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Dai Qionghai

Publications -  6
Citations -  87

Dai Qionghai is an academic researcher. The author has contributed to research in topics: Convolutional neural network & Data pre-processing. The author has an hindex of 4, co-authored 6 publications receiving 87 citations.

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Patent

Image significance detection method based on confrontation network

TL;DR: In this paper, an image significance detection method which uses confrontation training to generate a convolution neural network model, which belongs to the field of computer vision and image processing, is described, which comprises the steps of data preprocessing, network structure, suitable parameter selecting, and training with a random gradient descending method and an impulse unit.
Patent

Depth map recovery method

TL;DR: In this article, a depth map recovery method is proposed, comprising of a training set by the depth maps of a large number of various objects; A2, establishing a convolutional neural network (CNN), by using a nuclear separation method, acquiring the parameters of a hidden layer, and training the network structure and adjusting the network weight by using depth maps in the training set; A3, in the output layer of the CNN, establishing an auto-regression model aiming at a possible result, and establishing an evaluation index; and A4, inputting an original depth
Patent

Method for realizing super resolution for image

TL;DR: In this article, the authors proposed a method for super resolution for an image and belongs to the computer vision field, which includes the following steps of: A1, data preprocessing: a certain number of high-resolution natural images are adopted to form a data set, image blocks are extracted from the data set and Bicubic interpolation downsampling and up-sampling in three times are carried out on the image blocks, and low-resolution images can be obtained; A2, network structure design: a designed convolutional neural network has 4 layers altogether;
Patent

Light field refocusing method

TL;DR: In this paper, a light field refocusing method was proposed to obtain a super-resolution image from a single image using a series of sub-aperture images captured by a single light field camera.
Patent

Significance detection method of light field image

TL;DR: In this article, a significance detection method of a light field image is proposed, which comprises the following steps of S1, carrying out refocusing on different positions of the LF image to acquire N focusing images, and fusing the focusing images to acquire a full-focusing image, wherein the N is a positive integer; S2, calculating a focusing degree F(x, y) of each pixel point of each focusing image.