Results 131 to 140 of about 36,354 (268)

Sampling for computational efficiency when conducting analyses in big data. [PDF]

open access: yesAm J Epidemiol
Rudolph JE   +7 more
europepmc   +1 more source

Parallelization of Iterative Dynamic Programming (IDP)

open access: yes, 1999
The present paper describes an algorithm of the parallelization of Iterative Dynamic Programming by the `Parallel Virtual Machine´ (PVM) language.
Mandel, Klaus   +2 more
core  

Hydrostatic pressure activates HIF‐1α via β‐catenin to promote stemness in breast cancer cells

open access: yesFEBS Open Bio, EarlyView.
To mimic the elevated intestinal fluid pressure in breast cancers, we loaded human breast cancer cells (MCF‐7, MDA‐MB‐453, and BT‐474) to 50 mmHg hydrostatic pressure. Hydrostatic pressure exposure upregulated HIF‐1α and induced stemness in MCF‐7 and BT‐474 cells.
Da Zhai   +8 more
wiley   +1 more source

SNaQ.jl: Improved scalability for level-1 phylogenetic network inference. [PDF]

open access: yesBioinformatics
Kolbow N   +5 more
europepmc   +1 more source

Worker-Checker --- A Framework for Run-time Parallelization on Multiprocessors

open access: yes, 1998
Run-time parallelization is a technique for solving problems whose data access patterns are difficult to analyze at compile time. In this paper we propose a worker-checker framework to classify existing run-time parallelization schemes.
Chung-ta King, Kuang-Chih Liu
core  

Directed evolution of enzymes at the crossroads of tradition and innovation

open access: yesFEBS Open Bio, EarlyView.
An iterative cycle of data‐driven enzyme optimization comprising four stages: genetic diversification of a template enzyme, expression of protein variants, high‐throughput evaluation, and machine‐learning‐guided redesign of the next variant library.
Maria Tomkova   +2 more
wiley   +1 more source

Reengineering for parallelism in heterogeneous parallel platforms [PDF]

open access: yesThe Journal of Supercomputing, 2018
José Daniel García   +2 more
openaire   +1 more source

Hyperactive ice‐binding proteins stabilize cell membranes and improve resistance to dehydration stress in Caenorhabditis elegans

open access: yesFEBS Open Bio, EarlyView.
TisIBP8, a fungal‐derived hyperactive ice‐binding protein, helps Caenorhabditis elegans survive dehydration. It localizes near cell membranes, reduces cell damage, and helps maintain membrane structure during drying. These results suggest that ice‐binding proteins can protect cells from dehydration stress as well as freezing stress.
Daiki Shimose   +9 more
wiley   +1 more source

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