Advances in Multimedia

Multimedia Quality Modeling


Publishing date
01 Jan 2022
Status
Closed
Submission deadline
03 Sep 2021

Lead Editor

1Jiangxi University of Technology, Jiangxi, China

2Southeast University, Nanjing, China

3Qingdao University, Qingdao, China

4University of Quebec, Quebec, Canada

This issue is now closed for submissions.

Multimedia Quality Modeling

This issue is now closed for submissions.

Description

The volume of multimedia data we handle on a daily basis is growing exponentially due to the availability of ubiquitous and cheap sensors, sharing platforms, and new social trends. Artificial intelligence techniques have proven useful for interpreting this data. In the last few decades, many quality models have been proposed that mimic the process of humans perceiving multimedia data. Such perceptual quality models can provide benefits for a rich variety of multimedia applications. For example, an effective photo aesthetics prediction module can help photographers crop an aesthetically pleasing sub-region from an original poorly framed photo. In addition, a successful photo management system can rank videos based on human perception of video quality (i.e., frame aesthetics, stability, and coherence), thereby the users can conveniently select their favorite pictures into albums. Lastly, different criteria have been developed to select visual or acoustic features for various multimedia applications, e.g., multimodal event detection, real-time speech recognition, and cross-media retrieval.

Extensive research efforts have been dedicated to designing perceptual quality models, but effective tools to manipulate quality prediction are still in their infancy. As far as we know, the key technical challenges include: the deemphasized role of semantic content that may be more important than low-level features in determining media quality; the difficulty to optimally utilize cross-feature information for media quality analysis; and the instability of the biologically/psychologically-inspired features in reflecting human perception, and the lack of a benchmark platform to evaluate the performance of these features.

This Special Issue will focus on the most recent technical progress on computational models for image, video, and audio quality prediction, such as photo/video aesthetic quality ranking and photo cropping/retargeting. We also aim to discover new types of visual/acoustic cues in computational quality models. The primary objective of this Special Issue is to promote the latest research progress in this interesting area. We solicit original research and review articles that address the challenges facing computational models for visual/acoustic quality prediction. This Special Issue targets researchers and practitioners from both industry and academia.

Potential topics include but are not limited to the following:

  • New computational models for media quality evaluation, such as videos and music
  • Aesthetic models for various media enhancement techniques
  • Video and image summarization based on computational quality models
  • Different semantic models for multimedia quality prediction
  • Discovering low-/high-level visual features for multimedia quality prediction
  • Visual aesthetics prediction for multimodal applications
  • New feature fusion/selection techniques for multimedia analysis
  • Multimodal quality models for event and abnormal detection
  • Visual quality prediction for photo and video management systems
  • Human interactive learning for multimedia quality prediction
  • Video/audio quality prediction by mimicking human perception
  • Computational quality models for large-scale multimedia retrieval
  • Datasets, benchmarks, and validation of visual quality of experience
  • Discovering advanced descriptors for evaluating multimedia quality

Articles

  • Special Issue
  • - Volume 2021
  • - Article ID 7843828
  • - Research Article

[Retracted] Evaluation and Analysis of Multimedia Collaborative Building Design Relying on Particle Swarm Optimization Algorithm

Tao Yang
  • Special Issue
  • - Volume 2021
  • - Article ID 8020473
  • - Research Article

[Retracted] The Analysis about Compressed Sensing Reconstruction Algorithm Based on Machine Learning Applied in Interference Multispectral Images

Chang Han
  • Special Issue
  • - Volume 2021
  • - Article ID 9295771
  • - Research Article

[Retracted] Thermal Fault Detection and Diagnosis of Electrical Equipment Based on the Infrared Image Segmentation Algorithm

Hongzhao Li
  • Special Issue
  • - Volume 2021
  • - Article ID 4991332
  • - Research Article

[Retracted] Application Error Analysis of SOC Estimation of Pure Electric Vehicles Based on Kalman Signal Big Data Algorithm

Zhaona Lu | Junlong Wang | ... | Guoqing Li
  • Special Issue
  • - Volume 2021
  • - Article ID 8195825
  • - Research Article

[Retracted] Architectural Interior Modeling Product Design Based on the Multimedia Three-Dimensional Hybrid Algorithm

Tao Su | Gang Ouyang
  • Special Issue
  • - Volume 2021
  • - Article ID 6030264
  • - Research Article

[Retracted] Intelligent Auxiliary Artificial Wood Plank Pattern Design Based on the Subject Search Algorithm of Multimedia Resources

Lihua Zhao
  • Special Issue
  • - Volume 2021
  • - Article ID 9339584
  • - Research Article

[Retracted] Interoperability of Multimedia Network Public Opinion Knowledge Base Group Based on Multisource Text Mining

Yanru Zhu
  • Special Issue
  • - Volume 2021
  • - Article ID 6008458
  • - Research Article

[Retracted] Research on Nonline-of-Sight Positioning Method of Intelligent Mobile Terminal Based on Intelligent Monitoring Architecture of Multimedia Sensor Network

Jianjun Liu
  • Special Issue
  • - Volume 2021
  • - Article ID 9951035
  • - Research Article

[Retracted] Medical Multimedia Image Analysis of Scoliosis in Children Aged 3–7 Years Based on Adaptive Multiobjective Differential Evolution Algorithm

Chunxiang Huang
  • Special Issue
  • - Volume 2021
  • - Article ID 6484128
  • - Research Article

[Retracted] Attention Feature Network Extraction Combined with the Generation Algorithm of Multimedia Image Description

Beibei Sun
Advances in Multimedia
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CiteScore0.400
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Impact Factor1.4
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