Patents by Inventor Yiu Fai YUEN
Yiu Fai YUEN has filed for patents to protect the following inventions. This listing includes patent applications that are pending as well as patents that have already been granted by the United States Patent and Trademark Office (USPTO).
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Patent number: 11631251Abstract: A method for jockey and horse recognition and tracking. The method includes receiving input images or a sequence of images obtained from horse racing videos or video streams; extracting features from the images by computational methods; locating jockey and horse positions of a target horse in the images by the computational methods; deciding to accept or reject the computed jockey and horse positions according to an acceptance function; and producing the final jockey and horse positions and their associated information by an error correction algorithm.Type: GrantFiled: February 23, 2021Date of Patent: April 18, 2023Assignee: TFI Digital Media LimitedInventors: Yiu Fai Yuen, Wing Chuen Cheng, Ho Ting Lee, Chi Keung Fong, Hon Wah Wong
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Patent number: 11435896Abstract: The present invention provides a method and a device for facilitating a single touch-and-drag operation for a user to communicate his/her intention and make selection during a transaction flow in a robust and intuitive way. It can not only prevent erroneous selection triggered by any inadvertent or accidental touch but also provide option for the user to withdraw selection which is made unintentionally.Type: GrantFiled: February 22, 2021Date of Patent: September 6, 2022Assignee: TFI Digital Media LimitedInventors: Yiu Fai Yuen, Andy Chang, Chi Keung Fong, Ka Hei Lai
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Publication number: 20220269403Abstract: The present invention provides a method and a device for facilitating a single touch-and-drag operation for a user to communicate his/her intention and make selection during a transaction flow in a robust and intuitive way. It can not only prevent erroneous selection triggered by any inadvertent or accidental touch but also provide option for the user to withdraw selection which is made unintentionally.Type: ApplicationFiled: February 22, 2021Publication date: August 25, 2022Inventors: Yiu Fai YUEN, Andy CHANG, Chi Keung FONG, Ka Hei LAI
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Publication number: 20210264159Abstract: A method for jockey and horse recognition and tracking. The method includes receiving input images or a sequence of images obtained from horse racing videos or video streams; extracting features from the images by computational methods; locating jockey and horse positions of a target horse in the images by the computational methods; deciding to accept or reject the computed jockey and horse positions according to an acceptance function; and producing the final jockey and horse positions and their associated information by an error correction algorithm.Type: ApplicationFiled: February 23, 2021Publication date: August 26, 2021Inventors: Yiu Fai YUEN, Wing Chuen CHENG, Ho Ting LEE, Chi Keung FONG, Hon Wah WONG
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Patent number: 11082473Abstract: A method for video coding with coding parameter reuse is provided as follows. A first video encoding process is executed with respect to a first video source for generating a first video stream by a first video encoder. First coding parameters are exported during the first video encoding process by the first video encoder. The first coding parameters are processed to generate second coding parameters by a parameter processor. A second video encoding process is executed with respect to a second video source for generating a second video stream by a second video encoder. The first and second video sources have different dynamic ranges from each other, and the second coding parameters are introduced into the second video encoding process.Type: GrantFiled: March 15, 2020Date of Patent: August 3, 2021Assignee: TFI Digital Media LimitedInventors: Yiu Fai Yuen, Chi Keung Fong, Wing Chuen Cheng, Ho Ting Lee, Hon Wah Wong
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Patent number: 11025914Abstract: A method for video coding with global rate-distortion optimization-based rate control (RC) is provided. By using this video coding method, an RC scheme for High dynamic range (HDR) in High Efficiency Video Coding (HEVC) is provided. Briefly, considering the characteristics of HDR image content, a rate-distortion (R-D) model based on HDR-Visual Difference Predictor (VDP)-2 for performance optimization is provided. In the optimization process, the ? is directly utilized rather than the bit rate to obtain the globally optimal solution. Finally, the model parameter estimation method is used to reduce errors. The video coding method of the present invention is verified that bit rate reduction on average can be achieved.Type: GrantFiled: March 15, 2020Date of Patent: June 1, 2021Assignee: TFI Digital Media LimitedInventors: Yiu Fai Yuen, Mingliang Zhou, Xuekai Wei, Shiqi Wang, Sam Tak Wu Kwong, Chi Keung Fong, Hon Wah Wong
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Patent number: 10789696Abstract: The present disclosure relates to a method for image patch selection for training a neural network for image quality assessment. The method includes receiving an input image and extracting one or more image patches from the input image. The moment of the extracted image patches is measured. There is a decision to accept or decline the extracted image patches according to the measured moment. Additional image patches are extracted until a minimum number, Nmin, of extracted image patches are accepted. Alternatively, selection criteria are adjusted until the minimum number of extracted image patches are accepted. The selected image patches are input into a neural network with a corresponding image quality value of the input image, and the neural network is trained with the image patches and image quality value. Also provided is a method for image quality assessment using a neural network trained as set forth above.Type: GrantFiled: May 24, 2018Date of Patent: September 29, 2020Assignee: TFI DIGITAL MEDIA LIMITEDInventors: Lai Man Po, Mengyang Liu, Yiu Fai Yuen, Yuming Li, Xuyuan Xu, Chang Zhou, Hon Wah Wong, Kin Wai Lau, Hon Tung Luk, Hok Kwan Cheung
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Patent number: 10694199Abstract: A method for distributed video transcoding consists of segmentation process 101, transcoding process 102 and combining process 103. The said segmentation process consists of time division based segmentation 201, spatial division based segmentation 301 and hybrid segmentation 401. The source media is segmented into a number of media segments. These segments are distributed to different processing units 501. Each processing units consists of source reception unit 502, segmentation unit 503, transcoding unit 504, combining unit 505 and finally result storage unit 506 to achieve parallel conversion throughout the process and combined to produce a single transcoded result. The present invention relates to converting an audio-video source media from one format to another within a short duration of time.Type: GrantFiled: July 27, 2016Date of Patent: June 23, 2020Inventors: Yiu Fai Yuen, Hok Kwan Cheung, Chi Keung Fong, Yin Sze, Kong Wai Lam
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Method based on coding tree unit level rate-distortion optimization for rate control in video coding
Patent number: 10631009Abstract: A method based on CTU level rate-distortion optimization for rate control in video coding which can effectively improve the perceptual rate-distortion performance and coding efficiency is provided. Firstly, a perceptual rate-distortion model is established using a divisive normalization framework, which characterizes the relationship between local visual quality and coding bits. Subsequently, the established perceptual rate-distortion model is applied to overall distortion optimization which is transformed into a global optimization problem and solved with convex optimization algorithms to obtain optimal CTU level coding bit allocation.Type: GrantFiled: July 17, 2018Date of Patent: April 21, 2020Assignee: TFI Digital Media LimitedInventors: Mingliang Zhou, Shiqi Wang, Sam Tak Wu Kwong, Chi Keung Fong, Hon Wah Wong, Hon Tung Luk, Hok Kwan Cheung, Yiu Fai Yuen -
Patent number: 10560696Abstract: A machine learning based initial quantization parameter (QP) prediction method, which can effectively optimize RC performance A machine learning framework for initial QP prediction is proposed, where learning labels are built with the criterion of maximizing rate-distortion (RC) performance, which is proved to be much more effective than the QP determination method with the only consideration on sum of the absolute transformed difference (SATD) complexity. Instead of target bits per pixel for intra frame, target bits per pixel for remaining frames is used as sample data to avoid empirically setting intra frame bit allocation, thus improve the prediction accuracy as the real-time updated remaining bits can better reflect the real-time requirements on the level of QPs. In addition, a clipping and decision approach based on the previous initial QP and the target bits per pixel for all remaining frames is proposed, which can help fast QP adaption and quality smoothness.Type: GrantFiled: June 25, 2018Date of Patent: February 11, 2020Assignee: TFI DIGITAL MEDIA LIMITEDInventors: Wei Gao, Sam Tak Wu Kwong, Chi Keung Fong, Hon Wah Wong, Hon Tung Luk, Hok Kwan Cheung, Yiu Fai Yuen
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Method based on Coding Tree Unit Level Rate-Distortion Optimization for Rate Control in Video Coding
Publication number: 20200029093Abstract: A method based on CTU level rate-distortion optimization for rate control in video coding which can effectively improve the perceptual rate-distortion performance and coding efficiency is provided. Firstly, a perceptual rate-distortion model is established using a divisive normalization framework, which characterizes the relationship between local visual quality and coding bits. Subsequently, the established perceptual rate-distortion model is applied to overall distortion optimization which is transformed into a global optimization problem and solved with convex optimization algorithms to obtain optimal CTU level coding bit allocation.Type: ApplicationFiled: July 17, 2018Publication date: January 23, 2020Inventors: Mingliang ZHOU, Shiqi WANG, Sam Tak Wu KWONG, Chi Keung FONG, Hon Wah WONG, Hon Tung LUK, Hok Kwan CHEUNG, Yiu Fai YUEN -
Publication number: 20190394466Abstract: A machine learning based initial quantization parameter (QP) prediction method, which can effectively optimize RC performance. A machine learning framework for initial QP prediction is proposed, where learning labels are built with the criterion of maximizing rate-distortion (RC) performance, which is proved to be much more effective than the QP determination method with the only consideration on sum of the absolute transformed difference (SATD) complexity. Instead of target bits per pixel for intra frame, target bits per pixel for remaining frames is used as sample data to avoid empirically setting intra frame bit allocation, thus improve the prediction accuracy as the real-time updated remaining bits can better reflect the real-time requirements on the level of QPs. In addition, a clipping and decision approach based on the previous initial QP and the target bits per pixel for all remaining frames is proposed, which can help fast QP adaption and quality smoothness.Type: ApplicationFiled: June 25, 2018Publication date: December 26, 2019Inventors: Wei GAO, Sam Tak Wu KWONG, Chi Keung FONG, Hon Wah WONG, Hon Tung LUK, Hok Kwan CHEUNG, Yiu Fai YUEN
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Publication number: 20190362484Abstract: The present disclosure relates to a method for image patch selection for training a neural network for image quality assessment. The method includes receiving an input image and extracting one or more image patches from the input image. The moment of the extracted image patches is measured. There is a decision to accept or decline the extracted image patches according to the measured moment. Additional image patches are extracted until a minimum number, Nmin, of extracted image patches are accepted. Alternatively, selection criteria are adjusted until the minimum number of extracted image patches are accepted. The selected image patches are input into a neural network with a corresponding image quality value of the input image, and the neural network is trained with the image patches and image quality value. Also provided is a method for image quality assessment using a neural network trained as set forth above.Type: ApplicationFiled: May 24, 2018Publication date: November 28, 2019Inventors: Lai Man PO, Mengyang LIU, Yiu Fai YUEN, Yuming LI, Xuyuan XU, Chang ZHOU, Hon Wah WONG, Kin Wai LAU, Hon Tung LUK, Hok Kwan CHEUNG
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Patent number: 10447895Abstract: An intelligent method and system for expanding and enhancing the color content of video or image to a wider color gamut to make the displayed video or image more pleasing while certain important and sensitive colors such as skin colors are preserved to avoid the perception of visually unnatural image or video artifacts. With the implementation of such method and system, the merits of the wide color gamut display can be fully utilized to provide videos and images of high visual quality.Type: GrantFiled: March 27, 2018Date of Patent: October 15, 2019Assignee: TFI Digital Media LimitedInventors: Hon Wah Wong, Hon Tung Luk, Chi Keung Fong, Yin Sze, Hok Kwan Cheung, Yiu Fai Yuen
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Patent number: 10445865Abstract: A method and apparatus for converting a standard dynamic range (SDR) video to a high dynamic range (HDR) video. The conversion is adaptive and takes both spatial and temporal information of a current frame and previous frames into consideration such that the majority of pixels falls into the most sensitive regions of human eyes in the target dynamic range, while at the same time, the continuity of luminance is maintained in temporal domain to prevent flickering.Type: GrantFiled: March 27, 2018Date of Patent: October 15, 2019Assignee: TFI DIGITAL MEDIA LIMITEDInventors: Hon Wah Wong, Hon Tung Luk, Chi Keung Fong, Yin Sze, Hok Kwan Cheung, Yiu Fai Yuen
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Publication number: 20190306377Abstract: An intelligent method and system for expanding and enhancing the color content of video or image to a wider color gamut to make the displayed video or image more pleasing while certain important and sensitive colors such as skin colors are preserved to avoid the perception of visually unnatural image or video artifacts. With the implementation of such method and system, the merits of the wide color gamut display can be fully utilized to provide videos and images of high visual quality.Type: ApplicationFiled: March 27, 2018Publication date: October 3, 2019Inventors: Hon Wah Wong, Hon Tung Luk, Chi Keung Fong, Yin Sze, Hok Kwan Cheung, Yiu Fai Yuen
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Publication number: 20190304072Abstract: A method and apparatus for converting a standard dynamic range (SDR) video to a high dynamic range (HDR) video. The conversion is adaptive and takes both spatial and temporal information of a current frame and previous frames into consideration such that the majority of pixels falls into the most sensitive regions of human eyes in the target dynamic range, while at the same time, the continuity of luminance is maintained in temporal domain to prevent flickering.Type: ApplicationFiled: March 27, 2018Publication date: October 3, 2019Inventors: Hon Wah Wong, Hon Tung Luk, Chi Keung Fong, Yin Sze, Hok Kwan Cheung, Yiu Fai Yuen
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Publication number: 20170094290Abstract: A method for distributed video transcoding consists of segmentation process 101, transcoding process 102 and combining process 103. The said segmentation process consists of time division based segmentation 201, spatial division based segmentation 301 and hybrid segmentation 401. The source media is segmented into a number of media segments. These segments are distributed to different processing units 501. Each processing units consists of source reception unit 502, segmentation unit 503, transcoding unit 504, combining unit 505 and finally result storage unit 506 to achieve parallel conversion throughout the process and combined to produce a single transcoded result. The present invention relates to converting an audio-video source media from one format to another within a short duration of time.Type: ApplicationFiled: July 27, 2016Publication date: March 30, 2017Inventors: Yiu Fai YUEN, Hok Kwan CHEUNG, Chi Keung FONG, Yin SZE, Kong Wai LAM