projects
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====== Available projects ====== | ====== Available projects ====== | ||
- | ====== Three-Dimensional Context from Linear Perspective for Video Surveillance Systems ====== | + | The following projects are presented in alphabetical order on the supervisor' |
- | **Supervisor**: | + | ====== Simulation for Forest Fire Detection ====== |
- | **Requirements**: Good facility with applied mathematics | + | **Supervisor**: Rob Allison |
+ | |||
+ | **Required Background**: | ||
+ | |||
+ | **Recommended Background**: | ||
__Description__ | __Description__ | ||
- | To provide visual surveillance over a large environment, | + | Detection of forest fires is a challenging activity that requires considerable training. The objective |
- | This problem can be addressed by automatically pre-mapping two-dimensional surveillance video data into three-dimensional coordinates. | ||
- | Mapping surveillance video to three-dimensional coordinates requires construction | + | ====== Study of self-motion perception in microgravity ====== |
- | This project will investigate a monocular method for inferring three-dimensional context for video surveillance. | + | **Supervisor**: |
- | Although the Manhattan world assumption provides powerful constraints, | + | **Required Background**: General CSE408x prerequisites |
- | The student will work closely with graduate students and postdoctoral fellows at York University, as well as researchers at other institutions involved in the project. | + | **Recommended Background**: |
- | For more information on the laboratory: [[http:// | + | __Description__ |
+ | This is a computer graphics project to present visual motion stimuli to an observer. The software will experimentally control scene content, collect user responses and control the camera trajectory to simulate the desired self-motion profile. | ||
- | ====== | + | ====== |
- | **Supervisor**: | + | **Supervisor**: |
- | **Requirements**: Good facility with applied mathematics | + | **Required Background**: General CSE408x prerequisites |
+ | |||
+ | **Recommended Background**: | ||
__Description__ | __Description__ | ||
- | Facilities planning at both city (e.g., Toronto) and institutional (e.g., York University) scales requires accurate data on the flow of people and vehicles throughout | + | Directors of three-dimensional movies sometimes use ' |
- | The density of permanent urban video surveillance camera installations has increased dramatically over the last several years. | ||
- | This project will explore the use of computer vision algorithms for the automatic estimation of pedestrian and vehicle flows from video surveillance data. The ultimate goal is to provide planners with accurate, continuous, up-to-date information on facility usage to help guide planning. | + | ====== Web-based digital signage ====== |
- | The student will work closely with graduate students and postdoctoral fellows at York University, as well as researchers at other institutions involved in the project. | + | **Supervisor**: |
- | For more information on the laboratory: [[http:// | + | **Required background**: General prerequisites |
- | + | ||
- | ====== Low-Cost Three-Dimensional Face Scanning System ====== | + | **Recommended background**: CSE 3221, CSE 3214 |
- | + | ||
- | **Supervisor**: James Elder | + | |
- | + | ||
- | **Requirements**: | + | |
__Description__ | __Description__ | ||
- | Low-cost three-dimensional face-scanning systems have a large range of potential applications | + | Digital signs are increasingly used in many modern buildings to direct people to appropriate rooms for meetings, services, etc. Unfortunately, |
- | The project will involve systems design and development of a specialized real-time 3D face scanner. A combination of hardware | + | One way to do this is to utilize what administrative staff are really good at: dealing with calendars. By assigning calendars to individual rooms/ |
- | For more information on the laboratory: [[http://www.elderlab.yorku.ca]] | + | More specifically, |
- | | ||
- | ====== | + | ====== |
- | **Supervisor**: | + | **Supervisor**: |
- | **Required background**: General prerequisites | + | **Requirements**: Good facility with applied mathematics |
- | + | ||
- | **Recommended background**: | + | |
__Description__ | __Description__ | ||
- | CUDA stands for " | + | To provide visual surveillance over a large environment, |
- | The aim of this project is to get familiar with GPUs and to study how to program them. | + | This problem can be addressed by automatically pre-mapping two-dimensional surveillance video data into three-dimensional coordinates. |
- | More details can be found at: [[http:// | + | Mapping surveillance video to three-dimensional coordinates requires construction of a virtual model of the three-dimensional scene. |
- | (this link is only accessible from machines within | + | |
+ | This project will investigate a monocular method for inferring three-dimensional context for video surveillance. | ||
+ | Although the Manhattan world assumption provides powerful constraints, | ||
- | ====== | + | The student will work closely with graduate students and postdoctoral fellows at York University, as well as researchers at other institutions involved in the project. |
+ | For more information on the laboratory: [[http:// | ||
- | **Supervisor**: | ||
- | **Required background**: | ||
- | **Recommended background**: | + | ====== Estimating Pedestrian and Vehicle Flows from Surveillance Video ====== |
- | __Description__ | + | **Supervisor**: |
- | The URL for Algorithmics Animation Workshop (AAW) is [[http:// | + | **Requirements**: |
+ | __Description__ | ||
+ | Facilities planning at both city (e.g., Toronto) and institutional (e.g., York University) scales requires accurate data on the flow of people and vehicles throughout the environment. | ||
- | ====== Web-based digital signage ====== | + | The density of permanent urban video surveillance camera installations has increased dramatically over the last several years. |
- | **Supervisor**: | + | This project will explore the use of computer vision algorithms for the automatic estimation of pedestrian and vehicle flows from video surveillance data. The ultimate goal is to provide planners with accurate, continuous, up-to-date information on facility usage to help guide planning. |
- | **Required background**: | + | The student will work closely with graduate students and postdoctoral fellows at York University, as well as researchers at other institutions involved in the project. |
- | **Recommended background**: CSE 3221, CSE 3214 | + | For more information on the laboratory: [[http:// |
+ | |||
- | __Description__ | ||
- | Digital signs are increasingly used in many modern buildings to direct people to appropriate rooms for meetings, services, etc. Unfortunately, | ||
- | |||
- | One way to do this is to utilize what administrative staff are really good at: dealing with calendars. By assigning calendars to individual rooms/ | ||
- | |||
- | More specifically, | ||
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+ | ====== The Algorithmics Animation Workshop ====== | ||
- | ====== Estimating Registration Error ====== | ||
- | + | **Supervisor**: | |
- | **Supervisor**: | + | |
**Required background**: | **Required background**: | ||
- | **Recommended background**: | + | **Recommended background**: |
__Description__ | __Description__ | ||
- | A fundamental step in computer-assisted surgery | + | The URL for Algorithmics Animation Workshop (AAW) is [[http:// |
- | Virtual navigational information (such as where to drill or cut the bone) can be provided to the surgeon after the registration transformation has been established. Here, a surgeon is using a tracked surgical drill to drill a hole along a pre-operatively defined path. Notice that the surgeon looks at the virtual navigational information instead of the patient when performing this task. | ||
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- | Computer-assisted surgical navigation depends on having an accurate registration. If the estimated registration is inaccurate then the navigational information will also be inaccurate, which may lead to errors in the surgical procedure. It is of great interest to know the accuracy of the estimated registration. | ||
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- | Further details on the project can be found [[http:// | ||
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====== Robotic tangible user interface for large tabletops ====== | ====== Robotic tangible user interface for large tabletops ====== | ||
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Many graphics programs implement snapping to facilitate drawing. Snapping ensures that end-points of lines meet, that the endpoint of one line correctly " | Many graphics programs implement snapping to facilitate drawing. Snapping ensures that end-points of lines meet, that the endpoint of one line correctly " | ||
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- | ====== Simulation of a 6dof virtual reality tracker ====== | ||
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- | **Supervisor**: | ||
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- | **Required Background**: | ||
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- | **Recommended Background**: | ||
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- | __Description__ | ||
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- | Previous work by the supervisor resulted in a novel and highly accurate Virtual Reality tracking system that matches or exceeds the specifications of all competing systems. However, this system works only in 5 or 6-sided immersive display environment. | ||
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- | This project is the first step towards an adaptation of the technology for more general environments. In particular we target normal rooms and immersive displays with less than 5 screens. The technical work involves adapting the simulation software for the previous device to simulate a new design, and iteratively optimizing that design based on the results obtained. | ||
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projects.1271876967.txt.gz · Last modified: 2010/04/21 19:09 by bil