Reducing image distortions and measuring the excellence in multi-camera images

A. N. Kumar, P. S. Vanthana, V. Vishnupriya, S. Vigneswari
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Abstract

Multi-camera applications are numerous and each application has its specific means of acquisition representation and display. The quality of the perceived multi view video image is dependent on the means of presentation. The most of the fundamental problem in MIQM (Multi-camera Image Quality Measure) is finding the image quality measure. A multi-camera image quality measure MIQM is distortions in multi-camera system can be classified into geometric and photometric distortions. Geometric distortion in multi-camera system is defined as structural disparity such as discontinuity and misalignment in the observed image due to geometric error. Geometric error can occur during mapping which may include rotation and translation. Photometric distortion in single camera is defined as the degradation in perceptual feature that are known to attract visual attention such as noise blur and blocking artifacts. We propose multi-camera image quality measure is combination of the three index measure is necessary to capture the impact of three distortions on multi view perception. The measure was designed to capture the visual effects of artifacts introduced at the acquisition and pre compositing process to predict the composed image quality.
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减少图像失真,衡量多相机图像的优劣
多摄像机应用非常多,每个应用都有其特定的采集、表示和显示方式。感知到的多视点视频图像的质量取决于呈现方式。多相机图像质量测量(MIQM)中最根本的问题是如何找到图像质量度量。一种多相机图像质量度量MIQM,多相机系统中的畸变可分为几何畸变和光度畸变。多相机系统中的几何畸变是指由于几何误差导致的观察图像的不连续性和不对准等结构差异。在映射过程中可能出现几何误差,包括旋转和平移。单相机的光度失真被定义为引起视觉注意的感知特征的退化,如噪声模糊和阻塞伪影。我们提出多摄像头图像质量度量是三个指标的组合度量,是捕捉三种失真对多视角感知的影响所必需的。该措施旨在捕捉在采集和预合成过程中引入的伪影的视觉效果,以预测合成图像的质量。
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