What is AI? Introduction to AI

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Artificial Intelligence (AI) Tutorial 

Artificial Intelligence (AI) can be formulated as an emerging branch of computer science concerned with the creation of actual intelligent systems that mimic different human competencies. Offensive uses include voice assistance, self-driving cars, recommendation systems and diagnoses. It encompasses elements of machine learning, data science, robotics and other areas to design systems that can learn, infer and act. That is why is is important to understand properly the meaning of the main concept of AI as well as the possibilities and outcomes to expect in practice .

What is Artificial Intelligence (AI)?

Artificial intelligence, as a computer science discipline, works to develop machines that execute duties that require human cognitive  abilities. The human-related operations encompass learning combined with  reasoning alongside problem-solving and decision-making paths.

AI merges the words "Artificial", describing human-made components, and "Intelligence", referring to thinking capabilities to generate machines that emulate human thought processes.

Definition:

  • "It is a branch of computer science by which we can create intelligent machines that  can behave like humans, and be able to make decision. "

Artificial intelligence is the ability of a computer to learn, reason, and solve problems like a human being. 

Artificial intelligence is remarkable because it allows you to design a computer with preprogrammed algorithms that can operate with your intellect without requiring you to preprogram it accomplish any tasks. 

Why Artificial Intelligence ?

AI is important because:

  • It solves real-world problems in areas like healthcare, marketing, and traffic management. 
  • It helps you create your virtual assistant, like Cortana, Google Assistant , Siri  etc.
  • It allows robots to work in conditions that may be either hazardous to human life or are impossible for human being to access.
  • It promotes creativity and creates a numbers of opportunities for further development of technology and its usage.
History of AI
  • It is vey interesting to know that the concept of intelligent machines has existed even in  ancient civilizations, myths, and structures like the Egyptian pyramids. Information about symbolic reasoning was researched by philosophers Aristotle and Ramon Llull.
  • In the 1800s-1900s, Charles Babbage and Ada Lovelace introduced the concept of utilizing programmable machines, In the  period of 1940s, john Von Neumann invented stored-program computers and McCullochs & Pitts introduced ideas of neural networks.
  • After the Second World War, particularly in the 1956s , Alan Turing came up with the Turing Test . The terms 'AI' was first used in 1956 at Dartmouth  College, and the first AI system was known as the logic theorist.
What Comprises of Artificial Intelligence ?
AI is actually not limited to computer science; it includes several domains that mimic human intelligence. Intelligence includes reasoning, learning, problems-solving, perception and language understanding.

To achieve this , AI leverages on number of fields, such as;
  • Mathematics 
  • Biology
  • Psychology
  • Sociology
  • Computer Science
  • Neuroscience 
  • Statistics 
These field work together to develop intelligent systems capable of human-like behaviour . 

Types of Artificial Intelligence 

Artificial intelligence is divided into different types mostly determined by two key factors; capabilities and functionality .

AI type 1:Based on capabilities 

  1. weak AI or Narrow AI: This type of AI can be used to solve certain problems and focus on a particular kind  of job. It is only effective when it is used in a specific area and does not produce the same results when applied in other areas. It applies to smart products, known as virtual assistants such as Siri, systems engaged in image recognition, and IBM's Watson.
  2.  General AI: General AI, also known as strong AI, on the other hand, refers to machines capable of achieving any action that a man is capable of accomplishing. It is planning to attain human-like features such as intelligence characteristics like reasoning and learning processes. This is another type of  AI that is  still under research and has not been developed to its realization.
  3. Super AI: An advanced artificial intelligence in which every domain is superior to that of humans in terms of their decision-making power, problem-solving skills, learning capabilities, as well as their feeling and emotions. It is the final stage of AI development and it does not currently exist in the world.
AI Type 2: Based on functionality 
  1. Reactive Machines: This type of AI processes the current input data and does not have any previous experience. They follow pre-defined rules. Some of the most widely known examples include IBM's chess known as deep Blue and the  Go-playing computer termed Google's AlphaGo.
  2. Limited Memory: Many of then use the earlier information to establish something for a limited period. Some of the concrete samples include self-driving cars that follow other vehicles, the road condition of the environment. 
  3. Theory of Mind: The purpose of this AI is to comprehend the feelings, desires or even gestures of people. As previously stated, it is still part of the theoretical research and has not been fully realized. 
  • self-Awareness: The final type of artificial intelligence that  remains at the level of theory is even more superior to human intelligence as it would have consciousness and feeling . People  would consider this level  of AI as a significant level of advancement in technology as well as in knowledge.
Advantages of AI
The following are some main advantages of Artificial Intelligence:

  • High Accuracy with less error: AI machines or systems have low incidence of error and are highly accurate because they make their decisions based on experience or knowledge.
  • High-speed: AI systems are able to make decisions quickly and with extreme speed; as a result, they are able to defeat a chess champion in a chess game.
  • High reliability: AI systems are incredibly dependable and capable of accurately repeating the same task over and again.
  • Beneficial for hazardous environments where utilizing  humans might be harmful, such as defusing bomb or researching the ocean floor.
  • Digital Assistant: AI has a number of applications, for instance, in the current generation of E-commerce websites where AI technology can be used to show products in accordance with consumers' demands.
  • Useful as a public utility: Artificial intelligence (AI) has the potential to be highly helpful for public utilities like self-driving cars, which can make our travels safer and less complicated, face recognition for security, natural language processing to speak to people in their native tongue, etc.
  • Enhanced Security: AI can indeed be very beneficial in improving security issues because of its ability to scan security threats when they are happening and counteract them to prevent affecting the firm and organization's information and machinery.
  • Aid in Research: AI is useful to the research process as it helps researchers analyze large data sets in areas such as astronomy, genomics, and materials science in a timely manner.
Disadvantages of AI
There are drawbacks to any technology, including artificial intelligence. The drawbacks of  AI are as follows:
  • Expensive: Since the AI requires regular maintenance to adjust to  modern standards, the hardware and software costs are relatively high.
  • Unable to think creatively: However, to  this date, robots cannot be said to possess creativity because their operations are limited to specific instructions and programs given to them.
  • No feelings or emotions: these robots can be incredible performers, but one thing they don't possess is feelings, which are essential for the formation of friendly relationships with humans. Consequently, there is a probability that such users may be unsafe if not provided adequate care.
  • Increased reliance on machines: In today's society one can observe that people's minds are gradually failing due to their tight connection with devices.
  • Lack of Original Creativity: Nevertheless, although the growth rate within human is amazing or even inspiring, artificial intelligence computers can hardly be compared to humans intelligence in terms of creativity and inventiveness. 
  • Complexity: The creation and sustained operation of artificial intelligence may be quite difficult and require certain skills. For this reason some persons or organizations may have it hard in being able to employ as a result.
  • Job Concerns: This means that it will not stop at replacing basic professions only; it may also impose on specific skilled professions, It is for this reason that many people in number of parts are anxious about losing their jobs due to this.
Challenges of AI
AI has several benefits, but it also has some challenges that must be solved:

  • Doing the Right Thing: AI has to  make the right decisions, but sometimes it does  not do that. It can wrong or perform acts that are undesirable or not objectively right. There is a need to improve the decision-making ability of artificial intelligence and increase the 'good choice' factor or artificial intelligence .
  • Government and AI: Sometimes governments employ AI surveillance on people. This can threaten the concept of freedom; therefore, we have to ensure that they include the aspects of artificial intelligence in a good manner.
  • Bias in AI: Sometimes, AI seems to be  partial, for instance, when identifying the facial features of different people. This is rather disadvantageous, speaking of which this affects individuals who are not 'like  most people;.
  • AI and Social Media: Social media feeds are controlled  by AI. However, sometimes, it reveals  some  probably false or even little cruel information. It is important for 'AI' to show the right things.
  • Legal and Regulatory Challenges: With the advancement of AI, there is inadequate legislative and regulatory low to cover most of the issues that surround AI, such as accountability and responsibility.
AI Tools and Services 
AI tools and services for various applications are developing rapidly, and this development has some roots in 2012, which is  related to the appearance of the Alex Net neural  network. This make a new epoch of high-performance AI possible by the utilization of GPUs and large data sets. This highlighted the largest change in training networks with large quantities of data on multiple GPUat once, which became  more efficient.
  • Transformers: Google used a large number of standard computers with specialized processors called GPUs to develop AI more effectively. Transformers were make feasible by this discovery. Transformers enable AI  to learn from unlabelled data, much like computer learning to comprehend English.
  • Hardware Advancements: Businesses such as Nvidia enhanced these GPU' internal mechanisms.  They improved their ability to handle the mathematical  tasks that AI  must perform. AI became a million times better thanks to the collaboration of computer data centers, smarter AI software, and improved hardware! Nvidia is also collaborating with cloud services providers to ensure that others can apply this mighty AI without a problem.
  • GPTs: Earlier, if a company wanted to incorporate AI in its operations, it had to build it from the ground up, which was costly and would take a lot of time . These days, companies like Open AI, Nvidia, Microsoft, and Google provide pre-trained AI models. The specific models can be fine-tuned on such tasks more efficiently and at a lower expense. The assists businesses in adopting AI at a faster pace and with fewer risks involved in the process.
  • AI in the Cloud: It is not always easy to use AI because it requires a lot of data processing in the cloud. Some of the largest cloud computing firms, such as Amazon, Google, Microsoft, IBM and Oracle, are helping to ease this problem. there, it offers AI services for the difficult components of task, such as data preparation, training of models for AI and integrating AI into applications.
  • Advanced AI for Everyone: Some organizations develop excellent AI modes and publish them. For instance, Open AI has models ranging from certain ones that are proficient in negotiating to others proficient in language comprehension, image creation, and even coding, and even coding. The former is Nvidia , and the latter is not affiliated with a single cloud firm. Other people have come up with different ways of producing special models of AI for various occupations and profession. The English Club has been likened to vast toolbox that contains number of strong implements in a range of activities.
Applications of Artificial Intelligence (AI)
Artificial  Intelligence is a rapidly growing technology that is penetrating the contemporary world through solutions to numerous problems within different sectors. Taking health care, education, finance, entertainment, and agriculture as some of the sample sectors, there is significant improvement in efficiency, accuracy, and convenience from the general application of artificial intelligence. It replicates human thinking abilities and can solve problems concerning learning, reasoning, and decision-making much more proficiently than a human being.

From helping cars to drive themselves, enhancing the experience a user gets on an interface, or helping researchers in their quest for new knowledge about our universe, AI is asserting itself in the age of smart systems. Thus, it is significant to learn more and use this impactful  technology correctly.

AI Applications

The following are some sectors that apply artificial intelligence.

AI in Astronomy 

  • Automated Celestial Object Identification: stars, Galaxies, and space phenomena Identification from telescope image data with a high level of accuracy. This speaks to the discovery of new phenomena and datasets that reduce the role of astronomers in making observations on what they find fascination.
  • Exoplanet hunting: It uses the variation in the brightness of stars to look for drops that suggest the presence of planets orbiting the stars, assisting scientists in finding new exoplanets.
  • Analyzing space Information: AI receives large data feeds from telescopes and makes patterns or irregularities that help in discoveries, such as the confirmation of dark matter or black holes.
  • Real-time Monitoring of space Events: AI system are used to constantly survey space and look for such events as supernovae to alert astronomers.
  • Intelligent Telescope Control: AI sets telescope characteristics according to the actual climate or other conditions or depending on the type of observations that are to be conducted to optimize the image and timeliness of receiving them.
AI in healthcare 
  • Medical Imaging Analysis: Diagnosing patients' condition, interpreting X-rays, MRI or CT scans to identify cancerous tissue, breakages, internal bleeding & more.
  • Predictive Diagnostics: Patients' history and  habits are used to anticipate diseases and conditions before occurrence,  and this helps in the diagnosis of diseases such as heart ailments or cancer.
  • Drug Discovery & Development: Here the software mimics the molecular behaviors to screen and select potent drug molecules in a shorter period and with less investment than the corresponding costs involved in the conventional approach.
  • Personalized Medicine: AI takes into consideration the patient's genes and medical history to ensure the best results with minimal side effects.
  • Operational Efficiency in Hospitals: AI enhances the usage of resources, patient traffic, and staff timetables, as limits the wait time for patients.
AI in Gaming
  • Smart NPS Behavior: AI makes non-player characters react and adapt dynamically, providing a challenging and immersive gaming experience.
  • Procedural content generation: Another area of AI application in games is procedural content generation since it is s time-saving invention that offers a wide variety  of game environments, levels, and quests for the players.
  • Realistic graphics and physics: AI improves the graphics, which makes characters and objects look almost real, as well as making the physical aspects of the game real.
AI in Finance
  • Froud Detection: Through machine learning, AI can analyze and quickly distinguish fraudulent transactions based on previous instances, lowering the occurrence of fraud.
  • Algorithmic Trading: Accurate computer-driven buying and selling of stocks in the market with high rates of gains, which determines the best time to buy and sell depending on the current data and models.
  • Credit Risk Assessment: The AI here looks at how a borrower handles their credit; this enables the lenders to make informed decisions.
AI in Data Security
  • Anomaly detection: Anomaly detection deals with mining the traffic and identifying exceptions, which may indicate potentially problematic issues such as breaches or malware.
  • Risk Estimation: Based on the part records of attacks, the AI determines the possible threats in the future for which preparations can be made beforehand.
  • Automated Response Systems: When an invasion is identified, it is possible for an AI to shut down the affected computers or launch a counterattack immediately.
AI in social Media 
  • Content Recommendations: It  follows the behavior and habits of its users and makes suggestions for posts, videos, or advertisements that entice the users.
  • AI Chatbots: These bots automate customer service and avoid delays by relying on customers' messages or comments.
  • Sentiment Analysis: AI derives the attitude of users on topics or products and services and comments, which helps in business decisions.
  • Trend Identification: AI provides brands with details of topics  to look out for concerning social media content or which content is likely to go viral.
 AI in Transport 
  • Route Planning: AI determines effective and efficient routes junctions and highways based on real-time occurrence and avoids unnecessary time wastages and fuel costs.
  • Security Screening: Intelligent scanning tools that assist in scanning eliminate threats at airports while cutting through the time it takes for security checks.
  • Virtual Travel Assistants: AI takes the form of agents that can help with bookings, provide suggestions, or  answer inquiries, thus increasing comfort.
  • Vehicle and Infrastructure Management: By using AI to foresee when vehicles or infrastructures need to e repaired, there is less risk of breakdowns and accidents with preserved safety.
AI in Automotive  Industry
  • Autonomous Vehicles: In this case, AI allows the cars to sense the environment and control them by themselves.
  • Driver Assistance Systems (ADAS): Some smart features include the ability to identify lanes, maintain lane position, use adaptive cruise control , and automatically brake in case there is an a obstacle.
  • Manufacturing Automation: AI checks for defects on production lines, controls inventories and increases the efficiency of the manufacturing factory.
  • Voice Control: AI ensures that drivers do not need to use their hands to operate the car's navigation system, make phone calls, and control the media since this can distract their attention.
AI in Robotics
  • Autonomous Navigation: Robots have the ability to move around and operate and work independently, for instance, in the warehouse or disaster-affected regions.
  • Object Manipulation: AI allows robots to identify, pick, and appropriately interact with various objects for applications such as logistics and production.
  • Human-Robot Collaboration: AI enhances the capability of the robot to be used with ease by people with the aim of assisting humans in the completion of tasks without affecting their safety at the workplace.
AI in Entertainment 
  • Personalized Content: Movies, series or music suggestions depending on the user's preferences increase the level of satisfaction among the audience.
  • Creative Tools: One of the most important creative use cases of AI is that AI provides the tools to support artists as co-creators in the production of pieces such as music, artwork, or videos.
  • Interactive Live Shows: Through AI, real-time translations on stage shows and the overall impact that is exhibited during the show.
AI in Agriculture
  • Crop Monitoring: Drones and sensors help the AI system detect crop health, moisture, and pests to enable timely action.
  • Precision Agriculture: AI knows how much water, fertilizer, or pesticide is best to apply to a certain area in order have maximum return without  wasting resources.
  • Automated Equipment: In the system used for planting, applying chemicals, and even reaping, machines are driven by AI technology; thus, the cost of labor is high.
  • Livestock Tracking: The AI system is used in animals to help farmers note the health or any abusive behavior associated with the stock.
AI in E-commerce 
  • Product Recommendations: By using product recommendation the customer is offered products related to their interests, thus making it easy for sales to be made and the customer satisfied with the recommended products
  • Inventory Management: AI anticipates customer demand and can automatically reorder to replenish stocks or else order to many products that are not in high demand.
  • Dynamic Pricing: Prices are changed periodically according to factors influencing them, such as market trends, competitor prices, and customer demand, to extract the maximum amount of money. 
AI in Education
  • Automated Content Generation: With the help of Artificial intelligence, teachers can easily present quizzes, notes, and lesson plans so they do not waste time on manual typing, and the quality of the content is higher.
  • Virtual Tutors: It is a feature that uses artificial intelligence and is available all the time to assist the learners with questions and guidelines.
  • Instant Feedback: Since it can grade assignments and tests over the shortest time possible, it eases the process of checking on student's performance.
  • Personalized Learning Paths: Through the help of an Artificial Intelligence application, students are provided with materials suiting their student's abilities and difficulties.

Features of Artificial Intelligence (AI)

Artificial intelligence is no longer about the renowned concepts of science fiction but a transformative power that changes industries' faces, improves life at hand and pushes boundaries on the potential ability residing in technology. Originally rooted in complex algorithms and computational power, AI grew into  multidimensionality in its capability as it could perform tasks that traditionally seemed to require human intelligence.

Form automation of routine tasks to deep data analytics, AI is  redesigning the way we connect to technology and the functioning of businesses. The learnability of this technology over time, the capacity to adapt itself, and the path to continuous improvement make it central to modern technology. Understanding the core features that define AI is important as it percolates through every other sector, facilitating the full realization of its potential and adapting to the changes it brings to life and workplaces.

Eliminate Dull and Boring Work

This is where the Artificial Intelligence system can easily automate repetitive and monotonous tasks, completely removing human involvement in such work. This not only enhances productivity with accuracy but also frees humans to focus on more creative and complex problem-solving. Here is an  in-depth look at how this is achieved with the help of AI:

Automation of Repetitive Tasks

AI systems are good at handling repetitive, routine tasks that normally take long time and prone to human error. These tasks range from entries of simple data to various complex processes within different industries.

Entry and Management of Data

The entry of data is the supreme example of one of the mundane tasks that AI can automate. AI-driven system can put in efficiently, data with minimal errors. In contrast to humans, who  can become fatigued and prone to error, AI can work around the clock to a high degree of accuracy, prerequisite for cases in which the integrity of data has to be guaranteed.

For instance, empowered by AI, OCR technology scans and digitizes paper documents, thereby turning them into editable and searchable data formats. This  procedure is automated, saving time but also reducing data entry errors.

Improving Productivity and Accuracy 

AI greatly enhances productivity by way automating tasks that are repetitive. What used to take hours now takes minutes, freeing the employee's time to do tasks that really require human intelligence and creativity. This shift from mundane to strategic work probably results in higher fob satisfaction and creates an environment within which innovation can take place in the workplace.

Robotic Process Automation (RPA)

Robotic process Automation is a part of Artificial Intelligence that deals with process automation in organizations. RPA utilize Artificial Intelligence and machine learning to tend to high-volume operations that repetitive and typically require human intervention.

Data Ingestion

Ingestion happens to be among the most striking capabilities of AI systems, making them process vast amounts of data with speed and accuracy. Nowadays, every organization located within multiple industries is surrounded by vast amounts of information originating from  various sources.

The ability of AI to quickly digest, and interpret this data greatly enhances intuition by providing the required, hence making it easier to make data-driven decisions. Next is a complete analysis of the role and applications of data ingestion in AI, including:

Speed and Efficiency in Data Processing 

AI systems are designed to process vast data sets, which are overwhelming and very time-consuming if done by human analysts. Basically, data ingestion involves the collection of large data volumes from several sources, transforming them into a format that is usable, and subsequently lading them into a database or data warehouse for analysis.

Data Collection 

AI might draw from various source, including databases, cloud storage, APIs, and real-time streams. As another example, in the financial sector, data could come from feeds concerning the stock market, financial reports, and social media trends.  In the health industry, data can originate from EHR, data can originate from EHRs, medical devices, and clinical trials.

Data transformation

The collected data will then have to be cleaned and transformed into  a form appropriate for analysis. Checking for duplicates, handing missing values, and standardizing formats are all quality control measures that AI algorithms can help automate to ensure the accuracy and consistency of the data. For instance, in marketing, data from several campaigns and channels may be standardized so as to have a unified view of every interaction with the customer.

Data Loading

The last step in the process of data ingestion is to load it into a database or data warehouse. AI ensure all this happens efficiently so that storage and retrieval work effectively. For example, e-commerce companies may load data about customer transactions and browsing behavior into a central repository for analysis to extract insights into buyer preferences and purchase patterns.

Analysis and Interpretation

This will let AI machines ingested with data analyze and interpret data for meaningful insights. This is most needed in industries where the timely and correct analysis of data is the time-tested way of decision-making.

Imitate Human Cognition

One of the most astounding features of AI is the capability of machines to imitate the activity of the human brain. Advanced techniques, one of which is machine learning through neural network, can enable AI systems to learn form data, identify patterns similar to those in the human brain, and consequently, make decisions based on past experiences.

The cognitive capacity makes AI capable of managing different complex tasks with very high accuracy, thus changing whole industries and, accordingly, daily life. Let us look a little deeper at how AI is copying human cognition and take a look at the impact of the ability.

Learning from Data

At its core lies machine learning that enables AI's cognitive capabilities; operating systems learn on their own without explicit programming form data. AI models can process huge volumes of data, understand patterns, and hence derive relationships from the data that enable them to make any prediction or decisions. For example, in language processing, AI systems analyze mounds of text to learn the finesses of the human language, enabling them to perform tasks such as translation and summarization with impressive accuracy.

Pattern Recognition and Decision Making

Pattern recognition drives AI's cognitive functions. For example, AI systems in image analysis can locate entities, faces, and other objects in images by learning from images that have been annotated. Likewise, AI in speech recognition recognizes words and phrases form audio data.

This pattern recognition allows AI to make educated decisions. For instance, self-driving cars are equipped with AI that recognizes traffic signals, pedestrians, and other vehicles to make driving decisions in real- time for safe and efficient operation.

Natural Language Processing (NLP)

One of the directions in AI research is Natural Language Processing, an AI domain dealing with the interaction of computers and human language. Understanding and generating human language empowers AI systems to converse, answer questions, and recommend entities.

This is how virtual assistants like Siri, Alexa, or Google Assistant use NLP to understand voice commands and react according. They are able to set reminders, play music, update on the weather, and even control smart devices at home-exhibiting some cognitive abilities of AI.

Facial Recognition and Chatbots

Among many changing features, Artificial Intelligence has brought into everyday life the fact diffusion, massive usage, and potential impact on various business verticals that facial recognition and chatbots enjoy. These two technologies, built atop cutting-edge AI algorithms, aim to deliver on tasks done manually. thereby enhancing security, customer experience, and, generally, user experience.

Facial recognition is processed through sophisticated AI technology designed to identify and verify individuals against their unique facial features. There are a total of identify and verify individuals against their unique facial features. there are a total of four stages involved: detection, alignment, feature extraction, and finally, matching.

Detection 

The system will first the face either in an image or in any form of video frame. This stage usually involves machine learning models previously trained to recognize facial patterns.

Alignment

On detection of a face, it aligns the face to a standard format to ensure the facial features are in consistent position and provide a basis for further feature analysis. This step is the more critical one for proper recognition, taking into account not only head pose but also variations in lighting.

Feature Extraction

The system then extracts some distinctive features form the face, like eyes' distance, nose shape, and lips shape, After that, these features are converted to a mathematical representation, i.e,. faceprint.

Matching

Match the faceprint previously extracted and described to a database of known faceprints. These are accomplished using advanced algorithms, much like the deep learning approach, utilizing convolutional neural networks that assure highly accurate matches.

Code Example for Facial Recognition

This is one way of putting it on how to do facial recognition using python's face_recognition library.

Chatbots 

Chatbots are AI-fueled virtual assistants constructed to carry on a conversation with humans. They decipher and respond to the user's queries and interact in a conversational way, using natural language and features of machine learning. There are mainly two type of chatbots: Rule-based and Ai-based.

Rule-Based chatbots 

There work with defined rules and scripts; they make simple inquiries and give specific responses to a keyword or words. The entire exercise of a rule-based chatbot is, therefore for simple operations operative with its predefined rules.

AI-Based Chatbots

Such chatbots work through an NLP and machine learning mechanism to comprehend context and intent out of user queries. These can go on to have more complicated dialogues, be well aware of the learning form interactions, ad give more accurate and relevant responses.

Deep Learning 

Artificial intelligence is subset of deep learning that simulates the working of the human brain to extract massive of data and pattern correlations. This is the technology that uses artificial neural networks (ANNs) as a solution to complex problems e.,g., to solve tasks in image recognition, natural language processing or autonomous systems.

Deep learning Modals

They include multiple layers of neurons that are responsible for processing certain features of the input data. The network can hierarchically learn a representation using input, hidden and output layers.

Feature Extraction 

Deep learning automatically extracts the features from the raw data as opposed to traditional machine learning. It removers the need to do manual feature engineering, making it more  efficient to learn new things.

Scalability with large Data Sets

Deep learning enjoys working with large sizes of data, the better; the performance improvers with the increasing training dataset size. Its success in real-world applications is based on big data integretion.

High Accuracy and Precision

Capable of offering the level of accuracy of humans when it comes to things like image recognition and speech synthesis. As such, the models are improved and more precise in predictions as they process more data.

End-to-End Learning

Allows to have direct input-to-output mapping in cases like converting speech to text or translating languages. Integrates all  learning stages in a single models, which simplifies the workflows.

Not Futuristic 

At no time in recent memory have words like Artificial Intelligence been used as after as the term we currently see. AI today has been inserted into almost every sector of people's lives and now lies as the cornerstone of innovation in every single physical and digital space. AI has both practicality and immense potential to be used in soling real-world problems, and these applications are almost everywhere.

Virtual Assistants 

Virtual Assistants such as Alexa, Siri, Google Assistant, etc., are AI-driven systems that provide and understanding of natural language, Reminders, Questions, and control smart devices etc.

Predictive Analytics

AI is used by businesses to run predictive analytics such as analyzing trends, future customers' behavior and their supply chain optimization.

Diagnosis and Imaging 

The use of AI algorithms for early diagnosis is done very accurately by analyzing  the medical images (e.g., X-rays, MRI).

Virtual Health Assistants

Health advice, medication reminders, as well as mental health support are given by applications.

Autonomous Vehicles

Self-driving cars are made with the power of AI systems for safer driving and lower human error.

Traffic Management 

Public transportation is optimized by real-time monitoring of traffic, which aids in the reduction of congestion.

Prevent Natural Disasters 

Natural disasters, including earthquakes, hurricanes, floods and wildfires, are a major safety threat to human life and the environment. Artificial Intelligence (AI) can provide new ways of minimizing these threats using advanced Artificial Intelligence (AI) capabilities. Natural disasters are known for their costly impact, which can contribute to significant changes to both society and the economy that are just as destructive as the disaster itself.

Machine Learning Models 

These models take historical and live data and make predictions for Earthquakes, Hurricanes and floods. For instance, A rainfall and topographic data-based flood risk prediction. Using the data for forecasts for hurricanes, including an analysis of atmospheric pressure and speed.

Computer Vision

Wildfire spread and disaster damage can be monitored by AI-driven drones equipped with computer vision.

Satellite Imaging 

Instead of using that imagery to recognize patterns of forest deforestation, soil erosion or glacier melting that could cause disasters, AI processes satellite images.

Urban and Infrastructure Planning 

The design of disaster-resistant infrastructure is automated using AI such that the occurrence of earthquakes or floods impacts it as minimally as possible.

Climate Change Analysis

By doing this, AI identifies long-term patterns in climate data that allow it to pinpoint the root causes of global warming and deforestation.
 
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1.MS Word Practical Notes
2.Chapter1: Introduction to MS Word
3.Chapter 2: Some Basic Point of MS Word
4.Chapter3 : MS Word - File Menu
5.Chapter 4: MS Word - Home Menu
6.Chapter 5: MS Word - Insert Menu
6.Chapter 5: MS Word - Insert Menu
7.Chapter 6: MS Word - Page Layout Menu
8.Chapter 7: MS Word - References Menu
9.Chapter 8: MS Word - Mailing Menu
10.Chapter 9: MS Word - Review Menu
11.Chapter 10: MS Word - View Menu
MS Word Notes in English
1.Chapter1: MS Word Home Menu
2.Chapter2: MS Word Insert Menu
3.Chapter3: MS Word Page Layout Menu
4.Chapter4: MS Word References Menu
5.Chapter5: MS Word Mailings Menu
6.Chapter6: MS Word Review Menu
7.Chapter7: MS Word View Menu
MS Excel Notes in Hindi
1.Chapter1: Introduction to MS Excel
2.Chapter2: MS Excel Home Menu
3.Chapter3: MS Excel Insert Menu
4.Chapter4: MS Excel Page Layout Menu
5.Chapter5: MS Excel Data Menu
6.Chapter6: MS Excel Review Menu
7.Chapter7: MS Excel View Menu
MS Excel Notes in English
1.Chapter1: Introduction to MS Excel
2.Chapter2: MS Excel Home Menu
3.Chapter3: MS Excel Insert Menu
4.Chapter4: MS Excel Page Layout Menu
5.Chapter5: MS Excel Data Menu
6.Chapter6: MS Excel Review Menu
7.Chapter7: MS Excel View Menu
MS PowerPoint Notes in English
1.Chapter1: Introduction to MS MS PowerPoint
2.Chapter2: MS PowerPoint Home Menu
3.Chapter3: MS PowerPoint Insert Menu
4.Chapter4: MS PowerPoint Design Menu
5.Chapter5: MS PowerPoint Transitions Menu
6.Chapter6: MS PowerPoint Animations Menu
7.Chapter7: MS PowerPoint Slide Show Menu
8.Chapter8: MS PowerPoint Review Menu
9.Chapter9: MS PowerPoint View Menu
MS PowerPoint Notes in Hindi
1.Chapter1: Introduction to MS PowerPoint
2.Chapter2: MS PowerPoint Home Menu
3.Chapter3: MS PowerPoint Insert Menu
4.Chapter4: MS PowerPoint Design Menu
5.Chapter5: MS PowerPoint Transitions Menu
6.Chapter6: MS PowerPoint Animations Menu
7.Chapter7: MS PowerPoint Slide Show Menu
8.Chapter8: MS PowerPoint Review Menu
9.Chapter9: MS PowerPoint View Menu
MS Excel Formula Notes
1.How to Add in Excel
2.How to Subtract in Excel
3.How to Multiply in Excel
4.How to Divide in Excel
5.MAX Formula in Excel
6.MIN Formula in Excel
7.ROMAN Formula in Excel
8.SQRT Formula in Excel
9.POWER Formula in Excel
10.LCM Formula in Excel
11.GCD Formula in Excel
12.FACT Formula in Excel
13.LOWER Formula in Excel
14.UPPER Formula in Excel
15.PROPER Formula in Excel
16.LEFT Formula in Excel
17.RIGHT Formula in Excel
HTML Notes
Chapter 1 : Introduction to HTML
Chapter 2 : HTML Versions
Chapter 3 : HTML DOCTYPE Declaration
Chapter 4 : HTML Attributes
Chapter 5 : HTML Heading Tag
Chapter 6 : HTML Text Formatting Tag
Chapter 7 : HTML Anchor Tag
Chapter 8 : HTML Image Tag
Chapter 9 : HTML List Tag
Chapter 10 : HTML Table Tag
Chapter 11 : HTML Marquee Tag
Chapter 12 : HTML Preformatted & Horizontal Tag
Chapter 13 : HTML Image Tag
Chapter 14 : HTML Anchor Tag
Chapter 15 : HTML Audio Tag
Chapter 16 : HTML Video Tag
Chapter 17 : HTML Iframe Tag
Chapter 18 : HTML Form Tag
Chapter 19 : HTML Website Layout
नीचे क्लिक करें और पढ़ें
1. MS Office क्या है ? पूरी जानकारी हिंदी में ।
2. कंप्यूटर या लैपटॉप में बिना नाम का folder कैसे बनाते है ?
3. कंप्यूटर या लैपटॉप में बिना दिखाई देने वाला फोल्डर कैसे बनाये?
4. किसी भी फोल्डर पर अपना फोटो कैसे लगाये ?
5. कंप्यूटर में फोल्डर का आइकॉन कैसे बदले ?
6. कंप्यूटर में CON नाम का फोल्डर कैसे बनाते है ?
7. किसी भी फोल्डर में पासवर्ड कैसे लगाते है?
8. कंप्यूटर में taskbar को कैसे छुपाये?
9. Desktop icon क्या है पूरी जानकारी हिंदी में।
10. माउस से कीबोर्ड कैसे चलाये?
11. Keyboard से Mouse कैसे चलाये ?
12. Computer Hardware क्या है ? Computer Hardware की पूरी जानकारी हिंदी में।
13. Whatsapp Status Download कैसे करे ? (Photo & Video)
14. Whatsapp पर किसी ने message सेंड कर के delete कर दिए तो उसे फिर से कैसे देखे ?
15. Keyboard क्या है ? Keyboard कितने प्रकार के होते है ? पूरी जानकारी हिंदी में।
16. keyboard में कितने प्रकार की keys होती है ? पूरी जानकारी हिंदी में।
17. Mouse क्या है? Mouse की पूरी जानकारी हिंदी में।
18. Monitor क्या है ? Monitor कितने प्रकार के होते है? पूरी जानकारी हिंदी में।
19. Speaker क्या है ? पूरी जानकारी हिंदी में।
20. कंप्यूटर या लैपटॉप में Screenshot कैसे लेते है?
21. कंप्यूटर कीबोर्ड के सभी symbols का नाम हिंदी में।
22. Printer क्या है ? Printer कितने प्रकार के होते है? पूरी जानकारी हिंदी में।
23. Scanner क्या है ? Scanner कितने प्रकार के होते है ? पूरी जानकारी हिंदी में।
24. Motherboard क्या है ? Motherboard कितने प्रकार के होते है ? पूरी जानकारी हिंदी में।
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27. ROM क्या है ? ROM कितने प्रकार के होते है ? पूरी जानकारी हिंदी में।
28. Processor क्या है ? Processor कितने प्रकार के होते है ? पूरी जानकारी हिंदी में।
29. Hard Disk क्या है ? Hard Disk कितने प्रकार के होते है ? पूरी जानकारी हिंदी में।
30. BIOS और CMOS क्या है ? पूरी जानकारी हिंदी में।
31. USB क्या है और USB कितने प्रकार के होते है?
32. अपने Laptop प्रयोग करने वालो के लिए बहुत ही काम की जानकारी।
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35. VGA Port और VGA Cable क्या होते हैं? पूरी जानकारी हिंदी में।
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37. Computer या Laptop कितनी देर से On है ? कैसे Check करे ?
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44. Software क्या है? Software कितने प्रकार के होते हैं? पूरी जानकारी हिंदी में।
45. मेमोरी कार्ड क्या होता है और कैसे काम करता है?
46. पेन ड्राइव क्या है? और कैसे काम करता है?
47. Email क्या है? और E - mail का इतिहास
48.
48. Credit Card क्या होता है? पूरी जानकारी हिंदी में।
49. Cyber Security क्या है? ये कितने प्रकार के होते हैं?
50. Web Server क्या होता है और किस प्रकार काम करता है?
51. हमें Excel क्यों सीखना चाहिए?
52. Top 5 Job Oriented Computer Courses
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55. Computer Virus क्या हैं? पूरी जानकारी हिंदी में।
56. क्या अंतर होता है HDD और SSD में
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58. Domain Name क्या है? पूरी जानकारी हिंदी में
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60. Top 10 Computer Tips & Tricks
61. ई श्रम योजना क्या हैं ? ई श्रम कार्ड के फायदे। पूरी जानकारी हिंदी में।
62. Computer की Speed कैसे बढ़ाये?
63. Internet क्या है? Internet की पूरी जानकारी हिंदी में।
64. Intranet, Extranet, DSL, TCP, FTP क्या होते हैं?
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66. Web Browser क्या होता हैं और कौन सा Web Browser सबसे अच्छा होता हैं?
67. Website क्या है? पूरी जानकारी हिंदी में।
68. Domain Name क्या है? पूरी जानकारी हिंदी में।
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70. Internet Related Full Form
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75. QR Code क्या होता है? पूरी जानकारी हिंदी में।
76. GPS क्या होता है? पूरी जानकारी हिंदी में।
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79. OTP क्या है? पूरी जानकारी हिंदी में।
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85. Basic Computer Shortcut Keys
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88. MS Excel Shortcut Keys
89. MS PowerPoint Shortcut Keys
90. Photoshop Shortcut Keys
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92. Computer GK in Hindi
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