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What is TILDE?

TILDE (Term Independent Likelihood moDEl) functions as a framework designed for the re-ranking and expansion of passages, leveraging BERT to enhance retrieval performance by combining sparse term matching with sophisticated contextual representations. The original TILDE version computes term weights across the entire BERT vocabulary, which often leads to extremely large index sizes. To address this limitation, TILDEv2 introduces a more efficient approach by calculating term weights exclusively for words present in the expanded passages, resulting in indexes that can be 99% smaller than those produced by the initial TILDE model. This improved efficiency is achieved by deploying TILDE as a passage expansion model, which enriches passages with top-k terms (for instance, the top 200) to improve their content quality. Furthermore, it provides scripts that streamline the processes of indexing collections, re-ranking BM25 results, and training models using datasets such as MS MARCO, thus offering a well-rounded toolkit for enhancing information retrieval tasks. In essence, TILDEv2 signifies a major leap forward in the management and optimization of passage retrieval systems, contributing to more effective and efficient information access strategies. This progression not only benefits researchers but also has implications for practical applications in various domains.

What is MonoQwen-Vision?

MonoQwen2-VL-v0.1 is the first visual document reranker designed to enhance the quality of visual documents retrieved in Retrieval-Augmented Generation (RAG) systems. Traditional RAG techniques often involve converting documents into text using Optical Character Recognition (OCR), a process that can be time-consuming and frequently results in the loss of essential information, especially regarding non-text elements like charts and tables. To address these issues, MonoQwen2-VL-v0.1 leverages Visual Language Models (VLMs) that can directly analyze images, thus eliminating the need for OCR and preserving the integrity of visual content. The reranking procedure occurs in two phases: it initially uses separate encoding to generate a set of candidate documents, followed by a cross-encoding model that reorganizes these candidates based on their relevance to the specified query. By applying Low-Rank Adaptation (LoRA) on top of the Qwen2-VL-2B-Instruct model, MonoQwen2-VL-v0.1 not only delivers outstanding performance but also minimizes memory consumption. This groundbreaking method represents a major breakthrough in the management of visual data within RAG systems, leading to more efficient strategies for information retrieval. With the growing demand for effective visual information processing, MonoQwen2-VL-v0.1 sets a new standard for future developments in this field.

Media

Media

Integrations Supported

Hugging Face
Python

Integrations Supported

Hugging Face
Python

API Availability

Has API

API Availability

Has API

Pricing Information

Pricing not provided.
Free Trial Offered?
Free Version

Pricing Information

Pricing not provided.
Free Trial Offered?
Free Version

Supported Platforms

SaaS
Android
iPhone
iPad
Windows
Mac
On-Prem
Chromebook
Linux

Supported Platforms

SaaS
Android
iPhone
iPad
Windows
Mac
On-Prem
Chromebook
Linux

Customer Service / Support

Standard Support
24 Hour Support
Web-Based Support

Customer Service / Support

Standard Support
24 Hour Support
Web-Based Support

Training Options

Documentation Hub
Webinars
Online Training
On-Site Training

Training Options

Documentation Hub
Webinars
Online Training
On-Site Training

Company Facts

Organization Name

ielab

Company Location

United States

Company Website

github.com/ielab/TILDE/tree/main

Company Facts

Organization Name

LightOn

Date Founded

2016

Company Location

France

Company Website

www.lighton.ai/lighton-blogs/monoqwen-vision

Categories and Features

Categories and Features

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