595 research outputs found

    A Review of pedestrian indoor positioning systems for mass market applications

    Get PDF
    In the last decade, the interest in Indoor Location Based Services (ILBS) has increased stimulating the development of Indoor Positioning Systems (IPS). In particular, ILBS look for positioning systems that can be applied anywhere in the world for millions of users, that is, there is a need for developing IPS for mass market applications. Those systems must provide accurate position estimations with minimum infrastructure cost and easy scalability to different environments. This survey overviews the current state of the art of IPSs and classifies them in terms of the infrastructure and methodology employed. Finally, each group is reviewed analysing its advantages and disadvantages and its applicability to mass market applications

    Mobility increases localizability: A survey on wireless indoor localization using inertial sensors

    Get PDF

    IntegraĆ§Ć£o de localizaĆ§Ć£o baseada em movimento na aplicaĆ§Ć£o mĆ³vel EduPARK

    Get PDF
    More and more, mobile applications require precise localization solutions in a variety of environments. Although GPS is widely used as localization solution, it may present some accuracy problems in special conditions such as unfavorable weather or spaces with multiple obstructions such as public parks. For these scenarios, alternative solutions to GPS are of extreme relevance and are widely studied recently. This dissertation studies the case of EduPARK application, which is an augmented reality application that is implemented in the Infante D. Pedro park in Aveiro. Due to the poor accuracy of GPS in this park, the implementation of positioning and marker-less augmented reality functionalities presents difficulties. Existing relevant systems are analyzed, and an architecture based on pedestrian dead reckoning is proposed. The corresponding implementation is presented, which consists of a positioning solution using the sensors available in the smartphones, a step detection algorithm, a distance traveled estimator, an orientation estimator and a position estimator. For the validation of this solution, functionalities were implemented in the EduPARK application for testing purposes and usability tests performed. The results obtained show that the proposed solution can be an alternative to provide accurate positioning within the Infante D. Pedro park, thus enabling the implementation of functionalities of geocaching and marker-less augmented reality.Cada vez mais, as aplicaƧƵes mĆ³veis requerem soluƧƵes de localizaĆ§Ć£o precisa nos mais variados ambientes. Apesar de o GPS ser amplamente usado como soluĆ§Ć£o para localizaĆ§Ć£o, pode apresentar alguns problemas de precisĆ£o em condiƧƵes especiais, como mau tempo, ou espaƧos com vĆ”rias obstruƧƵes, como parques pĆŗblicos. Para estes casos, soluƧƵes alternativas ao GPS sĆ£o de extrema relevĆ¢ncia e veem sendo desenvolvidas. A presente dissertaĆ§Ć£o estuda o caso do projeto EduPARK, que Ć© uma aplicaĆ§Ć£o mĆ³vel de realidade aumentada para o parque Infante D. Pedro em Aveiro. Devido Ć  fraca precisĆ£o do GPS nesse parque, a implementaĆ§Ć£o de funcionalidades baseadas no posionamento e de realidade aumentada sem marcadores apresenta dificuldades. SĆ£o analisados sistemas relevantes existentes e Ć© proposta uma arquitetura baseada em localizaĆ§Ć£o de pedestres. Em seguida Ć© apresentada a correspondente implementaĆ§Ć£o, que consiste numa soluĆ§Ć£o de posicionamento usando os sensores disponiveis nos smartphones, um algoritmo de deteĆ§Ć£o de passos, um estimador de distĆ¢ncia percorrida, um estimador de orientaĆ§Ć£o e um estimador de posicionamento. Para a validaĆ§Ć£o desta soluĆ§Ć£o, foram implementadas funcionalidades na aplicaĆ§Ć£o EduPARK para fins de teste, e realizados testes com utilizadores e testes de usabilidade. Os resultados obtidos demostram que a soluĆ§Ć£o proposta pode ser uma alternativa para a localizaĆ§Ć£o no interior do parque Infante D. Pedro, viabilizando desta forma a implementaĆ§Ć£o de funcionalidades baseadas no posicionamento e de realidade aumenta sem marcadores.EduPARK Ć© um projeto financiado por Fundos FEDER atravĆ©s do Programa Operacional Competitividade e InternacionalizaĆ§Ć£o - COMPETE 2020 e por Fundos Nacionais atravĆ©s da FCT - FundaĆ§Ć£o para a CiĆŖncia e a Tecnologia no Ć¢mbito do projeto POCI-01-0145-FEDER-016542.Mestrado em Engenharia InformĆ”tic

    Off-line evaluation of indoor positioning systems in different scenarios: the experiences from IPIN 2020 competition

    Get PDF
    Every year, for ten years now, the IPIN competition has aimed at evaluating real-world indoor localisation systems by testing them in a realistic environment, with realistic movement, using the EvAAL framework. The competition provided a unique overview of the state-of-the-art of systems, technologies, and methods for indoor positioning and navigation purposes. Through fair comparison of the performance achieved by each system, the competition was able to identify the most promising approaches and to pinpoint the most critical working conditions. In 2020, the competition included 5 diverse off-site off-site Tracks, each resembling real use cases and challenges for indoor positioning. The results in terms of participation and accuracy of the proposed systems have been encouraging. The best performing competitors obtained a third quartile of error of 1 m for the Smartphone Track and 0.5 m for the Foot-mounted IMU Track. While not running on physical systems, but only as algorithms, these results represent impressive achievements.Track 3 organizers were supported by the European Unionā€™s Horizon 2020 Research and Innovation programme under the Marie Skłodowska Curie Grant 813278 (A-WEAR: A network for dynamic WEarable Applications with pRivacy constraints), MICROCEBUS (MICINN, ref. RTI2018-095168-B-C55, MCIU/AEI/FEDER UE), INSIGNIA (MICINN ref. PTQ2018-009981), and REPNIN+ (MICINN, ref. TEC2017-90808-REDT). We would like to thanks the UJIā€™s Library managers and employees for their support while collecting the required datasets for Track 3. Track 5 organizers were supported by JST-OPERA Program, Japan, under Grant JPMJOP1612. Track 7 organizers were supported by the Bavarian Ministry for Economic Affairs, Infrastructure, Transport and Technology through the Center for Analytics-Data-Applications (ADA-Center) within the framework of ā€œBAYERN DIGITAL II. ā€ Team UMinho (Track 3) was supported by FCTā€”FundaĆ§Ć£o para a CiĆŖncia e Tecnologia within the R&D Units Project Scope under Grant UIDB/00319/2020, and the Ph.D. Fellowship under Grant PD/BD/137401/2018. Team YAI (Track 3) was supported by the Ministry of Science and Technology (MOST) of Taiwan under Grant MOST 109-2221-E-197-026. Team Indora (Track 3) was supported in part by the Slovak Grant Agency, Ministry of Education and Academy of Science, Slovakia, under Grant 1/0177/21, and in part by the Slovak Research and Development Agency under Contract APVV-15-0091. Team TJU (Track 3) was supported in part by the National Natural Science Foundation of China under Grant 61771338 and in part by the Tianjin Research Funding under Grant 18ZXRHSY00190. Team Next-Newbie Reckoners (Track 3) were supported by the Singapore Government through the Industry Alignment Fundā€”Industry Collaboration Projects Grant. This research was conducted at Singtel Cognitive and Artificial Intelligence Lab for Enterprises (SCALE@NTU), which is a collaboration between Singapore Telecommunications Limited (Singtel) and Nanyang Technological University (NTU). Team KawaguchiLab (Track 5) was supported by JSPS KAKENHI under Grant JP17H01762. Team WHU&AutoNavi (Track 6) was supported by the National Key Research and Development Program of China under Grant 2016YFB0502202. Team YAI (Tracks 6 and 7) was supported by the Ministry of Science and Technology (MOST) of Taiwan under Grant MOST 110-2634-F-155-001
    • ā€¦
    corecore