基于区块链和社区检测方法的动态加密货币交易指数建模

Xiaoyan Xu, Beibei Zhang, Wei Lv, Weiwei
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引用次数: 1

摘要

本文利用在复杂网络结构分析中流行和热门的动态社区检测方法,提出了一个全球加密货币宏观在线交易趋势分析框架。该框架包括两种主要模式,一是利用本文提出的新型动态社区检测算法选择代表性加密货币的方法,二是提出了动态全球区块链交易态势感知指数模型(DGBIM)来分析和反映全球在线加密货币的宏观交易趋势。与GBI等经典和线下宏观交易分析指标相比,我们提出的DGBI模型在“飞小号”、“okcoin”、“火币”等主流在线交易市场抓取的大量真实加密货币交易数据上取得了相当好的结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Dynamic Crypto Currency Transaction Index Modelling Using Blockchain and Community Detection Method
In this paper, we propose a macro online transaction trend analysis framework for global crypto currencies by utilizing the dynamic community detection method which is popular and hot in structure analysis of the complex network. The proposed framework includes two major schemas, firstly, method for choosing the representative crypto currencies by utilizing our proposed novel dynamic community detection algorithm, secondly, the dynamic global block-chain transaction situation awareness index model (DGBIM) to analyze and to reflect macro transaction trend of the global online crypto currencies is presented. Compared with classical and offline macro transaction analysis index like GBI, our proposed DGBI model yields fairly good results on huge amount of real crypto currency transaction data crawled from mainstream online trading markets such as “feixiaohao”, “okcoin”, and “Huobi”.
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