Execution of Provably Secure Assays on MEDA Biochips to Thwart Attacks

dc.contributor.author

Chakrabarty, K

dc.contributor.author

Liang, Tung-Che

dc.contributor.author

Shayan, Mohammed

dc.contributor.author

Karri, Ramesh

dc.date.accessioned

2018-11-02T18:27:16Z

dc.date.available

2018-11-02T18:27:16Z

dc.date.issued

2018

dc.date.updated

2018-11-02T18:27:15Z

dc.description.abstract

Digital microfluidic biochips (DMFBs) have emerged as a promising platform for DNA sequencing, clinical chemistry, and point-of-care diagnostics. Recent research has shown that DMFBs are susceptible to various types of malicious attacks. Defenses proposed thus far only offer probabilistic guarantees of security due to the limitation of on-chip sensor resources. A micro-electrode-dot-array (MEDA) biochip is a next-generation DMFB that enables the sensing of on-chip droplet locations, which are captured in the form of a droplet-location map. We propose a security mechanism that validates assay execution by reconstructing the sequencing graph (i.e., the assay specification) from the droplet-location maps and comparing it against the golden sequencing graph. We prove that there is a unique (one-to-one) mapping from the set of droplet-location maps (over the duration of the assay) to the set of possible sequencing graphs. Any deviation in the droplet-location maps due to an attack is detected by this countermeasure because the resulting derived sequencing graph is not isomorphic to the original sequencing graph. We highlight the strength of the security mechanism by simulating attacks on real-life bioassays

dc.identifier.uri

https://hdl.handle.net/10161/17636

dc.publisher

ACM

dc.subject

Location maps

dc.subject

microfludiic biochips

dc.subject

security

dc.subject

sequencing graphs

dc.title

Execution of Provably Secure Assays on MEDA Biochips to Thwart Attacks

dc.type

Report

pubs.organisational-group

Pratt School of Engineering

pubs.organisational-group

Duke

pubs.organisational-group

Electrical and Computer Engineering

Files

Original bundle

Now showing 1 - 1 of 1
Loading...
Thumbnail Image
Name:
TC_Security_Duke.pdf
Size:
1.55 MB
Format:
Adobe Portable Document Format