If you want to find out what drives (and how to work for) companies like Google, Microsoft, Apple or Facebook, you are looking at the right degree.
This is a unique, interdisciplinary program that will prepare you to be a future leader of the information and communications technology revolution.
You will not only learn advanced computing techniques and have the opportunity to complete a unique major, but also develop exceptional professional skills in areas of entrepreneurship and management.
While some of our students are flying unmanned aerial vehicles 15,000 kilometres away, others are busy writing algorithms to mine through Petabytes of data. If mastering challenging projects is your thing, the ANU Bachelor of Advanced Computing can launch you into a spectacular career.
Do you want to unravel the mysteries of the double helix, understand how genes interact with the environment and know how your parents set the scene for your life before you were even born?
The field of genetics is a multidisciplinary science which has progressed rapidly over the last fifty years, becoming increasingly important in modern society.
The ANU Bachelor of Genetics offers a variety of courses covering classical genetics, molecular genetics, population genetics, and bioinformatics. You can follow your interests by complementing the core program requirements with courses in areas as diverse as plant genetics, medicine and health or biological anthropology.
By specialising in genetics and understanding the structure and function of genes, you will learn how to apply the techniques of genomics, bioinformatics and molecular genetics to an ever-increasing range of exciting careers in medical biology, plant science and conservation.
This program is not available for Semester 2 commencement.
Career Options
ANU provides you with more choice for your entrance score by offering the new Flexible Double Degree program.
The ANU Flexible Double Degree lets you build skills for your chosen career without forfeiting your passion. It's your choice to build a double degree partnership that suits your head and your heart.http://students.anu.edu.au/applications/
Employment Opportunities
The best computing professionals often have knowledge or a wider field than computing alone. BAC graduates will be ideally positioned to shape their chosen sector of the computing industry now and into the future. They will acquire the skills and knowledge to become leaders in the ICT industry.
Opportunities exist in high tech industries, software start-ups computing research and developement as well as specialist computing organisations. Examples include, software developers, data mining specialists for insurance, banking and health sectors, human-computer interction specialists for software services industries, embedded systems developers for defence, and automotive industries.
The best computing professionals often have knowledge or a wider field than computing alone. BAC graduates will be ideally positioned to shape their chosen sector of the computing industry now and into the future. They will acquire the skills and knowledge to become leaders in the ICT industry.
Opportunities exist in high tech industries, software start-ups computing research and developement as well as specialist computing organisations. Examples include, software developers, data mining specialists for insurance, banking and health sectors, human-computer interction specialists for software services industries, embedded systems developers for defence, and automotive industries.
Further Information
The computing industry has grown very rapidly in the last 40 years, with various specialized areas requiring advanced computational techniques emerging. The pervasiveness of computers and computer-enabled devices is rapidly becoming established in modern society. Humans are interacting with computers in ever more profound and sophisticated ways. Allied with this, computers are having to act more intelligently in many different contexts. As the scale and complexity of these computer systems increases, so too do challenges in their engineering. As the amount of data increases exponentially, new challenges in the mining and warehousing of information emerge. In all areas of computing, increasingly sophisticated algorithms underpin all of the resulting technologies. The resulting hardware and software systems in these areas are complex; hence a systems engineering perspective on their design and construction is valuable.
In these areas of computing, another emerging trend is linkages with other disciplines. Valuable perspectives on artificial intelligence are emerging from the study of natural intelligence and biological systems. Psychology is a central element in human-computer interaction. The explosion in the volume and utility of information from bioinformatics is a key driver of large-scale data systems. An engineering approach, with emphasis on both hardware and software, is needed for the design of embedded computing technology. In all cases, reliable and systematic software development remains as a key element.
The Bachelor of Advanced Computing graduate will posses technical knowledge of programming, With these as a foundation, their technical knowledge will have been honed by the study of a selection of advanced computing topics. Professional and practical skills in software development will be gained through a series of courses in software analysis, design and construction, capped off with a group software project, With professional skills developed in the areas of entrepreneurship and management, the graduate will be in a position to apply their in-depth technical knowledge to become innovators in industry.
The best computing professionals are informed by knowledge of a wider field than computing alone. Graduates fulfilling a Major in an area of advanced computing and a cognate interdisciplinary area will be ideally positioned to shape the respective sector of the computing industry as it evolves over the near future. This will also imbue a capacity for lifelong learning by exposure to a broader range of perspectives and of ways of studying.
The degree also offers a research pathway for graduates wishing to pursue careers with a high emphasis on research.
The computing industry has grown very rapidly in the last 40 years, with various specialized areas requiring advanced computational techniques emerging. The pervasiveness of computers and computer-enabled devices is rapidly becoming established in modern society. Humans are interacting with computers in ever more profound and sophisticated ways. Allied with this, computers are having to act more intelligently in many different contexts. As the scale and complexity of these computer systems increases, so too do challenges in their engineering. As the amount of data increases exponentially, new challenges in the mining and warehousing of information emerge. In all areas of computing, increasingly sophisticated algorithms underpin all of the resulting technologies. The resulting hardware and software systems in these areas are complex; hence a systems engineering perspective on their design and construction is valuable.
In these areas of computing, another emerging trend is linkages with other disciplines. Valuable perspectives on artificial intelligence are emerging from the study of natural intelligence and biological systems. Psychology is a central element in human-computer interaction. The explosion in the volume and utility of information from bioinformatics is a key driver of large-scale data systems. An engineering approach, with emphasis on both hardware and software, is needed for the design of embedded computing technology. In all cases, reliable and systematic software development remains as a key element.
The Bachelor of Advanced Computing graduate will posses technical knowledge of programming, With these as a foundation, their technical knowledge will have been honed by the study of a selection of advanced computing topics. Professional and practical skills in software development will be gained through a series of courses in software analysis, design and construction, capped off with a group software project, With professional skills developed in the areas of entrepreneurship and management, the graduate will be in a position to apply their in-depth technical knowledge to become innovators in industry.
The best computing professionals are informed by knowledge of a wider field than computing alone. Graduates fulfilling a Major in an area of advanced computing and a cognate interdisciplinary area will be ideally positioned to shape the respective sector of the computing industry as it evolves over the near future. This will also imbue a capacity for lifelong learning by exposure to a broader range of perspectives and of ways of studying.
The degree also offers a research pathway for graduates wishing to pursue careers with a high emphasis on research.
Admission Requirements
- ATAR:
- 90
- QLD Band:
- 6
- International Baccalaureate:
- 34
Pathways
There are a range of pathways available to students for entry into Bachelor of Advanced Computing (Honours):
-Academy of Interactive Entertainment (AIE): A Diploma from AIE might be a pathway into Bachelor of Advanced Computing (Honours) for eligible students and may also provide advance standing into the program.
-International agreements/pathways: College of Engineering and Computer Science has a range of articulation agreements with institutions around the world. Students completing the appropriate qualification in these institutions may be approved for entry and credit exemptions towards Bachelor of Advanced Computing (Honours).
- Maths Bridging course: ANU College offers a Maths Bridging course for students who do not meet pre-requisite for Maths for entry into Bachelor of Advanced Computing (Honours). Successful completion of the Maths Bridging course meets the Maths pre-requisite for entry into this program (other entry requirements still apply).
Prerequisites
ACT: Mathematical Methods major.
NSW: Mathematics.
ACT major in Chemistry or NSW HSC Chemistry or equivalent.
Students who do not meet the chemistry requirement may be admitted into the program via a different pathway. Students who:
- Have an ATAR score of 90 or higher, and
- Commence the Bachelor of Science program after completion of the chemistry bridging course available in February through the ANU Research School of Chemistry (or equivalent) and complete CHEM1101 and BIOL1003 with a minimum average of 65%, may then apply to transfer to the Bachelor of the Medical Science program.
Adjustment Factors
The National Access Scheme 2014
ANU offers bonus points for nationally strategic senior secondary subjects, and in recognition of difficult circumstances that students face in their studies.
Bonus points are applied to all applicants with an ATAR at or above 70. Points are awarded in accordance with the approved schedule, and no more than 10 points (maximum 5 academic points and maximum 5 equity points) will be awarded.
Bonus points do not apply to programs with an ATAR cutoff of 98 or higher.
Bonus Points are only awarded to domestic applicants applying for admission through UAC who have not previously attempted tertiary study.
How to apply
Academic Bonus Points: senior secondary students do not need to apply for ANU academic bonus points. They are automatically added in accordance with the schedule.
Educational Access Scheme: senior secondary students do not need to apply if their school is part of the Priority School Funding Program or Country Areas Program. All other applicants should refer to www.uac.edu.au/undergraduate/eas for more information.
Indicative fees
Bachelor of Advanced Computing (Honours) - Commonwealth Supported Place (CSP)
Bachelor of Genetics - Commonwealth Supported Place (CSP)
For more information see: http://www.anu.edu.au/students/program-administration/costs-fees
- Annual indicative fee for international students
- $33,168.00
Scholarships
ANU offers a wide range of scholarships to students to assist with the cost of their studies.
Eligibility to apply for ANU scholarships varies depending on the specifics of the scholarship and can be categorised by the type of student you are. Specific scholarship application process information is included in the relevant scholarship listing.
For further information see the Scholarships website.
Program Requirements
The Bachelor of Advanced Computing (Honours) flexible double degree component requires completion of 144 units, of which:
A maximum of 48 units may come from completion of 1000-level courses
The 144 units must include:
78 units from completion of compulsory courses from the following list:
COMP2100 Software Construction
COMP2130 Software Design and Analysis
COMP2300 Introduction to Computer Systems
COMP2310 Concurrent and Distributed Systems
COMP2600 Formal Methods in Software Engineering
COMP3100 Software Project (12 units)
COMP3120 Managing Software Development
COMP3530 Systems Engineering for Software Engineers
COMP3600 Algorithms
COMP3630 Theory of Computation
ENGN1211 Discovering Engineering
MGMT3027 Entrepreneurship and Innovation
6 units from completion of one course from the following list:
COMP1100 Introduction to Programming and Algorithms
COMP1130 Introduction to Programming and Algorithms (Advanced)
6 units from completion of one course from the following list:
COMP1110 Introduction to Software Systems
COMP1140 Introduction to Software Systems (Advanced)
6 units from completion of one course from the following list:
STAT1003 Statistical Techniques
STAT1008 Quantitative Research Methods
6 units from completion of one course from the following list:
MATH1013 Mathematics and Applications 1
MATH1115 Mathematics and Applications 1 Honours
6 units from completion of one course from the following list:
MATH1014 Mathematics and Applications 2
MATH1116 Mathematics and Applications 2 Honours
12 units from completion of further courses from the subject area COMP Computer Science
Either:
24 units from completion of COMP4550 Advanced Computing Research Project
Or:
12 units from completion of COMP4560 Advanced Computing Project
12 units from completion of 4000-level courses from teh subject area COMP Computer Science
The Bachelor of Genetics flexible double degree component requires completion of 96 units, of which:
A maximum of 36 units may come from completion of 1000-level courses
A minimum of 36 units must come from completion of 3000-level courses from the Science course list
The 96 units must include:
60 units from completion of the following compulsory courses:
BIOL1003 Evolution, Ecology & Genetics
BIOL1004 Molecular & Cell Biology
CHEM1101 Chemistry 1
CHEM1201 Chemistry 2
BIOL2151 Principles of Genetics
BIOL2161 Genes: Replication and Expression
BIOL2162 Molecular Genetic Techniques
BIOL3157 Bioinformatics and Functional Genomics
BIOL3161 Genomics & its Applications
BIOL3204 Human Genetics
6 units from completion of a course from the following list:
BIOL1009 Diversity of Life
COMP1100 Introduction to Programming and Algorithms
6 units from completion of a course from the following list:
STAT1003 Statistical Techniques
STAT1008 Quantitative Research Methods
6 units from completion of a course from the following list:
BIOL2111 Australian Vertebrates
BIOL2113 Invertebrate Zoology
BIOL2121 Plants: Genes to Environment
BIOL2122 Australian Plant Functional Diversity
BIOL2142 General Microbiology
BIOL2171 Biochemistry and Nutrition
BIOL2174 Cell Physiology in Health and Disease
BIOL2191 Ecology of Health and Disease
BIOL2201 Big Questions in Biology
BIOL2202 Experimental Design and Analysis in Biology
BIAN2115 Race and Human Genetic Variation
BIAN2126 Primate Evolutionary Biology
MATH2307 Bioinformatics and Biological Modelling
STAT2001 Introductory Mathematical Statistics
12 units from completion of courses from the following list:
BIOL3125 Plants and Global Climate Change
BIOL3141 Infection and Immunity
BIOL3144 Molecular Immunology
BIOL3177 Advances in Molecular Plant Sciences
BIOL3191 Biology, Society and Ethics
BIOL3193 Bacteria and Health
BIOL3206 Evolution of Biodiversity
BIOL3208/BIOL3209 Biology Research Project
BIAN3016 Analysis of Mammalian Remains
STAT3004 Stochastic Modelling
STAT3008 Applied Statistics
A further 6 units from completion of 3000-level courses on the Science course list
Students enrolled in the Bachelor of Genetics must maintain an average of 65% in all Science courses each semester to remain this program. Students who do not maintain 65% will be transferred to the 3 year BSc program.
A maximum of 12 units from completion of 1000-level courses may contribute towards meeting the requirements of two Science majors with common 1000-level course requirements. In such cases, an equal number of units must come from the completion of additional courses from the Science course list.
Specialisations
Bachelor of Advanced Computing (Honours) Specialisations
Study Options
Year 1 | COMP1130 Introduction to Programming and Algorithms (Advanced) 6 units | ENGN1211 Discovering Engineering 6 units | MATH1013 Mathematics and Applications 1 6 units | CHEM1101 Chemistry 1 6 units |
COMP1140 Introduction to Software Systems (Advanced) 6 units | MATH1014 Mathematics and Applications 2 6 units | BIOL1004 Biology 2: Molecular and Cell Biology 6 units | CHEM1201 Chemistry 2 6 units | |
Year 2 | COMP2100 Software Construction 6 units | COMP2300 Introduction to Computer Systems 6 units | STAT1003 Statistical Techniques 6 units | BIOL1003 Biology 1: Evolution, Ecology and Genetics 6 units |
COMP2130 Software Analysis and Design 6 units | COMP2310 Concurrent and Distributed Systems 6 units | BIOL2161 Genes: Replication and Expression 6 units | BIOL2151 Principles of Genetics 6 units | |
Year 3 | COMP3100 Software Engineering Group Project 6 units | COMP3530 Systems Engineering for Software Engineers 6 units | BIOL2162 Molecular Gene Technology 6 units | 3000 level Science course 6 units |
COMP3100 Software Engineering Group Project 6 units | COMP2600 Formal Methods in Software Engineering 6 units | BIOL3161 Genomics and its Applications 6 units | 3000 level Science course 6 units | |
Year 4 | COMP3120 Managing Software Development 6 units | COMP3630 Theory of Computation 6 units | BIOL3204 Human Genetics 6 units | 3000 level Science course 6 units |
MGMT3027 Entrepreneurship and Innovation 6 units | COMP3600 Algorithms 6 units | Science course 6 units | 3000 level Science course 6 units | |
Year 5 | COMP4550 Advanced Computing Research Project 12 units | COMP4550 | Computing course 3000/4000-level 6 units | Science course 6 units |
COMP4550 Advanced Computing Research Project 12 units | COMP4550 | Computing course 3000/4000-level 6 units | Science course 6 units |
Honours
Students who attain a sufficient standard in the pass degree may be admitted to the Honours year to become candidates for the degree with Honours.
See the Honours Degree listed in the Bachelor of Science.
Back to the Bachelor of Advanced Computing (Honours) page
The Bachelor
of Advanced Computing (Honours) (BAC) is a unique, interdisciplinary program that will
prepare you to be a future leader of the information and communications
technology revolution.
The BAC can be taken as a single degree which inlcudes a number of core and compulsory courses. The single degree also offers 48 units (eight courses) of electives that can be taken from additional computing courses (enabling you to complete a Computing major, minor, or specialisation), or from other university courses.
The BAC
can also be taken as a part of many double degrees. You may not be able to complete a major in a computing discipline but a minor might be possible. You will be able to specialise in other areas as part of the
‘other half’ of your double degree.
Single degree
- This degree rquires a total of 192 units (each course is typically 6 units)
- Typically you will study four courses per semester (total of 24 units)
- There are a number of core and compulsory courses
- 48 units
(eight courses) of electives that can be taken from additional computing courses (enabling you to complete a computing major, minor, or specialisation), or from other university courses.
Double degree
- This degree requires a total of 144 units
- There are no university electives available in the double degree.
- It is unlikely that you will be able to complete a major or specialisation in computing but a minor in a computing area might be possible.
About this degree
- Typically students will enrol in 24 units per semester. This is four, six unit courses per semester. There are some variations in your later years with higher unit courses.
- A major is
typically 48 units of courses and a minor and specialisation are 24 units each.
- In the single degree you will have 48 units (eight
courses) of university electives. You may use these to do additional computing courses (enabling you to complete a computing
major, minor, or specialisation), or you may choose to
take other courses of general interest from elsewhere in the university.
- You may take 1000-level courses later in your program. You should however note that you can only do a maximum of 60 units of 1000 level courses in the single degree and 36 units of 1000 level courses towards the BAC in the double degree.
- In the double degree, you have no free electives - your other degree requirements use up all of these.
Enrolment Status
While it's possible to enrol in fewer courses per semester, which is
called studying part-time, it will take you longer to finish your
program and get your degree. If you are an international student you
must always be full-time.
Important things to keep in mind when choosing your 1000-level courses
- IF YOU ARE COMMENCING IN JULY YOU SHOULD SEND AN EMAIL TO <studentadmin.cecs@anu.edu.au> FOR ADVICE ABOUT YOUR ENROLMENT OR YOU SHOULD ATTEND AN ENROLMENT ADVICE SESSION AT THE UNIVERSITY IN THE WEEK BEFORE SEMESTER COMMENCES.
- If you studied ACT Maths Methods, or are not confident in your Maths ability, please FOLLOW THE ADVICE HERE
-
Students who excel in maths and have done the highest level of maths available to them at school should read the following:
-
There are two options for you to choose with your first year computing courses:
-Students with a good maths background, and who have some experience in programming may choose to undertake COMP1130 in Semester 1 and COMP1140 in Semester 2.
-Students who do not have the above should enrol in COMP1100 and COMP1110 in place of COMP1130 and COMP1140.
- Students doing double degrees with business degrees do STAT1008 in place of STAT 1003 and take an additional Computing elective.
- You need to enrol in courses for both First Semester and Second Semester.
- You can’t study more than four courses (24 units) per semester, eight for the year.
- Remember you can’t count more than ten 1000-level courses (60 units) towards your single degree or six 1000-level courses (36 units) towards the BAC half of the double degree.
Majors and Minors
See available majors and minors for this program
If you are in a single degree and you are interested in completing a computing major or minor you may need to use your first year electives to do particular subjects. You are encouraged to look at the each major and minor - you can search at the following site.
In addition, the ATTACHED DOCUMENT has some suggestions that you might like to consider.
Electives
If you are in the single degree then there are university electives that you can enrol in. Before chooing these, please read the pdf document that is attached in the above section on 'Majors and Minors'.
To find
description of the elective courses, use the CATALOGUE SEARCH.
Study Options
Study Options
Year 1 48 units | COMP1100 Introduction to Programming and Algorithms 6 units OR COMP1130; | ENGN1211 Discovering Engineering 6 units | MATH1013 Mathematics and Applications 1 6 units | STAT1003 Statistical Techniques 6 units |
COMP1110 Introduction to Software Systems 6 units OR COMP1130; | MATH1014 Mathematics and Applications 2 6 units | Computing Major or University Electve | Computing Major or University Electve |
Study Options
Year 1 48 units | COMP1100 Introduction to Programming and Algorithms 6 units OR COMP1130; | ENGN1211 Discovering Engineering 6 units | MATH1013 Mathematics and Applications 1 6 units | Course from other degree |
COMP1110 Introduction to Software Systems 6 units OR COMP1140; | MATH1014 Mathematics and Applications 2 6 units | Course from other degree | Course from other degree |
Academic Advice
For assistance, please email: studentadmin.cecs@anu.edu.au
Back to the Bachelor of Genetics page
Do you want to
unravel the mysteries of the double helix, understand how genes interact with
the environment and know how your parents set the scene for your life before
you were even born?
The field of genetics is a multidisciplinary science which has progressed
rapidly over the last fifty years, becoming increasingly important in modern
society.
The ANU Bachelor of Genetics offers a variety of courses covering classical
genetics, molecular genetics, population genetics, and bioinformatics.
By specialising in genetics and understanding the structure and function of
genes, you will learn how to apply the techniques of genomics, bioinformatics
and molecular genetics to an ever-increasing range of exciting careers in
medical biology, plant science and conservation.
This program is not available for Semester 2 commencement.
The Bachelor of Genetics can also be taken as a part of many double degrees.
Single degree
- This degree requires 144 units
- A maximum of 60 units of 1000 level courses
- A minimum of 36 units 3000 level Science courses
- An average of 65% in core Science courses must be maintained to remain in the program
- Other courses from Science or another ANU College (maximum non-science allowed 48 units)
Double degree
- This degree requires 96 units Science courses
- A maximum of 36 units of 1000 level Science courses
- A minimum of 36 units 3000 level Science courses
- An average of 65% in core Science courses must be maintained to remain in the program
- Other courses from Science
About this degree
Single degree
In a Bachelor of Genetics single degree program you will study a total of 144 units. Typically you will take 4 courses per semester (total of 24 units) as a full time student giving you a total of 24 courses across your whole degree.
You will need to complete a minimum of 16 science courses (96 units) but will also get to choose eight courses (48 units) from other ANU Colleges. You can try a range of courses or take a major or minor in a non-Science subject, such as history or marketing. The choice is yours.
Double degree
In a Bachelor of Genetics double degree program you will study a total of 96 units. Typically you will take 4 courses per semester (total of 24 units) as a full time student giving you a total of 16 courses across your whole degree. However, for each semester you are likely to take 2 courses from your Genetics degree and then 2 courses from the other half of your double degree – still a total of 4 courses a semester.
Enrolment Status
It is possible to enrol in fewer courses per semester but it will take you longer to finish your program and get your degree. If you are an international student you must always be enrolled full-time in 24 units each semester.
- You need to enrol in courses for both First Semester and Second Semester.
- You can’t study more than four courses (24 units) per semester, eight for the year.
- You may take 1000-level courses later in your program. But remember you can’t count more than ten 1000-level courses (60 units) towards your single degree or six 1000-level courses (36 units) towards your Genetics half of the double degree.
Electives
To find 1000-level
courses, use the catalogue finder. Remember you can choose up to 8
courses from another ANU College if you are undertaking the single Bachelor of
Genetics program.
Study Options
Bachelor of Genetics - single degree
This is a typical study pattern for the first year of a student undertaking a Bachelor of Genetics.Study Options
Year 1 48 units | CHEM1101 Chemistry 1 6 units | BIOL1003 Biology 1: Evolution, Ecology and Genetics 6 units | Science or non-science course 6 units | Science or non-science course 6 units |
CHEM1201 Chemistry 2 6 units | BIOL1004 Biology 2: Molecular and Cell Biology 6 units | Science or non-science course 6 units | Science or non-science course 6 units |
Bachelor of Genetics - double degree
This is a typical study pattern for the first year of a student undertaking a Bachelor of Genetics (degree A) with another three year degree, such as the Bachelor of Arts (degree B). Please note that for some double degrees (e.g. with Bachelor of Engineering) you may only be able to take one course in semester 1 for your science degree. In these circumstances it is recommended that in your first year you take CHEM1101, CHEM1201 and BIOL1004. You can then take BIOL1003 in your second year of study.Study Options
Year 1 48 units | CHEM1101 Chemistry 1 6 units | BIOL1003 Biology 1: Evolution, Ecology and Genetics 6 units | Degree B Course 6 units | Degree B Course 6 units |
CHEM1201 Chemistry 2 6 units | BIOL1004 Biology 2: Molecular and Cell Biology 6 units | Degree B Course 6 units | Degree B Course 6 units |
Academic Advice
For further information you can:
- Find information here http://biology.anu.edu.au/ or
- Download the First Year Science Guide
- Email science.enquiries@anu.edu.au, or
- Come and talk to someone face-to-face. You can make an appointment with an academic advisor by emailing science.enquiries@anu.edu.au or phoning 6125 2809.
Do you want to talk to someone before enrolling?
Contact Science.Enquiries@anu.edu.au