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FLIR Introduces TrafiBot AI Camera to Enhance Interurban Traffic Flow and Road Safety

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4K Camera System Automates Incident Detection While Reducing False Alarms Via FLIR’s Propriety On-Camera AI and its Patented 3D World Tracker
FLIR, a Teledyne Technologies company, today introduced the TrafiBot AI 4K visible camera system for interurban traffic intelligence. This closed-circuit traffic camera offers the most robust artificial intelligence (AI) for the highest detection performance and most reliable traffic data collection along interurban roadways from highways to tunnels without sacrificing imaging resolution or data loss due to bandwidth issues.
Trafibot AI utilizes two FLIR proprietary AI models developed from millions of FLIR-captured images collected across the world during the past 30 years. One model identifies and classifies fallen objects while the other classifies vehicles, including unusual objects such as e-scooters and car-hauler trucks, along with vulnerable road users such as pedestrians and bicyclists.
Combined with the FLIR patented 3D world tracker, TrafiBot AI features a greater capacity to detect incidents within a scene. As vehicles enter its field of view, the camera anticipates vehicle speed and trajectory, even if tracked objects become occluded or obscured by other vehicles, objects, or road infrastructure. TrafiBot AI can also detect sudden lane changes, tailgating, or wrong-way drivers, providing critical data to traffic managers to better manage safety incidents while reducing false alarms.
“Intelligent traffic management systems have made great strides during the past decade, and today traffic management teams require more immediate, accurate traffic data to alert first responders, save lives, and get vehicles moving again,” said Stefaan Pinck, vice president, business development, FLIR. “Trafibot AI provides that capability through a combination of proprietary AI models, 3D world tracker, and an innovative three-axis rotational design that provides greater installation flexibility for mounting on unique roadway infrastructure including the sloped walls of tunnels and within tight spaces.”
“FLIR has gone in the right direction by integrating its own traffic intelligence experience dating back more than 30 years within its AI algorithm, an experience that is unmatched by anyone else in the industry,” said Gil Marques, President of Tacel Ltd., one of Canada’s leading suppliers of advanced traffic management systems and traffic control devices. “Competitors must rely on off-the-shelf datasets and new datasets to build their respective AI algorithms, which is not as powerful as the approach FLIR is using.”
All Weather Housing and Flexible Installation
The three-axis camera swivel pans, tilts, and rolls sideways, eliminating the need for custom adapter plates that take time to install. The tilt sensor inside also calibrates automatically, further reducing installation time and any ensuing traffic disruption.
Trafibot AI is housed within an IP 66/67-rated non-corrosive, stainless-steel casing built to withstand all types of weather, including salt air and humidity, along with high-pressure water blasts from road-and-tunnel cleaning operations. The 4K camera also features an optical zoom of six to 22 millimeters with a detection range of up to 300 meters, providing greater coverage per camera compared to predecessor FLIR intelligent traffic cameras for improved decision support.
Software Integration
The camera is designed to integrate with FLIR Cascade, a newly launched software product that can collect and organize data from Trafibot AI, and it provides a state-of-the-art intelligent incident filtering system to ensure only the relevant incidents are shown to the traffic operator. If an incident is detected, a short, 4K-resolution video clip of the scene is flagged for the traffic management team for immediate review. Trafibot AI can further integrate with video management systems to provide live footage.
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Unveiling the Complex Psychological Implications of Artificial Intelligence

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In today’s world, the realm of artificial intelligence (AI) presents us with fascinating possibilities and unsettling dilemmas. From engaging in nuanced conversations with humanoid robots to grappling with the consequences of deepfake technology, the advancements in AI have far-reaching implications that extend into the realm of human psychology, as noted by Joel Pearson, a cognitive neuroscientist at the University of New South Wales.
While AI holds the promise of simplifying our lives, Pearson emphasizes that these developments can also have profound effects on our mental well-being, challenging our perceptions and emotional responses in ways we may not fully comprehend. Despite our fears of killer robots and rogue self-driving cars, Pearson suggests that the psychological impacts of AI are equally if not more significant, albeit less tangible.
One area of concern highlighted by Pearson is the tendency for humans to anthropomorphize AI entities, attributing human-like qualities to non-human agents such as chatbots. This phenomenon can lead to emotional attachments and vulnerabilities, as evidenced by individuals who develop romantic feelings for AI companions like Replika. Pearson underscores the need for further research into the implications of these human-AI relationships, particularly regarding their impact on interpersonal dynamics and emotional health.
Furthermore, Pearson raises alarm about the proliferation of deepfake technology, which has the potential to distort our perception of reality and erode trust in media. Deepfake images and videos, often used for nefarious purposes like non-consensual pornography, can leave lasting impressions on our psyche, even after their falsity is exposed. Pearson warns of the long-term effects of exposure to such content, particularly on vulnerable populations like teenagers whose developing brains may be more susceptible to manipulation.
In response to these challenges, Pearson calls for a nuanced understanding of AI’s psychological impact and advocates for a proactive approach to addressing its potential harms. He stresses the importance of prioritizing human connection and well-being in the face of technological uncertainty, urging individuals to reflect on their values and embrace activities that foster genuine human interaction.
Ultimately, Pearson’s message serves as a reminder that while AI offers immense potential, we must remain vigilant about its unintended consequences and prioritize our mental and emotional resilience in navigating an increasingly AI-driven world. By acknowledging the psychological implications of AI and engaging in thoughtful dialogue, we can work towards harnessing its benefits while mitigating its risks.
Source: abc.net.au

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US official calls on China and Russia to affirm human, not AI, control over nuclear weapons

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Senior U.S. Official Urges China and Russia to Affirm Human Control Over Nuclear Weapons
In a recent online briefing, Paul Dean, an arms control official from the State Department, called on China and Russia to align their declarations with those of the United States and other nations. He stressed the importance of ensuring that only humans, not artificial intelligence, are responsible for decisions regarding the deployment of nuclear weapons.
Dean highlighted Washington’s firm commitment to maintaining human control over nuclear weapons, a commitment echoed by France and Britain. He expressed the hope that China and Russia would issue similar statements, emphasizing the significance of this norm of responsible behavior, especially within the context of the five permanent members of the United Nations Security Council.
These remarks coincide with efforts by the administration of U.S. President Joe Biden to engage in separate discussions with China on nuclear weapons policy and the development of artificial intelligence.
While the Chinese defense ministry has yet to respond to these comments, discussions on artificial intelligence emerged during recent talks between U.S. Secretary of State Antony Blinken and China’s Foreign Minister Wang Yi in Beijing. Both parties agreed to hold their first bilateral talks on artificial intelligence in the coming weeks, aiming to address concerns about the technology’s risks and safety.
Although U.S. and Chinese officials resumed nuclear weapons discussions in January as part of efforts to normalize military communications, formal arms control negotiations are not expected in the near future. Meanwhile, China, amid its expansion of nuclear capabilities, previously suggested that the largest nuclear powers should prioritize negotiating a no-first-use treaty between each other.
Source: reuters.com

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Enterprise AI Faces Looming Energy Crisis

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The widespread adoption of artificial intelligence (AI) has been remarkable, but it has come at a significant cost.
R K Anand, co-founder and chief product officer at Recogni, highlighted the exponential growth in data and compute power required to train modern AI systems. He emphasized that firms must invest substantial resources, both in terms of time and money, to train some of today’s largest foundational models.
Moreover, the expenditure doesn’t end once the models are trained. Meta, for instance, anticipates spending between $35 billion and $40 billion on AI and metaverse development this fiscal year. This substantial investment underscores the ongoing financial commitment necessary for AI development.
Given these challenges, Anand stressed the importance of developing next-generation AI inference solutions that prioritize performance and power efficiency while minimizing total ownership costs. He emphasized that inference is where the scale and demand of AI will be realized, making efficient technology essential from both a power cost and total cost of operations perspective.
AI inference, which follows AI training, is crucial for real-world applications of AI. Anand explained that while training builds the model, inference involves the AI system producing predictions or conclusions based on existing knowledge.
However, inference also represents a significant ongoing cost in terms of power and computing. To mitigate these expenses, Anand suggested methods such as weight pruning and precision reduction through quantization to design more efficient models.
Since a large portion of an AI model’s lifespan is spent in inference mode, optimizing inference efficiency becomes crucial for lowering the overall cost of AI operations.
Anand highlighted the importance of efficient inference for enterprises, noting that it enables higher productivity and returns on investment. However, he cautioned that without favorable unit economics, the AI industry could face challenges, especially considering the increasing volume of data.
Ultimately, Anand emphasized the need for AI solutions that increase productivity without significantly increasing operating costs. He predicted a shift towards allocating a larger portion of computing resources to inference as AI becomes more integrated into day-to-day work.
Source: pymnts.com

 
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