Halfbrick Launches Free ‘Jetpack Joyride Racing’ Game With Multiplayer Support For Up to Six Players


Mobile game developer Halfbrick today launched a new iOS game in its popular Jetpack Joyride series. Jetpack Joyride Racing is a multiplayer racing game that supports up to six players for real-time racing competitions.

Players can take on the role of Barry Steakfries, Dan, Josie, Professor Brains, Robo Barry, and more, with four circuits and a zone system that changes gameplay on the fly. Purple zones slow you down, red zones cut your engine, and green zones speed you up.

Races feature items to collect for boosts, drift mechanics, and different tactical designs to master in each level. In addition to the competitive racing mode with support for Discord voice chat, players can also team up with friends for collaborative gameplay in Party Mode. The game has easy-to-learn controls, but it will take some time to master drifting and boosting to win.

Players can collect in-game cards for rewards, and the cards are part of the Halfbrick+ collectible card system. Cards unlock ships, characters, and cosmetic items, and will eventually integrate with other Halfbrick+ games similar to Nintendo’s Amiibo. With Season Pass rewards, players can make their way through a progression system laden with prizes.

Jetpack Joyride Racing is free to download and play, with no ads included. The optional Halfbrick+ subscription provides access to other Halfbrick games like Fruit Ninja, plus it includes exclusive rewards, premium cosmetics, faster progression, and subscriber-only content. Halfbrick+ starts at $2.99 per month, but there is no need to subscribe to play Jetpack Joyride Racing.

Jetpack Joyride Racing can be downloaded from the App Store for free. [Direct Link]

Signal Zone Free Download (Build 22638196)


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Signal Zone Direct Download

Defend your base against increasingly dangerous enemy waves each night in this minimalist survival strategy. Mine resources, build and repair defenses, and upgrade your structures, tools, and abilities to survive in this harsh world.

Build, mine, and defend your base to survive the nights
Balance your time between exploration, construction, and defense as you manage scarce resources and adapt your strategy to unpredictable enemy waves.

Day: Gather and prepare
Each day is a short window to explore the map, mine valuable resources, and expand your defenses.

Collect what you can before the sun sets, every resource matters when the night comes.The Occultist

Night: Defend and repair
When darkness falls, waves of hostile creatures strike from all sides.

Your turrets hold the line as your walls take damage, repair and reinforce before the next wave arrives.

To the Last Night
Each run is a test of endurance and resource management.

Upgrade your defenses, experiment with new layouts, and discover different strategies to last a little longer until you finally conquer the last night.

Features and System Requirements:

‘It stayed exactly the same’: Jeff Kaplan takes us back to 2016 by confirming that Blizzard did not change the size of Tracer’s butt



Jeff Kaplan is tackling the real, gritty questions while showing off his new multiplayer action-survival FPS game The Legend of California. And what is the realest, grittest question an ex-Blizzard dev could answer? No, not that one. It’s actually about Tracer’s butt.

To the few of you who are fortunate enough to not have a clue what I’m talking about right now, look away now and spare what remaining braincells you have left. The size of Tracer’s butt was actually a huge deal 10 years ago, around the release of OG Overwatch.

Florida AG to probe OpenAI, alleging possible connection to FSU shooting


Florida Attorney General James Uthmeier announced on Thursday his office will investigate OpenAI for its alleged harm to minors, potential to threaten national security, and its possible link to a shooting that took place at Florida State University last year.

“ChatGPT may likely have been used to assist the murderer in the recent mass school shooting at Florida State University that tragically took two lives,” Attorney General Uthmeier said in a video posted to social media.

On the day of the FSU shooting last April, the suspect allegedly asked ChatGPT how the country would react to a shooting at FSU, and what time it would be busiest at the FSU student union. These messages could potentially be used as evidence against the suspect in an October trial about the shooting.

The attorney general cited further concerns about ChatGPT’s encouragement of suicide in certain instances, which have been documented in multiple lawsuits brought by families against OpenAI. He also mentioned his concern that the Chinese Communist Party could use OpenAI’s technology against the United States.

“As big tech rolls out these technologies, they should not — they cannot — put our safety and security at risk,” he said. “We support innovation. But that doesn’t give any company the right to endanger our children, facilitate criminal activity, empower America’s enemies, or threaten our national security.”

He also called on the Florida legislature to “work quickly” to protect children from the negative impacts of AI.

“Each week, more than 900 million people use ChatGPT to improve their daily lives through uses such as learning new skills or navigating complex healthcare systems,” an OpenAI spokesperson said in a statement to TechCrunch. “Our ongoing safety work continues to play an important role in delivering these benefits to everyday people, as well as supporting scientific research and discovery.”

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OpenAI added that it builds and continues to improve ChatGPT to understand user intent and respond in appropriate, safe ways. The company said it will cooperate with the Florida attorney general’s investigation.

On Wednesday, OpenAI unveiled its Child Safety Blueprint, which includes policy recommendations designed to improve children’s safety as it relates to AI.

This action comes as chatbot makers face pressure to confront their potential role in creating child sexual abuse material (CSAM). According to a recent report from the Internet Watch Foundation, there were over 8,000 reports of AI-generated CSAM in the first half of 2025, which represents a 14% increase year over year.

OpenAI’s blueprint recommends updating legislation to protect against AI-generated abuse material, refining the reporting process to law enforcement, and instituting better preventative safeguards against abusive uses of AI tools.



How Generative AI Is Rewriting Software Testing Rules in 2026


Rewriting the Rules of Software TestingRewriting the Rules of Software Testing
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Software development is a fast-paced process in which developers continuously update code. Quality assurance, however, is generally falling behind. Traditional testing techniques, although useful, can be rigid and time-intensive. In 2026, the landscape is rapidly evolving due to generative AI.

Teams’ approach is being redefined by generative AI in software testing. It involves more than just finishing pre-written scripts. Instead, it introduces intelligent innovation. The system under analysis creates test cases, synthetic data, and automatically adjusts to changes in the code. Teams can now develop tests, detect defects more quickly, fix broken test scripts, or even anticipate potential issues using AI tools. This change is helping organizations transition from flaky to fearless testing, allowing teams to deploy software with greater confidence.

This article will cover how generative AI is rewriting the software testing rules in 2026, from flaky to fearless. So let’s start with an overview of software testing and its evolution.

The Evolution of Software Testing

Software testing was primarily done manually, where testers had to verify and describe each step in depth in their test cases. This strategy is effective, but it raises several issues. Automated testing simplified the process by allowing repetitive tests to be completed considerably faster. Software development organizations had grown, utilizing various automated testing tools to expedite the testing process. However, even this was insufficient; extensive human assistance was necessary, particularly in advanced testing processes.

This is when the intelligent component of generative AI entered the picture, rewriting software testing rules. Based on learnt patterns, it can “develop” entire applications from a predefined dataset. This may now generate and execute complicated or repetitive tests, seamlessly modifying them according to the existing pattern.

Knowing this background makes it clear why generative AI is the best course of action. Generative AI is a result that is self-generative and contextually aware, in contrast to previous iterations that merely received instructions. This will enable autonomous flexibility and reduce the amount of human testers’ effort previously required.

From Flaky to Fearless: How Generative AI is Rewriting the Rules of Software Testing?

  • Scriptless Test Automation

By employing automation testing tools, this testing method entails assessing software quality without using conventional scripts or code. The most likely use cases for various situations are generated by the tools based on the actions that testers take while going through the application. Scriptless test automation platforms are appropriate for a wide range of projects because they can conduct all kinds of testing, including functional and UI/UX testing.

  • Smarter Handling of Flaky Tests

The problem of flaky tests can be addressed by generative AI. AI can spot patterns that indicate instability through analyzing past test runs, system logs, and environmental factors. It can also identify flaky tests, identify whether code flaws or environmental problems are the cause of failures, arrange similar failures together for simpler analysis, and recommend solutions to stabilize unstable tests. This shortens the debugging time and boosts trust in automated testing methods.

  • A Transition to Self-Healing AI Automation Testing Tools

One of the most annoying aspects of the automation process is flaky tests brought on by UI changes. If the developer modifies a button’s ID, a conventional script fails. Generative AI provides self-healing capabilities. Although the “Submit” button is the same functional element, the system detects that its characteristics have changed. The test suite stays positive while the script is immediately updated to interact with the new element.

  • Generation of Synthetic Data

Testing is often hampered by the lack of high-quality data. The use of production data carries some privacy implications. Generative AI can effortlessly create different datasets. It can generate edge scenarios so that the application can handle unexpected user behavior with ease.

Software testing has been greatly improved by automation. However, with every changing software, traditional automation finds it difficult to maintain accuracy, like when code evolves, tests may become less relevant. Generative AI improves testing using an abundance of data and ongoing learning from new commands and database updates. Because of its flexibility, the AI may adjust test cases as necessary, which could increase development efficiency. The use of human intelligence might further optimize this process and lessen the workload for developers, even if outcomes may differ depending on database training.

  • Opportunities for Dynamic Testing

A standard environment is used when developing and testing models manually. Depending on how many data sets they employ, this may result in different restrictions. However, generative AI can develop a variety of models that the human brain could never have imagined. When AI lacks sufficient data, it may hallucinate, but even in those situations, it can provide multiple ideas. This thus greatly expands testing opportunities.

Future of Generative AI in Software Testing

  • Widespread use of Robotic Process Automation

The usage of robotic process automation is one of the major test automation innovations for 2026 that is becoming more prevalent. Software robots, or RPA, can replicate how testers interact with applications. It may mimic the same procedure by learning testing sequences and logging tester actions, saving a ton of time on tedious testing tasks.

  • Active Use of AI and ML in Software Testing

When addressing the latest trends in automation testing, it is impossible to overlook the impact AI and ML tools are having on the software testing operations. They have become essential for QA teams due to their capability to automate almost every facet of testing automation, including test case generation, execution, and maintenance.

TestMu AI (formerly LambdaTest) is transforming software testing by serving as an agentic AI quality engineering platform that goes beyond simple script execution toward autonomous validation. It reduces maintenance and transforms testing from manual, code-heavy approaches to AI-led, intent-based techniques by enabling natural language test generation, self-healing, and AI-driven intelligence. TestMu AI (formerly LambdaTest) is an AI testing platform to run manual and automated tests at scale. The platform allows performing both real-time and automated testing across more than 3000 environments and real mobile devices.

It offers advanced AI agent testers that can autonomously create test cases, self-heal using its generative AI agent, Kane AI, and offer intelligent, real-time insights. This helps teams release software faster while maintaining reliability and security. The agents facilitate the development of natural language tests, auto-healing of flaky tests, faster execution through HyperExecute, and context-aware, intelligent analysis of application modifications.

The platform also provides failure narratives that reduce maintenance times and improve test stability, rather than only fixing broken UI locators. Through the analysis of logs and traces, the platform’s test intelligence transforms its emphasis from speed to reliability by categorizing issues (bug, environment, or test debt) and predicting flaky tests before they impact CI/CD.

  • Intelligent Automation of Security Testing Driven by AI

AI is becoming more and more important in threat modeling and vulnerability screening. AI automation tools can discover challenging dependencies, generate adaptive fuzz tests, and spot abnormal patterns faster than manual methods. AI-augmented automation is crucial for proactive defense as cybersecurity risks increase.

  • Ethical Testing is Regarded as the Future of Testing

Since fair, impartial, and transparent algorithms are required, ethical testing is emerging as a significant testing trend. QA teams can actively find biased tendencies early in the software development cycle as testing for AI-driven systems expands.

  • More Organizations Will Implement Shift-Left Testing

As teams prioritize early software testing, shift-left testing is becoming more important. This approach facilitates scalable testing and improves cooperation between the development and testing teams. There are some indisputable benefits of involving testers early in the development cycle. Among these, cost reduction is one of the most crucial. Early code verification processes allow teams to find and address issues before they become more serious and require a lot of resources.

  • The Need for Cross-Browser Testing in the Cloud Is Growing

Cloud-based cross-browser testing stands out among the expanding test automation techniques that organizations have embraced this year. It is now crucial for organizations to extensively test their applications across all devices as the variety of devices grows constantly.

  • The Use of Exploratory Testing Will Increase

A technique that deviates from strict test cases and scripts is called exploratory testing. Rather, it allows testers to freely explore and test software in an intuitive manner. Because of this randomization, QA teams can detect problems in areas they would not normally search for, as well as unusual uses that have not been specified by scripted testing.

  • Microservices Testing Rapidly Evolves

Microservices testing has emerged as a result of the popularity of microservices architecture. Instead of testing the complete architecture, this testing strategy aims to evaluate the software as a collection of distinct, small functional components while closely observing the continuous performance.

  • Integrating Crowdsourced Testing

Crowdsourced testing is frequently used to speed up automation, especially when the organization wants to expand globally. Crowdsourcing’s ability to help organizations overcome resource limitations is its best feature. They do not need to be concerned about the tester’s proficiency with test automation tools. Instead, the time to market is significantly accelerated by allocating assignments based on the tester’s existing resources.

Strategy for Implementing Generative AI for Software Testing

First, clearly define the goals that testers want to accomplish with the Generative AI-based tool, rewriting software testing rules. What they are expecting to gain from using this tool, and why it’s necessary—whether they want to increase issue detection, reduce manual testing, improve test coverage, or achieve a combination of these benefits.

Numerous models and tools incorporate generative AI into conventional workflows. Every tool is diverse, with varying advantages and disadvantages. Testers must assess if it is consistent with the organization’s goals.

Resources with strong processing power are necessary for generative AI. Evaluate the existing configuration to determine if it can meet the needs of the AI.

To work with generative AI, one requires a certain set of skills, which may be obtained through upskilling and training. The foundations of generative AI, working with particular tools and comprehending its procedures, assessing the outcomes, and troubleshooting the problems required for successful application are all covered in basic training.

To assess performance, a continual monitoring procedure is necessary to establish specific objectives, infrastructure, and necessary training. Early problem detection can be achieved by keeping an eye on the critical areas and then the additional phases of the testing process.

Conclusion

To conclude, traditional software testing was slow, fragile, and challenging to maintain. For development teams, flaky tests and ongoing maintenance have been significant challenges. By autonomously creating tests, healing broken scripts, providing accurate data, and predicting potential issues, AI is significantly improving testing effectiveness and rewriting software testing rules. Instead of long hours creating and debugging tests, developers can now concentrate on developing better applications.

A new era of fearless testing can be established by teams releasing software with confidence and embracing their testing techniques. However, it is essential to understand that generative AI does not replace testers; rather, it provides them with powerful tools for working more rapidly and intelligently.

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“Negative” views of Broadcom driving thousands of VMware migrations, rival says



Amid customer dissatisfaction around Broadcom’s VMware takeover, rivals have been trying to lure customers from the leading virtualization firm. One of VMware’s biggest competitors, Nutanix, claims to have swiped tens of thousands of VMware customers.

Speaking at a press briefing at Nutanix’s .NEXT conference in Chicago this week, Nutanix CEO Rajiv Ramaswami said that “about 30,000 customers” have migrated from VMware to the rival platform, pointing to customer disapproval over Broadcom’s VMware strategy, SDxCentral, a London-based IT publication, reported today.

“I think there’s no doubt that the customer sentiment continues to be negative about Broadcom,” Ramaswami said, per SDxCentral.

Since Broadcom acquired VMware in November 2023, numerous VMware users have sought to reduce or end their reliance on VMware technologies. The most common drivers for migrations are that VMware is getting too expensive; users are being forced to bundle products; the company ended perpetual licenses; and VMware has become harder to work with after Broadcom culled channel partners.

Broadcom’s strategy has made VMware unaffordable or impractical for most small- to medium-size businesses (SMBs) and narrowed VMware’s focus to enterprise-size customers.

Nutanix hasn’t specified how many of the customers that it got from VMware are SMBs or enterprise-sized; although, adoption is said to be strongest among mid-market customers as Nutanix also tries wooing larger customers, often by starting with partial deployments.

During this week’s press briefing, Ramaswami reportedly said that some of the customers that moved from VMware to Nutanix during the latter’s most recent fiscal quarter represented Nutanix’s “strongest quarterly new logo additions in eight years.”

“Most of the logos came from our typical VMware migrations on to the [hyperconverged infrastructure] platform,” he said.

During the Nutanix conference, Brandon Shaw, Nutanix VP and head of technology services, said that Western Union has been migrating from VMware to Nutanix for six months, The Register reported. The financial services company is moving 900 to 1,200 applications across 3,900 cores.

Shaw said that Western Union has been exploring new IT suppliers to help it become more customer-focused. Despite Broadcom’s history of “decent lines of communication” with Western Union, Shaw said that Western Union had “challenges partnering with them.”

The James Bond rights owners have opposed an application for a James Pond trademark



The James Pond games were a series of platformer parodies from the 1990s, most notable for the second one’s demo accidentally including the entire game if you used the level-select cheat code. Oops!

Nowadays, the rights to James Pond are co-owned by Gameware and System 3. The latter company decided to finally trademark the name in the UK last year, filing an application that would cover its use in categories including “Computer and electronic game programs” as well as “Toys, games and playthings” and “Clothing; footwear; headgear; sweatshirts; t-shirts; caps; jackets.”

Xbox exec who brought Bungie into Microsoft says it’s “weird” to see Sony own the creators of Halo: “It was so weird to launch Marathon and see a PlayStation logo”


Sony‘s acquisition of Bungie in 2022 was one of the most surreal transactions to take place in the games industry in recent years, and the irony of PlayStation buying the company that created the de facto mascot of Xbox isn’t lost on former Xbox executive Ed Fries, who led Microsoft‘s acquisition of Bungie 26 years ago.

Fries, who was VP of game publishing at Microsoft during the original Xbox’s launch, appeared on a recent episode of The Expansion Pass and shared his extremely unique perspective on what it’s like playing Marathon, a first-party PlayStation game developed by Bungie… on his Xbox.

Visual Studio Code 1.116


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Last updated: April 8, 2026

Welcome to the 1.116 release of Visual Studio Code.

Happy Coding!



April 8, 2026

  • Add dedicated commands and keybindings to the Agents app to focus the Changes view (), the files tree within the Changes view, and the Chat Customizations view, enabling full keyboard navigation. #308327, #308322, #308265

  • Add an accessibility help dialog (⌥F1 (Windows Alt+F1, Linux Shift+Alt+F1)) to the Agents app chat input box that displays available commands and keybindings for screen reader users, with an option to control announcement verbosity. #308259

  • Add support for CSS @import link node_modules resolution, allowing you to Ctrl+click through imports like @import "some-module/style.css" when using bundlers. #295074


April 7, 2026

  • Add #-triggered file-context completions to the Agents app, scoped to the workspace chosen in the picker. #299057

We really appreciate people trying our new features as soon as they are ready, so check back here often and learn what’s new.

We asked, you answered: Android users pick between gestures and 3-button navigation, and the top choice might surprise you


When setting up a new Android phone, you’re often given the choice to use gestures or 3-button navigation, an option you can always change later in the settings. In a recent poll, we asked whether you prefer to use gestures or 3-button navigation on your Android smartphone. Surprisingly, it seems many of you have strong feelings about this, as our poll received over 19,000 responses.

Based on the responses, it seems Android users overwhelmingly favor the 3-button navigation, which received 81% of the votes. As someone who was originally skeptical of gestures but has since fully embraced them, I found this somewhat surprising.