Biomedical Engineering, Computational Biomedical Engineering (BSBiomedE)
The objective of this concentration is to provide students with the knowledge and skills that will enable them to design and use computational algorithms to address problems in biomedical research and health care. Examples include (a) designing medical decision aids using statistical and machine learning models, (b) dynamic modeling and computer simulation to study the biomechanics and control of movement, (c) development of thermodynamic models of dynamic processes at the microscopic and macroscopic scales in biological systems, and (d) image processing techniques for quantitative measurement and interpretation of biomedical images.
Biomedical Engineering
The mission of the Department of Biomedical Engineering is to develop clinically translatable solutions for human health by training the next generation of biomedical engineers, cultivating leaders, and nurturing the integration of science, engineering, and medicine in a discovery-centered environment. The main educational objective is to provide a thorough training in the fundamentals of engineering science, design, and biology. The curriculum is designed to provide concepts central to understanding living systems from the molecular and cellular levels to the tissue and organismal levels. The curriculum incorporates principles of vertical integration, leading to the choice of a concentration (biomedical imaging and instrumentation, cellular and biomolecular engineering, computational biomedical engineering, or molecular, cellular, and tissue biomechanics), and culminates in a team capstone design experience. Students are expected to develop an understanding of industrial, research, and clinical biomedical engineering environments; an understanding of regulatory issues and biomedical ethics; the ability to create, identify, formulate, and solve biomedical engineering problems; the ability to design systems to meet needs in medical/life science applications; an understanding of life processes at the molecular, cellular, tissue, and organismal levels; the ability to use instrumentation and to make measurements and interpret data in living systems; and an appreciation of the interdisciplinary nature of biomedical engineering research.
Concentrations
Concentrations allow the student to build on the biomedical engineering curriculum. Students choose coursework in one of four concentrations: biomedical imaging and instrumentation; cellular and biomolecular engineering; computational biomedical engineering; or molecular, cellular and tissue biomechanics. Within some concentrations, career emphases are available for students to focus coursework toward a particular career track. Students have flexibility to take technical elective coursework from more than one career emphasis under the same concentration.
Minors and Certificate Programs
Biomedical engineering students may enrich their education through minors and certificate programs. For a full list please see Minor and Certificate Programs. Common examples of certificates completed by biomedical engineering students are as follows:
Business Foundations Minor. Students who wish to learn about fundamental business concepts and practices may take supplemental coursework that leads to the Business Foundations Minor, awarded by the Red McCombs School of Business. The certificate description is provided in the program's page.
Health Care Reform and Innovation Minor. The Red McCombs School of Business offers this minor to prepare students for the unique challenges and opportunities in the field of healthcare. The minor description is provided in the program's page.
Computational Science and Engineering (CSE) Certificate. This certificate offers the opportunity for in-depth study and research in computational science and engineering, including computational and applied mathematics, numerical simulation, scientific computation, and visualization. The certificate is administered by the Oden Institute for Computational Engineering and Sciences and its description is provided in the program's page.
Programming and Computation Certificate. Students who wish to learn about computer science may take the coursework that leads to the Programming and Computation Certificate, awarded by the Department of Computer Science. The certificate description is provided in the program's page.
Pre-Health Professions Certificate. This certificate provides majors outside of the College of Natural Sciences (CNS) access to the courses required to complete health professions prerequisites. The certificate description is provided in the program's page.
Licensure
Preparation for Health Professions
Students who plan to attend medical or dental school in Texas must complete coursework in addition to that required for the degree to meet professional school admission requirements; those who plan to attend schools outside Texas may need additional coursework. The student is responsible for knowing and meeting these additional requirements, and assistance and information are available in the Health Professions Office in Natural Sciences. Additional information about preparation for health professions is available online.
Preparation for Law
There is no sequential arrangement of courses prescribed for a pre-law program. The Association of American Law Schools puts special emphasis on comprehension and expression in words, critical understanding of the human institutions and values with which the law deals, and analytical power in thinking. Courses relevant to these objectives deal with communication of ideas, logic, mathematics, social sciences, history, philosophy, and the physical sciences. Services for pre-law students are provided to students in all colleges by Liberal Arts Career Services, and to engineering students by the Engineering Career Assistance Center (ECAC). Additional information about preparation for law is available online.
Objectives
Achievement of the program outcomes gives students the foundation for accomplishing the biomedical engineering program educational objectives. A few years after graduation, students are expected to be able to:
- Conduct themselves with exemplary professional ethics and highest integrity
- Demonstrate a quantitative, analytical, and systems approach to problem solving in their professional practice
- Demonstrate a continuous quest for professional excellence and success
- Participate in continuing education to expand their knowledge of contemporary professional issues
- Exhibit effective scientific, technical, communication, and resource management skills in their professional practice
Outcomes
Graduates of the biomedical engineering program are expected to have:
- an ability to identify, formulate, and solve complex engineering problems by applying principles of engineering, science, and mathematics
- an ability to apply engineering design to produce solutions that meet specific needs with consideration of public health, safety, and welfare, as well as global, cultural, societal, environmental, and economic factors
- an ability to communicate effectively with a range of audiences
- an ability to recognize ethical and professional responsibilities in engineering situations and make informed judgements, which must consider the impact of engineering solutions in global, economic, environmental, and societal contexts
- an ability to function effectively on a team whose members together provide leadership, create a collaborative and inclusive environment, establish goals, plan tasks, and meet objectives
- an ability to develop and conduct appropriate experimentation, analyze and interpret data, and use engineering judgement to draw conclusions
- an ability to acquire and apply new knowledge as needed, using appropriate learning strategies
Total Hours Required: 132
Plan of Study
The Plan of Study is a suggested four-year course sequence to support academic planning and serves as a helpful guide. Currently enrolled students should meet with their academic advisor to tailor their course selections and timelines to their individual goals and circumstances.
| Year 1 | ||
|---|---|---|
| Semester 1 | Hours | |
| BME 303L | Introduction to Biomedical Engineering Design | 3 |
| CH 401 | Principles of Chemistry I | 4 |
| BIO 311C | Introductory Biology I | 3 |
| BIO 206L | Introductory Laboratory Experiments in Biology | 2 |
| M 408C | Differential and Integral Calculus | 4 |
| First-Year Signature Course (090) | 3 | |
| Hours | 19 | |
| Semester 2 | ||
| BME 303 | Introduction to Computing | 3 |
| CH 402 | Principles of Chemistry II | 4 |
| M 408D | Sequences, Series, and Multivariable Calculus | 4 |
| PHY 303K | Engineering Physics I | 3 |
| PHY 105M | Laboratory For Physics 302K, 303K, and 317K | 1 |
| RHE 306 | Rhetoric and Writing | 3 |
| Hours | 18 | |
| Year 2 | ||
| Semester 1 | ||
| BME 214L | Computational Fundamentals of Biomedical Engineering Design | 2 |
| BME 311 | Network Analysis in Biomedical Engineering (advisor approval required) | 3 |
| CH 328M or CH 320M |
Organic Chemistry I or Organic Chemistry I |
3 |
| M 427J | Differential Equations with Linear Algebra | 4 |
| PHY 303L | Engineering Physics II | 3 |
| PHY 105N | Laboratory For Physics 302L, 303L, and 317L | 1 |
| Hours | 16 | |
| Semester 2 | ||
| E S 333T | Engineering Communication | 3 |
| BME 313L | Introduction to Numerical Methods in Biomedical Engineering | 3 |
| BME 335 | Engineering Probability and Statistics | 3 |
| BME 344 | Biomechanics (advisor approval required) | 3 |
| BCH 369 | Fundamentals of Biochemistry | 3 |
| Social and Behavioral Sciences (080) | 3 | |
| Hours | 18 | |
| Year 3 | ||
| Semester 1 | ||
| BME 245L | Experimental Principles of Biomedical Engineering Design | 2 |
| BME 343 | Biomedical Engineering Signal and Systems Analysis | 3 |
| BME 365R | Quantitative Engineering Physiology I | 3 |
| BME 352 | Engineering Biomaterials | 3 |
| Technical Elective | 3 | |
| Humanities (040) | 3 | |
| Hours | 17 | |
| Semester 2 | ||
| BME 261L | Development and Analysis in Biomedical Engineering Design | 2 |
| BME 349 | Biomedical Instrumentation | 3 |
| BME 365S | Quantitative Engineering Physiology II | 3 |
| BME 353 | Transport Phenomena in Living Systems | 3 |
| BME 355 | Molecular Engineering (advisor approval required) | 3 |
| Technical Elective | 3 | |
| Hours | 17 | |
| Year 4 | ||
| Semester 1 | ||
| BME 370 | Biomedical Engineering Capstone Design I | 3 |
| Technical Elective | 3 | |
| Visual and Performing Arts (050) | 3 | |
| U.S. History (060) | 3 | |
| American and Texas Government (070) | 3 | |
| Hours | 15 | |
| Semester 2 | ||
| BME 371 | Biomedical Engineering Capstone Design II | 3 |
| Technical Elective | 3 | |
| U.S. History (060) | 3 | |
| American and Texas Government (070) | 3 | |
| Hours | 12 | |
| Total Hours | 132 | |
Requirements
All requirements are listed below, starting with the most specialized moving to the most general. Additional requirements may follow the table, so be sure to read the entire page. Some required courses listed below may also satisfy General Education requirements, including Core Curriculum.
| Code | Title | Hours |
|---|---|---|
| Concentration | ||
| Hours chosen from: (six hours must be within engineering, remaining hours may be within or outside engineering) | 12 | |
| Fundamentals of Computing | ||
| Health Equity in Engineering Design | ||
| Cancer Bioengineering | ||
| Graphics and Visualization Laboratory | ||
| Computational Biomolecular Engineering | ||
| Fundamentals of Biomedical Optics | ||
| Introduction to Computational and Systems Biology | ||
| Computational Methods for Biomedical Engineers | ||
| Biomedical Imaging Modalities | ||
| Imaging Clinical Immersion | ||
| Introduction to Mathematical and Physical Biology | ||
| Mathematical Physiology | ||
| Tissue, Scaffold, and Cell Biomechanics Applications | ||
| Software Design and Implementation I | ||
| Introduction to Embedded Systems | ||
| Software Design and Implementation II | ||
| Algorithms | ||
| Digital Image Processing | ||
| Discrete Mathematics | ||
| Matrices and Matrix Calculations | ||
A computer science course from an approved list | ||
| Subtotal | 12 | |
| Degree (see details below) | 96 | |
| Free electives: Additional coursework to reach total hours required. | 0 | |
| General Education | ||
| Remaining Core Curriculum (42 hours total) | 24 | |
| Foreign Language other than English, Beginning Proficiency | ||
| Subtotal | 120 | |
| College Requirements - Engineering | ||
| General University Requirements | ||
| Total Hours | 132 | |
Additional Requirements and Policies
Current technical elective lists are available on the departmental undergraduate advising office's website.
Degree-Bachelor of Science in Biomedical Engineering (BSBiomedE)
Requirements
| Code | Title | Hours |
|---|---|---|
| Degree | ||
| Biomedical Engineering | ||
| BME 214L | Computational Fundamentals of Biomedical Engineering Design | 2 |
| BME 245L | Experimental Principles of Biomedical Engineering Design | 2 |
| BME 261L | Development and Analysis in Biomedical Engineering Design | 2 |
| BME 303 | Introduction to Computing | 3 |
| BME 303L | Introduction to Biomedical Engineering Design | 3 |
| BME 311 | Network Analysis in Biomedical Engineering (advisor approval required) | 3 |
| BME 313L | Introduction to Numerical Methods in Biomedical Engineering | 3 |
| BME 335 | Engineering Probability and Statistics | 3 |
| BME 343 | Biomedical Engineering Signal and Systems Analysis | 3 |
| BME 344 | Biomechanics (advisor approval required) | 3 |
| BME 349 | Biomedical Instrumentation | 3 |
| BME 352 | Engineering Biomaterials | 3 |
| BME 353 | Transport Phenomena in Living Systems | 3 |
| BME 355 | Molecular Engineering | 3 |
| BME 365R | Quantitative Engineering Physiology I | 3 |
| BME 365S | Quantitative Engineering Physiology II | 3 |
| BME 370 | Biomedical Engineering Capstone Design I | 3 |
| BME 371 | Biomedical Engineering Capstone Design II | 3 |
| Subtotal | 51 | |
| Biochemistry and Biology | ||
| BCH 369 | Fundamentals of Biochemistry | 3 |
| BIO 206L | Introductory Laboratory Experiments in Biology | 2 |
| BIO 311C | Introductory Biology I | 3 |
| Subtotal | 8 | |
| Chemistry | ||
| CH 401 | Principles of Chemistry I | 4 |
| CH 402 | Principles of Chemistry II | 4 |
| CH 320M | Organic Chemistry I | 3 |
| or CH 328M | Organic Chemistry I | |
| Subtotal | 11 | |
| Mathematics | ||
| M 408C | Differential and Integral Calculus | 4 |
| M 408D | Sequences, Series, and Multivariable Calculus | 4 |
| M 427J | Differential Equations with Linear Algebra | 4 |
| Subtotal | 12 | |
| Physics | ||
| PHY 105M | Laboratory For Physics 302K, 303K, and 317K | 1 |
| PHY 105N | Laboratory For Physics 302L, 303L, and 317L | 1 |
| PHY 303K | Engineering Physics I | 3 |
| PHY 303L | Engineering Physics II | 3 |
| Subtotal | 8 | |
| Rhetoric and Writing | ||
| RHE 306 | Rhetoric and Writing | 3 |
| Additional Required Hours | ||
| E S 333T | Engineering Communication | 3 |
| Subtotal | 6 | |
| Total Hours | 96 | |
Additional Requirements and Policies
Prior to registration, students must receive approval from the advising office for courses to be used to fulfill technical and nontechnical course requirements. The student must take all courses required for the degree on the letter-grade basis and must earn a grade of at least C- in each, except for those listed as remaining Core Curriculum.
Each student should choose a concentration by the end of the sophomore year and plan an academic program to meet the area requirements during the next two years.
Plan II Honors Program
Students enrolled in the Plan II Honors Program are encouraged to contact the Biomedical Engineering Academic Advising Office, in addition to the Plan II Office to ensure that requirements for both programs are met. Plan II courses may count toward biomedical engineering program requirements.