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WhatsApp may soon roll out animated emoji feature

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WhatsApp recently introduced new security features for its users, and now there are reports that the Meta-owned platform is testing a new animated emoji feature. The feature was spotted on the latest desktop beta version of the app.

According to WABetaInfo, a website that tracks changes in WhatsApp, the messaging app is working on the animated emoji feature. The website found the feature on WhatsApp Desktop beta and it is expected to be released in a future update. WABetaInfo mentioned in a blog post that this cosmetic improvement will enhance the user experience and make messaging more fun and effective in communicating feelings.

The animated emojis will be sent by default when an animated version of a specific emoji is available, meaning users may not have the option to turn off the animation. These animated emojis are created using Lottie, an optimized library that allows designers to easily create small-sized animations without compromising quality.

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WABetaInfo also revealed that WhatsApp is working on bringing the same animated emoji feature to a future update of WhatsApp beta for iOS and Android.

In addition to the animated emoji feature, WhatsApp has recently rolled out three new security features to enhance user privacy. These features include Account Protect, Device Verification, and Automatic Security Codes. These security features will be added in the coming months.

Account Protect prompts users on their previous devices to confirm their intention to proceed with the account transfer, serving as an additional security measure. It notifies users if there is an unauthorized attempt to move their account to a different device. WhatsApp is also introducing a new security feature using the “Key Transparency” process, which automatically verifies that users have established a secure connection. Users can easily confirm the security of their personal conversations by clicking on the encryption tab. These measures are aimed at preventing hackers from using users’ phones to send unsolicited messages through their WhatsApp accounts.

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Big Data vs. Data Analytics vs. Data Science: What’s the difference?

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In today’s digital age, there is a significant increase in the amount of data being generated. This data holds great potential for businesses, governments, and organizations. However, effectively extracting useful insights from this data requires specialized skills and knowledge. Three terms that often come up in discussions about data are big data, data analytics, and data science. While these terms are related, they have distinct differences. A course on Applied Business Analytics will help clarify the disparities between big data, data analytics, and data science, highlighting their unique characteristics and applications.

Big Data refers to the massive amounts of data, both structured and unstructured, that organizations gather from various sources like social media, sensors, and websites. The term “big” refers not only to the size but also to the three Vs: Volume, Velocity, and Variety. Volume represents the scale of data generated, often in terabytes or petabytes, which poses challenges to traditional data processing techniques. Velocity signifies the speed at which data is generated and needs to be analyzed in real-time or near-real-time. Variety refers to the diverse formats and types of data, including text, images, videos, and sensor data.

Big Data technologies, such as distributed storage systems and parallel processing frameworks like Hadoop, are designed to handle the immense volume, velocity, and variety of data. The main goal of Big Data is to efficiently store, manage, and process data, enabling organizations to extract valuable insights and patterns that were previously inaccessible.

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Data Analytics focuses on extracting meaningful insights from data to support decision-making processes. It involves various techniques and tools used to analyze data, discover patterns, identify trends, and derive actionable insights. Data Analytics can be categorized into descriptive, diagnostic, predictive, and prescriptive analytics.

Descriptive Analytics involves examining historical data to understand past events and trends. It helps answer questions like, “What happened?” and “Why did it happen?”

Diagnostic Analytics aims to identify the causes and reasons behind specific events or trends. It goes beyond describing what happened and delves into the underlying factors contributing to the observed outcomes.

Predictive Analytics utilizes statistical models and machine learning algorithms to forecast future trends and outcomes based on historical data. It allows organizations to anticipate future scenarios, optimize resources, and make proactive decisions.

Prescriptive Analytics takes predictive analytics a step further by providing recommendations on the actions to be taken to achieve desired outcomes. It uses optimization techniques and simulation models to suggest the best course of action based on various constraints and objectives.

Data Science: The Intersection of Statistics and Computer Science

Data Science is a multidisciplinary field that integrates techniques from statistics, mathematics, and computer science to extract knowledge and insights from data. Data scientists are highly skilled professionals who possess a deep understanding of statistical modeling, programming, and specialized domain knowledge.

The field of Data Science encompasses a wide range of activities, including data collection, data cleaning, exploratory data analysis, feature engineering, model building, and evaluation. It involves the application of various algorithms and techniques such as machine learning, deep learning, natural language processing, and data visualization to uncover hidden patterns and extract valuable insights from data.

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Data scientists have the responsibility of formulating relevant questions, selecting appropriate methodologies, and interpreting the results to solve complex business problems. They collaborate closely with subject matter experts and stakeholders to translate data-driven findings into actionable strategies and recommendations.

Key differences between Big Data, Data Analytics, and Data Science:
1. Scope: Big data primarily focuses on handling large volumes of data, while data analytics and data science aim to extract insights and value from data.
2. Techniques: Big data utilizes technologies like Hadoop and Spark for processing large datasets, while data analytics and data science employ statistical analysis and various analytical techniques.
3. Objectives: Data analytics aims to uncover patterns and trends for decision-making, while data science seeks to extract insights, build predictive models, and make data-driven predictions.
4. Skill set: Big data requires knowledge of distributed computing and storage systems, while data analytics and data science require expertise in statistics, programming, and domain-specific knowledge.
5. Lifecycle: Data analytics and data science cover the entire data lifecycle, from data collection to analysis and interpretation, while big data primarily focuses on data processing and storage.

In conclusion, although Big Data, Data Analytics, and Data Science are distinct fields, they are interconnected and often overlap in their practical application. They share common areas such as data collection and storage, data preprocessing, programming languages, machine learning techniques, and data visualization. These areas highlight the interconnectedness of the fields and the complementary nature of their methodologies and approaches in extracting value and insights from data.

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Frequently Asked Questions:
1. Which is better: Data science or big data analytics?
Comparing the superiority of data science and big data analytics is subjective as they serve different purposes. Data science focuses on extracting insights and building predictive models, while big data analytics primarily emphasizes processing and analyzing large volumes of data.

2. What is the salary difference between big data analysts and data scientists?
The salaries of professionals in big data analytics and data science can vary widely based on factors such as experience, location, industry, and company size. Generally, both fields offer competitive salaries. However, data science often commands higher pay due to its specialized skill set and demand.

3. Does big data require coding?
Yes, coding skills are typically required in big data. Proficiency in programming languages such as Python, R, Java, or Scala is essential for tasks such as data extraction, transformation, and analysis. Knowledge of distributed computing frameworks like Hadoop or Spark is also valuable for efficient handling of large datasets.

4. What is data analytics?
Data analytics is the process of examining and interpreting data to uncover meaningful patterns, trends, and insights. It involves the application of statistical analysis and various analytical techniques to extract valuable information that can drive decision-making and optimize business operations.

5. What industries can benefit from data science?
Data science has numerous applications across a wide range of industries, such as finance, healthcare, marketing, e-commerce, and technology. Its potential benefits encompass optimizing business operations, enhancing customer experiences, detecting fraudulent activities, generating personalized recommendations, and enabling data-driven decision-making in various sectors.

Apple revamps website design with new drop-down navigation menus

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Apple has unveiled its newly redesigned website, featuring a new drop-down navigation menu. The menu includes categories such as Store, Mac, iPad, iPhone, Watch, AirPods, TV&Home, Entertainment, Accessories, and Support. The objective of this redesign is to improve the website’s navigation and visual appeal.

The layout of the site has been reorganized and streamlined to make it easier for users to find what they are looking for. Additionally, the website now sports a more modern and responsive design across different categories.

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One of the key updates is the addition of quick links in each category, allowing users to access more information about specific products with ease. Previously, the navigation bar on Apple’s website was static and did not have a dropdown menu feature. Users had to click on the respective item in the menu bar to discover more details, which would then redirect them to the dedicated product webpage.

Notably, all items in Apple’s top navigation bar now display dropdown menus upon hovering the mouse over them, providing convenient access to quick links.

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Furthermore, Apple has also made changes to the mobile version of its website. The navigation menu has been relocated to the upper-right side of the screen for mobile users. Additionally, there are new animations that appear after selecting different products, enhancing the overall user experience. These changes were observed and shared by Michael Steeber and Jared Cardona on Mastodon and Twitter, respectively.

Apple updates iCloud website with new design: What has changed

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In October, Apple began testing a new design for iCloud.com, its cloud service website. After weeks of testing, the redesigned website has now exited beta and is available for all users with an Apple ID. Let’s take a look at the new features and customization options offered on the revamped iCloud website.

Upon logging in with their Apple IDs, users will notice a new wallpaper and tiles for their Apple ID account, as well as apps like Photos, Calendar, Mail, Notes, and iCloud Drive. Additionally, there is a tile dedicated to other apps including Numbers, Keynote, Find My, Pages, and more.

One of the key highlights of the new design is that users can customize the website according to their preferences. They can choose which apps appear in each tile or even remove a tile entirely. Furthermore, users can add, remove, or rearrange tiles based on other iCloud services. This flexibility allows users to personalize their iCloud website experience.

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The updated website also offers the ability to add new tiles for the iWork suite and iCloud+ features like Hide My Email, iCloud Private Relay, and HomeKit Secure Video. By clicking on the plus sign in the top menu bar, users can conveniently create new emails, calendar events, and notes, among other options. Additionally, users can access the service’s web app page through a widget.

The bottom part of the page displays important information such as the user’s iCloud plan, the amount of storage used, and Apple’s data recovery service. Users are provided with a link to recover recently deleted files from iCloud Drive and other apps.

Apple claims that the redesigned iCloud.com page offers a more streamlined experience, allowing users to easily find information at a glance. With its new look and customizable options, the iCloud website aims to enhance user convenience and provide a seamless user experience.

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