading it naturally.\n"
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"Do not hallucinate.\n"
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)
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anchor = [
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f"Page dimensions: {int(page.dimension.width)}x{int(page.dimension.height)}"
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]
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for text_cell in page.textline_cells:
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if not text_cell.text.strip():
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continue
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bbox = text_cell.rect.to_bounding_box().to_bottom_left_origin(
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page.dimension.height
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)
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anchor.append(f"[{int(bbox.l)}x{int(bbox.b)}] {text_cell.text}")
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for image_cell in page.bitmap_resources:
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bbox = image_cell.rect.to_bounding_box().to_bottom_left_origin(
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page.dimension.height
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)
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anchor.append(
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f"[Image {int(bbox.l)}x{int(bbox.b)} to {int(bbox.r)}x{int(bbox.t)}]"
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)
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if len(anchor) == 1:
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anchor.append(
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f"[Image 0x0 to {int(page.dimension.width)}x{int(page.dimension.height)}]"
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)
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# Original prompt uses cells sorting. We are skipping it in this demo.
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base_text = "\n".join(anchor)
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return (
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f"Below is the image of one page of a document, as well as some raw textual"
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f" content that was previously extracted for it. Just return the plain text"
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f" representation of this document as if you were reading it naturally.\n"
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f"Do not hallucinate.\n"
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f"RAW_TEXT_START\n{base_text}\nRAW_TEXT_END"
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)
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options = ApiVlmOptions(
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url="http://localhost:1234/v1/chat/completions",
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params=dict(
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model=model,
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),
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prompt=_dynamic_olmocr_prompt,
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timeout=90,
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scale=1.0,
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max_size=1024, # from OlmOcr pipeline
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response_format=ResponseFormat.MARKDOWN,
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)
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return options
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#### Using Ollama
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@@ -123,6 +188,12 @@ def main():
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# format=ResponseFormat.MARKDOWN,
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# )
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# Example using the OlmOcr (dynamic prompt) model with LM Studio:
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# (uncomment the following lines)
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# pipeline_options.vlm_options = lms_olmocr_vlm_options(
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# model="hf.co/lmstudio-community/olmOCR-7B-0225-preview-GGUF",
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# )
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# Example using the Granite Vision model with Ollama:
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# (uncomment the following lines)
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# pipeline_options.vlm_options = ollama_vlm_options(
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