<?xml version="1.0" encoding="UTF-8"?>
<StrategicPlan xsi:schemaLocation="http://www.stratml.net  http://xml.gov/stratml/references/StrategicPlan.xsd" xmlns:xsi="http://www.w3.org/2001/XMLSchema-instance" xmlns="http://www.stratml.net"><Name>THE NETWORKING AND INFORMATION TECHNOLOGY RESEARCH AND DEVELOPMENT (NITRD) PROGRAM 2012 STRATEGIC PLAN</Name><Description>This five-year strategic plan for the Federal Networking and Information Technology
Research and Development (NITRD) Program considers IT R&amp;D in its broader societal context.
It calls upon the Federal Government and private sector to work together to develop new, more
powerful kinds of partnerships between humans and digital devices; learn how to engineer
systems and devices that earn society&#8217;s trust and confidence; and innovate in education for
&#8220;cyber-capable&#8221; citizens and workers.</Description><OtherInformation>About this Document -- This report was developed by the Subcommittee on Networking and Information Technology Research and Development (NITRD) of the NSTC&#8217;s Committee on Technology. The report is published by the National Coordination Office (NCO) for the NITRD Program.

Copyright Information -- This document is a work of the United States Government and is in the public domain (see 17 U.S.C. &#167;105). Subject to the stipulations below, it may be distributed and copied with acknowledgment to
NCO. Copyrights to graphics included in this document are reserved by the original copyright holders
or their assignees and are used here under the government&#8217;s license and by permission. Requests to
use any images must be made to the provider identified in the image credits or to NCO if no provider
is identified.</OtherInformation><StrategicPlanCore><Organization><Name>U.S. Networking and Information Technology Research and Development Program</Name><Acronym>NITRD</Acronym><Identifier>_b3dd12be-e784-11df-a5d3-6a0c7a64ea2a</Identifier><Description></Description><Stakeholder><Name>Executive Office of the President</Name><Description></Description></Stakeholder><Stakeholder><Name>National Science and Technology Council</Name><Description>About the National Science and Technology Council -- The National Science and Technology Council (NSTC) is the principal means by which the Executive Branch coordinates science and technology policy across the diverse entities that make up the Federal research and development enterprise. A primary objective of the NSTC is establishing clear national goals for Federal science and technology investments. The NSTC prepares research and development strategies that are coordinated across Federal agencies to form investment packages aimed at accomplishing multiple national goals. The work of the NSTC is organized under five committees: Environment, Natural Resources and Sustainability; Homeland and National Security; Science, Technology, Engineering, and Math (STEM) Education; Science; and Technology. Each of these committees oversees subcommittees and working groups focused on different aspects of science and technology. More information is available at http://www.whitehouse.gov/ostp/nstc.</Description></Stakeholder><Stakeholder><Name>John P. Holdren</Name><Description>National Science and Technology Council Chair; Assistant to the President for Science and Technology; Director, Office of Science and Technology Policy</Description></Stakeholder><Stakeholder><Name>Pedro I. Espina</Name><Description>Staff: Executive Director of the National Science and Technology Council &amp; Executive Secretary of the Committee on Technology</Description></Stakeholder><Stakeholder><Name>Committee on Technology</Name><Description></Description></Stakeholder><Stakeholder><Name>Thomas C. Power</Name><Description>Committee on Technology Chair; Deputy Chief Technology Officer of the United States for Telecommunications, Office of Science &amp; Technology Policy</Description></Stakeholder><Stakeholder><Name>Office of Science and Technology Policy</Name><Description>About the Office of Science and Technology Policy -- The Office of Science and Technology Policy (OSTP) was established by the National Science and Technology Policy, Organization, and Priorities Act of 1976. OSTP&#8217;s responsibilities include advising the President in policy formulation and budget development on questions in which science and technology are important elements; articulating the President&#8217;s science and technology policy and programs; and fostering strong partnerships among Federal, state, and local governments, and the scientific communities in industry and academia. The Director of OSTP also serves as Assistant to the President for Science and Technology and manages the NSTC. More information is available at http://www.whitehouse.gov/ostp.</Description></Stakeholder><Stakeholder><Name>Subcommittee on Networking and Information Technology Research and Development</Name><Description>About the Subcommittee on Networking and Information Technology Research and Development -- The Subcommittee coordinates the multi-agency Networking and Information Technology Research and Development (NITRD) Program to help: * Assure continued U.S. leadership in networking and information technology * Satisfy the needs of the Federal government for advanced networking and information technology * Accelerate development and deployment of advanced networking and information technology This focus enables the United States to maintain world leadership in science and engineering, enhance national defense and national U.S. productivity and competitiveness and promote longterm economic growth, improve the health of the U.S. citizenry, protect the environment, improve education, training, and lifelong learning, and improve the quality of life. It also implements relevant provisions of the High Performance Computing Act of 1991 (P.L. 102-194), as amended by the Next Generation Internet Research Act of 1998 (P. L. 105-305), and the America Creating Opportunities to Meaningfully Promote Excellence in Technology, Education and Science (COMPETES) Act of 2007 (P.L. 110-69). For more information, visit http://www.nitrd.gov/.</Description></Stakeholder><Stakeholder><Name>George O. Strawn</Name><Description>Subcommittee on Networking and Information Technology Research and Development Co-chair -- Director, National Coordination Office for Networking and Information Technology Research and Development</Description></Stakeholder><Stakeholder><Name>Farnam Jahanian</Name><Description>Subcommittee on Networking and Information Technology Research and Development Co-chair -- Assistant Director, Computer and Information Science and Engineering Directorate, National Science Foundation</Description></Stakeholder><Stakeholder><Name>Bryan A. Biegel</Name><Description>Subcommittee on Networking and Information Technology Research and Development Member -- Acting Deputy Division Chief, Advanced
Supercomputing Division. National Aeronautics and Space Administration</Description></Stakeholder><Stakeholder><Name>Alan Blatecky</Name><Description>Subcommittee on Networking and Information Technology Research and Development Member -- Director, Office of Cyberinfrastructure.
National Science Foundation</Description></Stakeholder><Stakeholder><Name>Robert Chadduck</Name><Description>Subcommittee on Networking and Information Technology Research and Development Member -- Principal Technologist for Applied Research,
National Archives and Records Administration</Description></Stakeholder><Stakeholder><Name>Pedro I. Espina</Name><Description>Subcommittee on Networking and Information Technology Research and Development Member -- Program Analyst. Office of Science &amp; Technology Policy</Description></Stakeholder><Stakeholder><Name>J. Michael Fitzmaurice</Name><Description>Subcommittee on Networking and Information Technology Research and Development Member -- Senior Science Advisor for Information Technology,
Agency for Healthcare Research and Quality</Description></Stakeholder><Stakeholder><Name>Marilyn Freeman</Name><Description>Subcommittee on Networking and Information Technology Research and Development Member -- Deputy Assistant Secretary for Research &amp;
Technology, Army</Description></Stakeholder><Stakeholder><Name>Douglas B. Fridsma</Name><Description>Subcommittee on Networking and Information Technology Research and Development Member -- Director, Office of Standards and Interoperability,
Department of Health and Human Services, Office of the National Coordinator for Health Information Technology</Description></Stakeholder><Stakeholder><Name>Deborah A. Frincke</Name><Description>Subcommittee on Networking and Information Technology Research and Development Member -- Deputy Director of Research, National Security Agency</Description></Stakeholder><Stakeholder><Name>Arti Garg</Name><Description>Subcommittee on Networking and Information Technology Research and Development Member -- Program Examiner, Office of Management and Budget</Description></Stakeholder><Stakeholder><Name>Robert Gold</Name><Description>Subcommittee on Networking and Information Technology Research and Development Member -- Director, Information Systems and Cyber Security,
Office of the Secretary of Defense</Description></Stakeholder><Stakeholder><Name>Daniel A. Hitchcock</Name><Description>Subcommittee on Networking and Information Technology Research and Development Member -- Associate Director, Office of Advanced Scientific
Computing Research, Department of Energy, Office of Science</Description></Stakeholder><Stakeholder><Name>Charles J. Holland</Name><Description>Subcommittee on Networking and Information Technology Research and Development Member -- Special Programs, Microsystems Technology
Office, Defense Advanced Research Projects Agency</Description></Stakeholder><Stakeholder><Name>Douglas Maughan</Name><Description>Subcommittee on Networking and Information Technology Research and Development Member -- Division Director, Cyber Security R&amp;D,
Science and Technology Directorate,
Department of Homeland Security</Description></Stakeholder><Stakeholder><Name>Robert Meisner</Name><Description>Subcommittee on Networking and Information Technology Research and Development Member -- Director, Office of Advanced Simulation and
Computing, Department of Energy, National Nuclear Security
Administration</Description></Stakeholder><Stakeholder><Name>David Michaud</Name><Description>Subcommittee on Networking and Information Technology Research and Development Member -- Director, High Performance Computing &amp;
Communications Office, National Oceanic and Atmospheric
Administration</Description></Stakeholder><Stakeholder><Name>Kam Ng</Name><Description>Subcommittee on Networking and Information Technology Research and Development Member -- Deputy Director of Research, Office of Naval
Research, Navy</Description></Stakeholder><Stakeholder><Name>Charles H. Romine</Name><Description>Subcommittee on Networking and Information Technology Research and Development Member -- Director, Information Technology Laboratory,
National Institute of Standards and Technology</Description></Stakeholder><Stakeholder><Name>Vacant</Name><Description>Subcommittee on Networking and Information Technology Research and Development Member -- Director, Center for Bioinformatics and
Computational Biology, National Institutes of Health</Description></Stakeholder><Stakeholder><Name>Gary L. Walter</Name><Description>Subcommittee on Networking and Information Technology Research and Development Member -- Computer Scientist, Atmospheric Modeling and
Analysis Division, Environmental Protection Agency</Description></Stakeholder><Stakeholder><Name>Lt. Col. Dan Ward</Name><Description>Subcommittee on Networking and Information Technology Research and Development Member -- Chief of Acquisition Innovation, Air Force</Description></Stakeholder><Stakeholder><Name>Virginia Moore</Name><Description>Subcommittee on Networking and Information Technology Research and Development Staff -- 
Executive Secretary</Description></Stakeholder><Stakeholder><Name>U.S. Federal Government</Name><Description>The Federal Role -- 
In 1991, the legislative mandate for coordination of Federal IT R&amp;D focused on networking and highend
computing (then the two technologies deemed vital for Federal missions).29 Today, advanced
information technologies of many different kinds play essential and critical roles in every high-priority
government mission addressing the Nation&#8217;s goals and needs, and all Federal agencies rely on IT
capabilities and benefit from IT research advances.</Description></Stakeholder><Stakeholder><Name>NITRD Agencies</Name><Description>Collaboration in Support of Mission Requirements -- 
The framework for multiagency coordination of Federal IT research, continuously evolving to
encompass the widening range of technologies and application domains, has proven to be highly
effective. Collaboration among the Federal research agencies in the NITRD Program has become
an intellectual and scientific imperative imposed by the diversity, complexity, interdependencies,
and dynamism of contemporary IT environments. No single agency or disciplinary skill set can span
more than a fraction of the IT knowledge base and investigative frontiers. Through coordination,
agencies identify common mission requirements, assure focused research efforts in time-critical
R&amp;D components, and share information on addressing IT&#8217;s higher-risk, higher-payoff challenges. By
leveraging each other&#8217;s common interests, work products, and technical expertise, NITRD agencies
derive increased value and cost-effectiveness from Federal research investments and assure R&amp;D
coverage across the entire spectrum of technologies and domains.
Such combined efforts produce broadly applicable results that no one agency could attain on its own
and that propel innovation. For example, the field of telemedicine -- including two-way telepresence,
remote diagnostic and haptic devices, and robotic surgical systems -- emerged out of pioneering
collaborative investigations and proofs-of-concept primarily funded by NIH/National Library of Medicine (NLM), NSF, DoD, NASA, and the Department of Veterans Affairs (VA).</Description></Stakeholder><Stakeholder><Name>NIH</Name><Description></Description></Stakeholder><Stakeholder><Name>National Library of Medicine (NLM)</Name><Description></Description></Stakeholder><Stakeholder><Name>NSF </Name><Description></Description></Stakeholder><Stakeholder><Name>DoD </Name><Description></Description></Stakeholder><Stakeholder><Name>NASA </Name><Description></Description></Stakeholder><Stakeholder><Name>Department of Veterans Affairs (VA)</Name><Description></Description></Stakeholder><Stakeholder><Name>Federal Laboratories</Name><Description>Infrastructure for Leadership -- 
The multidisciplinary reach of Federal NITRD funding is extended through R&amp;D activities in
Federal laboratories, universities, research institutions, and partnerships with industry. These
diversified efforts engage thousands of researchers and their students in the intellectual challenges
of networking and IT and provide the principal source of education and training for the new
generations of IT researchers, inventors, entrepreneurs, and technical professionals the Nation needs.
In addition, the Program&#8217;s emphasis on coordination and collaboration across agencies and private sector institutions helps promote the transfer of research results and prototypes to Federal nonresearch
agencies and out to the marketplace.
For example, the NITRD advanced-networking agencies have collaborated with private-sector
partner Internet 2 in developing an infrastructure called perfSONAR that makes it possible, for the
first time, to automatically measure the performance of optical networks across multiple domains.
Optical networking technology is at the leading edge of next-generation networking speeds and
capacity. Accurate performance information is needed by network operators, managers, and security
enforcers to support isolating and correcting network bottlenecks and anomalies; to support
the configuration of network links in dynamic environments; and to detect, isolate, and correct
security breaches and problems. Information on network segments in each domain is needed,
requiring cooperation among the agencies and science networks maintaining these domains and
network links. As a result of NITRD efforts, the perfSONAR infrastructure is being adopted by science
networks, commercial network managers, and international science networks through cooperative
development and deployment.
NITRD coordination of advanced technological capabilities to support Federal missions also
helps define national research needs in critical technologies, such as high-end systems, advanced
networking, cyber-physical systems, and cyber security and information assurance. In addition,
the NITRD research portfolio promotes the types of multidisciplinary thinking and approaches
that are necessary to develop highly complex systems of systems with a myriad of heterogeneous
components.</Description></Stakeholder><Stakeholder><Name>Universities</Name><Description></Description></Stakeholder><Stakeholder><Name>Research Institutions </Name><Description></Description></Stakeholder><Stakeholder><Name>Industry</Name><Description></Description></Stakeholder><Stakeholder><Name>Researchers </Name><Description></Description></Stakeholder><Stakeholder><Name>Students</Name><Description></Description></Stakeholder><Stakeholder><Name>IT Researchers</Name><Description></Description></Stakeholder><Stakeholder><Name>Inventors</Name><Description></Description></Stakeholder><Stakeholder><Name>Entrepreneurs </Name><Description></Description></Stakeholder><Stakeholder><Name>Technical Professionals</Name><Description></Description></Stakeholder><Stakeholder><Name>Private Sector Institutions</Name><Description></Description></Stakeholder><Stakeholder><Name>Internet 2</Name><Description></Description></Stakeholder><Stakeholder><Name>Research Partners</Name><Description>Partnership Synergies Are Essential -- 
Since the dawn of the digital age, U.S. technological and economic innovation has been fueled by
continuing cycles of basic exploration, experimentation, prototype implementation, feedback, and
deployment of novel products. This &#8220;ecosystem&#8221; for innovation encompasses Federal researchers,
private-sector researchers and developers, students and educational institutions, entrepreneurs,
industries, and end users.
Today, such interactions are more necessary than ever, and many forms of engagement are needed
at global scales. Strengthening security in cyberspace, for example, will require international
collaboration among governments, service providers, researchers, standards organizations, law
enforcement, and other stakeholders on security architectures and protocols, crime investigation,
and identity management, among other issues. In a related area&#8212;the robustness and end-to-end
performance of the U.S. cyber infrastructure -- partnerships between government and industry in
realistic-scale testbeds, technology standards, and prototype deployments of new infrastructure
models such as clouds are essential to speed research advances in networking and network security
to the marketplace. Innovative partnerships with the open-source software development community
also should be pursued, including policy frameworks that recognize intellectual property. The
exploration initiated by NITRD agencies in recent years of open-source approaches to address the
challenges of complex and ultra-scale software should be continued and expanded.

Foundational long-term R&amp;D is required to maintain a full pipeline of scientific findings and concepts
for the future. This role is played by Federal research investments in advanced sciences, technology,
and engineering, which complement industry&#8217;s focus on bringing new products rapidly to market. The
NITRD Program&#8217;s vision for the future aligns with the strategic plans of its member agencies to pursue
such fundamental technological advances as essential means of addressing the some of Nation&#8217;s most
critical needs. The NITRD Strategic Plan recognizes, however, that the scale and complexity of 21st
century national challenges demand ongoing outreach and partnership development by the NITRD
enterprise to generate synergies in the Nation&#8217;s broader IT ecosystem that can accelerate beneficial
advances for society and the world.
The NITRD agencies look forward to working with the research community, the private sector, and IT
stakeholders everywhere to realize the future of promise described in this strategic plan.</Description></Stakeholder></Organization><Vision><Description>High-speed networks, systems, software, devices, data, and applications are fully secure, safe, reliable,
multimodal, and easy to use. This ultra-high-bandwidth infrastructure -- including both flexible,
mobile wireless and hard-wired connectivity -- is always available, ubiquitous, and can be activated
when needed; it is affordably accessible to anyone, anywhere, anytime. Information shared over the
infrastructure is completely secure; user privacy and confidentiality can be assured on demand; and
pervasive repositories provide for archiving and retrieving data in perpetuity. In the all-encompassing
dimension called cyberspace, people -- unfettered from constraints of time, circumstance, and location -- 
partner with computing devices and their capabilities to learn, imagine, discover, play, create, invent,
interact, and collaborate in real time in ways that enhance life and generate solutions for the world&#8217;s most
complex problems.</Description><Identifier>_b3dd19e4-e784-11df-a5d3-6a0c7a64ea2a</Identifier></Vision><Mission><Description>To make possible the visionary advances in science and technology that will keep the U.S. at the forefront of economic prosperity, innovation, and scientific leadership</Description><Identifier>_b3dd1b92-e784-11df-a5d3-6a0c7a64ea2a</Identifier></Mission><Value><Name>National Priorities</Name><Description>Advancing Our National Priorities --
Rapid change is often cited as the only constant in networking and IT. After all, in only a few decades,
IT systems have evolved from relatively rudimentary &#8220;dinotech&#8221; to futuristic electronic marvels that
enable people the world over to communicate, access information, and compete using a device that
fits in the palm.
In fact, there has been another constant throughout the IT revolution: U.S. leadership in the invention
of digital technologies. As a result of that leadership, IT has significantly enhanced the Nation&#8217;s
economy, quality of life, and national security. Ongoing Federal R&amp;D to provide the world&#8217;s most
advanced IT capabilities for U.S. government missions has fueled the creation of new ideas, and
innovations that have enabled the United States to address key national priorities. For example:</Description></Value><Value><Name>Prosperity</Name><Description>Economic prosperity -- new multibillion-dollar IT industries have arisen from R&amp;D
breakthroughs; communications technologies and standards make possible vibrant
e-commerce, more efficient business-to-business interactions, and improved industrial
process control systems</Description></Value><Value><Name>Quality of Life</Name><Description>Quality of life -- advances in communications standards, electronics, and the Internet have
spurred an explosion of novel social networking and web applications with millions of
participants, enabling people to collaborate effectively over great distances</Description></Value><Value><Name>National Security</Name><Description>National security and defense -- digital capabilities have transformed strategic
communications and reduced battlefield risk for military personnel</Description></Value><Value><Name>National Defense</Name><Description></Description></Value><Value><Name>Health </Name><Description>Health and health care -- IT makes possible skilled on-site medical care, in the home and at
remote locations</Description></Value><Value><Name>Health Care</Name><Description></Description></Value><Value><Name>Energy</Name><Description>Energy and environment -- sensors and high-fidelity modeling and simulation enable better
energy efficiency and weather and climate-change prediction, and speed development of
renewable energy sources</Description></Value><Value><Name>Environment</Name><Description></Description></Value><Value><Name>Education </Name><Description>Education and training -- learners of all ages now have on-demand access to vast education
and knowledge resources</Description></Value><Value><Name>Training</Name><Description></Description></Value><Value><Name>Openness</Name><Description>Open and transparent government -- rapidly growing electronic access systems are
opening government information and participation to the public and increasing efficiency in
government services</Description></Value><Value><Name>Transparency</Name><Description></Description></Value><Goal><Name>WeCompute</Name><Description>Expanded human-computer partnerships, more powerful digital tools for people, and new forms of collaboration between the two.</Description><Identifier>_b3dd1d0e-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>1</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation>WeCompute -- new understandings and technologies that expand and exploit the intellectual
and creative potential of synergy between humans -- from individuals to large-scale groups -- and
computing systems and data. Deepening this dynamic partnership will enable new levels of
intelligence, intuition, and awareness emerging as greater than the sum of the parts in the union of
cyber, human, and social capabilities. The artifacts we engineer and manufacture will increasingly
meld digital, physical, and cognitive attributes in unprecedented ways that enhance the quality of life
and extend the frontiers of discovery, innovation, and achievement.</OtherInformation><Objective><Name>Accessibility</Name><Description>Making the Digital World Accessible to Everyone</Description><Identifier>_b3dd1e76-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>1.1</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation>Making the Digital World Accessible to Everyone (A7) -- 
In the NITRD vision, the IT infrastructure of the future will be everywhere and always available,
making possible Anywhere, Anytime, Affordable Access to Anything by Anyone Authorized (A7). IT
capabilities that enable universal participation will radically democratize the IT domain, so that all
can contribute to and share in the resources and benefits of cyberspace. At the same time, groups of
individuals with similar interests (e.g., a research collaboration) can form and dissolve dynamically to
pursue their mutual interests privately and securely as needed.
Where we are now -- the global Internet points toward the future with its rapid expansion to
encompass the burgeoning technologies of wireless networking. But today&#8217;s Internet is not nearly
robust or advanced enough to satisfy the demands of a future in which devices, data, and people at
every scale are interconnected and in constant communication, not just worldwide but across outer
space. For example, most people on Earth still lack access to the Internet; even in the United States
one-third of the population currently lacks broadband Internet connectivity at home (lagging 14
other advanced nations), and a majority cites cost and lack of computer skills as key factors.9 Indeed,
access to the information riches and services of cyberspace today remains limited mainly to people
who know how to work keyboard-activated devices and have the high-speed network connectivity
required to experience bandwidth-intensive Internet applications, such as streaming video and
real-time interactivity. (The Administration has announced a National Broadband Plan; its dual aim
is to provide jobs by incentivizing companies to both extend broadband connectivity to rural and
underserved communities and increase U.S. broadband network speeds, which also lag those of
many other countries.)
Research needs -- in addition to fundamental networking research (see &#8220;Evolving and Scaling Socio-
Technical Network Infrastructure&#8221; below), enabling a more powerful, more scalable IT infrastructure
for the future will require advances across the spectrum of information technologies. For example,
power consumption must be reduced to enable ubiquitous computation.* Language barriers will
need to be eliminated through instantaneous language translation. Interoperability issues in data,
systems, and software will have to be resolved through agreement on common standards, protocols, and policy regimes; systems must be designed that can adjust to changing environments and the
needs of individual users; and substantial improvements in end-to-end performance will be required
to provide users with seamless access to resources from their own desktop, laptop, or mobile device.
R&amp;D in new materials must be pursued to produce gains in energy efficiency and miniaturization
that can continue driving down per-unit costs of IT devices and services, so the IT infrastructure can
readily expand to include new participants and uses. R&amp;D to enable specification and enforcement of
dynamic security and privacy policies tailored to individuals as well as to organizations will also be a
key underpinning of the A7 environment.
Wireless broadband access will play a central role. Radio spectrum resources are finite and are already
under tremendous demands from a large number of applications, including military, commercial,
broadcast, and mobile services. Technological and regulatory solutions to enhancing spectrum
efficiency and access can have a tremendous impact on the wireless economy and are ripe for R&amp;D
activities. In response to the Presidential Memorandum on Unleashing the Wireless Broadband
Revolution, a wireless spectrum R&amp;D group has been established under NITRD to coordinate
spectrum efficiency research across the Government.11</OtherInformation></Objective><Objective><Name>Power Consumption</Name><Description>Reduce power consumption to enable ubiquitous computation.</Description><Identifier>_b3dd206a-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>1.1.1</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation></OtherInformation></Objective><Objective><Name>Language Barriers</Name><Description>Eliminate language barriers through instantaneous language translation.</Description><Identifier>_b3dd25e2-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>1.1.2</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation></OtherInformation></Objective><Objective><Name>Interoperability</Name><Description>Resolve interoperability issues in data, systems, and software through agreement on common standards, protocols, and policy regimes</Description><Identifier>_b3dd283a-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>1.1.3</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation></OtherInformation></Objective><Objective><Name>Adjustable Systems</Name><Description>Design systems that can adjust to changing environments and the needs of individual users</Description><Identifier>_b3dd29fc-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>1.1.4</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation></OtherInformation></Objective><Objective><Name>Performance</Name><Description>Substantially improve end-to-end performance to provide users with seamless access to resources from their own desktop, laptop, or mobile device</Description><Identifier>_b3dd2d3a-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>1.1.5</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation></OtherInformation></Objective><Objective><Name>New Materials</Name><Description>Conduct R&amp;D in new materials to produce gains in energy efficiency and miniaturization that can continue driving down per-unit costs of IT devices and services, so the IT infrastructure can readily expand to include new participants and uses.</Description><Identifier>_b3dd2f7e-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>1.1.6</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation></OtherInformation></Objective><Objective><Name>Security and Privacy</Name><Description>Conduct R&amp;D to enable specification and enforcement of dynamic security and privacy policies tailored to individuals as well as to organizations.</Description><Identifier>_b3dd3154-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>1.1.7</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation></OtherInformation></Objective><Objective><Name>Acceleration</Name><Description>Accelerating the Future of Computing</Description><Identifier>_b3dd34a6-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>1.2</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation>Accelerating the Future of Computing -- 
Historically, the United States has pioneered advances in high-performance computing (called
high-end computing [HEC] in the NITRD Program). The HEC technical area encompasses all of the
challenges of leading this advancement, including not just better (e.g., massively scaled-up, more
efficient and resilient) system hardware and software, but also more efficient provisioning models
(e.g., surge and cloud computing), improved mathematical and computer science underpinnings
for analysis, modeling, and visualization of multi-scale and ultra-scale data, and new programming
environments and tools for easier development and usability of advanced scientific applications.
Where we are now -- the most powerful Federal leadership systems have achieved petascale speeds
(1,000 trillion floating-point calculations [flops] per second) and are expected to reach the exascale (a
quintillion flops, or 1018). At the same time, however, our current means of reaching these everhigher
computational speeds -- packing multiple processors into every computer chip -- is creating
a crisis in our ability to program system and application software to efficiently exploit the emerging
multi-core and heterogeneous computing architectures. Moreover, as the number of cores and
components rises, the likelihood diminishes of correctly completing data-intensive computations
of increasing scale and complexity. In addition, the cost to power large HPC facilities is growing
unsustainably rapidly.
Research needs -- the massive parallelism necessary to enable software to fully exploit the speeds
and computational capabilities of supercomputing systems with heterogeneous components and
up to millions of microprocessors presents enormous challenges for both system and application
designers. Developing robust code that can be partitioned into many parallel subroutines for efficient
multi-core processing and then reintegrating the results as final output, require breakthrough
advances in the underlying mathematics, design, and engineering of HEC software. The goal of
making HEC environments easier to use and more productive, reducing time to solution, remains
elusive; even at today&#8217;s levels of system complexity, down time due to software issues is rising as a proportion of total operational costs. One promising R&amp;D avenue is resilience -- concepts and
technologies enabling a HEC system to continue to function amid software faults, anomalies, and
errors, and to alert operators about problems without necessitating a shutdown.
Also critical to the long-term future of supercomputing is research in technological approaches
to reduce the steadily rising energy demands of large-scale HEC systems and facilities, which
typically consume many megawatts per year for operations and cooling. Because advances to
change this unsustainable energy-use trajectory may arise from multiple research fields, the search
for scientific breakthroughs must be pursued across the board: in power management and heat
dissipation technologies; new materials such as nanoscale composites; novel power-saving platform
and system architectures; computational technologies and methods such as spin-based logic
and cloud computing; and next-generation computing concepts such as quantum information
science. Advances in nano, biological, and quantum sciences also may lead the way to radically
different system architectures and computational methods, providing the basis for next-generation
computing at all scales.</OtherInformation></Objective><Objective><Name>Parallel Processing</Name><Description>Develop robust code that can be partitioned into many parallel subroutines for efficient multicore/many-core processing and reintegration of the results.</Description><Identifier>_b3dd36ea-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>1.2.1</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation></OtherInformation></Objective><Objective><Name>Productivity</Name><Description>Make HEC environments easier to use and more productive, reducing time to solution as well as down time due to software issues as a proportion of total operational costs.</Description><Identifier>_b3dd3906-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>1.2.2</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation>One promising R&amp;D avenue is resilience &#8211; concepts and technologies enabling a HEC system to continue to function amid software faults, anomalies, and errors, and to alert operators about problems without necessitating a shutdown.</OtherInformation></Objective><Objective><Name>HEC Energy Demands</Name><Description>Reduce the steadily rising energy demands of large-scale HEC systems and facilities, which typically consume many megawatts per year for operations and cooling.</Description><Identifier>_b3dd3c94-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>1.2.3</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation>Because advances to change this unsustainable energy-use trajectory may arise from multiple research fields, the search for scientific breakthroughs must be pursued across the board, in power management and heat dissipation technologies, new materials such as nanoscale composites, novel power-saving platform and system architectures, computing technologies (e.g., nonvolatile computing), and computational methods (e.g., spintronics, analog computing), as well as in next-generation computing concepts such as quantum information science. Advances in nano, biological, and quantum sciences also may lead the way to radically different system architectures and computational methods, providing the basis for next-generation leadership in computing at all scales.</OtherInformation></Objective><Objective><Name>Network Infrastructure</Name><Description>Evolving and Scaling Socio-Technical Network Infrastructure</Description><Identifier>_b3dd3f0a-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>1.3</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation>Evolving and Scaling Socio-Technical Network Infrastructure -- 
Network connectivity, beginning at the computing platform or device and radiating outward through
local-area networks connecting to wide-area networks connecting to the Internet&#8217;s network of
networks, creates the wired and wireless communications fabric that makes a digital world possible.
Over the last four decades, Federal investments in basic network research have led the way to the
Internet, the World Wide Web, wireless mobile and optical networking, and an array of network-based
applications that are reshaping societies and economies around the globe.
Where we are now -- advanced computer networks provide the infrastructure for transporting,
developing, archiving, accessing, and using the huge volumes of data that support critical functions
in every sector, such as storage and nearly instantaneous interchange of data in the financial markets.
Scientific experiments such as the Large Hadron Collider (LHC) at CERN distribute petabytes of data
to thousands of scientists around the world who are seeking to uncover the fundamental nature of
matter and the &#8220;dark energy&#8221; that dominates the universe.  Dynamic, heterogeneous, secure, and
reliable networks are also critical to the Department of Defense&#8217;s (DoD&#8217;s) ability to defeat adversaries,
to Department of Homeland Securities&#8217; (DHS&#8217;s) ability to respond to natural disasters and terrorism,
and to Federal efforts to improve health care for all.
Like the LHC, a growing number of scientific applications require very large bandwidths to support
massive data transfers and the need for near-real-time coordination and data transmission protocols
tailored to the data requirements. Other such applications include Earth system modeling supported
by the Earth Systems Grid (ESG); computational genomics; and Very Long Baseline Interferometry
(VLBI), a radio astronomy application enabling simultaneous observations of an object by many
telescopes combined, emulating a telescope with a size equal to the maximum separation between
the telescopes.
Current high-performance networking (including science networks) does not generally support
these demanding requirements; the current approach is to provide dedicated point-to-point network links and services among the key researchers (or to have researchers move to sites where adequate
networking is available). Today, such services lie mostly outside the science networking provided
to the larger research community and are implemented outside the university science networking
infrastructure.
Research needs -- the network infrastructure of the 21st century must be robust enough to meet very
diverse demands, including network services supporting A7; exponential increases in data volumes
and changes in how people access data (e.g., data in the network); ultra-reliable, secure networking
(e.g., for national security and the commercial and banking sectors); new networking technologies that
scale (e.g., all-optical networking) to provide the end-to-end bandwidth, performance, and services
required for data-intensive science; and heterogeneous networking (e.g., wireless, optical networking,
satellite communications, and others). The following are core areas of networking R&amp;D in which
advances are needed:
* Foundations -- architectural principles, frameworks, and network models to deal with
complexity; heterogeneity; multi-domain federation, management, and transparency; endto-
end performance; and differentiated services
* Design -- secure, near-real-time, flexible, adaptive services with built-in intelligence to
facilitate discovery, federation, and management of resources across domains and to increase
the application robustness and resistance to attack even in extraordinarily complex systems
and new ways of interconnecting networks to provide those services
* Management -- management methods and tools that incorporate intelligence in the
network to enable effective deployment, control, and utilization of complex networks and
resources in dynamic environments, across domains, and with ever-increasing network and
application complexity
* Privacy and Security -- achievement of a high degree of security even in complex,
heterogeneous federation and policy environments, especially in the face of component
failures, untrusted components, malicious activities, and attacks, while also respecting
privacy and maintaining usability, (e.g., provide scalable federated policies for authentication,
authorization and accountancy)
* Usability -- adaptable, user-centered services and interfaces that promote efficiency,
effectiveness, and fulfillment of user needs without overwhelming users with unnecessary or
unauthorized data
This agenda must be pursued across the spectrum from fundamental to applied research and with
engagement of all sectors to attain widely deployable innovations. Necessary elements include:
* Basic and applied research in the full range of network architectures, theoretical models,
analysis techniques, hardware, software, security and privacy, and middleware needed
to support the next generation of uses for networks and explore new paths to develop
capabilities that cannot be supported on the current evolutionary path
* Partnerships with application developers, users, and stakeholders to test basic research ideas
on real problems in areas including national security, support of scientific leadership, and
human health
* A suite of prototype networks and testbeds that enable understanding and creation of
new technologies, data systems, and improvements in end-to-end performance at varying
scales. The massive size of existing deployed networks such as the Internet limits R&amp;D, while
laboratory and simulation studies cannot address some aspects of the solutions, particularly
complexity, their ability to scale, and their potential realism.
Research, partnerships, and prototype networks and testbeds are closely interrelated. The latter are
needed to test and develop new networking capabilities in realistic environments, to assure they
can be implemented technically and economically, and to explore policy frameworks. Partnerships
between the researchers and the application developers will help assure that R&amp;D capabilities can be
implemented in real networks and that other application resources such as computing and storage
are provided.</OtherInformation></Objective><Objective><Name>Network Infrastructure</Name><Description>Make the network infrastructure of the 21st century robust enough to meet very diverse demands.</Description><Identifier>_b3dd413a-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>1.3.1</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation>[Such demands include] network services supporting A7; exponential increases in data volumes and changes in how people access data (e.g., data in the network); ultra-reliable, secure networking (e.g., for national security and the commercial and banking sectors); new networking technologies that scale (e.g., all-optical networking) to provide the end-to-end bandwidth, performance, and services required for data-intensive science; and heterogeneous networking (e.g., wireless, optical networking, satellite communications, and others).</OtherInformation></Objective><Objective><Name>Core Areas</Name><Description>Make advances in core areas of networking R&amp;D.</Description><Identifier>_b3dd4522-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>1.3.1.1</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation></OtherInformation></Objective><Objective><Name>Foundations</Name><Description>Architectural principles, frameworks, and network models to deal with complexity; heterogeneity; multi-domain federation, management, and transparency; end-to-end performance; and differentiated services.</Description><Identifier>_b3dd486a-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>1.3.1.1.1</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation></OtherInformation></Objective><Objective><Name>Design</Name><Description>Secure, near-real-time, flexible, adaptive services with built-in intelligence to facilitate discovery, federation, and management of resources across domains and to increase the application robustness and resistance to attack even in extraordinarily complex systems and new ways of interconnecting networks to provide those services.</Description><Identifier>_b3dd4b12-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>1.3.1.1.2</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation></OtherInformation></Objective><Objective><Name>Management</Name><Description>Management methods and tools that incorporate intelligence in the network to enable effective deployment, control, and utilization of complex networks and resources in dynamic environments, across domains, and with ever-increasing network and application complexity.</Description><Identifier>_b3dd4f22-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>1.3.1.1.3</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation></OtherInformation></Objective><Objective><Name>Privacy and Security</Name><Description>Achievement of a high degree of security even in complex, heterogeneous federation and policy environments, especially in the face of component failures, untrusted components, malicious activities, and attacks, while also respecting privacy and maintaining usability, e.g., provide scalable federated policies for authentication, authorization and accountancy.</Description><Identifier>_b3dd5224-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>1.3.1.1.4</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation></OtherInformation></Objective><Objective><Name>Research Spectrum</Name><Description>Pursue this agenda across the spectrum from fundamental to applied research and with engagement of all sectors to attain widely deployable innovations.</Description><Identifier>_b3dd54ea-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>1.3.1.2</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation></OtherInformation></Objective><Objective><Name>Basic and Applied Research</Name><Description>[Conduct] basic and applied research in the full range of network architectures, theoretical models, analysis techniques, hardware, software, security and privacy, and middleware needed to support the next generation of uses for networks and explore new paths to develop capabilities that cannot be supported on the current evolutionary path.</Description><Identifier>_b3dd5922-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>1.3.1.2.1</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation></OtherInformation></Objective><Objective><Name>Partnerships</Name><Description>[Enter into] pPartnerships with application developers, users, and stakeholders to test basic research ideas on real problems in areas including national security, support of scientific leadership, and human health.</Description><Identifier>_b3dd5c42-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>1.3.1.2.2</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation></OtherInformation></Objective><Objective><Name>Testbeds and Prototype Networks</Name><Description>[Develop] a suite of testbeds and prototype networks that enable understanding and creation of new technologies, data systems, and improvements in end-to-end performance at varying scales.</Description><Identifier>_b3dd5f08-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>1.3.1.2.3</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation>The massive size of existing deployed networks such as the Internet limits research and development, while laboratory and simulation studies cannot address some aspects of the solutions, particularly complexity, their ability to scale, and their potential realism. The testbeds and prototypes will range from high-flexibility/low-cost platforms to high performance embedded systems. Research, partnerships, and testbeds and prototype networks are closely interrelated. Testbeds and prototypes are needed to test and develop new networking capabilities in realistic environments, to assure they can be implemented technically and economically, and to explore policy frameworks. Partnerships between the researchers and the application developers will help assure that R&amp;D capabilities can be implemented in real networks and that other application resources such as computing and storage are provided.</OtherInformation></Objective><Objective><Name>Smart Planet</Name><Description>Creating the Smart Planet</Description><Identifier>_b3dd634a-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>1.4</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation>Creating the Smart Planet -- 
A smarter world will be one in which all kinds of objects, devices, and large-scale physical systems
are interconnected, compute-empowered, and instrumented to perform tasks with, on behalf
of, and in the best interest of people. This infrastructure will also enable people to collaborate in
real time, dynamically creating short-term ad hoc networks linking them to devices, data, and
information, computing platforms, and applications as needed. Some components of the smart
planet infrastructure will be stand-alone robotic systems designed to perform tasks autonomously;
others will be what are now called cyber-physical systems. These are networked computing
systems -- interconnected software, microprocessors, sensors, and actuators -- deeply integrated
within engineered physical systems to monitor and control capabilities and behaviors of the physical
system as a whole. Such systems are already essential to the effective operation of U.S. defense and
intelligence systems and critical infrastructures, industrial-process control systems, and other largescale
civilian systems, as well as to smaller-scale applications in cars and medical devices. Demand for
and uses of cyber-physical systems are growing worldwide.
Where we are now -- computing was once a minimal component of engineered systems, and
systems were designed to be operated separately and in benign or controlled environments. Now
the &#8220;cyber&#8221; aspects of engineered systems and products are becoming the very key to making these
systems more capable. And the need for deployment is increasingly in situations where systems must
be designed to interact and cooperate, often with high degrees of autonomy. This is illustrated in
the rapidly growing demand for increased capability in transportation, manufacturing, agriculture
and mining, and medical diagnosis and therapies. Society benefits when surgery can become less
invasive, reducing recovery times. Advances in computer-controlled robotic and laser surgery (such
as those enabled by the da Vinci&#174; medical robotic system) are in this direction. The U.S. industrial
economy has depended upon the productivity of its workforce -- enabled by its technological
capability -- for relative U.S. strength in industrial sectors worldwide. That lead has declined as other
nations have rapidly joined the technology race and have sought to produce ever-more sophisticated
products and systems.
Research needs -- a new systems science is needed to provide unified foundations, models and tools,
system capabilities, and architectures that enable innovation in highly dependable cyber-enabled
engineered and natural systems. Better understanding of system complexity is also necessary in this
research area to aid in improved management and decision support. Specific technical areas for
emphasis include:
* Unifying foundations for modeling, predicting, and controlling systems that exhibit
combined cyber (logical/discrete/digital) and physical (continuous/analog) system behaviors
* New approaches for supervisory control of systems that must interact on an ad hoc basis
* Scientific and engineering principles, metrics, and standards that integrate the disciplines of
real-time embedded systems, control, communications/networking, security, and humanmachine
interaction
* Technology to close the design and productivity gap between modeling, programming, and
runtime execution of cyber-physical systems
* Principles for reasoning about and actively managing properties of complex, multiscale,
real-time cyber-physical system interactions, including safety, security, reliability, and
performance
* Design methods and systems technology for autonomy, human interaction, and
management of control authority
* Open systems approaches for composition, integration, and coordination of cyber-physical
systems</OtherInformation></Objective><Objective><Name>Systems Science</Name><Description>[Develop] a new systems science is needed to provide unified foundations, models and tools, system capabilities, and architectures that enable innovation in highly dependable cyber-enabled engineered and natural systems.</Description><Identifier>_b3dd6692-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>1.4.1</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation></OtherInformation></Objective><Objective><Name>Management and Decision Support</Name><Description>[Achieve] better understanding of system complexity to aid in improved management and decision support.</Description><Identifier>_b3dd69bc-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>1.4.2</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation></OtherInformation></Objective><Objective><Name>Areas of Emphasis</Name><Description>Emphasize specific technical areas.</Description><Identifier>_b3dd6ebc-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>1.4.3</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation></OtherInformation></Objective><Objective><Name>Foundations</Name><Description>Unifying foundations for modeling, predicting, and controlling systems that exhibit combined cyber (logical/discrete/digital) and physical (continuous/analog) system behaviors</Description><Identifier>_b3dd7254-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>1.4.3.1</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation></OtherInformation></Objective><Objective><Name>Supervisory Control</Name><Description>New approaches for supervisory control of systems that must interact on an ad hoc basis</Description><Identifier>_b3dd7592-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>1.4.3.2</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation></OtherInformation></Objective><Objective><Name>Principles, Metrics, and Standards</Name><Description>Scientific and engineering principles, metrics, and standards that integrate the disciplines of real-time embedded systems, control, communications/networking, security, human-machine interaction</Description><Identifier>_b3dd7a60-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>1.4.3.3</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation></OtherInformation></Objective><Objective><Name>Design and Productivity Gap</Name><Description>Technology to close the design and productivity gap between modeling, programming, and runtime execution of cyber-physical systems</Description><Identifier>_b3dd7e2a-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>1.4.3.4</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation></OtherInformation></Objective><Objective><Name>Reasoning and Management</Name><Description>Principles for reasoning about and actively managing properties of complex, multiscale, realtime cyber-physical system interactions, including: safety, security, reliability, performance</Description><Identifier>_b3dd8172-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>1.4.3.5</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation></OtherInformation></Objective><Objective><Name>Autonomy, Human Interaction, and Authority</Name><Description>Design methods and systems technology for autonomy, human interaction, and management of control authority</Description><Identifier>_b3dd862c-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>1.4.3.6</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation></OtherInformation></Objective><Objective><Name>Open Systems</Name><Description>Open systems approaches for composition, integration, and coordination of cyber-physical systems</Description><Identifier>_b3dd8a00-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>1.4.3.7</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation></OtherInformation></Objective><Objective><Name>Software</Name><Description>Engineering Complex and Sophisticated Software</Description><Identifier>_b3dd8d66-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>1.5</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation>Engineering Complex and Sophisticated Software -- 
Like networking technologies, software makes the digital world possible, directing the functioning of
computers and devices and providing the electronic instructions for the applications of computing
that shape our lives. For example, NASA spaceflight software controls a preponderance of overall
system functionality. A complex software system can be defined as a system comprising interacting
&#8220;simple&#8221; software modules that, working together, exhibit a high degree of complexity resulting in
a higher-order behavior. The more complex the software system is, however, the greater the chance
for unpredictable emergent behavior, which increases the risk of system failure with potentially
significant impacts to the businesses, services, equipment, or users depending on the systems.
Where we are now -- critical U.S. defense, security, health care, and economic capabilities depend
on complex software-based systems that must remain operational, useful, and relevant for decades.
Today&#8217;s software design and development tools and practices can make any of these goals difficult to
achieve. For example, consider keeping software relevant for decades -- the requirements originally
used to design the software often change multiple times during the development phase, then
many more times during the continued use of the software system. How can the need to keep the
software relevant and useful be balanced with the need for software that is well defined, tested, and
meets evolving operational requirements? The persistent and widening gap between the quality of hardware and that of software continues to burden systems development and broader efforts to
innovate in networking and information technologies.
Research needs the tradition of incremental changes in software development provides an
inadequate basis to address the complexity of contemporary critical systems. Improving the quality,
cost-effectiveness, and sustainability of this software constitutes a core technical challenge that
requires breakthrough innovations, ranging from the fundamental science and engineering of
software to the application level. Research is needed to rethink software design -- from the basic
concepts of design, evolution, and adaptation, to advanced systems that seamlessly integrate human
and computational capabilities. New practices, technologies, tools, and measurement methods
are required that can reduce the errors, defects, and vulnerabilities that occur during software
development. Specific research topics include:
* Foundational principles for software design
* Formalized science-based software architectures and design methods
* Tools and principles to build, maintain, and expand ultra-large-scale software systems
* Programming languages, tools, and practices for modeling, designing, developing, testing,
and validating software
* Tools and practices for improving the interoperability and usability of software applications
* Repositories of software design and development knowledge and reference software
* Improved software assurance that reduces or eliminates software defects, weaknesses, and
vulnerabilities through improvements in automated test methods, measurement methods,
technology and tools, and guidance and standards for development of trustworthy systems
* Parallel programming languages, compilers, operating systems, environments, and models
* Software for computation- and data-intensive applications
* Software effectiveness metrics
* Highly user-friendly and interactive software systems</OtherInformation></Objective><Objective><Name>Critical Systems</Name><Description>Improve the quality and cost-effectiveness of critical systems software.</Description><Identifier>_b3dd9248-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>1.5.1</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation>The tradition of incremental changes in software development provides an inadequate basis to address the complexity of contemporary critical systems. [This] constitutes a core technical challenge that requires breakthrough innovations, ranging from the fundamental science and engineering of software to the application level.</OtherInformation></Objective><Objective><Name>Software Design</Name><Description>Rethink software design &#8211; from the basic concepts of design, evolution, and adaptation to advanced systems that seamlessly integrate human and computational capabilities.</Description><Identifier>_b3dd96c6-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>1.5.2</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation></OtherInformation></Objective><Objective><Name>Practices, Technologies, Tools, and Measurements</Name><Description>[Develop] new practices, technologies, tools, and measurement methods are required that can reduce the errors, defects, and vulnerabilities that occur during software development.</Description><Identifier>_b3dd9a68-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>1.5.3</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation></OtherInformation></Objective><Objective><Name>Foundational Principles</Name><Description>Foundational principles for software design</Description><Identifier>_b3dd9f7c-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>1.5.3.1</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation></OtherInformation></Objective><Objective><Name>Architectures and Methods</Name><Description>Formalized science-based software architectures and design methods</Description><Identifier>_b3dda3b4-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>1.5.3.2</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation></OtherInformation></Objective><Objective><Name>Ultra-Large Systems</Name><Description>Tools and principles to build, maintain, and expand ultra-large-scale software systems</Description><Identifier>_b3dda79c-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>1.5.3.3</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation></OtherInformation></Objective><Objective><Name>Programming</Name><Description>Programming languages, tools, and practices for modeling, designing, developing, testing, and validating software</Description><Identifier>_b3ddace2-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>1.5.3.4</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation></OtherInformation></Objective><Objective><Name>Interoperability and Usability</Name><Description>Tools and practices for improving the interoperability and usability of software applications</Description><Identifier>_b3ddb106-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>1.5.3.5</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation></OtherInformation></Objective><Objective><Name>Repositories</Name><Description>Repositories of software design and development knowledge and reference software</Description><Identifier>_b3ddb4da-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>1.5.3.6</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation></OtherInformation></Objective><Objective><Name>Software Assurance</Name><Description>Improved software assurance that reduces or eliminates software defects, weaknesses, and vulnerabilities through improvements in automated test methods, measurement methods, technology and tools, and guidance and standards for development of trustworthy systems</Description><Identifier>_b3ddba02-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>1.5.3.7</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation></OtherInformation></Objective><Objective><Name>Parallel Programming</Name><Description>Parallel programming languages, compilers, operating systems, environments, and models</Description><Identifier>_b3ddbe8a-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>1.5.3.8</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation></OtherInformation></Objective><Objective><Name>Intensive Applications</Name><Description>Software for computation- and data-intensive applications</Description><Identifier>_b3ddc24a-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>1.5.3.9</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation></OtherInformation></Objective><Objective><Name>Metrics</Name><Description>Software effectiveness metrics</Description><Identifier>_b3ddc77c-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>1.5.3.10</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation></OtherInformation></Objective><Objective><Name>User-Friendliness and Interactivity</Name><Description>Highly user-friendly and interactive software systems</Description><Identifier>_b3ddcbbe-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>1.5.3.11</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation></OtherInformation></Objective><Objective><Name>Knowledge</Name><Description>From Data to New Knowledge</Description><Identifier>_b3ddcfb0-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>1.6</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation>From Data to New Knowledge -- 
Most of the world&#8217;s information is now &#8220;born digital,&#8221; and legacy texts, images, sounds, videos, and
films as well are being digitized around the clock. Although statistical estimates vary, they agree that
the amount of digital data generated annually is many orders of magnitude greater than the total
amount of information in all the books ever written, and the total is expected to continue growing
exponentially. In the advanced sciences alone, the proliferation of ultra-powerful and distributed
data-collection instruments and experimental facilities has turned the conduct of leading-edge
research into a global-scale, data-intensive enterprise. The Federal agencies in the NITRD Program
together generate exabytes of research data annually. Financial, commercial, communications, and
Web-based enterprises likewise continually generate vast amounts of new digital information.
Where we are now -- today, our capacity to create electronic data is outpacing advances in the
technologies needed to manage and make effective use of society&#8217;s data resources. Ultra-large-scale
data sets -- what scientists refer to as &#8220;big data&#8221; -- are troves of potential new knowledge, but as noted
above, the current networking infrastructure does not provide levels of end-to-end performance
that would enable individuals and groups to access and work with big data on their desktops.
While the plummeting cost of mass storage eases the stress of archiving massive data resources,
we also do not yet know how to design scalable technologies&#8212;such as semantic frameworks and
open ontologies&#8212;that would substantially advance capabilities for rapidly identifying, integrating,
refining, analyzing, and visualizing heterogeneous and ultra-scale information in ways that
would help people learn, think, and decide. Nor do we yet have a rationalized, robust information
infrastructure for the long-term preservation, curation, federation, sustainability, accessibility,
and survivability of vital Federal electronic records and data collections, such as those overseen
by the National Archives and Records Administration (NARA). &#8220;Harnessing the Power of Digital
Data for Science and Society,&#8221; the 2009 report of the Interagency Working Group on Digital Data
(which includes many NITRD agencies), has proposed an initial framework for developing such an
infrastructure.
Research needs -- we need far more powerful and nuanced tools than exist today to mine data troves
deeply, and to combine and visualize diverse forms of data, in order to &#8220;see&#8221; the significant items,
patterns, and relationships that could lead to new insights. To support complex human, societal,
and organizational ideas, analysis, and timely action and decision-making, multisource forms of
large-scale, raw digital information (e.g., sensor data) must be managed, assimilated, and accessible
in formats responsive to the user&#8217;s needs and expertise. At the extreme scale represented by 21st
century scientific and other data, significant R&amp;D challenges in applying information to enhance
discovery and decision-making remain to be addressed, including:
* Information standards&#8212;data interoperability and integration of distributed data;
generalizable ontologies; data format description language (DFDL) for electronic records
and data; data structure research for complex digital objects; interoperability standards for
semantically understood ubiquitous health information records; and information services for
cloud-based systems
* Decision support -- next-generation machine learning, semantic logic, and data mining
algorithms; portals and frameworks for data and processes; tools for large-scale collaboration;
user-oriented and collaborative techniques and tools for thematic discovery, synthesis, data
provenance, analysis, and visualization for decision making; mobile, distributed information
for emergency personnel; management of human responses to data; collaborative
information triage; portfolio analysis; development of data corpora for impact assessment
and other metrics of scientific R&amp;D; and multidisciplinary R&amp;D in ways to convert data into
knowledge and discovery
* Information management -- intelligent rule-based data management; increasing access to
and cost-effective integration and maintenance of complex collections of heterogeneous
data; innovative architectures for data-intensive and power-aware computing; scalable
technologies; integration of policies (differential sensitivity, security, user authentication) with data; integrated data repositories and computing grids; testbeds; sustainability and
validation of complex models; and grid-enabled visualization for petascale collections</OtherInformation></Objective><Objective><Name>Social Intelligence</Name><Description>Pioneering Socially Intelligent Systems</Description><Identifier>_b3ddd4ec-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>1.7</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation>Pioneering Socially Intelligent Systems -- 
Emerging types of collaboration, communication, and cooperation -- from open source software
development, crowdsourcing, and clickworking -- illustrate the potential for a new form of &#8220;social
intelligence&#8221; that melds human and computer abilities. Socially intelligent systems can range in scale
from one person and one machine to many people and many machines distributed over the globe.
WeCompute envisions enhanced environments and tools for large-scale collaborative problemsolving
in which the intelligence of large numbers of people, operating in real-time computational
environments, can accelerate solutions to the most complex problems by simultaneously
letting humans do what they do best (e.g., deriving meanings from sensory inputs, synthesizing
disparate experiences, drawing inferences) and machines do what they do best (e.g., fast, complex
computation). Such environments would include the far more powerful analytical tools described
above to enable people to make effective decisions.
The &#8220;intelligence&#8221; exhibited in these systems will mimic human capability to reason, perceive the
environment, and collaborate with humans and other machines. An intelligent system will learn
from all past experience and adapt over time as well as understand people&#8217;s cognitive and social
abilities. The &#8220;social&#8221; aspects of the system will result from optimizing human actions, interactions,
knowledge, and skills in relation to overall goals. Socially intelligent systems may be designed to act
autonomously so that humans can remain &#8220;out of the loop,&#8221; as in dynamic allocation of bandwidth or
recovery of transportation systems during emergencies. But human-computer partnerships, allowing
for new forms of complementary engagement, may be the most effective of all.
Where we are now -- online commerce and communication have been revolutionized through
innovations such as micro-blogging, security, video, recommender and reputation systems, and
science has been advanced through cyber-enabled discovery and virtual organizations. Even so,
today&#8217;s systems are merely suggestive of the powerful versions of social intelligence that may be
developed in the future. The goal is to advance knowledge at the frontiers of computationally
mediated human-machine interactions that would reframe the meaning of intelligence.
Research needs -- new findings about how the mind perceives, evaluates, categorizes, synthesizes,
analyzes, retains, and makes decisions about inputs -- both internal and from the outside world -- will
provide researchers with models for engineering intelligence into the capabilities of networking and
computing technologies. Research needs to focus on computers as intelligent participants whose
perception, computational capabilities, and learning may be unique and able to scale at rates difficult
for humans to grasp. At the same time, we also need a better understanding of how people best
coordinate, collaborate, and participate in collective action at such large scales and in real time. One
goal is to better understand the types of problems that are best suited for these types of humancomputer
partnerships. Key areas of research include: machine learning and artificial intelligence;
immersive environments and 4-D touch displays; understanding, modeling, and managing complex
systems; computational photography; graphics and visualization; social and humanoid robotics;
speech recognition, natural language understanding and dialogue systems; and mechanization of
economic theories (e.g., n-way kidney exchanges).
Some research questions to be answered: What is the nature of this collective intelligence? Can we
build computational models of political discourse to better understand each other&#8217;s point of view and
resolve disputes? Can a distributed collection of machines and people learn to collect data, analyze
them, and ask good research questions, ultimately changing the way science is conducted? How
do we best understand the human capabilities that outperform computers and then harness those
assets in new human-computer partnerships? How are value systems (i.e., cultural, ethical, legal, etc.)
embedded in algorithms and collective enterprises and how should they be evaluated? What new
design techniques and methods would result in a broad array of behaviors and achievements that
could effectively address current social issues (e.g., emergency response)? How can human needs and
values be strengthened through socially intelligent systems? What new theories could explain the
behaviors of these complex, dynamic systems?</OtherInformation></Objective><Objective><Name>Computers as Participants</Name><Description>Focus on computers as intelligent participants whose perception, computational capabilities, and learning may be unique and able to scale at rates difficult for humans to grasp.</Description><Identifier>_b3ddd974-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>1.7.1</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation></OtherInformation></Objective><Objective><Name>Coordination, Collaboration, and Participation</Name><Description>[Develop] a better understanding of how people best coordinate, collaborate, and participate in collective action at such large scales and in real time.</Description><Identifier>_b3ddddc0-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>1.7.1.1</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation></OtherInformation></Objective><Objective><Name>Human-Computer Partnerships</Name><Description>[Develop a] better understand[ing of] the types of problems that are best suited for these types of human-computer partnerships.</Description><Identifier>_b3dde3ce-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>1.7.1.2</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation></OtherInformation></Objective><Objective><Name>Key Research</Name><Description>[Focus on] key areas of research.</Description><Identifier>_b3dde888-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>1.7.1.3</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation>Some research questions include: What is the nature of this collective intelligence? Can we build computational models of political discourse to better understand each other&#8217;s point of view and resolve disputes? Can a distributed collection of machines and people learn to collect data, analyze them, and ask good research questions, ultimately changing the way science is conducted? How do we best understand the human capabilities that outperform computers and then harness those assets in new humancomputer partnerships? How are value systems (i.e., cultural, ethical, legal, etc.) embedded in algorithms and collective enterprises and how should they be evaluated? What new design techniques and methods would result in a broad array of behaviors and achievements that could effectively address current social issues (e.g., emergency response)? How can human needs and values be strengthened through socially intelligent systems? What new theories could explain the behaviors of these complex, dynamic systems?</OtherInformation></Objective><Objective><Name>Machine Learning and AI</Name><Description>[Conduct research on] machine learning and artificial intelligence</Description><Identifier>_b3ddecde-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>1.7.1.3.1</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation></OtherInformation></Objective><Objective><Name>Immersion and 4-D Displays</Name><Description>[Conduct research on] immersive environments and 4-D touch displays</Description><Identifier>_b3ddf2d8-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>1.7.1.3.2</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation></OtherInformation></Objective><Objective><Name>Complex Systems</Name><Description>[Conduct research on] understanding, modeling, and managing complex systems</Description><Identifier>_b3ddf7b0-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>1.7.1.3.3</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation></OtherInformation></Objective><Objective><Name>Computational Photography</Name><Description>[Conduct research on] computational photography</Description><Identifier>_b3ddfc24-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>1.7.1.3.4</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation></OtherInformation></Objective><Objective><Name>Graphics and Visualization</Name><Description>[Conduct research on] graphics and visualization</Description><Identifier>_b3de021e-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>1.7.1.3.5</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation></OtherInformation></Objective><Objective><Name>Robotics</Name><Description>[Conduct research on] social and humanoid robotics</Description><Identifier>_b3de0714-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>1.7.1.3.6</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation></OtherInformation></Objective><Objective><Name>Speech Recognition, Natural Language, and Dialogue</Name><Description>[Conduct research on] speech recognition, natural language understanding and dialogue systems</Description><Identifier>_b3de0c00-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>1.7.1.3.7</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation></OtherInformation></Objective><Objective><Name>Mechanization of Economic Theories</Name><Description>[Conduct research on] mechanization of economic theories (e.g., n-way kidney exchanges)</Description><Identifier>_b3de1240-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>1.7.1.3.8</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation></OtherInformation></Objective></Goal><Goal><Name>Trust &amp; Confidence</Name><Description>The ability to design and build systems with levels of security, safety, privacy, reliability, predictability, and dependability that &#8220;you can bet your life on.&#8221;</Description><Identifier>_b3de175e-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>2</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation>Trust and Confidence -- 
A screen freeze may be a trivial inconvenience, but the consequences of more serious IT flaws -- such
as a digitally controlled diagnostic system whose malfunctioning delivers lethal doses of radiation,
trains that have a fatal head-on collision due to a software error, or the theft of sensitive information
over the Internet -- undermine society&#8217;s trust in the efficacy of IT as the basic infrastructure of
the digital age. The perspective of the NITRD agencies is that one of the most significant tests of
technological leadership in the years ahead will be the ability to engineer and build IT systems that
inspire high levels of confidence because they function as intended&#8212;safely, securely, reliably, and
cost-effectively. Fundamental research to ensure that digital networks, systems, devices, applications,
and communications processes earn and deserve the trust and confidence of society thus constitutes
an essential foundation for the Nation&#8217;s future. Since technology is only half of the equation, this
work should include a robust interdisciplinary R&amp;D agenda in the behavioral, ethical, legal, and
societal aspects of achieving trust and confidence -- for example, how to make systems much more
user-friendly, so it is easy for users to &#8220;do the right thing&#8221; in engaging security and privacy-protection
features. Following are the key elements of this vision and the major research challenges to be met in
each.</OtherInformation><Objective><Name>Trustworthiness</Name><Description>Making the Digital World More Trustworthy</Description><Identifier>_b3de1c04-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>2.1</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation>Making the Digital World More Trustworthy -- 
The necessity for trust and confidence spans far more than the interconnected networks, systems,
and software of the Internet and the information residing in those systems. It encompasses the
networked computing systems that are deeply integrated within complex life- and safety-critical
physical structures such as power grids, buildings, airplanes and spacecraft, ground transportation,
and medical devices; and it includes stand-alone computing systems that also perform critical tasks
on which human life, safety, and security depend.
Where we are now -- over the past decade, we have become increasingly aware as a society of the
vulnerabilities associated with our IT systems and infrastructure. The reality is that many of these
technologies were invented and engineered before the security implications of pervasive societal
reliance on IT systems and networks came to the fore. In the national security, aviation, and space
exploration arenas, Federal research has long pursued technical means of assuring that networks and systems can continue to function in adverse environments and amid internal faults and failures;
but to date, system redundancy remains the principal failsafe. Since 9/11, Federal agencies, in
partnership with private-sector stakeholders, have also focused on research to harden against cyber
invasions that attack the process-control systems of critical U.S. infrastructures that rely on Internet
connectivity. In broad terms, however, efforts to increase IT reliability, safety, and security continue
to target add-on fixes for existing technologies rather than new concepts, designs, architectures, and
security standards that would incorporate those attributes from the ground up.
Research needs -- evolutionary system hardening and software patching will continue to be
necessary in dealing with the legacy systems of prior decades still in service. Only foundational basic
research, however, can produce the advances needed to make possible inherently more stable,
reliable, safe, secure, self-diagnosing, self-healing -- and thus far more cost-effective -- systems,
software, and devices for the dynamic environments of a fully digital world. A fundamental science
of security must be developed as an essential component of high-quality IT design and engineering
across all technologies and application domains. The science of security must also infuse curricula
and training activities at every educational level. Multiple dimensions of the security challenge are
described below.</OtherInformation></Objective><Objective><Name>System Hardening and Software Patching</Name><Description>[Pursue] evolutionary system hardening and software patching in dealing with the legacy systems of prior decades still in service.</Description><Identifier>_b3de20c8-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>2.1.1</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation></OtherInformation></Objective><Objective><Name>Basic Research</Name><Description>[Conduct] foundational basic research [to] produce the advances needed to make possible inherently more stable, reliable, safe, secure, self-diagnosing, self-healing &#8211; and thus far more cost-effective &#8211; systems, software, and devices for the dynamic environments of a fully digital world.</Description><Identifier>_b3de2596-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>2.1.2</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation></OtherInformation></Objective><Objective><Name>Science of Security</Name><Description>[Develop] a fundamental science of security as an essential component of high-quality IT design and engineering across all technologies and application domains.</Description><Identifier>_b3de2bfe-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>2.1.3</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation></OtherInformation></Objective><Objective><Name>Curricula and Training</Name><Description>Infuse curricula and training activities at every educational level.</Description><Identifier>_b3de3194-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>2.1.3.1</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation></OtherInformation></Objective><Objective><Name>Cyber Security</Name><Description>Securing Life in Cyberspace</Description><Identifier>_b3de3694-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>2.2</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation>Securing Life in Cyberspace -- 
As the President&#8217;s May 2009 &#8220;Cyberspace Policy Review&#8221; notes, the Internet&#8217;s global fabric of nearinstantaneous
interconnectivity is at once transformative and fragile&#8212;beset by the unintended
consequences of its multi-decade growth and survival in increasingly dangerous times.
Where we are now -- the vast sea of information that flows over the Internet and is stored in Internetconnected
systems mostly is not secure, nor are the networks and systems themselves. The basic
openness and anonymity built into the Internet&#8217;s trust-based legacy architecture -- combined with a
seemingly endless assortment of hardware and software vulnerabilities in computing systems -- are
exploited around the clock by hackers, criminals, and U.S. adversaries. According to some experts, the
networks of zombie attack computers called &#8220;botnets&#8221; today constitute the largest supercomputer
in the world. The lack of end-to-end security in cyberspace costs organizations in all sectors many
billions of dollars annually; it also threatens major U.S. Government objectives, such as improving
the health care system with the aid of health IT and stimulating economic innovation. Further, the
interconnections of the Internet with critical infrastructures and systems (e.g., financial) provide
vectors for potentially devastating cyber attacks. Currently, attackers have the upper hand; defenders
rely for the most part on a never-ending cycle of patching networks and systems, but this defends
only against previously identified threats, not the constantly emerging new ones.
The Federal government has initiated high-priority efforts to improve coordination of cybersecurity
R&amp;D across Federal agencies, with the goals of better securing government information and networks
and expanding collaboration with the private sector to address cybersecurity objectives. Because
much of the digital infrastructure lies in the private sector, however, developing R&amp;D partnerships
and technology deployment strategies acceptable across sectors outside the Government presents
complex challenges.

Research needs -- the goal of cybersecurity R&amp;D must be to provide end-to-end security in networked
environments. The immense dynamism and complexity of global networking make this goal a grand
challenge for which there will be no single solution. Advances of many kinds are needed, in the policy
and educational arenas as well as in diverse technologies. In addition to more inherently secure
components, new methods for proactive approaches to improving cybersecurity must be pursued,
such as dynamic security; stronger global-scale identity management; better situational awareness;
new means of attack attribution and combating malware, botnets, and insider threats; enterpriselevel
security metrics for assessing the relative effectiveness of policies and techniques; cybersecurity
education; and easy-to-use security techniques. One conceptual approach being advanced by the
Federal cybersecurity community specifically focuses on ways to eliminate the cyber attacker&#8217;s
advantage over the defender -- for example, by employing dynamic virtualization to make attack
targets much harder to pinpoint or by creating &#8220;tailored trustworthy spaces&#8221; on the Internet that
provide elevated levels of security and privacy.</OtherInformation></Objective><Objective><Name>End-to-End Security</Name><Description>Provide end-to-end security in networked environments.</Description><Identifier>_b3de3d24-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>2.2.1</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation>The immense dynamism and complexity of global networking make this goal a grand challenge for which there will be no single solution.</OtherInformation></Objective><Objective><Name>Myriad Advances</Name><Description>[Achieve] advances of many kinds, in the policy and educational arenas as well as in diverse technologies.</Description><Identifier>_b3de42b0-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>2.2.1.1</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation></OtherInformation></Objective><Objective><Name>Proactive Approaches</Name><Description>[Pursue] new methods for proactive approaches to improving cybersecurity</Description><Identifier>_b3de47d8-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>2.2.1.2</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation></OtherInformation></Objective><Objective><Name>Dynamic Security</Name><Description>Dynamic security</Description><Identifier>_b3de4e90-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>2.2.1.2.1</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation></OtherInformation></Objective><Objective><Name>Identity Management</Name><Description>Stronger global-scale identity management</Description><Identifier>_b3de5426-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>2.2.1.2.2</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation></OtherInformation></Objective><Objective><Name>Situational Awareness</Name><Description>Better situational awareness</Description><Identifier>_b3de59bc-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>2.2.1.2.3</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation></OtherInformation></Objective><Objective><Name>Attack Attribution and Combat</Name><Description>New means of attack attribution and combating malware, botnets, and insider threats</Description><Identifier>_b3de6092-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>2.2.1.2.4</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation></OtherInformation></Objective><Objective><Name>Security Metrics</Name><Description>Enterprise-level security metrics for assessing the relative effectiveness of policies and techniques</Description><Identifier>_b3de6650-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>2.2.1.2.5</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation></OtherInformation></Objective><Objective><Name>Education</Name><Description>Cybersecurity education</Description><Identifier>_b3de6ba0-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>2.2.1.2.6</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation></OtherInformation></Objective><Objective><Name>Techniques</Name><Description>Easy-to-use security techniques</Description><Identifier>_b3de7276-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>2.2.1.2.7</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation></OtherInformation></Objective><Objective><Name>Systems</Name><Description>Systems You Can Bet Your Life On</Description><Identifier>_b3de7848-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>2.3</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation>Systems You Can Bet Your Life On -- 
Cyber-enabled engineered systems in which cyber capability is deeply embedded at all scales -- and
on which life and safety often depend -- must remain ultra safe, secure, and reliable. The challenge
of building such systems, often from fundamentally untrusted components, spans essentially every
engineering domain. It requires the integration of knowledge and engineering principles across
many computational and engineering research disciplines (computing, networking, control, human
interaction, and learning theory, as well as electrical, mechanical, chemical, biomedical, nanobioengineering,
and other engineering disciplines) to develop a &#8220;new cyber-physical system science.&#8221;
Where we are now -- the complexity of cyber-physical systems, including robotic and autonomous
systems, is at a point where current methods are inadequate to anticipate possible failure modes and
guarantee safe, predictable, efficient operation. The world&#8217;s leading automotive manufacturers, for
example, have suffered catastrophic product failures that resulted in enormous recall costs and loss of
consumer confidence with potentially huge economic consequences. Deaths due to infusion pump
failures have reached such a high level that the FDA has found it necessary to mount an initiative
to investigate. At the same time, our appetite for systems of this kind -- in which the engineered
systems are monitored and controlled by computer and communication networks -- drives the
steep upward growth curve in system complexity. The dynamic, often decentralized nature of these
complex systems places unprecedented demands on the contributing areas of real-time computing,
communication, networked control; on engineering for the physical domains; and on verification,
validation, and certification support for all of these. Over-design currently is the only path to safety
and successful system certification, leading to a mindset of optimizing for a narrow task instead of
encouraging adaptability and evolvability.
Research needs -- we need to establish new, unified scientific and engineering foundations to
securely, safely, and systematically understand, build, manage, and adapt these complex systems -- cyber-physical systems that remain reliable as they interact across internal subsystems, with each
other, with human users, and with highly complex and uncertain physical environments -- and we
need successful exemplars of such systems. A core element of this agenda is the development of new, more cost-effective approaches to certifying the quality of these systems, a challenge that today
consumes, for example, an estimated 50% of the resources required to develop new, safety-critical
systems in the aviation industry. Essential R&amp;D areas include:
* Comprehensive integrated design approaches for cyber and physical system events and
actions -- for example, exploration and simplification of both nominal and failure mode
design for complex system environments that may incur undesirable or hazardous emergent
behavior
* Improved models of system and human behavior that can provide a framework for humansystem
and system-system interoperation that can enforce safe operation in mixed-initiative
systems. For example, models should support interaction without introducing problems such
as mode confusion or technology surprise.
* New approaches to fault tolerance -- system prediction, recovery, and adaptation technology
for rapidly identifying and avoiding potentially reachable failure states, and for maximizing
effective fall-back and fail-safe recovery when these cannot be avoided
* Hardware, software, and control platforms and frameworks that support rigorous -- checked or verified -- composition of system components and guaranteed regulation of component
interactions
* New scientific underpinnings and design approaches for securing cyber-physical systems,
addressing both cyber and natural or malicious physical disruptions (and interactions of
these)
* Technology-supported certification approaches that are based on claims and analytic
evidence, rather than merely process-based checklists, and that can support modular
certification of components and assemblies, with incremental re-certification after system
modification (e.g., knowing and certifying what exactly it is that you can trust, and why you
can trust it)
* A new generation of design and analysis toolchains that can produce rigorous evidence
for high-confidence system design, implementation and evaluation. For example, these
would integrate discrete and continuous mathematical models and support rigorous
reasoning about the interacting behaviors of cyber and physical components. They might
include frameworks that equally support evaluation, verification and validation (V&amp;V), and
certification activities, in addition to design and implementation.</OtherInformation></Objective><Objective><Name>Integrated Design</Name><Description>Comprehensive integrated design approaches for cyber and physical system events and actions &#8211; for example, exploration and simplification of both nominal and failure mode design for complex system environments that may incur undesirable or hazardous emergent behavior.</Description><Identifier>_b3de7dac-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>2.3.1</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation></OtherInformation></Objective><Objective><Name>Models</Name><Description>Improved models of system and human behavior that can provide a framework for humansystem and system-system interoperation that can enforce safe operation in mixed-initiative systems.</Description><Identifier>_b3de855e-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>2.3.2</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation>For example, models should support interaction without introducing problems such as mode confusion or technology surprise.</OtherInformation></Objective><Objective><Name>Fault Tolerance</Name><Description>New approaches to fault tolerance ... for rapidly identifying and avoiding potentially reachable failure states, and for maximizing effective fall-back and fail-safe recovery when these cannot be avoided.</Description><Identifier>_b3de8bbc-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>2.3.3</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation></OtherInformation></Objective><Objective><Name>Prediction</Name><Description>System prediction technology</Description><Identifier>_b3de9184-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>2.3.3.1</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation></OtherInformation></Objective><Objective><Name>Recovery</Name><Description>System recovery technology</Description><Identifier>_b3de98e6-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>2.3.3.2</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation></OtherInformation></Objective><Objective><Name>Adaptation</Name><Description>System adaptation technology</Description><Identifier>_b3de9f26-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>2.3.3.3</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation></OtherInformation></Objective><Objective><Name>Composition and Guarantees</Name><Description>Hardware, software, and control platforms and frameworks that support rigorous &#8211; checked or verified &#8211; composition of system components and guaranteed regulation of component interactions.</Description><Identifier>_b3dea520-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>2.3.4</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation></OtherInformation></Objective><Objective><Name>Cyber-Physical Systems</Name><Description>New scientific underpinnings and design approaches for securing cyber-physical systems, addressing both cyber and natural or malicious physical disruptions (and interactions of these).</Description><Identifier>_b3dead40-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>2.3.5</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation></OtherInformation></Objective><Objective><Name>Certification</Name><Description>Technology-supported certification approaches that are based on claims and analytic evidence, rather than merely process-based checklists, and that can support modular certification of components and assemblies, with incremental re-certification after system modification &#8211; e.g., knowing and certifying what exactly it is that you can trust, and why you can trust it.</Description><Identifier>_b3deb42a-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>2.3.6</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation></OtherInformation></Objective><Objective><Name>Tool Chains</Name><Description>A new generation of design and analysis toolchains that can produce rigorous evidence for high-confidence system design, implementation and evaluation.</Description><Identifier>_b3debab0-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>2.3.7</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation>For example, these would integrate discrete and continuous mathematical models and support rigorous reasoning about the interacting behaviors of cyber and physical components. They might include frameworks that equally support evaluation, V&amp;V, and certification activities, in addition to design and implementation.</OtherInformation></Objective><Objective><Name>Information Assurance and Sharing</Name><Description>Information Assurance and Sharing</Description><Identifier>_b3dec2bc-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>2.4</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation>Information Assurance and Sharing -- 
A primary function of cyber infrastructure is to provide for the safe, secure creation, transmission,
storage, and retrieval of all kinds of digital information -- including sensitive data belonging to
individuals, private-sector organizations, and government. Ideally, both the creator and any recipients or viewers of nonpublic digital information should be authorized and should be able to access it
securely; identify its origin and history, or provenance; authenticate its integrity (no one has tampered
with the content); and maintain its confidentiality as required. The information assurance field looks
at cybersecurity specifically from the perspective of what is required to maintain the confidentiality,
integrity, and availability of data.
Where we are now -- current concerns in information assurance range from protecting the bits
themselves through guarding the larger digital environments in which they reside. Technical areas
include security governance and privacy policies; network and system access controls, identity
authentication, management, and non-repudiation technologies and policies; cryptographic
techniques for data encryption and decryption; and forensic capabilities for identifying security
breaches. In highly sensitive information environments such as DoD, &#8220;mission assurance&#8221; also
employs risk analysis and management tools to analyze and mitigate the security risks of
environments in which information is shared across multiple security levels. Today, encryption
techniques provide the only data-based direct means of preventing unauthorized persons from
obtaining access to digital data. Public Key Infrastructure (PKI) exemplifies the approach of creating a
trusted multi-domain network environment, but PKI has been slow to achieve widespread adoption
because it is costly and cumbersome to administer.
Research needs -- the same characteristics of complex enterprises that enable network and
information managers to institute access controls and security monitoring (i.e., large-scale system
homogeneity, static configuration, and software monoculture) also make it easier for cyber attackers
to access, tamper with, or destroy information. To realize the NITRD vision, research must seek
fundamental advances in hardware, software, and network architectures that can provide immunity
from tampering and attacks, possibly by identifying and actively defeating them or increasing system
diversity. Likewise, next-generation approaches are needed for securing digital information itself.
Exploration of such techniques as homomorphic encryption, for example, may lead the way to data
formats that are intrinsically encoded but still usable in controlled environments.</OtherInformation></Objective><Objective><Name>Advanced Architectures</Name><Description>Seek fundamental advances in hardware, software, and network architectures that can provide immunity from tampering and attacks, possibly by identifying and actively defeating them or increasing system diversity.</Description><Identifier>_b3dec9ba-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>2.4.1</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation></OtherInformation></Objective><Objective><Name>Digital Information</Name><Description>[Develop] next-generation approaches for securing digital information itself.</Description><Identifier>_b3ded0d6-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>2.4.2</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation></OtherInformation></Objective><Objective><Name>Homomorphic Encryption</Name><Description>Explore such techniques as homomorphic encryption [that] may lead the way to data formats that are intrinsically encoded but still usable in controlled environments.</Description><Identifier>_b3ded932-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>2.4.2.1</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation></OtherInformation></Objective><Objective><Name>Security and Privacy</Name><Description>Understanding the Trade-offs: Balancing Security and Privacy With Other Values</Description><Identifier>_b3dee076-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>2.5</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation>Understanding the Trade-offs: Balancing Security and Privacy With Other Values -- 
Designing a system or a network that satisfies a single design goal -- security -- is still a grand
challenge in computer science research. Yet, in reality, many systems and networks like the Internet
that are used by real people have to satisfy not just one goal but an array of them. For example, they
need to be usable; they should give users the information and personal privacy they expect; they
should be open enough so that users can connect with others at a distance and obtain information
that is available on other systems and networks. At the same time, the systems need to provide the
level of security required by the end users. In many cases, however, it is not possible to satisfy all
competing goals.
Where we are now -- we are just beginning to understand the implications of such conflicts. If it is not
possible to design a system that is simultaneously secure, privacy-preserving, usable, and open, what
are the potential trade-offs among those attributes? We need to better understand these trade-offs
and expand the space of possible solutions.

Research needs -- research is necessary to investigate how we can more effectively comprehend,
model, and optimize an array of conflicting design goals. In addition, new tools are needed to enable
IT managers and end users both to monitor and act to mitigate security risks.</OtherInformation></Objective><Objective><Name>Design Conflicts</Name><Description>Investigate how we can more effectively comprehend, model, and optimize an array of conflicting design goals.</Description><Identifier>_b3dee76a-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>2.5.1</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation></OtherInformation></Objective><Objective><Name>Monitoring and Mitigation Tools</Name><Description>[Develop] new tools to enable IT managers and end users both to monitor and act to mitigate security risks.</Description><Identifier>_b3deefe4-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>2.5.2</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation></OtherInformation></Objective></Goal><Goal><Name>Cyber Capable</Name><Description>Transformed education and training ensure that current generations benefit fully from cyber capabilities and inspire a diverse, prepared, and highly productive next-generation workforce of cyber innovators.</Description><Identifier>_b3def7c8-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>3</SequenceIndicator><Stakeholder><Name>Cyber Innovators</Name><Description></Description></Stakeholder><OtherInformation>Cyber Capable -- 
The third essential foundation for the bright future envisioned by the NITRD agencies involves the
human side of the human-computer partnership. To remain at the forefront, the Nation will need
a cyber-capable citizenry -- Americans well prepared to be savvy consumers and users of IT and,
with advanced education and training, to generate the discoveries, inventions, and creative ideas
that will propel U.S. innovation in an increasingly competitive global economy. In the NITRD vision,
cyber capabilities and tools will be applied to provide learners at every level with rich and exciting
knowledge environments informed by the science of learning, tailored to individual needs, and
guided by educators with theoretical and practical IT knowledge. The cyber-capable society will
thus require an education and training system that can deliver world-class preparation in computer
science and other science disciplines, technology, engineering, and mathematics.
Following are the key elements of this vision and the major research challenges to be met in each.</OtherInformation><Objective><Name>Workforce</Name><Description>A Workforce of Cyber Innovators</Description><Identifier>_b3defeda-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>3.1</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation>A Workforce of Cyber Innovators -- 
Tomorrow&#8217;s workforce will have to be agile, adaptable, well educated and trained, and able to keep
learning continuously to take maximum advantage of technological advances and contribute to
American innovation. This applies not only to cyber professionals, who even today struggle to stay
current with their rapidly changing and advancing field, but to professional and technical workers in
every sector.
Where we are now -- a 2009 study conducted for the NITRD Program notes that two IT-related
occupations -- network systems and data communications analyst, and computer applications
software engineer -- are among the five fastest-growing in the U.S. economy, and the only two of the
five to require a college degree. According to the Bureau of Labor Statistics (BLS) projections reported
in the study, the professional and technical workforce in networking and computing should expand
by more than 1.2 million, or 24 percent, to 3.5 million between 2006 and 2016. The professional/
technical workforce over all is expected to grow by 17 percent over the same period. Projections that
include IT-related jobs that do not necessarily require a college degree (such help desk specialists,
electronic records processors, tellers, etc.) double the size of the IT workforce in 2016. By contrast, the
number of computer science and electrical engineering degrees at all levels has been declining since
2004, as has the percentage of degree holders who are U.S. citizens or residents. Government and
private-sector employers alike report difficulty finding people with the requisite IT skills.
Labor market projections for the IT workforce, however, do not capture the reality that a very broad
range of occupations increasingly involves applications that require IT knowledge and skills. Nor
can statistical projections serve as a guide for assessing the adequacy of the educational system to
prepare a workforce that leads the world in advanced innovation.

Research and education needs -- information technologies are interdependent and are developed
from an inherently multidisciplinary basis in the sciences and in engineering. Building systems
and large-scale applications takes teamwork across diverse technologies and academic fields.
Moreover, IT capabilities are used in a wide variety of social contexts that IT professionals also need
to understand in order to create and use applications effectively. For example, in the 1990&#8217;s the lack
of professionals trained in both computer science and biology prompted National Institute of Health
(NIH) to establish the Nation&#8217;s first graduate fellowship programs in bio-informatics; as a result, such
training is now part of the curriculum at many graduate and medical schools.
The PCAST argued in its 2007 NITRD review that the traditional disciplinary stovepipes of the
formal educational system present a substantial barrier to development of diversified, broadly
interdisciplinary new generations of cyber innovators.22 We need advances in thinking about how to
organize education and training curricula and experiences, particularly at the postsecondary level,
to help students develop the intellectual capacity to synthesize knowledge from multiple disciplines
and work collaboratively on complex interdisciplinary problems, whether the setting is IT for
advanced manufacturing or for a regional social services delivery system.</OtherInformation></Objective><Objective><Name>Education and Training</Name><Description>[Develop] advances in thinking about how to organize education and training curricula and experiences, particularly at the postsecondary level, to help students develop the intellectual capacity to synthesize knowledge from multiple disciplines and work collaboratively on complex interdisciplinary problems, whether the setting is IT for advanced manufacturing or for a regional social services delivery system.</Description><Identifier>_b3df05ec-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>3.1.1</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation>Information technologies are interdependent and are developed from an inherently multidisciplinary basis in the sciences and in engineering. Building systems and large-scale applications takes teamwork across diverse technologies and academic fields. Moreover, IT capabilities are used in a wide variety of social contexts that IT professionals also need to understand in order to create and use applications effectively. For example, in the 1990&#8217;s the lack of professionals trained in both computer science and biology prompted NIH to establish the Nation&#8217;s first graduate fellowship programs in bio-informatics; as a result, such training is now part of the curriculum at many graduate and medical schools. The PCAST argued in its 2007 NITRD review that the traditional disciplinary stovepipes of the formal educational system present a substantial barrier to development of diversified, broadly interdisciplinary new generations of cyber innovators.</OtherInformation></Objective><Objective><Name>Education</Name><Description>The Education of Cyber-Capable Citizens</Description><Identifier>_b3df0cfe-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>3.2</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation>The Education of Cyber-Capable Citizens -- 
Many scientists believe that our society will benefit when K-12 students gain a better understanding
of how digital technologies work and how to use their applications safely and wisely. Innovation in
several dimensions of education could accelerate this process: employing learning technologies in all
grades and subjects; incorporating &#8220;computational thinking&#8221; -- the concepts, mathematics, and logic
of digital processes -- throughout the formal curriculum at all levels; and expanding outreach efforts
to raise public awareness and better inform people of all ages about best practices for IT users.
Where we are now -- early IT educational applications offered mainly reading lessons or &#8220;skill and
drill&#8221; testing; emerging science-based knowledge about learning (e.g., its neural basis, psychological
theories of knowing, and biologically inspired learning algorithms) is informing the development
of more sophisticated learning technologies. In addition, precollegiate educators could exploit the
types of computational resources that have transformed the conduct of science and engineering
(e.g., authentic and realistic data, digital telescopes, immersive environments, mobile and portable
devices, modeling and simulation capabilities, sensor networks, and remote instruments) to
transform classroom learning. Deploying such approaches widely will require educators able to apply
IT expertise to subject-matter pedagogy.
Today, however, according to computer science (CS) experts who spoke at a NITRD strategic planning
public forum in 2008, the K-12 curriculum in computer science is extremely limited, mainly focused
on beginning programming at the senior-high level. The Computer Science Teachers Association has
reported that the proportion of high schools offering an introductory CS course dropped from 78
percent in 2005 to 69 percent in 2011; only 36 percent offered an Advanced Placement (AP) course
in 2011, and about 11 percent of AP test takers were CS students.23 As The Washington Post noted,
&#8220;It would be hard to find a student&#8230; who has never used the Internet for a research assignment,
socialized with Facebook, or played a video game. But few know much about how computers and the
Web actually work.&#8221;

Accordingly, NSF has initiated programs to: 1) recruit 10,000 skilled CS teachers for schools and
transform the CS curriculum; 2) introduce computational thinking into STEM education at all
levels; and 3) create a new conceptual framework bringing together the fields of pedagogy and
learning science. But this work is just beginning. An Administration initiative coordinated by the
National Institute of Standards and Technology (NIST) is launching a multi-pronged educational
effort specifically targeting cybersecurity, with the goals of increasing public awareness; expanding
cybersecurity education and training at all levels; recruiting skilled cybersecurity workers for Federal
missions; and boosting cybersecurity training for Federal employees.28 Many NITRD agencies, such
as the Department of Energy/Office of Science (DOE/SC), NASA, NOAA, and the National Science
Foundation (NSF), sponsor a variety of educational activities and Web materials for schools related to
their scientific missions.
Research and education needs -- developing the cyber-capable society will require ongoing
advances in all the areas discussed. Public awareness and education reform take time, persistence,
sustained coordination of efforts, and high-visibility support in every sector. A great national
challenge, similar to winning the space race in the 1960s, may also be needed to focus the attention
of students, parents, educators, and the public at large on the strategic importance of IT knowledge
and skills for economic and scientific innovation, and on IT capabilities to advance education at all
levels.</OtherInformation></Objective><Objective><Name>Multi-Faceted Advances</Name><Description>[Pursue] advances in all the areas discussed. Public awareness and education reform take time, persistence, sustained coordination of efforts, and high-visibility support in every sector.</Description><Identifier>_b3df15e6-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>3.2.1</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation></OtherInformation></Objective><Objective><Name>IT Knowledge and Skills</Name><Description>Focus the attention of students and their parents, educators, and the public at large on the strategic importance of acquiring IT knowledge and skills.</Description><Identifier>_b3df1e4c-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>3.2.2</SequenceIndicator><Stakeholder><Name>Students</Name><Description></Description></Stakeholder><Stakeholder><Name>Parents</Name><Description></Description></Stakeholder><Stakeholder><Name>Educators</Name><Description></Description></Stakeholder><Stakeholder><Name>The Public</Name><Description></Description></Stakeholder><OtherInformation></OtherInformation></Objective><Objective><Name>Technologies</Name><Description>Technologies To Empower 21st Century Learning</Description><Identifier>_b3df25c2-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>3.3</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation>Technologies to Empower 21st Century Learning -- 
In the NITRD vision, IT capabilities yet to be invented will play as critical a role in education as existing
IT capabilities already play in advanced scientific discovery. Today&#8217;s notions of &#8220;learning technologies&#8221;
will give way to concepts informed by new knowledge about the bio-chemistry of the human brain
and about how the human mind develops and acquires, stores, and uses information in perceiving,
thinking, and acting. Such advances in neuroscience, and parallel gains in educational and socialscience
research as well as in machine intelligence, will provide a basis for learning systems tailored to
individuals at every stage of cognitive development.
The personalized learning system might, for example, constantly capture and update all knowledge
about how individuals best learn and retain information and operationalize that knowledge in cyber
tools customized for each learner. A set of cyber tools covering all domains of knowledge would be
made widely available. The key aspect of these advanced cyber technologies would be their ability,
through interactions with a specific individual, to adaptively recognize that person&#8217;s particular
characteristics as a learner and adjust the learning experience accordingly. Teachers could spend
more time coaching and counseling individuals and leading hands-on activities.
Where we are now -- while most U.S. schools have computers and Internet connectivity, the
availability of this infrastructure for teaching varies widely by school district and type of classroom.
The increasing number of professional organizations of teacher educators and practicing teachers
interested in using technology indicates growing awareness of the IT potential, and schools of
education have incorporated IT in teacher training. Nonetheless, the K-12 system generally lags in
making effective use of digital capabilities.

Research and education needs -- to realize the NITRD vision, fundamental explorations of the
basis and processes of human learning should be pursued aggressively. As noted elsewhere in this
plan, expanded understanding of how the mind works is a prerequisite for building smarter, more
capable digital machines. In the context of education, new multidisciplinary knowledge about
human cognition and development likewise will be the basis for designing revolutionary learning
environments that meet the needs of individuals, whatever their location, age, socio-economic status,
or educational level. These systems will become possible through technical advances in such areas as
artificial intelligence, human-machine interfaces, visualization and virtual reality technologies, data
analytics, compute power, networking, and distributed systems. Educators appropriately equipped to
work with technologies for learning will also be necessary.</OtherInformation></Objective><Objective><Name>Human Learning</Name><Description>Agresssively pursue fundamental explorations of the basis and processes of human learning should be pursued aggressively.</Description><Identifier>_b3df2ee6-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>3.3.1</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation>As noted elsewhere in this plan, expanded understanding of how the mind works is a prerequisite for building smarter, more capable digital machines.</OtherInformation></Objective><Objective><Name>Learning Environments</Name><Description>Design revolutionary learning environments that meet the needs of individuals, whatever their location, age, socioeconomic status, or educational level.</Description><Identifier>_b3df3634-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>3.3.2</SequenceIndicator><Stakeholder><Name></Name><Description></Description></Stakeholder><OtherInformation>These systems will become possible through technical advances in such areas as artificial intelligence, human-machine interfaces, visualization and virtual reality technologies, data analytics, compute power, networking, and distributed systems.</OtherInformation></Objective><Objective><Name>Educators</Name><Description>[Develop] new generations of educators appropriately equipped to work with technologies for learning.</Description><Identifier>_b3df3d1e-e784-11df-a5d3-6a0c7a64ea2a</Identifier><SequenceIndicator>3.3.3</SequenceIndicator><Stakeholder><Name>Educators</Name><Description></Description></Stakeholder><OtherInformation></OtherInformation></Objective></Goal></StrategicPlanCore><AdministrativeInformation><StartDate>2012-08-31</StartDate><EndDate></EndDate><PublicationDate>2012-11-09</PublicationDate><Source>http://www.nitrd.gov/pubs/strategic_plans/2012_NITRD_Strategic_Plan.pdf</Source><Submitter><FirstName>Owen</FirstName><LastName>Ambur</LastName><PhoneNumber></PhoneNumber><EmailAddress>Owen.Ambur@verizon.net</EmailAddress></Submitter></AdministrativeInformation></StrategicPlan>