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基于Android的记录点滴生活App设计与实现 被引量:1
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作者 王芳芳 罗小龙 《电脑知识与技术》 2020年第28期93-95,101,共4页
针对快节奏生活方式下用户不断增长的日程管理需求,基于Android开发设计并实现了一款记录点滴生活应用程序软件,旨在帮助用户提高时间利用效率、满足用户日常社交、记录用户生活轨迹。介绍了App的应用背景、实现目标、需求分析、设计建... 针对快节奏生活方式下用户不断增长的日程管理需求,基于Android开发设计并实现了一款记录点滴生活应用程序软件,旨在帮助用户提高时间利用效率、满足用户日常社交、记录用户生活轨迹。介绍了App的应用背景、实现目标、需求分析、设计建模、功能实现等内容。 展开更多
关键词 ANDROID 日程管理 轨迹地图 日常社交 APP
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铁路线路障碍物雷达检测关键算法研究 被引量:3
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作者 沙世伟 《铁道运输与经济》 北大核心 2020年第6期54-60,83,共8页
为了提升普速铁路行车环境的实时可靠监测,保障铁路运输环境安全,阐述雷达检测及其应用,通过基于坐标的铁路轨迹线分析算法,处理获取的线路固定数据,生成轨迹线简易地图,用于辅助定位和感兴趣区域的提取,利用LKJ确定车载雷达当前位置,... 为了提升普速铁路行车环境的实时可靠监测,保障铁路运输环境安全,阐述雷达检测及其应用,通过基于坐标的铁路轨迹线分析算法,处理获取的线路固定数据,生成轨迹线简易地图,用于辅助定位和感兴趣区域的提取,利用LKJ确定车载雷达当前位置,提取列车前方检测感兴趣区域,将实测的基于雷达目标点坐标信息转换到大地坐标系中,将目标点位置信息代入感兴趣区域中,判别确定铁路线路的障碍物。现场测试结果显示,该算法具有可行性且检测准确率较高。 展开更多
关键词 铁路 行车环境 轨迹线简易地图 车载雷达定位 感兴趣区域提取 障碍物检测
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Towards adaptable and tunable cloud-based map-matching strategy for GPS trajectories 被引量:2
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作者 Aftab Ahmed CHANDIO Nikos TZIRITAS +2 位作者 Fan ZHANG Ling YIN Cheng-Zhong XU 《Frontiers of Information Technology & Electronic Engineering》 SCIE EI CSCD 2016年第12期1305-1319,共15页
Smart cities have given a significant impetus to manage traffic and use transport networks in an intelligent way. For the above reason, intelligent transportation systems (ITSs) and location-based services (LBSs) ... Smart cities have given a significant impetus to manage traffic and use transport networks in an intelligent way. For the above reason, intelligent transportation systems (ITSs) and location-based services (LBSs) have become an interesting research area over the last years. Due to the rapid increase of data volume within the transportation domain, cloud environment is of paramount importance for storing, accessing, handling, and processing such huge amounts of data. A large part of data within the transportation domain is produced in the form of Global Positioning System (GPS) data. Such a kind of data is usually infrequent and noisy and achieving the quality of real-time transport applications based on GPS is a difficult task. The map-matching process, which is responsible for the accurate alignment of observed GPS positions onto a road network, plays a pivotal role in many ITS applications. Regarding accuracy, the performance of a map-matching strategy is based on the shortest path between two consecutive observed GPS positions. On the other extreme, processing shortest path queries (SPQs) incurs high computational cost. Current map-matching techniques are approached with a fixed number of parameters, i.e., the number of candidate points (NCP) and error circle radius (ECR), which may lead to uncertainty when identifying road segments and either low-accurate results or a large number of SPQs. Moreover, due to the sampling error, GPS data with a high-sampling period (i.e., less than 10 s) typically contains extraneous datum, which also incurs an extra number of SPQs. Due to the high computation cost incurred by SPQs, current map-matching strategies are not suitable for real-time processing. In this paper, we propose real-time map-matching (called RT-MM), which is a fully adaptive map-matching strategy based on cloud to address the key challenge of SPQs in a map-matching process for real-time GPS trajectories. The evaluation of our approach against state-of-the-art approaches is performed through simulations based on both synthetic and real-word datasets. 展开更多
关键词 Map-matching GPS trajectories Tuning-based Cloud computing Bulk synchronous parallel
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