Title : 
Time-Elapse Communication: Bacterial Communication on a Microfluidic Chip
         
        
            Author : 
Krishnaswamy, Bhuvana ; Austin, Caitlin M. ; Bardill, J. Patrick ; Russakow, Daniel ; Holst, Gregory L. ; Hammer, Brian K. ; Forest, Craig R. ; Sivakumar, R.
         
        
            Author_Institution : 
Sch. of Electr. & Comput. Eng., Georgia Inst. of Technol., Atlanta, GA, USA
         
        
        
        
        
        
        
        
            Abstract : 
Bacterial populations housed in microfluidic environments can serve as transceivers for molecular communication, but the data-rates are extremely low (e.g., 10-5 bits per second.). In this work, genetically engineered Escherichia coli bacteria were maintained in a microfluidic device where their response to a chemical stimulus was examined over time. The bacteria serve as a communication receiver where a simple modulation such as on-off keying (OOK) is achievable, although it suffers from very poor data-rates. We explore an alternative communication strategy called time-elapse communication (TEC) that uses the time period between signals to encode information. We identify the limitations of TEC under practical non-zero error conditions and propose an advanced communication strategy called smart time-elapse communication (TEC-SMART) that achieves over a 10x improvement in data-rate over OOK. We derive the capacity of TEC and provide a theoretical maximum data-rate that can be achieved.
         
        
            Keywords : 
acoustic receivers; amplitude shift keying; microfluidics; microorganisms; modulation coding; molecular communication (telecommunication); OOK modulation; TEC-SMART; bacterial communication; chemical stimulus; communication receiver; genetically engineered Escherichia coli bacteria; information encoding; microfluidic chip device; molecular communication; on-off keying modulation; practical nonzero error condition; smart time-elapse communication; transceiver; Microorganisms; Receivers; Signal to noise ratio; Sociology; Standards; Statistics; Time measurement; Molecular communication; on-off keying; time elapse communication;
         
        
        
            Journal_Title : 
Communications, IEEE Transactions on
         
        
        
        
        
            DOI : 
10.1109/TCOMM.2013.111013.130314