Visual Reconstruction

2021 ◽  
pp. 191-210
2019 ◽  
Vol 9 (22) ◽  
pp. 4749
Author(s):  
Lingyun Jiang ◽  
Kai Qiao ◽  
Linyuan Wang ◽  
Chi Zhang ◽  
Jian Chen ◽  
...  

Decoding human brain activities, especially reconstructing human visual stimuli via functional magnetic resonance imaging (fMRI), has gained increasing attention in recent years. However, the high dimensionality and small quantity of fMRI data impose restrictions on satisfactory reconstruction, especially for the reconstruction method with deep learning requiring huge amounts of labelled samples. When compared with the deep learning method, humans can recognize a new image because our human visual system is naturally capable of extracting features from any object and comparing them. Inspired by this visual mechanism, we introduced the mechanism of comparison into deep learning method to realize better visual reconstruction by making full use of each sample and the relationship of the sample pair by learning to compare. In this way, we proposed a Siamese reconstruction network (SRN) method. By using the SRN, we improved upon the satisfying results on two fMRI recording datasets, providing 72.5% accuracy on the digit dataset and 44.6% accuracy on the character dataset. Essentially, this manner can increase the training data about from n samples to 2n sample pairs, which takes full advantage of the limited quantity of training samples. The SRN learns to converge sample pairs of the same class or disperse sample pairs of different class in feature space.


Arts ◽  
2020 ◽  
Vol 9 (1) ◽  
pp. 5
Author(s):  
Janez Premk

Maribor Synagogue is one of the few preserved medieval synagogues in Central Europe. The renovation of the building between 1992 and 1999, undertaken by the Institute for the Protection of Cultural Heritage of Slovenia, proved to be much more demanding than originally foreseen. Its architectural shell and architectural elements have served as a reference point for the (visual) reconstruction of related monuments in the wider region. However, the renovation itself has left numerous unanswered questions, especially in regard to the building phases during the Jewish and later Christian use of the building. The present article is the first scientific publication to thoroughly examine the medieval building phases, based on the findings of archaeological research and investigation of the documented and preserved architectural elements. Ground plans are attached for the initial two building phases, related to the archeological charts. The last phase corresponds to the reconstructed version of the synagogue, but convincing evidence relating to its appearance is missing. Although it is practically impossible to provide an entirely accurate building history based on the archival, oral and material evidence so far available, a significant step toward its general comprehension is made.


1999 ◽  
Vol 17 (1) ◽  
pp. 37-49 ◽  
Author(s):  
Shang-Hong Lai ◽  
Baba C. Vemuri

2011 ◽  
pp. 130-174
Author(s):  
Burak Ozer ◽  
Tiehan Lv ◽  
Wayne Wolf

This chapter focuses on real-time processing techniques for the reconstruction of visual information from multiple views and its analysis for human detection and gesture and activity recognition. It presents a review of the main components of three-dimensional visual processing techniques and visual analysis of multiple cameras, i.e., projection of three-dimensional models onto two-dimensional images and three-dimensional visual reconstruction from multiple images. It discusses real-time aspects of these techniques and shows how these aspects affect the software and hardware architectures. Furthermore, the authors present their multiple-camera system to investigate the relationship between the activity recognition algorithms and the architectures required to perform these tasks in real time. The chapter describes the proposed activity recognition method that consists of a distributed algorithm and a data fusion scheme for two and three-dimensional visual analysis, respectively. The authors analyze the available data independencies for this algorithm and discuss the potential architectures to exploit the parallelism resulting from these independencies.


1989 ◽  
Vol 53 (188) ◽  
pp. 772
Author(s):  
L. L. S. ◽  
Andrew Blake ◽  
Andrew Zisserman

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