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A Service-Oriented Approach for Holonic Manufacturing Control and Beyond |
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1 | (20) |
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1 | (1) |
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2 Holonic Manufacturing Execution System |
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2 | (3) |
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5 | (10) |
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6 | (1) |
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6 | (1) |
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3.1.2 Photographic Foil Facility |
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7 | (1) |
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8 | (1) |
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3.1.4 Heat Treatment Facility |
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9 | (1) |
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10 | (1) |
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11 | (2) |
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13 | (1) |
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3.4.1 Chain Conveyor System |
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13 | (1) |
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3.4.2 Cross-Docking Facility |
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14 | (1) |
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15 | (2) |
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17 | (4) |
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18 | (3) |
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Service Oriented Control Framework for a Holonic System Characterized by a Guided Flow of Entities |
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21 | (14) |
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21 | (2) |
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2 The System Characterized by a Guided Flow |
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23 | (3) |
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2.1 The Concept and Characterization of Entities |
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23 | (1) |
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23 | (1) |
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23 | (1) |
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Generalized active entity (GAE) |
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24 | (1) |
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2.2 Control Architecture for an Active Entity System |
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25 | (1) |
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3 Structure of the Holonic Control System |
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26 | (4) |
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3.1 Static and Dynamic Models of the Composing Holons |
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27 | (1) |
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28 | (1) |
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28 | (1) |
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28 | (1) |
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System Knowledge Holon (SKH) |
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28 | (1) |
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29 | (1) |
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29 | (1) |
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29 | (1) |
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Services to be Obtained Holon (SOH) |
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29 | (1) |
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Object Service Receiving Holon (OSRH) |
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29 | (1) |
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29 | (1) |
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3.4 Aggregation Process and Lifecycle of a FH |
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29 | (1) |
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30 | (2) |
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31 | (1) |
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31 | (1) |
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31 | (1) |
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32 | (1) |
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33 | (2) |
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33 | (2) |
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The Augmentation Concept: How to Make a Product "Active" during Its Life Cycle |
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35 | (14) |
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35 | (1) |
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2 The Concept of "Active" Product |
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36 | (4) |
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2.1 Improved Performance of the Pair "Active Products - Support System" |
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36 | (2) |
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38 | (1) |
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38 | (1) |
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39 | (1) |
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3 Application of the Model in a Manufacturing Context |
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40 | (3) |
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3.1 Product Augmentation in a Manufacturing Phase |
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40 | (1) |
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41 | (2) |
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43 | (1) |
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4 Application of Our Model in a Condition-Based Maintenance Context |
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43 | (3) |
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4.1 Product Augmentation in Use Phase |
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43 | (2) |
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45 | (1) |
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46 | (1) |
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5 Conclusion and Prospects |
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46 | (3) |
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47 | (2) |
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Engineering Hierarchical Complex Systems: An Agent-Based Approach: The Case of Flexible Manufacturing Systems |
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49 | (12) |
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49 | (1) |
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2 Two Trends in MABS Research |
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50 | (2) |
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2.1 Multi-level Modelling |
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50 | (1) |
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2.2 The Influences → Reaction Model |
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51 | (1) |
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3 A Generic Meta-model for Multi-level MABS |
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52 | (2) |
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3.1 Specification of the Levels and Their Interactions |
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52 | (1) |
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3.2 Agent Population and Environments |
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53 | (1) |
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53 | (1) |
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4 Engineering Hierarchical Complex Systems with IRM4MLS |
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54 | (3) |
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4.1 The Emergence/Constraint Paradigm |
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54 | (1) |
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4.2 IRM4MLS Implementation |
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54 | (1) |
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4.3 Conception of Hierarchical Systems |
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55 | (1) |
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4.4 Case Study: AGV Deadlocks in Gradient Field-Based FMS |
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56 | (1) |
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57 | (4) |
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58 | (3) |
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HAPBA - A Holonic Adaptive Plan-Based Architecture |
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61 | (14) |
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61 | (1) |
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2 Petri Nets Modelling of Holonic Systems; Some Main Planning Issues |
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62 | (5) |
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3 The Need of Holonic Centralized Components - Staff Holons |
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67 | (3) |
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4 Experimental Results and Conclusions |
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70 | (5) |
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74 | (1) |
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Integrating Intelligent Robot Services in Holonic Manufacturing |
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75 | (14) |
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75 | (2) |
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2 Decomposing Orders in Operations |
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77 | (2) |
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3 Transforming Operations in Programs |
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79 | (2) |
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4 High Availability Services |
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81 | (2) |
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83 | (6) |
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87 | (2) |
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Key Factors for Information Dissemination on Communicating Products and Fixed Databases |
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89 | (14) |
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89 | (2) |
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2 The System Characterized by a Guided Flow |
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91 | (2) |
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2.1 General Data Distribution Framework |
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91 | (1) |
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2.2 Distributed Databases through Literature |
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91 | (2) |
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3 Case Study Presentation |
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93 | (2) |
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3.1 Reference Distribution Pattern |
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93 | (1) |
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3.2 Adaptation of the Logistic Process |
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93 | (2) |
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4 DiPA and CoPA Architecture Modelling |
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95 | (3) |
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95 | (1) |
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4.2 Estimated "Round Trip Times" via Opnet |
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95 | (1) |
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4.3 Petri Nets: DiPA and CoPA Architectures |
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96 | (2) |
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98 | (3) |
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5.1 Simulation and Results |
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98 | (1) |
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5.2 Key Factor Identification |
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99 | (2) |
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101 | (2) |
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102 | (1) |
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A Load Balancing Algorithm for Multi-agent Systems |
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103 | (12) |
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103 | (3) |
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103 | (1) |
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104 | (1) |
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105 | (1) |
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106 | (2) |
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3 Skill Classes Awareness |
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108 | (1) |
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4 The Load Balancing Algorithm |
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109 | (2) |
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111 | (1) |
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112 | (1) |
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7 Conclusions and Future Work |
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112 | (3) |
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113 | (2) |
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A Holonic Approach to Myopic Behavior Correction for the Allocation Process in Flexible-Job Shops Using Recursiveness |
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115 | (14) |
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115 | (2) |
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2 Myopic Behaviour in Holonic Manufacturing Systems |
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117 | (1) |
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118 | (1) |
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118 | (5) |
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119 | (1) |
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120 | (1) |
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3.3 The Allocation Method |
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121 | (1) |
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3.4 Reactivity to Uncertain Conditions |
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122 | (1) |
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4 Holons and Their Agent-Based Implementation |
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123 | (1) |
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5 FJSP Test Case and Lower Bound Calculation |
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123 | (2) |
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5.1 Mixed-Integer Linear Program (MILP) for FMS |
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123 | (2) |
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125 | (1) |
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7 Conclusions and Future Work |
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126 | (3) |
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127 | (2) |
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Integrating e-IMS Platform via Interoperability within Collaborative Enterprises |
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129 | (14) |
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Mihnea Alexandru Moisescu |
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129 | (1) |
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2 Key Requirement towards the Development of a Methodology for Future Enterprise System of Systems |
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130 | (4) |
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3 From Virtual Enterprise towards Future Enterprise |
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134 | (4) |
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4 Case Study Modules Operator for FInES Supply Chain |
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138 | (3) |
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141 | (2) |
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142 | (1) |
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Dynamic Bayesian Network for Decision Aided Disassembly Planning |
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143 | (12) |
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143 | (1) |
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144 | (1) |
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3 Dynamic Bayesian Networks |
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145 | (2) |
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147 | (1) |
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4.1 Notations and Assumptions |
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147 | (1) |
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148 | (5) |
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148 | (2) |
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150 | (1) |
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151 | (2) |
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153 | (2) |
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154 | (1) |
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Service Oriented Architecture for Holonic Isoarchic and Multicriteria Control |
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155 | (14) |
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155 | (2) |
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2 Main Characteristics of Prosis Approach |
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157 | (5) |
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2.1 Definition of Isoarchic System |
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157 | (1) |
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2.2 Deployment of SOA in Isoarchic System |
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158 | (1) |
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2.3 ACE as Support System for Isoarchic SOA |
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159 | (2) |
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2.4 Presentation of SOA in Prosis |
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161 | (1) |
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3 Services Provided by ACE |
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162 | (5) |
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162 | (2) |
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3.2 Decision Support Service |
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164 | (3) |
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167 | (2) |
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167 | (2) |
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Viable System Model Approach for Holonic Product Driven Manufacturing Systems |
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169 | (14) |
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169 | (1) |
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2 VSM for Holonic Product-Driven Manufacturing Systems |
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170 | (5) |
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171 | (1) |
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171 | (1) |
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171 | (1) |
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171 | (1) |
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172 | (3) |
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3 Application to MPC Systems |
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175 | (3) |
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3.1 Part I: Design/Virtual |
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177 | (1) |
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3.2 Part II: Design/Physical |
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177 | (1) |
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3.3 Part III: Implementation/Physical |
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177 | (1) |
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3.4 Part IV: Implementation/Virtual |
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178 | (1) |
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178 | (2) |
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180 | (3) |
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180 | (3) |
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Speech to Head Gesture Mapping in Multimodal Human-Robot Interaction |
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183 | (14) |
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183 | (1) |
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2 Prosodic Features Extraction |
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184 | (1) |
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185 | (3) |
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4 Speech and Head Gesture Segmentation |
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188 | (3) |
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4.1 Speech Temporal Segmentation |
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189 | (1) |
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4.2 Gestures Temporal Segmentation |
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190 | (1) |
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5 Speech to Head Gesture Coupling |
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191 | (2) |
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193 | (2) |
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195 | (2) |
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195 | (2) |
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Myopia of Service Oriented Manufacturing Systems: Benefits of Data Centralization with a Discrete-Event Observer |
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197 | (14) |
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197 | (1) |
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2 Service Oriented Manufacturing Systems |
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198 | (2) |
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2.1 Service Orientation in the Context of Distributed Manufacturing Systems |
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198 | (1) |
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2.2 Service Oriented Manufacturing System Example |
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199 | (1) |
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200 | (2) |
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200 | (1) |
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201 | (1) |
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4 Centralizing Data, Not Decisions |
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202 | (2) |
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4.1 Gathering an Up-to-Date State of a HMS |
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202 | (1) |
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203 | (1) |
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204 | (5) |
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5.1 Application to Decision DG2 |
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204 | (1) |
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5.2 Application to Decision DL1 |
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205 | (1) |
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206 | (1) |
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207 | (1) |
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207 | (2) |
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6 Conclusion and Future Works |
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209 | (2) |
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209 | (2) |
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A Multi-agent Model for Job-Shop Scheduling |
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211 | (16) |
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211 | (1) |
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2 Building Blocks of the Multi-agent Solution |
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212 | (2) |
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2.1 MACOR - a Multi-agent Co-ordination Mechanism |
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212 | (2) |
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214 | (1) |
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3 Generic Prototyping in Manufacturing Control |
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214 | (3) |
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3.1 Methodological Framework |
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214 | (2) |
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3.2 DSMC_A Generic Prototype |
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216 | (1) |
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4 Job-Shop Scheduling Particular Prototype |
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217 | (5) |
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4.1 Design Specification of the Control Model |
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217 | (2) |
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4.2 A Case Study: The Job Object Class |
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219 | (3) |
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5 Towards a Service Oriented Implementation |
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222 | (2) |
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222 | (1) |
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5.2 Implementation Feasibility |
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223 | (1) |
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224 | (3) |
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224 | (3) |
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Services for Competitive and Sustainable Manufacturing in the Smart Grid |
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227 | (14) |
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227 | (3) |
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230 | (3) |
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3 Simulation-Based Distributed Feedback Control |
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233 | (3) |
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236 | (2) |
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238 | (3) |
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239 | (2) |
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Different Approaches Regarding the Operational Control of Production in a Flexible Manufacturing Cell |
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241 | (14) |
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241 | (1) |
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2 System Architecture and Production Flow |
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242 | (1) |
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3 First Control Solution and PLC-Based Implementation of Order Holons |
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243 | (4) |
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3.1 Theoretical Backgrounds |
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243 | (1) |
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244 | (2) |
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3.3 The Routing Challenge |
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246 | (1) |
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4 Failure and Perturbations Management |
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247 | (2) |
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4.1 Case 1: Failure / Recovery of a Resource |
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248 | (1) |
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4.2 Case 2: Re-supplying Mechanism |
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248 | (1) |
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5 Second Approach: Using Intelligent Products |
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249 | (3) |
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251 | (1) |
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6 Communication Inside the System |
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252 | (1) |
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7 Practical Results and Conclusions |
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253 | (2) |
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253 | (2) |
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Using Hybrid Petri Nets for Performance Analysis in Manufacturing Systems |
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255 | (10) |
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Mihnea Alexandru Moisescu |
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255 | (1) |
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255 | (4) |
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259 | (1) |
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4 Modelling Manufacturing Systems with Hybrid Petri Nets - Case Study |
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260 | (3) |
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263 | (1) |
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264 | (1) |
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264 | (1) |
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A JADE Environment for Product Driven Automation of Holonic Manufacturing |
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265 | (14) |
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265 | (1) |
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2 Using Intelligent Products for Decision Taking in an Industrial Environment |
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266 | (7) |
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266 | (2) |
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2.2 Production Driving Strategies |
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268 | (2) |
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2.3 Using the CNP to Obtain Workstation Offers and Make Reservations |
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270 | (1) |
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2.4 Comparing Robot Offers |
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271 | (1) |
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272 | (1) |
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2.6 Taking the Production Decision |
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273 | (1) |
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3 Product Driven Automation |
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273 | (2) |
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4 Software System for Implementation Using the JADE Environment |
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275 | (2) |
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4.1 Message Exchange System |
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275 | (1) |
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4.2 System Classes and Implementation |
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276 | (1) |
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277 | (2) |
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277 | (2) |
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Physical Internet Enabled Open Hub Network Design for Distributed Networked Operations |
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279 | (14) |
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279 | (1) |
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2 A New Logistics Paradigm: The Physical Internet |
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280 | (3) |
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2.1 Motivations for a New Logistics Paradigm |
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280 | (1) |
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2.2 The Physical Internet |
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281 | (2) |
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3 Physical Internet enabled open hub network design |
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283 | (3) |
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3.1 Network Design and Assumptions |
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283 | (1) |
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3.2 Typical Logistics Network Optimizations Problems |
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284 | (1) |
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3.3 Open Hub Network Design for the Physical Internet |
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284 | (2) |
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4 Open Hub Network Design for Physical Internet Proof of Efficiency Purposes |
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286 | (4) |
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4.1 A Need of Proof of Efficiency by Simulation of Decentralized Design |
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286 | (1) |
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4.2 Open Hub Networks Design by an Ad Hoc Evolutionist Algorithm |
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286 | (2) |
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4.3 An Open Hub Network for Food Distribution in France |
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288 | (2) |
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5 Conclusion and Future Work |
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290 | (3) |
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291 | (2) |
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Volunteer Based Search Engine for Holonic Manufacturing Services |
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293 | (14) |
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293 | (2) |
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295 | (3) |
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3 Holonic Manufacturing System Web Service Design |
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298 | (1) |
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4 Volunteer Based Search Engine |
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299 | (4) |
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299 | (1) |
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Phase II Volunteer Challenge |
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300 | (3) |
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5 Conclusions and Future Work |
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303 | (4) |
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305 | (2) |
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Impact of Information Technology on the Quality of Health Services |
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307 | (14) |
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307 | (1) |
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2 Major Effects of Health Information Technology Implementation |
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308 | (1) |
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2.1 Effects on Quality of Medical Care |
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308 | (1) |
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2.2 Effects on HIT Efficiency |
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308 | (1) |
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309 | (1) |
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3 The Impact of Service Oriented Architecture on Health Information Systems |
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309 | (1) |
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4 Service-Oriented Solutions for Healthcare |
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310 | (1) |
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5 The HSSP/HL7 SOA Interoperability Paradigm |
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311 | (2) |
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6 State of the Art and Trends of HL7 Implementation |
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313 | (4) |
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317 | (1) |
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318 | (3) |
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318 | (3) |
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Competency Management System for IT Project-Oriented Organizations |
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321 | (14) |
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321 | (3) |
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324 | (1) |
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3 The Proposed Solution for the Competency Management System |
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325 | (5) |
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3.1 The Architecture of the Competency Management System |
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327 | (1) |
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3.2 The Project Management Competence Ontology |
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328 | (1) |
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3.3 The IT Competence Ontology |
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329 | (1) |
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4 The Experimentation of Competency Management System |
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330 | (2) |
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5 Conclusions and Future Work |
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332 | (3) |
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333 | (2) |
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Knowledge-Based Adaptive Machining Concept for Service Oriented Architectures |
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335 | (14) |
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335 | (1) |
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2 Overview of the Knowledge-Based Adaptive Machining Concept |
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336 | (1) |
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337 | (1) |
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4 Observation of the Milling Process |
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338 | (3) |
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5 Adaptive Machining Strategy |
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341 | (4) |
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342 | (1) |
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5.2 Core Algorithm: Advancing with Constant Engagement |
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343 | (1) |
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5.3 Examples of Generated Toolpaths |
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344 | (1) |
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345 | (1) |
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346 | (3) |
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346 | (3) |
Author Index |
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349 | (2) |
Subject Index |
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351 | |