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In this paper, we show that a hybrid approach to generative modeling via combining the decoder from an autoencoder together with an explicit generative model for the latent space is a promising method for producing images of particle…

高能物理 - 实验 · 物理学 2022-04-07 Paul Lutkus , Taritree Wongjirad , Shuchin Aeron

We present a new approach to separate track-like and shower-like topologies in liquid argon time projection chamber (LArTPC) experiments for neutrino physics using quantum machine learning. Effective reconstruction of neutrino events in…

The Liquid Argon Time Projection Chamber (LArTPC) is an advanced neutrino detector technology widely used in recent and upcoming accelerator neutrino experiments. It features a low energy threshold and high spatial resolution that allow for…

The Liquid Argon Time Projection Chamber (LArTPC) technology is widely used in high energy physics experiments, including the upcoming Deep Underground Neutrino Experiment (DUNE). Accurately simulating LArTPC detector responses is essential…

仪器与探测器 · 物理学 2023-03-01 Zhihua Dong , Kyle Knoepfel , Meifeng Lin , Brett Viren , Haiwang Yu

Recent inroads in Computer Vision (CV) and Machine Learning (ML) have motivated a new approach to the analysis of particle imaging detector data. Unlike previous efforts which tackled isolated CV tasks, this paper introduces an end-to-end,…

高能物理 - 实验 · 物理学 2021-02-02 Francois Drielsma , Kazuhiro Terao , Laura Dominé , Dae Heun Koh

We present several studies of convolutional neural networks applied to data coming from the MicroBooNE detector, a liquid argon time projection chamber (LArTPC). The algorithms studied include the classification of single particle images,…

仪器与探测器 · 物理学 2023-02-17 MicroBooNE collaboration , R. Acciarri , C. Adams , R. An , J. Asaadi , M. Auger , L. Bagby , B. Baller , G. Barr , M. Bass , F. Bay , M. Bishai , A. Blake , T. Bolton , L. Bugel , L. Camilleri , D. Caratelli , B. Carls , R. Castillo Fernandez , F. Cavanna , H. Chen , E. Church , D. Cianci , G. H. Collin , J. M. Conrad , M. Convery , J. I. Crespo-Anadón , M. Del Tutto , D. Devitt , S. Dytman , B. Eberly , A. Ereditato , L. Escudero Sanchez , J. Esquivel , B. T. Fleming , W. Foreman , A. P. Furmanski , G. T. Garvey , V. Genty , D. Goeldi , S. Gollapinni , N. Graf , E. Gramellini , H. Greenlee , R. Grosso , R. Guenette , A. Hackenburg , P. Hamilton , O. Hen , V Hewes , C. Hill , J. Ho , G. Horton-Smith , C. James , J. Jan de Vries , C. -M. Jen , L. Jiang , R. A. Johnson , B. J. P. Jones , J. Joshi , H. Jostlein , D. Kaleko , G. Karagiorgi , W. Ketchum , B. Kirby , M. Kirby , T. Kobilarcik , I. Kreslo , A. Laube , Y. Li , A. Lister , B. R. Littlejohn , S. Lockwitz , D. Lorca , W. C. Louis , M. Luethi , B. Lundberg , X. Luo , A. Marchionni , C. Mariani , J. Marshall , D. A. Martinez Caicedo , V. Meddage , T. Miceli , G. B. Mills , J. Moon , M. Mooney , C. D. Moore , J. Mousseau , R. Murrells , D. Naples , P. Nienaber , J. Nowak , O. Palamara , V. Paolone , V. Papavassiliou , S. F. Pate , Z. Pavlovic , D. Porzio , G. Pulliam , X. Qian , J. L. Raaf , A. Rafique , L. Rochester , C. Rudolf von Rohr , B. Russell , D. W. Schmitz , A. Schukraft , W. Seligman , M. H. Shaevitz , J. Sinclair , E. L. Snider , M. Soderberg , S. Söldner-Rembold , S. R. Soleti , P. Spentzouris , J. Spitz , J. St. John , T. Strauss , A. M. Szelc , N. Tagg , K. Terao , M. Thomson , M. Toups , Y. -T. Tsai , S. Tufanli , T. Usher , R. G. Van de Water , B. Viren , M. Weber , J. Weston , D. A. Wickremasinghe , S. Wolbers , T. Wongjirad , K. Woodruff , T. Yang , G. P. Zeller , J. Zennamo , C. Zhang

Neutrinos are particles that interact rarely, so identifying them requires large detectors which produce lots of data. Processing this data with the computing power available is becoming even more difficult as the detectors increase in size…

We present a real-time anomaly detection framework for liquid argon time projection chambers (LArTPCs), targeting applications in particle physics experiments such as the Short Baseline Near Detector or the future Deep Underground Neutrino…

高能物理 - 实验 · 物理学 2026-05-28 Seokju Chung , Jack Cleeve , Akshay Malige , Georgia Karagiorgi , Lino Gerlach , Adrian A. Pol , Isobel Ojalvo

Measurements in Liquid Argon Time Projection Chamber (LArTPC) neutrino detectors, such as the MicroBooNE detector at Fermilab, feature large, high fidelity event images. Deep learning techniques have been extremely successful in…

计算物理 · 物理学 2020-08-26 Alex Hagen , Eric Church , Jan Strube , Kolahal Bhattacharya , Vinay Amatya

There remains an important need for the development of image reconstruction methods that can produce diagnostically useful images from undersampled measurements. In magnetic resonance imaging (MRI), for example, such methods can facilitate…

图像与视频处理 · 电气工程与系统科学 2021-06-28 Varun A. Kelkar , Sayantan Bhadra , Mark A. Anastasio

In this white paper, we outline some of the scientific opportunities and challenges related to detection and reconstruction of low-energy (less than 100 MeV) signatures in liquid argon time-projection chamber (LArTPC) detectors. Key…

仪器与探测器 · 物理学 2022-03-07 D. Caratelli , W. Foreman , A. Friedland , S. Gardiner , I. Gil-Botella , G. Karagiorgi , M. Kirby , G. Lehmann Miotto , B. R. Littlejohn , M. Mooney , J. Reichenbacher , A. Sousa , K. Scholberg , J. Yu , T. Yang , S. Andringa , J. Asaadi , T. J. C. Bezerra , F. Capozzi , F. Cavanna , E. Church , A. Himmel , T. Junk , J. Klein , I. Lepetic , S. Li , P. Sala , H. Schellman , M. Sorel , J. Wang , M. H. L. S. Wang , W. Wu , J. Zennamo , M. A. Acero , M. R. Adames , H. Amar , D. A. Andrade , C. Andreopoulos , A. M. Ankowski , M. A. Arroyave , V. Aushev , M. A. Ayala-Torres , P. Baldi , C. Backhouse , A. B. Balantekin , W. A. Barkhouse , P. Barham Alzas , J. L. Barrow , J. B. R. Battat , M. C. Q. Bazetto , J. F. Beacom , B. Behera , G. Bellettini , J. Berger , A. T. Bezerra , J. Bian , B. Bilki , B. Bles , T. Bolton , L. Bomben , M. Bonesini , C. Bonilla-Diaz , F. Boran , A. N. Borkum , N. Bostan , D. Brailsford , A. Branca , G. Brunetti , T. Cai , A. Chappell , N. Charitonidis , P. H. P. Cintra , E. Conley , T. E. Coan , P. Cova , L. M. Cremaldi , J. I. Crespo-Anadon , C. Cuesta , R. Dallavalle , G. S. Davies , S. De , P. Dedin Neto , M. Delgado , N. Delmonte , P. B. Denton , A. De Roeck , R. Dharmapalan , Z. Djurcic , F. Dolek , S. Doran , R. Dorrill , K. E. Duffy , B. Dutta , O. Dvornikov , S. Edayath , J. J. Evans , A. C. Ezeribe , A. Falcone , M. Fani , J. Felix , Y. Feng , L. Fields , P. Filip , G. Fiorillo , D. Franco , D. Garcia-Gamez , A. Giri , O. Gogota , S. Gollapinni , M. Goodman , E. Gramellini , R. Gran , P. Granger , C. Grant , S. E. Greenberg , M. Groh , R. Guenette , D. Guffanti , D. A. Harris , A. Hatzikoutelis , K. M. Heeger , M. Hernandez Morquecho , K. Herner , J. Ho , P C. Holanda , N. Ilic , C. M. Jackson , W. Jang , H. -Th. Janka , J. H. Jo , F. R. Joaquim , R. S. Jones , N. Jovancevic , Y. -J. Jwa , D. Kalra , D. M. Kaplan , I. Katsioulas , E. Kearns , K. J. Kelly , E. Kemp , W. Ketchum , A. Kish , L. W. Koerner , T. Kosc , K. Kothekar , I. Kreslo , S. Kubota , V. A. Kudryavtsev , P. Kumar , T. Kutter , J. Kvasnicka , I. Lazanu , T. LeCompte , Y. Li , Y. Liu , M. Lokajicek , W. C. Louis , K. B. Luk , X. Luo , P. A. N. Machado , I. M. Machulin , K. Mahn , M. Man , R. C. Mandujano , J. Maneira , A. Marchionni , D. Marfatia , F. Marinho , C. Mariani , C. M. Marshall , F. Martinez Lopez , D. A. Martinez Caicedo , A. Mastbaum , M. Matheny , N. McConkey , P. Mehta , O. E. B. Messer , A. Minotti , O. G. Miranda , P. Mishra , I. Mocioiu , A. Mogan , R. Mohanta , T. Mohayai , C. Montanari , L. M. Montano Zetina , A. F. Moor , D. Moretti , C. A. Moura , L. M. Mualem , J. Nachtman , S. Narita , A. Navrer-Agasson , M. Nebot-Guinot , J. Nikolov , J. A. Nowak , J. P. Ochoa-Ricoux , E. O'Connor , Y. Onel , Y. Onishchuk , G. D. Orebi Gann , V. Pandey , E. G. Parozzi , S. Parveen , M. Parvu , R. B. Patterson , L. Paulucci , V. Pec , S. J. M. Peeters , F. Pompa , N. Poonthottathil , S. S. Poudel , F. Psihas , A. Rafique , B. J. Ramson , J. S. Real , A. Rikalo , M. Ross-Lonergan , B. Russell , S. Sacerdoti , N. Sahu , D. A. Sanders , D. Santoro , M. V. Santos , C. R. Senise , P. N. Shanahan , H. R Sharma , R. K. Sharma , W. Shi , S. Shin , J. Singh , J. Singh , L. Singh , P. Singh , V. Singh , M. Soderberg , S. Soldner-Rembold , J. Soto-Oton , K. Spurgeon , A. F. Steklain , F. Stocker , T. Stokes , J. Strait , M. Strait , T. Strauss , L. Suter , R. Svoboda , A. M. Szelc , M. Szydagis , E. Tarpara , E. Tatar , F. Terranova , G. Testera , N. Chithirasree , N. Todorovic , A. Tonazzo , M. Torti , F. Tortorici , M. Toups , D. Q. Tran , M. Travar , Y. -D. Tsai , Y. -T. Tsai , S. Z. Tu , J. Urheim , H. Utaegbulam , S. Valder , G. A. Valdiviesso , R. Valentim , S. Vergani , B. Viren , A. Vranicar , B. Wang , D. Waters , P. Weatherly , M. Weber , H. Wei , S. Westerdale , L. H. Whitehead , D. Whittington , A. Wilkinson , R. J. Wilson , M. Worcester , K. Wresilo , B. Yaeggy , G. Yang , J. Zalesak , B. Zamorano , J. Zuklin

MeV-scale energy depositions by low-energy photons produced in neutrino-argon interactions have been identified and reconstructed in ArgoNeuT liquid argon time projection chamber (LArTPC) data. ArgoNeuT data collected on the NuMI beam at…

When electrons with energies of $O(100)$ MeV pass through a liquid argon time projection chamber (LArTPC), they deposit energy in the form of electromagnetic showers. Methods to reconstruct the energy of these showers in LArTPCs often rely…

高能物理 - 实验 · 物理学 2022-02-23 Kiara Carloni , Nicholas W. Kamp , Austin Schneider , Janet M. Conrad

Sampling from high-dimensional and structured probability distributions is a fundamental challenge in computational physics, particularly in the context of lattice field theory (LFT), where generating field configurations efficiently is…

量子物理 · 物理学 2026-02-10 Jehu Martinez , Andrea Delgado

Deep convolutional neural networks (CNNs) show strong promise for analyzing scientific data in many domains including particle imaging detectors such as a liquid argon time projection chamber (LArTPC). Yet the high sparsity of LArTPC data…

高能物理 - 实验 · 物理学 2020-07-15 Laura Dominé , Kazuhiro Terao

This paper presents a graph neural network (GNN) technique for low-level reconstruction of neutrino interactions in a Liquid Argon Time Projection Chamber (LArTPC). GNNs are still a relatively novel technique, and have shown great promise…

We discuss the possibility of new generation neutrino and astroparticle physics experiments exploiting a superconducting magnetized liquid Argon Time Projection Chamber (LAr TPC). The possibility to complement the features of the LAr TPC…

高能物理 - 唯象学 · 物理学 2009-11-11 A. Ereditato , A. Rubbia

Quantum generative models offer a novel approach to exploring high-dimensional Hilbert spaces but face significant challenges in scalability and expressibility when applied to multi-modal distributions. In this study, we explore a Hybrid…

量子物理 · 物理学 2026-02-06 Jeongbin Jo , Santanam Wishal , Shah Md Khalil Ullah , Shan Zeng , Dikshant Dulal

Liquid argon time projection chambers (LArTPCs) have been proposed as neutrino detectors that combine both large sizes to maximize the number of neutrino interactions and detailed recording of the interaction. The readout of thousands of…

仪器与探测器 · 物理学 2021-02-12 J. I. Crespo-Anadón

We develop a novel approach for a Time Projection Chamber (TPC) concept suitable for deployment in kilotonne scale detectors, with a charge-readout system free from reconstruction ambiguities, and a robust TPC design that reduces…

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