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Guide to use learning feature at FshareTV

When watching movies with subtitle. FshareTV provides a feature to display and translate words in the subtitle
You can activate this feature by clicking on the icon located in the video player

New Update 12/2020
You will be able to choose a foreign language, the system will translate and display 2 subtitles at the same time, so you can enjoy learning a language while enjoying movie

If you have any question or suggestion for the feature. please write an email to [email protected]
We hope you have a good time at FshareTV and upgrade your language skill to an upper level very soon!

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sa = SensitivityAnalysis(template="multiphase_pipeline.pips") sa.run_grid(cases, output="sensitivity_results.csv") A. Coupling with Reservoir Simulator # Pseudo-code: iterative coupling reservoir = ResSimConnector("simulation.dat") pipesim = PipesimClient() for time_step in range(1, 13): q_oil, q_water, q_gas = reservoir.get_rates(month=time_step) whp = pipesim.calculate_wellhead_pressure( rates=(q_oil, q_water, q_gas), tubing_model=well_completion ) reservoir.apply_backpressure(whp) B. Machine Learning Surrogate Training from pipesim_toolkit import ExperimentDesign Generate training data from PIPESIM ed = ExperimentDesign( variables=["oil_rate", "water_cut", "tubing_size"], ranges=[(200, 3000), (0, 0.9), (2.5, 4.5)] ) X = ed.latin_hypercube(n_samples=500)

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You can try to pick an alternative server if you are having issue with the main server

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Subtitle delay (milliseconds)
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Pipesim Python Toolkit -

sa = SensitivityAnalysis(template="multiphase_pipeline.pips") sa.run_grid(cases, output="sensitivity_results.csv") A. Coupling with Reservoir Simulator # Pseudo-code: iterative coupling reservoir = ResSimConnector("simulation.dat") pipesim = PipesimClient() for time_step in range(1, 13): q_oil, q_water, q_gas = reservoir.get_rates(month=time_step) whp = pipesim.calculate_wellhead_pressure( rates=(q_oil, q_water, q_gas), tubing_model=well_completion ) reservoir.apply_backpressure(whp) B. Machine Learning Surrogate Training from pipesim_toolkit import ExperimentDesign Generate training data from PIPESIM ed = ExperimentDesign( variables=["oil_rate", "water_cut", "tubing_size"], ranges=[(200, 3000), (0, 0.9), (2.5, 4.5)] ) X = ed.latin_hypercube(n_samples=500)

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Merge Subtitles (experiment)
Label Language Select
Merge
Note: Output subtitle may not matched perfectly!
Translate Subtitle (experiment)
This feature allows you to translate current subtitle to your desired language