Design of Library Noise Detection Tools Based On Voice Pressure Parameters Using Nodemcu Esp8266

Authors

  • Herianto STMIK Hang Tuah Pekanbaru, Pekanbaru, Indonesia
  • Hasnor Khotimah STMIK Hang Tuah Pekanbaru, Pekanbaru, Indonesia
  • Yuda Irawan STMIK Hang Tuah Pekanbaru, Pekanbaru, Indonesia
  • Elsayed T. Helmy National Institute of oceanography and fisheries, Alexandria
  • Farhad Waseel Kabul University, Kabul, Afghanistan

Keywords:

Noise Detection, Library, Voice Pressure Parameters, Nodemsu , Esp8266.

Abstract

A library visitor would want a quiet atmosphere without noise when in the library so that he can concentrate when reading a book. However, not all visitors who come to the library to read books, there are visitors who just want to chat, use free wifi or other, so that it disturbs the concentration of other visitors who come to read books. Therefore, it is necessary to have a tool to detect sound pressure or sound based on the sound level and the sound produced in a library based on the noise level limit in the library, namely 45-55 dB (desible). This tool is designed based on a microcontroller where the definition of a microcontroller is a complete microprocessor system contained in a microcontroller chip which is different from the multi-purpose microprocessor used in a PC, because a microcontroller generally already contains the minimum system supporting components of a microprocessor, namely memory and programming. This tool can help officers in monitoring the library room from noise that can interfere with the concentration and comfort of library visitors. Based on the results of testing the overall system is as desired, namely the noise detection tool can work in an integrated system, where when the sound sensor detects a noise that exceeds the sound limit, the buzzer will sound, the red led light turns on, the sound module issues a voice message pre-recorded and also the device can be controlled or monitored from the web application

Author Biographies

Herianto , STMIK Hang Tuah Pekanbaru, Pekanbaru, Indonesia

Department of Information System, STMIK Hang Tuah Pekanbaru, Pekanbaru, Indonesia

Hasnor Khotimah , STMIK Hang Tuah Pekanbaru, Pekanbaru, Indonesia

Department of Information System, STMIK Hang Tuah Pekanbaru, Pekanbaru, Indonesia

Yuda Irawan , STMIK Hang Tuah Pekanbaru, Pekanbaru, Indonesia

Department of Information System, STMIK Hang Tuah Pekanbaru, Pekanbaru, Indonesia

Elsayed T. Helmy , National Institute of oceanography and fisheries, Alexandria

National Institute of oceanography and fisheries, Alexandria

Farhad Waseel, Kabul University, Kabul, Afghanistan

Department of mathematics, Kabul University, Kabul, Afghanistan

References

Z.-T. Wang et al., “Riverside underwater noise pollution threaten porpoises and fish along the middle and lower reaches of the Yangtze River, China,” Ecotoxicol. Environ. Saf., vol. 226, p. 112860, Dec. 2021.

M. Lefèvre et al., “Understanding the relationship between air traffic noise exposure and annoyance in populations living near airports in France,” Environ. Int., vol. 144, no. July, p. 106058, Nov. 2020.

R. D. Alquezar and R. H. Macedo, “Airport noise and wildlife conservation: What are we missing?,” Perspect. Ecol. Conserv., vol. 17, no. 4, pp. 163–171, Oct. 2019.

P. Apparicio, J. Gelb, M. Carrier, M.-ève Mathieu, and S. Kingham, “Exposure to noise and air pollution by mode of transportation during rush hours in Montreal,” J. Transp. Geogr., vol. 70, no. June, pp. 182–192, Jun. 2018.

G. Alonso, A. Benito, and L. Boto, “The efficiency of noise mitigation measures at European airports,” Transp. Res. Procedia, vol. 25, pp. 103–135, 2017.

C. Iglesias-Merchan, R. Laborda-Somolinos, S. González-Ávila, and R. Elena-Rosselló, “Spatio-temporal changes of road traffic noise pollution at ecoregional scale,” Environ. Pollut., vol. 286, p. 117291, Oct. 2021.

I. C. Eze et al., “Incidence of depression in relation to transportation noise exposure and noise annoyance in the SAPALDIA study,” Environ. Int., vol. 144, no. July, p. 106014, Nov. 2020.

S. O. Oyedepo et al., “Dataset on noise level measurement in Ota metropolis, Nigeria,” Data Br., vol. 22, pp. 762–770, Feb. 2019.

Y. Nakano, M. Senzaki, N. Ishiyama, S. Yamanaka, K. Miura, and F. Nakamura, “Noise pollution alters matrix permeability for dispersing anurans: Differential effects among land covers,” Glob. Ecol. Conserv., vol. 16, p. e00484, Oct. 2018.

A. Korchut, W. Korchut, A. Kowalska-Koczwara, A. Romanska – Zapała, and K. Stypula, “The relationship between psychomotor efficiency and selected personality traits of people exposed to noise and vibration stimuli,” Procedia Eng., vol. 199, pp. 200–205, 2017.

A. C. M. Kok et al., “An echosounder view on the potential effects of impulsive noise pollution on pelagic fish around windfarms in the North Sea,” Environ. Pollut., vol. 290, no. August, p. 118063, Dec. 2021.

P. Cerletti et al., “The independent association of source-specific transportation noise exposure, noise annoyance and noise sensitivity with health-related quality of life,” Environ. Int., vol. 143, no. July, p. 105960, Oct. 2020.

N. D. Merchant, “Underwater noise abatement: Economic factors and policy options,” Environ. Sci. Policy, vol. 92, no. November 2018, pp. 116–123, Feb. 2019.

M. Foraster et al., “Long-term exposure to transportation noise and its association with adiposity markers and development of obesity,” Environ. Int., vol. 121, no. June, pp. 879–889, Dec. 2018.

V. Hodor, D. Birle, L. Nascutiu, and I. Deac, “Aeroacoustics -Noise Prediction by Using ‘LES’ for Signal Processing,” Energy Procedia, vol. 112, no. October 2016, pp. 322–329, Mar. 2017.

G. Burella and L. Moro, “A Comparative Study of the Methods to Assess Occupational Noise Exposures of Fish Harvesters,” Saf. Health Work, vol. 12, no. 2, pp. 230–237, Jun. 2021.

Y. Yu et al., “Air pollution, noise exposure, and metabolic syndrome – A cohort study in elderly Mexican-Americans in Sacramento area,” Environ. Int., vol. 134, no. August 2019, p. 105269, Jan. 2020.

H. Slabbekoorn, “Noise pollution,” Curr. Biol., vol. 29, no. 19, pp. R957–R960, Oct. 2019.

E. O. Okokon, T. Yli-Tuomi, A. W. Turunen, P. Tiittanen, J. Juutilainen, and T. Lanki, “Traffic noise, noise annoyance and psychotropic medication use,” Environ. Int., vol. 119, no. June, pp. 287–294, Oct. 2018.

N. I. Ivanov, I. S. Boiko, and A. E. Shashurin, “The Problem of High-Speed Railway Noise Prediction and Reduction,” Procedia Eng., vol. 189, no. May, pp. 539–546, 2017.

G. Sun et al., “Aircraft noise, like heat stress, causes cognitive impairments via similar mechanisms in male mice,” Chemosphere, vol. 274, p. 129739, Jul. 2021.

Y. Lan, H. Roberts, M.-P. Kwan, and M. Helbich, “Transportation noise exposure and anxiety: A systematic review and meta-analysis,” Environ. Res., vol. 191, no. June, p. 110118, Dec. 2020.

S. E. Shore and C. Wu, “Mechanisms of Noise-Induced Tinnitus: Insights from Cellular Studies,” Neuron, vol. 103, no. 1, pp. 8–20, Jul. 2019.

I. C. Eze et al., “Transportation noise exposure, noise annoyance and respiratory health in adults: A repeated-measures study,” Environ. Int., vol. 121, no. July, pp. 741–750, Dec. 2018.

S. Mavridou and F. Kehagia, “Environmental Noise Performance of Rubberized Asphalt Mixtures: Lamia’s case study,” Procedia Environ. Sci., vol. 38, pp. 804–811, 2017.

Y. Jung, T. Kang, and C. Chun, “Anomaly analysis on indoor office spaces for facility management using deep learning methods,” J. Build. Eng., vol. 43, p. 103139, Nov. 2021.

S. M. Goodman et al., “Scalable manufacturing of fibrous nanocomposites for multifunctional liquid sensing,” Nano Today, vol. 40, p. 101270, Oct. 2021.

S. Sachdev, J. Macwan, C. Patel, and N. Doshi, “Voice-Controlled Autonomous Vehicle Using IoT,” Procedia Comput. Sci., vol. 160, pp. 712–717, 2019.

T. Khaoula, R. A. Abdelouahid, I. Ezzahoui, and A. Marzak, “Architecture design of monitoring and controlling of IoT-based aquaponics system powered by solar energy,” Procedia Comput. Sci., vol. 191, pp. 493–498, 2021.

H. Andrianto, Suhardi, A. Faizal, N. Budi Kurniawan, and D. Praja Purwa Aji, “Performance evaluation of IoT-based service system for monitoring nutritional deficiencies in plants,” Inf. Process. Agric., no. xxxx, pp. 1–19, Oct. 2021.

S. Pasika and S. T. Gandla, “Smart water quality monitoring system with cost-effective using IoT,” Heliyon, vol. 6, no. 7, p. e04096, Jul. 2020.

M. Sarrab, S. Pulparambil, and M. Awadalla, “Development of an IoT based real-time traffic monitoring system for city governance,” Glob. Transitions, vol. 2, pp. 230–245, 2020.

D. K and U. J, “Implementation of Personnel Localization & Automation Network (PLAN) Using Internet of Things (IoT),” Procedia Comput. Sci., vol. 171, no. 2019, pp. 868–877, 2020.

P. Kullu, S. Majeedullah, P. V. S. Pranay, and B. Yakub, “Smart Urban Farming (Entrepreneurship through EPICS),” Procedia Comput. Sci., vol. 172, no. 2019, pp. 452–459, 2020.

B. Singh, S. Urooj, S. Mishra, and S. Haldar, “Blood Pressure Monitoring System using Wireless technologies,” Procedia Comput. Sci., vol. 152, pp. 267–273, 2019.

B. S. S. Tejesh and S. Neeraja, “Warehouse inventory management system using IoT and open source framework,” Alexandria Eng. J., vol. 57, no. 4, pp. 3817–3823, Dec. 2018.

M. Kashyap, V. Sharma, and N. Gupta, “Taking MQTT and NodeMcu to IOT: Communication in Internet of Things,” Procedia Comput. Sci., vol. 132, no. Iccids, pp. 1611–1618, 2018.

A. C. Tasong and R. P. Abao, “Design and Development of an IoT Application with Visual Analytics for Water Consumption Monitoring,” Procedia Comput. Sci., vol. 157, pp. 205–213, 2019.

C. S. S. Guimarães et al., “Integration Between ATIoT Architecture and Wearable Device Applied to Assistive Technologies,” Procedia Comput. Sci., vol. 160, pp. 653–658, 2019.

K. Foughali, K. Fathallah, and A. Frihida, “A Cloud-IOT Based Decision Support System for Potato Pest Prevention,” Procedia Comput. Sci., vol. 160, pp. 616–623, 2019.

Downloads

Published

2022-01-18

How to Cite

Herianto, Hasnor Khotimah, Yuda Irawan, Elsayed T. Helmy, & Farhad Waseel. (2022). Design of Library Noise Detection Tools Based On Voice Pressure Parameters Using Nodemcu Esp8266 . Journal of Applied Social and Informatics Science, 1(1), 21–27. Retrieved from https://e-journal.ptti.info/index.php/jasis/article/view/90

Issue

Section

Articles