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dc.contributor.author劉泊欣zh_TW
dc.contributor.author林妙聰zh_TW
dc.contributor.authorLiu, Bo-Xinen_US
dc.contributor.authorLin, Miao-Tsongen_US
dc.date.accessioned2018-01-24T07:40:33Z-
dc.date.available2018-01-24T07:40:33Z-
dc.date.issued2017en_US
dc.identifier.urihttp://etd.lib.nctu.edu.tw/cdrfb3/record/nctu/#GT070453407en_US
dc.identifier.urihttp://hdl.handle.net/11536/141357-
dc.description.abstract在本研究中,我們將會探討考量專長限制之人力派遣。我們給定一個人力資源集合U = {1,2,...,n},代表我們可以分配的資源。以及一個任務集合T = {T1,T2,...,Tm},表示有各種不同專長需求的任務子集合。我們希望在每一群至少完成k 個任務的前提下,將資源分成越多群越好。為了使結果更趨近於現實應用,對於所有任務子集合我們會給定一個相同密度限制,使每個子集合的人數不超過給定之密度。我們提出一個基於線性規劃模型的隨機演算法,以期在有限的時間內,求得一個不錯的近似解。同時也設計了啟發式演算法以及螞蟻演算法。我們透過實驗來評估每一個所提出演算法的效能。 關鍵字:集合覆蓋; 集合分組; 線性規劃; 整數規劃; 隨機處理演算法; 螞蟻演算法zh_TW
dc.description.abstractIn this thesis, we consider the allocation of human resource subject to skill constraints. We are given a staff set U = {1,2,...,n} that indicates the human resource available for the considered project, and a task set T = {T1,T2,...,Tm} that contains the tasks of the project. Each task demands a subset of skills or expertises. Under the premise that each time period should have at least k tasks completed, we want to partition the available human resource into as many time periods as possible. In order to reflect the practical significance of the problem, we give a limit on each subset Tj ∈ T to ensure that for each subset the amount of resources will not exceed the given density. We develop a randomized algorithm, based on a linear programming formulation, to produce approximate solutions. A heuristic algorithm and an ant colony optimization (ACO) algorithm are also designed. We conduct a computational study to appraise the performances of the proposed algorithms. Keywords: Bin Covering; Set Covering; Set Partitioning; Linear Programming; Integer Programming; Randomized Algorithm; Ant Colony Optimization.en_US
dc.language.isoen_USen_US
dc.subject集合覆蓋zh_TW
dc.subject集合分組zh_TW
dc.subject線性規劃zh_TW
dc.subject整數規劃zh_TW
dc.subject隨機處理演算法zh_TW
dc.subject螞蟻演算法zh_TW
dc.subjectBin Coveringen_US
dc.subjectSet Coveringen_US
dc.subjectSet Partitioningen_US
dc.subjectLinear Programmingen_US
dc.subjectInteger Programmingen_US
dc.subjectRandomized Algorithmen_US
dc.subjectAnt Colony Optimizationen_US
dc.title考量專長限制下之人力派遣zh_TW
dc.titleHuman Resource Allocation subject to Skill Constraintsen_US
dc.typeThesisen_US
dc.contributor.department資訊管理研究所zh_TW
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