Automated Discovery of Network Cameras in Heterogeneous Web Pages

Author:

Dailey Ryan1,Chawla Aniesh1,Liu Andrew1,Mishra Sripath1,Zhang Ling2,Majors Josh1,Lu Yung-Hsiang1,Thiruvathukal George K.3

Affiliation:

1. Purdue University, West Lafayette, IN, USA

2. Carnegie Mellon University, West Lafayette, IN, USA

3. Loyola University Chicago, West Lafayette, IN, USA

Abstract

Reduction in the cost of Network Cameras along with a rise in connectivity enables entities all around the world to deploy vast arrays of camera networks. Network cameras offer real-time visual data that can be used for studying traffic patterns, emergency response, security, and other applications. Although many sources of Network Camera data are available, collecting the data remains difficult due to variations in programming interface and website structures. Previous solutions rely on manually parsing the target website, taking many hours to complete. We create a general and automated solution for aggregating Network Camera data spread across thousands of uniquely structured web pages. We analyze heterogeneous web page structures and identify common characteristics among 73 sample Network Camera websites (each website has multiple web pages). These characteristics are then used to build an automated camera discovery module that crawls and aggregates Network Camera data. Our system successfully extracts 57,364 Network Cameras from 237,257 unique web pages.

Publisher

Association for Computing Machinery (ACM)

Subject

Computer Networks and Communications

Reference61 articles.

1. Arizona 511. 2019. Arizona Cameras | Live Arizona Cameras | AZ 511. Retrieved from https://www.az511.gov/cctv?. Arizona 511. 2019. Arizona Cameras | Live Arizona Cameras | AZ 511. Retrieved from https://www.az511.gov/cctv?.

2. 511 Alberta CA. 2019. 511AB. Retrieved from https://511.alberta.ca/. 511 Alberta CA. 2019. 511AB. Retrieved from https://511.alberta.ca/.

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