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2161por Knolle, Moritz, Kaissis, Georgios, Jungmann, Friederike, Ziegelmayer, Sebastian, Sasse, Daniel, Makowski, Marcus, Rueckert, Daniel, Braren, Rickmer“…Finally, we evaluate MoNet’s inference latency on the central processing unit (CPU) to determine its utility in environments without access to graphics processing units. …”
Publicado 2021
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2162“…The proposed classifiers with optimised settings are useful as they require less processing time and reduce power consumption, both in terms of retrieving acceleration data from the sensor and the CPU processing time. Furthermore, they reduce the memory requirements for parameter storing and are suitable for incorporation in a wearable device.…”
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2163por Billot, Benjamin, Bocchetta, Martina, Todd, Emily, Dalca, Adrian V., Rohrer, Jonathan D., Iglesias, Juan Eugenio“…Our method does not require any preprocessing and runs in less than a second on a GPU, and approximately 10 seconds on a CPU. The source code as well as the trained model are publicly available at https://github.com/BBillot/hypothalamus_seg, and will also be distributed with FreeSurfer.…”
Publicado 2020
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2164por Guan, Yanfei, Shree Sowndarya, S. V., Gallegos, Liliana C., St. John, Peter C., Paton, Robert S.“…When tested on the CHESHIRE dataset, the proposed model predicts observed (13)C chemical shifts with comparable accuracy to the best-performing DFT functionals (1.5 ppm) in around 1/6000 of the CPU time. An automated prediction webserver and graphical interface are accessible online at http://nova.chem.colostate.edu/cascade/. …”
Publicado 2021
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2165“…To predict the response time for a query, most query performance approaches rely on DBMS optimizing statistics and the cost estimation of each operator in the query execution plan, which also focuses on resource utilization (CPU, I/O). Modeling query features is thus a critical step in developing a robust query performance prediction model. …”
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2166por Cui, Yaxuan, Zhang, Shaoqiang, Liang, Ying, Wang, Xiangyun, Ferraro, Thomas N, Chen, Yong“…SCENA is equipped with CPU + GPU (Central Processing Units + Graphics Processing Units) heterogeneous parallel computing to achieve high running speed. …”
Publicado 2021
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2167“…RESULTS: In this article, a simple method is described to generate only valid molecules at high frequency ([Formula: see text] molecule/s using a single CPU core), given a molecular training set. The proposed method generates diverse SMILES (or DeepSMILES) encoded molecules while also showing some propensity at training set distribution matching. …”
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2168“…Multiple runtime variants are implemented and tested: 1) a uniform static work assignment using a fixed thread launch scheme, 2) a load-balanced static work assignment also with fixed thread launch but with cost-aware task-to-thread mapping, and 3) a dynamic scheme with multiple GPU kernels asynchronously launched from the CPU. The generation is tested on a range of popular networks such as Twitter and Facebook, representing different scales and skews in degree distributions. …”
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2169“…Most existing mix-based solutions heavily emphasized employing BGV-based homomorphic encryption schemes to secure the linear layer on the CPU platform. However, they suffer an efficiency and energy loss when dealing with a larger-scale dataset, due to the complicated encoded methods and intractable ciphertext operations. …”
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2170“…For input to ANFIS, device performance metrics such as average CPU utilization, throughput, and memory capacity are retrieved and mapped with data from KB. …”
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2171por Canosa-Reyes, Rewer M., Tchernykh, Andrei, Cortés-Mendoza, Jorge M., Pulido-Gaytan, Bernardo, Rivera-Rodriguez, Raúl, Lozano-Rizk, Jose E., Concepción-Morales, Eduardo R., Castro Barrera, Harold Enrique, Barrios-Hernandez, Carlos J., Medrano-Jaimes, Favio, Avetisyan, Arutyun, Babenko, Mikhail, Drozdov, Alexander Yu.“…We provide an experimental analysis of eighty-six scheduling heuristics with scientific workloads of memory and CPU-intensive jobs. The proposed techniques outperform classical solutions in terms of quality of service, energy savings, and completion time by 21.73–43.44%, 44.06–92.11%, and 16.38–24.17%, respectively, leading to a cost-efficient resource allocation for cloud infrastructures.…”
Publicado 2022
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2172por Grealey, Jason, Lannelongue, Loïc, Saw, Woei-Yuh, Marten, Jonathan, Méric, Guillaume, Ruiz-Carmona, Sergio, Inouye, Michael“…We assessed 1) bioinformatic approaches in genome-wide association studies (GWAS), RNA sequencing, genome assembly, metagenomics, phylogenetics, and molecular simulations, as well as 2) computation strategies, such as parallelization, CPU (central processing unit) versus GPU (graphics processing unit), cloud versus local computing infrastructure, and geography. …”
Publicado 2022
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2173por Cao, Yue, Guo, Shuchen, Jiang, Shuai, Zhou, Xuan, Wang, Xiaobei, Luo, Yunhua, Yu, Zhongjun, Zhang, Zhimin, Deng, Yunkai“…Next, the maximum resource utilisation rate of the hardware platform in this study is found to be more than 80%, the system power consumption is 21.073 W, and the processing time efficiency is better than designs with other FPGA, DSP, GPU, and CPU. Finally, the correctness of the processing results is verified using actual data. …”
Publicado 2022
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2174por De Simoni, Micol, Battistoni, Giuseppe, De Gregorio, Angelica, De Maria, Patrizia, Fischetti, Marta, Franciosini, Gaia, Marafini, Michela, Patera, Vincenzo, Sarti, Alessio, Toppi, Marco, Traini, Giacomo, Trigilio, Antonio, Schiavi, Angelo“…The advent of Graphics Processing Units (GPU) has prompted the development of Monte Carlo (MC) algorithms that can significantly reduce the simulation time with respect to standard MC algorithms based on Central Processing Unit (CPU) hardware. The possibility to evaluate a complete treatment plan within minutes, instead of hours, paves the way for many clinical applications where the time-factor is important. …”
Publicado 2022
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2175“…GWAS was conducted using Fixed and random model Circulating Probability Unification (FarmCPU) model on the following traits: seed yield, seed protein concentration, seed oil concentration, plant height, 100 seed weight, days to maturity, and lodging score that allowed to identify five QTL regions controlling seed yield and seed oil and protein content. …”
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2176por Schneider, Yanling, Prabhu, Vighnesh, Höss, Kai, Wasserbäch, Werner, Schmauder, Siegfried, Zhou, Zhangjian“…Calculations took about 0.5 h from the original input dataset (EBSD image) to the final output (segmented image) running on a personal computer (CPU: 3.6 GHz). For a realizable manual pixel sortation, the original image was firstly scaled from the initial resolution 1080 [Formula: see text] pixels down to 300 [Formula: see text]. …”
Publicado 2022
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2177por Shi, Wantong, Xue, Man, Wu, Fengyi, Fan, Kexin, Chen, Qi-Yu, Xu, Fang, Li, Xu-Hui, Bi, Guo-Qiang, Lu, Jing-Shan, Zhuo, Min“…We found that the ACC projected ipsilaterally primarily to the caudate putamen (CPu), ventral thalamic nucleus, zona incerta (ZI), periaqueductal gray (PAG), superior colliculus (SC), interpolar spinal trigeminal nucleus (Sp5I), and dorsal medullary reticular nucleus (MdD). …”
Publicado 2022
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2178por Parthiban, S., Harshavardhan, A., Neelakandan, S., Prashanthi, Vempaty, Alhassan Alolo, Abdul-Rasheed Akeji, Velmurugan, S.“…The recommended EAVMP-CSSA strategy also aims to balance the resource operation of active servers (i.e., CPU, RAM, and Bandwidth), hence reducing waste and increasing efficiency. …”
Publicado 2022
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2179por Yoosefzadeh-Najafabadi, Mohsen, Eskandari, Milad, Torabi, Sepideh, Torkamaneh, Davoud, Tulpan, Dan, Rajcan, Istvan“…In this study, we evaluated the potential use of two ML algorithms, support-vector machine (SVR) and random forest (RF), in a GWAS and compared them with two conventional methods of mixed linear models (MLM) and fixed and random model circulating probability unification (FarmCPU), for identifying MTAs for soybean-yield components. …”
Publicado 2022
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2180por Barbara, Rani, Nagathihalli Kantharaju, Madhu, Haruvi, Ravid, Harrington, Kyle, Kawashima, Takashi“…Its camera module can handle image data throughput of up to 800 MB/s from camera acquisition to file writing while maintaining stable CPU and memory usage. Its modular architecture allows the inclusion of advanced algorithms for microscope control and image processing. …”
Publicado 2022
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