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Search - view face detection - List
[
GDI-Bitmap
]
IntelligentSaver2
DL : 0
It is a utility to control screen saver using human face detection. Human face detection is performed using OpenCV Haar-Cascade method. The software is primarily a daemon that resides in your system tray and keeps observing the input from a webcam to analyze if the user is no longer in view. Currently two angles are supported namely frontal pose and profile pose.
Update
: 2008-10-13
Size
: 90.24kb
Publisher
:
陈实
[
Graph Recognize
]
Intelligent_Screen_Saver
DL : 0
It is a utility to control screen saver using human face detection. Human face detection is performed using OpenCV Haar-Cascade method. The software is primarily a daemon that resides in your system tray and keeps observing the input from a webcam to analyze if the user is no longer in view. Currently two angles are supported namely frontal pose and profile pose.
Update
: 2008-10-13
Size
: 96.49kb
Publisher
:
萧董
[
Graph Recognize
]
View-Face-Detection
DL : 0
中科院的多视角人脸识别 Real-Time Multi-View Face Detection
Update
: 2008-10-13
Size
: 512.72kb
Publisher
:
carl2380
[
GDI-Bitmap
]
IntelligentSaver2
DL : 0
It is a utility to control screen saver using human face detection. Human face detection is performed using OpenCV Haar-Cascade method. The software is primarily a daemon that resides in your system tray and keeps observing the input from a webcam to analyze if the user is no longer in view. Currently two angles are supported namely frontal pose and profile pose.
Update
: 2025-02-17
Size
: 90kb
Publisher
:
陈实
[
Graph Recognize
]
Intelligent_Screen_Saver
DL : 0
It is a utility to control screen saver using human face detection. Human face detection is performed using OpenCV Haar-Cascade method. The software is primarily a daemon that resides in your system tray and keeps observing the input from a webcam to analyze if the user is no longer in view. Currently two angles are supported namely frontal pose and profile pose.
Update
: 2025-02-17
Size
: 96kb
Publisher
:
萧董
[
Graph Recognize
]
View-Face-Detection
DL : 0
中科院的多视角人脸识别 Real-Time Multi-View Face Detection-Chinese Academy of Sciences of the Multi-View Face Recognition Real-Time Multi-View Face Detection
Update
: 2025-02-17
Size
: 512kb
Publisher
:
carl2380
[
SCM
]
FaceDetection
DL : 0
face detection Face detection can be regarded as a more general case of face localization In face localization, the task is to find the locations and sizes of a known number of faces (usually one). In face detection, one does not have this additional information. Early face-detection algorithms focused on the detection of frontal human faces, whereas newer algorithms attempt to solve the more general and difficult problem of multi-view face detection. That is, the detection of faces that are either rotated along the axis from the face to the observer (in-plane rotation), or rotated along the vertical or left-right axis (out-of-plane rotation),or both.-face detection Face detection can be regarded as a more general case of face localization In face localization, the task is to find the locations and sizes of a known number of faces (usually one). In face detection, one does not have this additional information. Early face-detection algorithms focused on the detection of frontal human faces, whereas newer algorithms attempt to solve the more general and difficult problem of multi-view face detection. That is, the detection of faces that are either rotated along the axis from the face to the observer (in-plane rotation), or rotated along the vertical or left-right axis (out-of-plane rotation),or both.
Update
: 2025-02-17
Size
: 13kb
Publisher
:
gianni
[
Other
]
Detector
DL : 0
Boosting Nested Cascade Detector for Multi-View Face Detection
Update
: 2025-02-17
Size
: 198kb
Publisher
:
lilin
[
Special Effects
]
53607890facedetection
DL : 0
人脸检测的研究具有重要的学术价值,人脸是一类具有相当复杂的细节变化的自然结构目标,对此类目标的挑战性在于:人脸由于外貌、表情、肤色等不同,具有模式的可变性;一般意义下的人脸上,可能存在眼镜、胡须等附属物;作为三维物体的人脸影像不可避免地受由光照产生的阴影的影响。因此,如果能够找到解决这些问题的方法,成功地构造出人脸检测系统,将为解决其他类似的复杂模式的检测问题提供重要的启示。-Face detection can be regarded as a specific case of object-class detection. In object-class detection, the task is to find the locations and sizes of all objects in an image that belong to a given class. Examples include upper torsos, pedestrians, and cars. Face detection can be regarded as a more general case of face localization. In face localization, the task is to find the locations and sizes of a known number of faces (usually one). In face detection, one does not have this additional information. Early face-detection algorithms focused on the detection of frontal human faces, whereas newer algorithms attempt to solve the more general and difficult problem of multi-view face detection. That is, the detection of faces that are either rotated along the axis from the face to the observer (in-plane rotation), or rotated along the vertical or left-right axis (out-of-plane rotation), or both. The newer algorithms take into account variations in the image or video by factors such as f
Update
: 2025-02-17
Size
: 2.86mb
Publisher
:
力量
[
Special Effects
]
drtoolbox0.6b
DL : 0
复杂背景下多视角人脸检测与识别仿真需要的工具箱详解。-Complex Background Multi-View Face Detection and Recognition Detailed simulation toolbox needs.
Update
: 2025-02-17
Size
: 3.61mb
Publisher
:
titlee
[
Graph Recognize
]
detection-reconnaissance
DL : 0
Multi-view face Detection
Update
: 2025-02-17
Size
: 2.77mb
Publisher
:
show_live
[
Software Engineering
]
Combining-face-detection-and-people-tracking-in-v
DL : 0
Face detection algorithms are widely used in computer vision as they provide fast and reliable results depending on the application domain. A multi view approach is here presented to detect frontal and profile pose of people face using Histogram of Oriented Gradients, i.e. HOG, features. A K-mean clustering technique is used in a cascade of HOG feature classifiers to detect faces. The evaluation of the algorithm shows similar performance in terms of detection rate as state of the art algorithms. Moreover, unlike state of the art algorithms,our system can be quickly trained before detection is possible. Performance is considerably increased in terms of lower computational cost and lower false detection rate when combined with motion constraint given by moving objects in video sequences. The detected HOG features are integrated within a tracking framework and allow reliable face tracking results in several tested surveillance video sequences.
Update
: 2025-02-17
Size
: 287kb
Publisher
:
linuszhao
[
Windows Develop
]
mubiaogenzong
DL : 0
该系统基于vc++开发环境具有目标跟踪检测测量车牌识别人脸定位火源检测等功能系统,还有一套仿生复眼全景目标跟踪系统-The system is based on vc++ development environment with the target tracking and detection measurement LPR face localization features such as fire detection systems, as well as a panoramic view of the target tracking system bionic compound eye
Update
: 2025-02-17
Size
: 6.49mb
Publisher
:
王东
[
Console
]
CVSMFDTFME
DL : 0
Face Detection and Side View Detection
Update
: 2025-02-17
Size
: 17kb
Publisher
:
Kenzero
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