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Volumn 50, Issue 5, 2011, Pages 1785-1790
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Artificial neural network approach to predict the flow stress in the isothermal compression of as-cast TC21 titanium alloy
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Author keywords
As cast TC21 titanium alloy; BP neural network; Flow stress; Isothermal compression
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Indexed keywords
ARTIFICIAL NEURAL NETWORK APPROACH;
ARTIFICIAL NEURAL NETWORK MODELS;
AS-CAST;
AS-CAST TC21 TITANIUM ALLOY;
AVERAGE ERRORS;
BACKPROPAGATION LEARNING ALGORITHM;
BP NEURAL NETWORKS;
DEFORMATION TEMPERATURES;
EXPERIMENTAL DATA;
FLOW STRESS;
GLEEBLE;
HEIGHT REDUCTION;
ISOTHERMAL COMPRESSIONS;
MAXIMUM ERROR;
REGRESSION METHOD;
RELATIVE ERRORS;
THERMO-MECHANICAL;
ALLOYS;
BACKPROPAGATION ALGORITHMS;
CERIUM ALLOYS;
DEFORMATION;
FORECASTING;
LEARNING ALGORITHMS;
NEURAL NETWORKS;
PLASTIC FLOW;
REGRESSION ANALYSIS;
STRAIN RATE;
TITANIUM;
TITANIUM ALLOYS;
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EID: 79952003627
PISSN: 09270256
EISSN: None
Source Type: Journal
DOI: 10.1016/j.commatsci.2011.01.015 Document Type: Article |
Times cited : (90)
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References (35)
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