Academic literature on the topic 'Partitioned Path Profiling'

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Journal articles on the topic "Partitioned Path Profiling"

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Battaglia, Alessandro, Pavlos Kollias, Ranvir Dhillon, Katia Lamer, Marat Khairoutdinov, and Daniel Watters. "Mind the gap – Part 2: Improving quantitative estimates of cloud and rain water path in oceanic warm rain using spaceborne radars." Atmospheric Measurement Techniques 13, no. 9 (2020): 4865–83. http://dx.doi.org/10.5194/amt-13-4865-2020.

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Abstract. The intrinsic small spatial scales and low-reflectivity structure of oceanic warm precipitating clouds suggest that millimeter spaceborne radars are best suited to providing quantitative estimates of cloud and rain liquid water paths (LWPs). This assertion is based on their smaller horizontal footprint; high sensitivities; and a wide dynamic range of path-integrated attenuations associated with warm-rain cells across the millimeter wavelength spectrum, with diverse spectral responses to rain and cloud partitioning. State-of-the-art single-frequency radar profiling algorithms of warm
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Jancalek, Radim, Frantisek Siegl, Jiri Sana, et al. "PATH-01. SMALL RNASEQ ANALYSIS OF MICRORNAS IN BRAIN METASTASIS." Neuro-Oncology 23, Supplement_6 (2021): vi115. http://dx.doi.org/10.1093/neuonc/noab196.454.

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Abstract MicroRNAs (miRNAs) are a well-known subclass of short non-coding RNAs responsible for posttranscriptional gene silencing and have been described as dysregulated in many cancers. They have also been shown to be both specific diagnostic, prognostic, and predictive biomarkers as well as therapeutic targets. Therefore, specific miRNA expression patterns of BMs of various origins could serve as a promising diagnostic tool for determining both the original tumor and the prognosis in patients with BMs of unknown origin. For identifying significantly dysregulated miRNAs among BMs (n=90) with
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Dissertations / Theses on the topic "Partitioned Path Profiling"

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Afraz, Mohammed. "P3 : An Effective Technique for Partitioned Path Profiling." Thesis, 2015. https://etd.iisc.ac.in/handle/2005/4496.

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Acyclic path profile is an abstraction of dynamic control flow paths of procedures and has been found to be useful in a wide spectrum of activities. Unfortunately, the runtime overhead of obtaining such a profile can be high, limiting its use in practice. In this work, we present partitioned path profiling (P3) which runs K copies of the program in parallel, each with the same input but on a separate core, and collects the profile only for a subset of intra-procedural paths in each copy, thereby, distributing the overhead of profiling. P3 identifies “profitable” procedures and assigns di
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Conference papers on the topic "Partitioned Path Profiling"

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Afraz, Mohammed, Diptikalyan Saha, and Aditya Kanade. "P3: partitioned path profiling." In ESEC/FSE'15: Joint Meeting of the European Software Engineering Conference and the ACM SIGSOFT Symposium on the Foundations of Software Engineering. ACM, 2015. http://dx.doi.org/10.1145/2786805.2786868.

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Wang, Dingxi, Francesco Ornano, Yan Sheng Li, et al. "FLOvane: A New Approach for HP Vane Design." In ASME Turbo Expo 2016: Turbomachinery Technical Conference and Exposition. American Society of Mechanical Engineers, 2016. http://dx.doi.org/10.1115/gt2016-57285.

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The University of Oxford has been working for a number of years on a conceptually new philosophy for HP vane design [1]. The desired function of the HP vane is to accept flow from a — generally — annular intake, and turn and accelerate it with minimum loss and heat transfer, and with due consideration to mechanical, manufacturing and integration issues. The conventional design process is well-defined: annulus line definition; through-flow analysis; 2D airfoil section definition; vane stack definition; lean/sweep treatments; secondary flow contouring and fillet design; vane and platform cooling
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