Abstract

Background: Recently, WhatsApp has become the world's most popular text and voice messaging application with 1.5 billion users. A lot of WhatsApp Application Programming Interface (API) has also been established to be connected to other applications. On the other hand, the development of natural language processing (NLP) for WhatsApp messages has snowballed. There are extensive studies on the dissemination information using WhatsApp but the study on NLP involving data from WhatsApp is lacking.Objective: This study aims to implement NLP in smart dissemination applications by using WhatsApp API.Methods: We build a framework that embeds an intelligent system based on the NLP in WhatsApp API to disseminate a dynamic message. Some of the sentences are used to evaluate the accuracy of this application.Results: Smart dissemination consists of dynamic filter and dynamic content. Dynamic filter was conducted by using the POS tagger and clause statement. Meanwhile, dynamic content was built by using the replace MySQL function. There are twofold limitation: the application could not transform a message that matches rule <3> with conjunction “dan”; has the same attribute before and after <CC> tag; and the maximum of the logical operator is one type for coordinating conjunction (AND/OR) in one sentence.Conclusion: Our framework can be used for dynamic dissemination of messages using dynamic message content and dynamic message recipient with an accuracy of 95% from twenty sample messages.

Highlights

  • WhatsApp is a pun of the phrase “What's up?” [1]

  • A lot of WhatsApp Application Programming Interface (API) has been established to be connected to other applications

  • The first is the maximum of the logical operator is one type for Coordinating Conjunction (AND/OR) i.e atau in sentences "Kepada Mahasiswa dengan IPK > 3.5 atau mempunyai Hobi Renang; Basket; Senam atau mempunyai angkatan 2019; 2018." (To students with GPA> 3.5 or have a swimming hobby; Basketball; Gymnastics or have a class of 2019; 2018.)

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Summary

Introduction

WhatsApp is a pun of the phrase “What's up?” [1]. It is an alternative messaging service to Short Message Services (SMS) with many benefits such as low-cost [2]; supporting group conversation [3]; supporting rich multimodal medium of communication (text, photos, videos, emoticon, documents and location) [4]; and more secure with end-to-end encryption [5]. A lot of WhatsApp API has been established to be connected to other applications. Wablas is one example of a WhatsApp API gateway service for sending and receiving messages, notification, scheduler, reminder, and tracking with a simple integration system to another service [8]. WhatsApp has become the world's most popular text and voice messaging application with 1.5 billion users. A lot of WhatsApp Application Programming Interface (API) has been established to be connected to other applications. Objective: This study aims to implement NLP in smart dissemination applications by using WhatsApp API. Methods: We build a framework that embeds an intelligent system based on the NLP in WhatsApp API to disseminate a dynamic message. Conclusion: Our framework can be used for dynamic dissemination of messages using dynamic message content and dynamic message recipient with an accuracy of 95% from twenty sample messages

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