arxiv.org/abs/2509.23395v1
The faithful transfer of contextually-embedded meaning continues to challenge contemporary machine translation (MT), particularly in the rendering of culture-bound terms--expressions or concepts rooted in specific languages or cultures, resisting dir...
www.bing.com/ck/a?!&&p=9bb3237d8b6779ae3616b93d5050f53adcd990a0f0fe6882af744323b3ea13c6JmltdHM9MTc3Mjg0MTYwMA&ptn=3&ver=2&hsh=4&fclid=39fd748a-1529-684c-2ee2-639f14a4695b&u=a1aHR0cHM6Ly9naXRodWIuY29tL2s0eXQzeC92aWRlbzJ4&ntb=1
A machine learning-based video super resolution and frame interpolation framework. Est. Hack the Valley II, 2018. - k4yt3x/video2x
arxiv.org/abs/2505.02974v2
Machine learning-based surrogate models have emerged as a powerful tool to accelerate simulation-driven scientific workflows. However, their widespread adoption is hindered by the lack of large-scale, diverse, and standardized datasets tailored to ph...
en.wikipedia.org/wiki/Structural_risk_minimization
Structural risk minimization (SRM) is an inductive principle of use in machine learning. Commonly in machine learning, a generalized model must be selected
arxiv.org/abs/1403.0486v2
In this paper, we consider the online version of the machine minimization problem (introduced by Chuzhoy et al., FOCS 2004), where the goal is to schedule a set of jobs with release times, deadlines, and processing lengths on a minimum number of iden...
arxiv.org/abs/1708.05942v1
We introduce the Helsinki Neural Machine Translation system (HNMT) and how it is applied in the news translation task at WMT 2017, where it ranked first in both the human and automatic evaluations for English--Finnish. We discuss the success of Engli...
arxiv.org/abs/2511.21770v1
Research increasingly relies on computational methods to analyze experimental data and predict molecular properties. Current approaches often require researchers to use a variety of tools for statistical analysis and machine learning, creating workfl...
www.bing.com/ck/a?!&&p=0c39d6b97714978d61ea4c0b2a4250c786dd2f22e64e0aaa0593232a61ca6148JmltdHM9MTc3Mjg0MTYwMA&ptn=3&ver=2&hsh=4&fclid=046c30ac-25fc-655f-0bf4-27b9249c6439&u=a1aHR0cHM6Ly9naXRodWIuY29tL2s0eXQzeC92aWRlbzJ4&ntb=1
A machine learning-based video super resolution and frame interpolation framework. Est. Hack the Valley II, 2018. - k4yt3x/video2x
arxiv.org/abs/2402.12072v2
This paper provides an overview of current approaches for solving inverse problems in imaging using variational methods and machine learning. A special focus lies on point estimators and their robustness against adversarial perturbations. In this con...
arxiv.org/abs/2105.03377v1
Wu & Peek (2020) predict SDSS-quality spectra based on Pan-STARRS broad-band \textit{grizy} images using machine learning (ML). In this letter, we test their prediction for a unique object, UGC 2885 ("Rubin's galaxy"), the largest and most massive, i...
en.wikipedia.org/wiki/Stump_grinder
A stump grinder is a machine designed to remove tree stumps by using a rotating cutting disc that chips away the wood. The machine typically features
arxiv.org/abs/2304.00133v5
As the complexity of machine learning (ML) models increases and their application in different (and critical) domains grows, there is a strong demand for more interpretable and trustworthy ML. A direct, model-agnostic, way to interpret such models is...
github.com/dmitriydligach/PyMLSlides
Slides for my machine learning course based on Sebastian Raschka's Python Machine Learning book (⭐ 314)
arxiv.org/abs/2412.02891v2
OriStitch is a computational fabrication workflow to turn existing flat fabrics into self-folding 3D structures. Users turn fabrics into self-folding sheets by machine embroidering functional threads in specific patterns on fabrics, and then apply he...
arxiv.org/abs/2512.22302v1
This study extends previous hotspot and Chi-Square analysis by Sawyer \cite{sawyer2025hotspot} by integrating advanced statistical analysis, machine learning, and spatial modeling techniques to analyze five years (2019--2023) of traffic accident data...
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May 10, 2023 · My step-sister got stuck in the washing machine. I think she's dead. “Step-bro, can you help me?” The words woke me from my nap like a slap to the face. I sat up in confusion, groggily …
arxiv.org/abs/2306.15572v1
There has been an increasing number of applications of machine learning to the field of Computer Algebra in recent years, including to the prominent sub-field of Symbolic Integration. However, machine learning models require an abundance of data for...
www.bing.com/ck/a?!&&p=4badf9cd88f01dddefb83816c03f0cc52d464b529684d70ad332508bf08963dcJmltdHM9MTc3Mjg0MTYwMA&ptn=3&ver=2&hsh=4&fclid=3b2a1b92-0ada-6bb4-0bee-0c870b1e6a4f&u=a1aHR0cHM6Ly9naXRodWIuY29tL2s0eXQzeC92aWRlbzJ4&ntb=1
A machine learning-based video super resolution and frame interpolation framework. Est. Hack the Valley II, 2018. - k4yt3x/video2x
github.com/googlecreativelab/teachablemachine-community
Example code snippets and machine learning code for Teachable Machine (⭐ 1693)
arxiv.org/abs/2207.04981v1
Since the 1980s, machine learning has been widely used for horse-racing predictions, gradually expanding to where algorithms are now playing a huge role in the betting market. Machine learning has changed the horse-racing betting market over the last...