journal
https://read.qxmd.com/read/37756206/an-expert-panel-discussion-embedding-ethics-and-equity-in-artificial-intelligence-and-machine-learning-infrastructure
#21
JOURNAL ARTICLE
Malaika Simmons, Rachele Hendricks-Sturrup, Gabriella Waters, Laurie Novak, Martin Were, Sajid Hussain
No abstract text is available yet for this article.
September 2023: Big Data
https://read.qxmd.com/read/37582212/predicting-sociodemographic-attributes-from-mobile-usage-patterns-applications-and-privacy-implications
#22
JOURNAL ARTICLE
Rouzbeh Razavi, Guisen Xue, Ikpe Justice Akpan
When users interact with their mobile devices, they leave behind unique digital footprints that can be viewed as predictive proxies that reveal an array of users' characteristics, including their demographics. Predicting users' demographics based on mobile usage can provide significant benefits for service providers and users, including improving customer targeting, service personalization, and market research efforts. This study uses machine learning algorithms and mobile usage data from 235 demographically diverse users to examine the accuracy of predicting their sociodemographic attributes (age, gender, income, and education) from mobile usage metadata, filling the gap in the current literature by quantifying the predictive power of each attribute and discussing the practical applications and privacy implications...
August 14, 2023: Big Data
https://read.qxmd.com/read/37527204/an-improved-influence-maximization-method-for-online-advertising-in-social-internet-of-things
#23
JOURNAL ARTICLE
Reza Molaei, Kheirollah Rahsepar Fard, Asgarali Bouyer
Recently, a new subject known as the Social Internet of Things (SIoT) has been presented based on the integration the Internet of Things and social network concepts. SIoT is increasingly popular in modern human living, including applications such as smart transportation, online health care systems, and viral marketing. In advertising based on SIoT, identifying the most effective diffuser nodes to maximize reach is a critical challenge. This article proposes an efficient heuristic algorithm named Influence Maximization of advertisement for Social Internet of Things (IMSoT) , inspired by real-world advertising...
August 2, 2023: Big Data
https://read.qxmd.com/read/37527185/a-weighted-graphsage-based-context-aware-approach-for-big-data-access-control
#24
JOURNAL ARTICLE
Dibin Shan, Xuehui Du, Wenjuan Wang, Aodi Liu, Na Wang
Context information is the key element to realizing dynamic access control of big data. However, existing context-aware access control (CAAC) methods do not support automatic context awareness and cannot automatically model and reason about context relationships. To solve these problems, this article proposes a weighted GraphSAGE-based context-aware approach for big data access control. First, graph modeling is performed on the access record data set and transforms the access control context-awareness problem into a graph neural network (GNN) node learning problem...
August 1, 2023: Big Data
https://read.qxmd.com/read/37418163/automated-natural-language-processing-based-supplier-discovery-for-financial-services
#25
JOURNAL ARTICLE
Mauro Papa, Ioannis Chatzigiannakis, Aris Anagnostopoulos
Public procurement is viewed as a major market force that can be used to promote innovation and drive small and medium-sized enterprises growth. In such cases, procurement system design relies on intermediates that provide vertical linkages between suppliers and providers of innovative services and products. In this work we propose an innovative methodology for decision support in the process of supplier discovery, which precedes the final supplier selection. We focus on data gathered from community-based sources such as Reddit and Wikidata and avoid any use of historical open procurement datasets to identify small and medium sized suppliers of innovative products and services that own very little market shares...
July 7, 2023: Big Data
https://read.qxmd.com/read/37367178/-correction-to-an-improved-multiexposure-image-fusion-technique-by-nazish-et-al-big-data-2023-11-3-215-224-doi-10-1089-big-2021-0223
#26
(no author information available yet)
No abstract text is available yet for this article.
June 27, 2023: Big Data
https://read.qxmd.com/read/37327377/a-data-driven-analysis-method-for-the-trajectory-of-power-carbon-emission-in-the-urban-area
#27
JOURNAL ARTICLE
Yi Gao, Dawei Yan, Xiangyu Kong, Ning Liu, Zhiyu Zou, Bixuan Gao, Yang Wang, Yue Chen, Shuai Luo
"Industry 4.0" aims to build a highly versatile, individualized digital production model for goods and services. The carbon emission (CE) issue needs to be addressed by changing from centralized control to decentralized and enhanced control. Based on a solid CE monitoring, reporting, and verification system, it is necessary to study future power system CE dynamics simulation technology. In this article, a data-driven approach is proposed to analyzing the trajectory of urban electricity CEs based on empirical mode decomposition, which suggests combining macro-energy thinking and big data thinking by removing the barriers among power systems and related technological, economic, and environmental domains...
June 16, 2023: Big Data
https://read.qxmd.com/read/37289808/image-smart-segmentation-analysis-against-diabetic-foot-ulcer-using-internet-of-things-with-virtual-sensing
#28
JOURNAL ARTICLE
Chandu Thota, Dinesh Jackson Samuel, Mustafa Musa Jaber, M M Kamruzzaman, Renjith V Ravi, Lydia J Gnanasigamani, R Premalatha
Diabetic foot ulcer (DFU) is a problem worldwide, and prevention is crucial. The image segmentation analysis of DFU identification plays a significant role. This will produce different segmentation of the same idea, incomplete, imprecise, and other problems. To address these issues, a method of image segmentation analysis of DFU through internet of things with the technique of virtual sensing for semantically similar objects, the analysis of four levels of range segmentation (region-based, edge-based, image-based, and computer-aided design-based range segmentation) for deeper segmentation of images is implemented...
June 8, 2023: Big Data
https://read.qxmd.com/read/37289184/computational-efficient-approximations-of-the-concordance-probability-in-a-big-data-setting
#29
JOURNAL ARTICLE
Robin Van Oirbeek, Jolien Ponnet, Bart Baesens, Tim Verdonck
Performance measurement is an essential task once a statistical model is created. The area under the receiving operating characteristics curve (AUC) is the most popular measure for evaluating the quality of a binary classifier. In this case, the AUC is equal to the concordance probability, a frequently used measure to evaluate the discriminatory power of the model. Contrary to AUC, the concordance probability can also be extended to the situation with a continuous response variable. Due to the staggering size of data sets nowadays, determining this discriminatory measure requires a tremendous amount of costly computations and is hence immensely time consuming, certainly in case of a continuous response variable...
June 7, 2023: Big Data
https://read.qxmd.com/read/37267209/large-scale-estimation-and-analysis-of-web-users-mood-from-web-search-query-and-mobile-sensor-data
#30
JOURNAL ARTICLE
Wataru Sasaki, Satoki Hamanaka, Satoko Miyahara, Kota Tsubouchi, Jin Nakazawa, Tadashi Okoshi
The ability to estimate the current mood states of web users has considerable potential for realizing user-centric opportune services in pervasive computing. However, it is difficult to determine the data type used for such estimation and collect the ground truth of such mood states. Therefore, we built a model to estimate the mood states from search-query data in an easy-to-collect and non-invasive manner. Then, we built a model to estimate mood states from mobile sensor data as another estimation model and supplemented its output to the ground-truth label of the model estimated from search queries...
June 2, 2023: Big Data
https://read.qxmd.com/read/37253138/opinion-evolution-with-information-quality-of-public-person-and-mass-acceptance-threshold
#31
JOURNAL ARTICLE
Jing Wei, Yuguang Jia, Wanyi Tie, Hengmin Zhu, Weidong Huang
Public persons are nodes with high attention to public events, and their opinions can directly affect the development on events. However, because of rationality, the followers' acceptance to the public persons' opinions will depend on the information trait on public persons' opinions and own comprehension. To study how different opinions of the public persons guide different followers, we build an opinion dynamics model, which would provide a theoretical method for public opinion management. Based on the classical bounded confidence model, we extract the information quality variables and individual trust threshold and introduce them to construct our two-stage opinion evolution model...
May 29, 2023: Big Data
https://read.qxmd.com/read/37219960/secure-biomedical-document-protection-framework-to-ensure-privacy-through-blockchain
#32
JOURNAL ARTICLE
Ramkumar Jayaraman, Mohammed Alshehri, Manoj Kumar, Ahed Abugabah, Surender Singh Samant, Ahmed A Mohamed
In the recent health care era, biomedical documents play a crucial role, and they contain much evidence-based documentation associated with many stakeholders data. Protecting those confidential research documents is more difficult and effective, and a significant process in the medical-based research domain. Those bio-documentation related to health care and other relevant community-valued data are suggested by medical professionals and processed. Many traditional security mechanisms such as akteonline and Health Insurance Portability and Accountability Act (HIPAA) are used to protect the biomedical documents as they consider the problem of non-repudiation and data integrity related to the retrieval and storage of documents...
May 23, 2023: Big Data
https://read.qxmd.com/read/37200492/idliq-an-incremental-deterministic-finite-automaton-learning-algorithm-through-inverse-queries-for-regular-grammar-inference
#33
JOURNAL ARTICLE
Farah Haneef, Muddassar A Sindhu
We present an efficient incremental learning algorithm for Deterministic Finite Automaton (DFA) with the help of inverse query (IQ) and membership query (MQ). This algorithm is an extension of the Identification of Regular Languages (ID) algorithm from a complete to an incremental learning setup. The learning algorithm learns by making use of a set of labeled examples and by posing queries to a knowledgeable teacher, which is equipped to answer IQs along with MQs and equivalence query. Based on the examples (elements of the live complete set) and responses against IQs from the minimally adequate teacher (MAT), the learning algorithm constructs the hypothesis automaton, consistent with all observed examples...
May 18, 2023: Big Data
https://read.qxmd.com/read/37200478/analysis-of-driving-fatigue-characteristics-in-cold-and-hypoxia-environment-of-high-altitude-areas
#34
JOURNAL ARTICLE
Lin Tian, Jueshuai Li, Yanfei Li
The cold and hypoxic environment at high altitudes can easily lead to driving fatigue. For improving highway safety in high-altitude areas, a driver fatigue test is conducted using the Kangtai PM-60A car heart rate and oxygen tester to collect drivers' heart rate oximetry in National Highway 214 in Qinghai Province. Standard deviation (SDNN), mean (M), coefficient of RR (two R heart rate waves), RR interval coefficient of variation (RRVC), and cumulative rate of driving fatigue based on the driver's heart rate RR interval are calculated using SPSS...
May 18, 2023: Big Data
https://read.qxmd.com/read/37195715/small-files-problem-resolution-via-hierarchical-clustering-algorithm
#35
JOURNAL ARTICLE
Oded Koren, Aviel Shamalov, Nir Perel
The Small Files Problem in Hadoop Distributed File System (HDFS) is an ongoing challenge that has not yet been solved. However, various approaches have been developed to tackle the obstacles this problem creates. Properly managing the size of blocks in a file system is essential as it saves memory and computing time and may reduce bottlenecks. In this article, a new approach using a Hierarchical Clustering Algorithm is suggested for dealing with small files. The proposed method identifies the files by their structure and via a special Dendrogram analysis, and then recommends which files can be merged...
May 16, 2023: Big Data
https://read.qxmd.com/read/37155679/investment-recommender-system-model-based-on-the-potential-investors-key-decision-factors
#36
JOURNAL ARTICLE
Asefeh Asemi, Adeleh Asemi, Andrea Ko
In this research, we propose an automatic recommender system for providing investment-type suggestions offered to investors. This system is based on a new intelligent approach using an adaptive neuro-fuzzy inference system (ANFIS) that works with four potential investors' key decision factors (KDFs), which are system value, environmental awareness factors, the expectation of high return, and expectation of low return. The proposed system provides a new model for investment recommender systems (IRSs), which is based on the data of KDFs, and the data related to the type of investment...
May 8, 2023: Big Data
https://read.qxmd.com/read/37134205/an-autoregressive-based-kalman-filter-approach-for-daily-pm-2-5-concentration-forecasting-in-beijing-china
#37
JOURNAL ARTICLE
Xinyue Zhang, Chen Ding, Guizhi Wang
With the acceleration of urbanization, air pollution, especially PM2.5 , has seriously affected human health and reduced people's life quality. Accurate PM2.5 prediction is significant for environmental protection authorities to take actions and develop prevention countermeasures. In this article, an adapted Kalman filter (KF) approach is presented to remove the nonlinearity and stochastic uncertainty of time series, suffered by the autoregressive integrated moving average (ARIMA) model. To further improve the accuracy of PM2...
May 3, 2023: Big Data
https://read.qxmd.com/read/37093038/kriging-polynomial-chaos-expansion-and-low-rank-approximations-in-material-science-and-big-data-analytics
#38
JOURNAL ARTICLE
Golsa Mahdavi, Mohammad Amin Hariri-Ardebili
In material science and engineering, the estimation of material properties and their failure modes is associated with physical experiments followed by modeling and optimization. However, proper optimization is challenging and computationally expensive. The main reason is the highly nonlinear behavior of brittle materials such as concrete. In this study, the application of surrogate models to predict the mechanical characteristics of concrete is investigated. Specifically, meta-models such as polynomial chaos expansion, Kriging, and canonical low-rank approximation are used for predicting the compressive strength of two different types of concrete (collected from experimental data in the literature)...
April 24, 2023: Big Data
https://read.qxmd.com/read/37092983/gtfs2net-extraction-of-general-transit-feed-specification-data-sets-to-abstract-networks-and-their-analysis
#39
JOURNAL ARTICLE
Gergely Kocsis, Imre Varga
Mass transportation networks of cities or regions are interesting and important to be studied to get a picture of the properties of a somehow better topology and system of transportation. One way to do this lies on the basis of spatial information of stations and routes. As we show however interesting findings can be gained also if one studies the abstract network topologies of these systems. To get these abstract types of networks, we have developed a tool that can extract a network of connected stops from General Transit Feed Specification feeds...
April 24, 2023: Big Data
https://read.qxmd.com/read/37083427/identifying-influential-nodes-in-social-networks-exploiting-self-voting-mechanism
#40
JOURNAL ARTICLE
Panfeng Liu, Longjie Li, Yanhong Wen, Shiyu Fang
The influence maximization (IM) problem is defined as identifying a group of influential nodes in a network such that these nodes can affect as many nodes as possible. Due to its great significance in viral marketing, disease control, social recommendation, and so on, considerable efforts have been devoted to the development of methods to solve the IM problem. In the literature, VoteRank and its improved algorithms have been proposed to select influential nodes based on voting approaches. However, in the voting process of these algorithms, a node cannot vote for itself...
April 19, 2023: Big Data
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