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Storage Management Strategy in Mobile Phones for Photo Crowdsensing

机译:手机中用于照片拥挤的存储管理策略

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摘要

In mobile crowdsensing, some users jointly finish a sensing task through the sensors equipped in their intelligent terminals. In particular, the photo crowdsensing based on Mobile Edge Computing (MEC) collects pictures for some specific targets or events and uploads them to nearby edge servers, which leads to richer data content and more efficient data storage compared with the common mobile crowdsensing; hence, it has attracted an important amount of attention recently. However, the mobile users prefer uploading the photos through Wifi APs (PoIs) rather than cellular networks. Therefore, photos stored in mobile phones are exchanged among users, in order to quickly upload them to the PoIs, which are actually the edge services. In this paper, we propose a utility-based Storage Management strategy in mobile phones for Photo Crowdsensing (SMPC), which makes a sending/deleting decision on a user’s device for either maximizing photo delivery ratio (SMPC-R) or minimizing average delay (SMPC-D). The decision is made according to the photo’s utility, which is calculated by measuring the impact of reproducing or deleting a photo on the above performance goals. We have done simulations based on the random-waypoint model and three real traces: , , and . The results show that, compared with other storage management strategies, SMPC-R gets the highest delivery ratio and SMPC-D achieves the lowest average delay.
机译:在移动人群感知中,一些用户通过其智能终端中配备的传感器共同完成感知任务。尤其是,基于移动边缘计算(MEC)的照片众筹会收集一些特定目标或事件的图片,并将其上传到附近的边缘服务器,与普通的移动众筹相比,可以提供更丰富的数据内容和更有效的数据存储;因此,它最近引起了很多关注。但是,移动用户更喜欢通过Wifi AP(PoI)而不是蜂窝网络上传照片。因此,存储在手机中的照片在用户之间进行交换,以便快速将其上传到实际上是边缘服务的PoI。在本文中,我们提出了一种用于照片人群(SMPC)的移动电话中基于实用程序的存储管理策略,该策略在用户设备上做出发送/删除决定,以最大化照片传送率(SMPC-R)或最小化平均延迟( SMPC-D)。该决定是根据照片的实用程序做出的,该实用程序是通过测量复制或删除照片对上述性能目标的影响而得出的。我们已经基于随机航点模型和三个真实轨迹(,和)进行了仿真。结果表明,与其他存储管理策略相比,SMPC-R的交付率最高,SMPC-D的平均延迟最低。

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