IcoRating: A Deep-Learning System for Scam ICO Identification
Shuqing Bian, Zhenpeng Deng, Fei Li, Will Monroe, Peng Shi, Zijun Sun,, Wei Wu, Sikuang Wang, William Yang Wang, Arianna Yuan, Tianwei Zhang and, Jiwei Li

TL;DR
IcoRating is a deep-learning system that analyzes multiple features of ICO projects using natural language processing and supervised learning to identify scams with high precision, aiding investors in decision-making.
Contribution
This work introduces the first learning-based system for ICO rating, combining NLP and supervised models to detect scams with high accuracy.
Findings
Achieved 0.83 precision in scam ICO detection
Analyzed 2,251 digital currencies using diverse features
Utilized NLP techniques on white papers, websites, and repositories
Abstract
Cryptocurrencies (or digital tokens, digital currencies, e.g., BTC, ETH, XRP, NEO) have been rapidly gaining ground in use, value, and understanding among the public, bringing astonishing profits to investors. Unlike other money and banking systems, most digital tokens do not require central authorities. Being decentralized poses significant challenges for credit rating. Most ICOs are currently not subject to government regulations, which makes a reliable credit rating system for ICO projects necessary and urgent. In this paper, we introduce IcoRating, the first learning--based cryptocurrency rating system. We exploit natural-language processing techniques to analyze various aspects of 2,251 digital currencies to date, such as white paper content, founding teams, Github repositories, websites, etc. Supervised learning models are used to correlate the life span and the price change of…
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Taxonomy
TopicsBlockchain Technology Applications and Security · FinTech, Crowdfunding, Digital Finance · Big Data and Digital Economy
