2011
DOI: 10.1016/j.amc.2011.06.034
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A sufficient descent LS conjugate gradient method for unconstrained optimization problems

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Cited by 17 publications
(16 citation statements)
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“…The CPU processor used was Intel (R) Core TM i3-M350 (2.27GHz) with RAM 4 GB. (5,5), (20,20),(50,50) 8 TRECANNI 2 (5,5), (10,10),(50,50) 9 EXTENDED WOOD 4 (5,..,5), (20,..,20), (30,..,30) 10 CLOVILLE 4 (2,..,2),(4,..,4),(10,..,10) 11 HAGER 2 4 (7,7), (15,15),(22,) (7,..,7), (15,..,15), ( (15,15), (30,30),(150,150) (15,.,15), (30,..,30),(150,..,150) 16 EXTENDED PENALTY (1,1), (5,5),(10,10) (1,..,1),(5,..,5),(10,..,10) 23 EXTENDED TRIDIAGONAL1 2 10,100,1000 (6,6), (12,12),(17,17) (6,..,6), (12,..,12), (17,..,17) 24 DIAGONAL 4 2 10,100,1000…”
Section: Resultsmentioning
confidence: 99%
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“…The CPU processor used was Intel (R) Core TM i3-M350 (2.27GHz) with RAM 4 GB. (5,5), (20,20),(50,50) 8 TRECANNI 2 (5,5), (10,10),(50,50) 9 EXTENDED WOOD 4 (5,..,5), (20,..,20), (30,..,30) 10 CLOVILLE 4 (2,..,2),(4,..,4),(10,..,10) 11 HAGER 2 4 (7,7), (15,15),(22,) (7,..,7), (15,..,15), ( (15,15), (30,30),(150,150) (15,.,15), (30,..,30),(150,..,150) 16 EXTENDED PENALTY (1,1), (5,5),(10,10) (1,..,1),(5,..,5),(10,..,10) 23 EXTENDED TRIDIAGONAL1 2 10,100,1000 (6,6), (12,12),(17,17) (6,..,6), (12,..,12), (17,..,17) 24 DIAGONAL 4 2 10,100,1000…”
Section: Resultsmentioning
confidence: 99%
“…(1,1), (20,20),(40,40) (1,..,1), (20,..,20),(40,..,40) 25 EXTENDED HIMMELBLAU 2 10,100,1000 (10,10),(50,50),(125,125) (10,..,10),(50,..,50),(125,..,125) 26 FLETCHCR 2 10,100,1000 (3,3), (12,12), (15,15) (3,..,3), (12,..,12), (15,..,15) 27 EXTENDED DENSCHNB 2 10,100,1000 (5,5), (30,30),(50,50) (5,..,5), (30,..,30),(50,..,50) 28 EXTENDED BLOCK DIAG-ONAL BD1 2 10,100,1000…”
Section: Resultsmentioning
confidence: 99%
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“…Simulation 1: Comparison with the line search (LS) [10] Consider a synthesis problem using a 17-element half-wave-length spacing linear array with the following configurations: θ 1 = −4.5, θ 2 = −3.0, θ 3 = 3.0, and θ 4 = 4.5. The simulations based on the DA and LS algorithms were executed 10 times independently, and the results are listed in Table 1.…”
Section: Simulation Resultsmentioning
confidence: 99%
“…For the comparison utilizing Wolfe's rule, we first describe the parameter. Wolfe's rule defines step length α k such that [10] …”
Section: New Descent Algorithmmentioning
confidence: 99%