DyGMamba: Efficiently Modeling Long-Term Temporal Dependency on Continuous-Time Dynamic Graphs with State Space Models

DyGMamba: Efficiently Modeling Long-Term Temporal Dependency on Continuous-Time Dynamic Graphs with State Space Models

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BRAT: Bonus oRthogonAl Token for Architecture Agnostic Textual Inversion

BRAT: Bonus oRthogonAl Token for Architecture Agnostic Textual Inversion

arXiv:2408.04785v1 Announce Type: new Abstract: Textual Inversion remains a popular method for personalizing diffusion models, in order to teach models new subjects and styles. We note that textual inversion has been underexplored using alternatives to the UNet, and experiment with textual inversion with a vision transformer. We also seek to optimize textual inversion using a strategy that does not require explicit use of the UNet and its idiosyncratic layers, so we add bonus tokens and enforce orthogonality. We find the use of the bonus token improves adherence to the source images and the use of the vision transformer improves adherence…
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Abstractive summarization from Audio Transcription

Abstractive summarization from Audio Transcription

arXiv:2408.04639v1 Announce Type: new Abstract: Currently, large language models are gaining popularity, their achievements are used in many areas, ranging from text translation to generating answers to queries. However, the main problem with these new machine learning algorithms is that training such models requires large computing resources that only large IT companies have. To avoid this problem, a number of methods (LoRA, quantization) have been proposed so that existing models can be effectively fine-tuned for specific tasks. In this paper, we propose an E2E (end to end) audio summarization model using these techniques. In addition, this paper examines the effectiveness…
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Biden said he dropped out of the 2024 race because his Democratic allies believed he’d hurt their own campaigns

Biden said he dropped out of the 2024 race because his Democratic allies believed he’d hurt their own campaigns

President Joe Biden said Democratic lawmakers pressured him to withdraw from the November election because they feared he would damage their own political campaigns.Speaking to CBS' Robert Costa in an interview aired on Sunday, Biden led with that reason when asked about the intraparty push for him to step aside."What happened was a number of my Democratic colleagues in the House and Senate thought that I was going to hurt them in the races," Biden said.Meanwhile, he reiterated his belief that he stood a strong chance against former President Donald Trump — a point he stuck to when initially defending…
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I hiked a mountain in the Andes to celebrate my 40th birthday. The hallucinations and violent vomiting that followed had not been part of the plan.

I hiked a mountain in the Andes to celebrate my 40th birthday. The hallucinations and violent vomiting that followed had not been part of the plan.

The condors appeared at 5,000 meters. They were not real.I got altitude psychosis a few hundred meters from high camp as I scaled the frigid face of Huayna Potosi, the ninth-highest mountain in the Bolivian Andes.My optimism, determination, and the sugar high from my last frozen-solid Snicker's bar had all but faded into a combination of low-key anxiety, aching muscles, and vertigo by the time I started hallucinating birds with giant geometrically patterned wings alighting gently in on the ice-slicked rocks around me.With the help of a phenomenal local guide and a lot of luck, I made it back down…
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Overlay-based Decentralized Federated Learning in Bandwidth-limited Networks

Overlay-based Decentralized Federated Learning in Bandwidth-limited Networks

arXiv:2408.04705v1 Announce Type: new Abstract: The emerging machine learning paradigm of decentralized federated learning (DFL) has the promise of greatly boosting the deployment of artificial intelligence (AI) by directly learning across distributed agents without centralized coordination. Despite significant efforts on improving the communication efficiency of DFL, most existing solutions were based on the simplistic assumption that neighboring agents are physically adjacent in the underlying communication network, which fails to correctly capture the communication cost when learning over a general bandwidth-limited network, as encountered in many edge networks. In this work, we address this gap by leveraging recent advances in network…
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Data-Driven Pixel Control: Challenges and Prospects

Data-Driven Pixel Control: Challenges and Prospects

arXiv:2408.04767v1 Announce Type: new Abstract: Recent advancements in sensors have led to high resolution and high data throughput at the pixel level. Simultaneously, the adoption of increasingly large (deep) neural networks (NNs) has lead to significant progress in computer vision. Currently, visual intelligence comes at increasingly high computational complexity, energy, and latency. We study a data-driven system that combines dynamic sensing at the pixel level with computer vision analytics at the video level and propose a feedback control loop to minimize data movement between the sensor front-end and computational back-end without compromising detection and tracking precision. Our contributions are threefold:…
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Affective Computing in the Era of Large Language Models: A Survey from the NLP Perspective

Affective Computing in the Era of Large Language Models: A Survey from the NLP Perspective

arXiv:2408.04638v1 Announce Type: new Abstract: Affective Computing (AC), integrating computer science, psychology, and cognitive science knowledge, aims to enable machines to recognize, interpret, and simulate human emotions.To create more value, AC can be applied to diverse scenarios, including social media, finance, healthcare, education, etc. Affective Computing (AC) includes two mainstream tasks, i.e., Affective Understanding (AU) and Affective Generation (AG). Fine-tuning Pre-trained Language Models (PLMs) for AU tasks has succeeded considerably. However, these models lack generalization ability, requiring specialized models for specific tasks. Additionally, traditional PLMs face challenges in AG, particularly in generating diverse and emotionally rich responses. The emergence of…
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Developer Marketing Strategy for Software Developers

Developer Marketing Strategy for Software Developers

Explore the latest software development trends and challenges in this insightful blog. Learn how to navigate the complexities of cloud-based technologies, artificial intelligence, and machine learning. Discover best practices for developer marketing, including hosting webinars, workshops, and partnering with industry leaders. Perfect for Developer Marketing Managers and Developer Relations professionals aiming to stay ahead in the fast-paced digital economy. Software Development Trends and ChallengesAs technology continues to evolve at a rapid pace, the field of software development is constantly changing. In order to stay ahead of the curve, it is crucial for Developer Marketing Managers and Developer Relations professionals to…
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Taylor Swift once said her ‘biggest fear’ was a terror attack during one of her concerts

Taylor Swift once said her ‘biggest fear’ was a terror attack during one of her concerts

Taylor Swift once called a potential terror attack during her concert her "biggest fear."In an Elle article in 2019 — which resurfaced over the weekend following the cancellation of her three Vienna shows — Swift shared her fears of going on tour following a slew of terrorist attacks that had killed dozens of concertgoers."After the Manchester Arena bombing and the Vegas concert shooting, I was completely terrified to go on tour this time because I didn't know how we were going to keep 3 million fans safe over seven months," Swift wrote. "There was a tremendous amount of planning, expense,…
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