Team:Wellesley Desyne
From 2013.igem.org
(Difference between revisions)
(2 intermediate revisions not shown) | |||
Line 86: | Line 86: | ||
<li><img src="https://static.igem.org/mediawiki/2013/e/ee/Wellesley_slideshow_presentation.jpg" /></li> | <li><img src="https://static.igem.org/mediawiki/2013/e/ee/Wellesley_slideshow_presentation.jpg" /></li> | ||
<li><img src="https://static.igem.org/mediawiki/2013/9/9f/Wellesley_slideshow_Eugenie.jpg" /></li> | <li><img src="https://static.igem.org/mediawiki/2013/9/9f/Wellesley_slideshow_Eugenie.jpg" /></li> | ||
- | <li><img src="https://static.igem.org/mediawiki/2013/ | + | <li><img src="https://static.igem.org/mediawiki/2013/e/ee/Wellesley_slideshow_BACv2.jpg" /></li> |
+ | <li><img src="https://static.igem.org/mediawiki/2013/b/be/Wellesley_slideshow_zTree.jpg" /></li> | ||
</ul> | </ul> | ||
Line 100: | Line 101: | ||
<p>Our team created a collection of software tools which | <p>Our team created a collection of software tools which | ||
address specific technical synthetic biology challenges while simultaneously advancing the way in | address specific technical synthetic biology challenges while simultaneously advancing the way in | ||
- | which users interact with computing environments. Our software will | + | which users interact with computing environments. Our software will support the workflow of the |
- | scientific process by supporting | + | scientific process by supporting various steps: research, brainstorming, building, testing, troubleshooting, |
iteration, and analysis. The combination of human computer interaction, bio-design automation, and | iteration, and analysis. The combination of human computer interaction, bio-design automation, and | ||
experimental design makes our effort unique in the iGEM experience and closes the loop on the | experimental design makes our effort unique in the iGEM experience and closes the loop on the |
Latest revision as of 15:25, 27 September 2013
Synthetic biology requires a multidisciplinary, collaborative design environment to engineer the complex biological systems of the future.
Our team created a collection of software tools which address specific technical synthetic biology challenges while simultaneously advancing the way in which users interact with computing environments. Our software will support the workflow of the scientific process by supporting various steps: research, brainstorming, building, testing, troubleshooting, iteration, and analysis. The combination of human computer interaction, bio-design automation, and experimental design makes our effort unique in the iGEM experience and closes the loop on the design-build-test methodology.