Containers and Connectors as Elements in a Portal Design Framework

Author(s):  
Joe Lamantia

This article defines the standardized elements used in the building blocks portal design framework in detail, as the second in a series of articles on a Portal Design Framework. This article explains the (simple) rules and relationships for combining Containers and Connectors into portal structures. This article shares best practices, examples, and guidelines for effectively using the building blocks framework during portal design efforts.

2010 ◽  
Vol 2 (2) ◽  
pp. 12-25 ◽  
Author(s):  
Joe Lamantia

This article presents strategies for enhancing the long-term business and user value of portals as the third in a series of articles describing a Portal Design Framework. This article identifies essential Enterprise 2.0 functionality for collaboration and dialog—capabilities that support emerging Social Business practices—included in the Building Blocks Design Framework. The author discusses portal management and governance best practices and describes strategies for maintaining and enhancing the user experience of portals designed using the Building Blocks Framework.


2010 ◽  
Vol 2 (1) ◽  
pp. 58-81
Author(s):  
Joe Lamantia

This article defines the standardized elements used in the building blocks portal design framework in detail, as the second in a series of articles on a Portal Design Framework. This article explains the (simple) rules and relationships for combining Cont


Author(s):  
Joe Lamantia

This article presents strategies for enhancing the long-term business and user value of portals as the third in a series of articles describing a Portal Design Framework. This article identifies essential Enterprise 2.0 functionality for collaboration and dialog—capabilities that support emerging Social Business practices—included in the Building Blocks Design Framework. The author discusses portal management and governance best practices and describes strategies for maintaining and enhancing the user experience of portals designed using the Building Blocks Framework.


2010 ◽  
pp. 812-833
Author(s):  
Joe Lamantia

This article defines the standardized elements used in the building blocks portal design framework in detail, as the second in a series of articles on a Portal Design Framework. This article explains the (simple) rules and relationships for combining Cont


Public Voices ◽  
2017 ◽  
Vol 15 (1) ◽  
pp. 9 ◽  
Author(s):  
Mordecai Lee

One of the building blocks of the professionalization of American public administration was the recognition of the need for expert knowledge and the wide dissemination of that information to practitioners. Municipal civil servants could adopt and adapt these best practices in their localities. Such was the purpose of the Municipal Administration Service (1926-1933), initially founded by the National Municipal League and funded by the Rockefeller philanthropies. This article is an organizational history of the Service. It presents the life cycle of the agency, including its operations, funding, problems, and the behind-the-scenes public administration politics which led to its demise. In all, the Municipal Administration Service captures the early history of American public administration, its attempt to demonstrate that it was a full-fledged profession with recognized experts and managerial advice that ultimately proved unable to perpetuate itself.


Author(s):  
Sree Kalyan Patiballa ◽  
Girish Krishnan

Abstract Deformable metamaterials are materials that are made up of several repeating elastic building blocks whose geometries can be tailored to obtain a specified global shape change or stiffness behavior. They are deemed useful in soft robotics, shape morphing mechanisms, stretchable electronics, wearable devices, and devices that adapt according to their environment. This paper presents a two-step sequential design framework for the synthesis of deformable mechanical metamaterials where (a) topology optimization is used to map global deformation requirement to local elasticity matrix, followed by (b) a selection of building block microstructure geometry from a database and refining it to match the elasticity requirement. The first step is accomplished through a unique parameterization scheme that enables the classification of the planar orthotropic elasticity matrix into four distinct classes. The second step uses a kinetostatic framework known as load flow visualization to populate candidate microstructure geometries within these four classes. Finally, the framework is validated for the design of a cantilever beam with a specified lateral stiffness requirement and the design of planar sheets that exhibit sinusoidal deformation patterns.


Author(s):  
Hélder Fanha Martins ◽  
Maria João Ferro

Given the growing demand for the use of teams as fundamental building blocks in organizations (Furst, Blackburn, & Rosen, 1999), particularly geographically distributed teams, it is essential to establish a means to ensure their high performance and productivity. The first step to improve our understanding of what makes these teams effective is to identify a series of best practices that should be followed by all those involved in what we call online collaborative teams (OCT): their organizations, leaders and members. OCT are groups of individuals who work on interdependent tasks, share responsibility for outcomes, and join their efforts from different locations. These teams are now being used by many organizations to enhance the productivity of their employees and to reach a diversity of skills and resources. Information technology can support their activities by reducing travel costs, enabling expertise to be captured where it is located, and speeding up team communication and coordination processes. Unfortunately, these distributed teams are not always productive.


2010 ◽  
Vol 2 (3) ◽  
pp. 43-55
Author(s):  
Joe Lamantia

This article is a case study that explores the use of the Building Blocks portal design framework over a series of enterprise portal projects spanning several years. This article describes the business contexts that shaped each portal as it was designed, showing the use and reuse of design and development elements based on the Building Blocks. This article discusses the changes and adaptations that shaped the elements of the Building Blocks design framework over time.


2000 ◽  
Vol 23 (5) ◽  
pp. 727-741 ◽  
Author(s):  
Peter M. Todd ◽  
Gerd Gigerenzer

How can anyone be rational in a world where knowledge is limited, time is pressing, and deep thought is often an unattainable luxury? Traditional models of unbounded rationality and optimization in cognitive science, economics, and animal behavior have tended to view decision-makers as possessing supernatural powers of reason, limitless knowledge, and endless time. But understanding decisions in the real world requires a more psychologically plausible notion of bounded rationality. In Simple heuristics that make us smart (Gigerenzer et al. 1999), we explore fast and frugal heuristics – simple rules in the mind's adaptive toolbox for making decisions with realistic mental resources. These heuristics can enable both living organisms and artificial systems to make smart choices quickly and with a minimum of information by exploiting the way that information is structured in particular environments. In this précis, we show how simple building blocks that control information search, stop search, and make decisions can be put together to form classes of heuristics, including: ignorance-based and one-reason decision making for choice, elimination models for categorization, and satisficing heuristics for sequential search. These simple heuristics perform comparably to more complex algorithms, particularly when generalizing to new data – that is, simplicity leads to robustness. We present evidence regarding when people use simple heuristics and describe the challenges to be addressed by this research program.


2018 ◽  
Author(s):  
Jianfu Zhou ◽  
Alexandra E. Panaitiu ◽  
Gevorg Grigoryan

AbstractThe ability to routinely design functional proteins, in a targeted manner, would have enormous implications for biomedical research and therapeutic development. Computational protein design (CPD) offers the potential to fulfill this need, and though recent years have brought considerable progress in the field, major limitations remain. Current state-of-the-art approaches to CPD aim to capture the determinants of structure from physical principles. While this has led to many successful designs, it does have strong limitations associated with inaccuracies in physical modeling, such that a robust general solution to CPD has yet to be found. Here we propose a fundamentally novel design framework—one based on identifying and applying patterns of sequence-structure compatibility found in known proteins, rather than approximating them from models of inter-atomic interactions. Specifically, we systematically decompose the target structure to be designed into structural building blocks we call TERMs (tertiary motifs) and use rapid structure search against the Protein Data Bank (PDB) to identify sequence patterns associated with each TERM from known protein structures that contain it. These results are then combined to produce a sequence-level pseudo-energy model that can score any sequence for compatibility with the target structure. This model can then be used to extract the optimal-scoring sequence via combinatorial optimization or otherwise sample the sequence space predicted to be well compatible with folding to the target. Here we carry out extensive computational analyses, showing that our method, which we dub dTERMen (design with TERM energies): 1) produces native-like sequences given native crystallographic or NMR backbones, 2) produces sequence-structure compatibility scores that correlate with thermodynamic stability, and 3) is able to predict experimental success of designed sequences generated with other methods, and 4) designs sequences that are found to fold to the desired target by structure prediction more frequently than sequences designed with an atomistic method. As an experimental validation of dTERMen, we perform a total surface redesign of Red Fluorescent Protein mCherry, marking a total of 64 residues as variable. The single sequence identified as optimal by dTERMen harbors 48 mutations relative to mCherry, but nevertheless folds, is monomeric in solution, exhibits similar stability to chemical denaturation as mCherry, and even preserves the fluorescence property. Our results strongly argue that the PDB is now sufficiently large to enable proteins to be designed by using only examples of structural motifs from unrelated proteins. This is highly significant, given that the structural database will only continue to grow, and signals the possibility of a whole host of novel data-driven CPD methods. Because such methods are likely to have orthogonal strengths relative to existing techniques, they could represent an important step towards removing remaining barriers to robust CPD.


Sign in / Sign up

Export Citation Format

Share Document