000 | 02871nam a2200385Ka 4500 | ||
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001 | 00011788 | ||
003 | WSP | ||
007 | cr cnu|||unuuu | ||
008 | 200708s2020 si ob 001 0 eng d | ||
040 |
_aWSPC _beng _cWSPC |
||
010 | _z 2020027891 | ||
020 |
_a9789811218996 _q(ebook) |
||
020 |
_a9811218994 _q(ebook) |
||
020 |
_z9789811218989 _q(hbk.) |
||
020 |
_z9811218986 _q(hbk.) |
||
050 | 0 | 4 |
_aTA347.E96 _bL53 2020 |
072 | 7 |
_aCOM _x051300 _2bisacsh |
|
082 | 0 | 4 |
_a006.3823 _223 |
100 | 1 |
_aLi, Juan _c(Mathematician) _9178394 |
|
245 | 1 | 0 |
_aDecomposition-based evolutionary optimization in complex environments _h[electronic resource] / _cby Juan Li, Bin Xin, Jie Chen. |
260 |
_aSingapore ; _aHoboken : _bWorld Scientific, _c[2020] |
||
300 | _a1 online resource (xvii, 229 p.) | ||
504 | _aIncludes bibliographical references and index. | ||
538 | _aMode of access: World Wide Web. | ||
538 | _aSystem requirements: Adobe Acrobat Reader. | ||
520 | _a"Multi-objective optimization problems (MOPs) and uncertain optimization problems (UOPs) which widely exist in real life are challengeable problems in the fields of decision making, system designing, and scheduling, amongst others. Decomposition exploits the ideas of 'making things simple' and 'divide and conquer' to transform a complex problem into a series of simple ones with the aim of reducing the computational complexity. In order to tackle the abovementioned two types of complicated optimization problems, this book introduces the decomposition strategy and conducts a systematic study to perfect the usage of decomposition in the field of multi-objective optimization, and extend the usage of decomposition in the field of uncertain optimization"--Publisher's website. | ||
650 | 0 |
_aEvolutionary computation. _94099 |
|
650 | 0 |
_aMultiple criteria decision making. _98834 |
|
655 | 0 |
_aElectronic books. _93294 |
|
700 | 1 |
_aXin, Bin. _9178395 |
|
700 | 1 |
_aChen, J. _q(Jie). _9178396 |
|
856 | 4 | 0 |
_uhttps://www.worldscientific.com/worldscibooks/10.1142/11788#t=toc _zAccess to full text is restricted to subscribers. |
880 | 0 | _6505-00/aIntroduction -- Decomposition-based multi-objective evolutionary algorithm with the (Sf(B-constraint framework -- Decomposition-based many-objective evolutionary algorithm with the (Sf(B-constraint framework -- An A posteriori decision-making framework and subproblems co-solving evolutionary algorithm for uncertain optimization -- Noise-tolerant techniques for decomposition-based multi-objective evolutionary algorithms -- The bi-objective critical node detection problem with minimum pairwise connectivity and cost : theory and algorithms -- Solving bi-objective uncertain stochastic resource allocation problems by the cvar-based risk measure and decomposition-based multi-objective evolutionary algorithm. | |
942 | _cEBK | ||
999 |
_c97768 _d97768 |