Two reduction methods to simplify complex ODE mathematical models of biological networks and a case study: The G1/S checkpoint/DNA-damage signal transduction pathways
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Two reduction methods to simplify complex ODE mathematical models of biological networks and a case study: The G1/S checkpoint/DNA-damage signal transduction pathways
Summary
Two reduction methods to simplify complex ODE mathematical models of biological networks and a case study: The G1/S checkpoint/DNA-damage signal transduction pathways is a doctoral thesis[1].
Key Facts
- Two reduction methods to simplify complex ODE mathematical models of biological networks and a case study: The G1/S checkpoint/DNA-damage signal transduction pathways authored The G1/S checkpoint/DNA-damage signal transduction pathways — author (P50): Mutaz Khazaaleh[2].
- Two reduction methods to simplify complex ODE mathematical models of biological networks and a case study: The G1/S checkpoint/DNA-damage signal transduction pathways's instance of is recorded as The G1/S checkpoint/DNA-damage signal transduction pathways — instance of (P31): doctoral thesis[3].
- Two reduction methods to simplify complex ODE mathematical models of biological networks and a case study: The G1/S checkpoint/DNA-damage signal transduction pathways's publisher is recorded as The G1/S checkpoint/DNA-damage signal transduction pathways — publisher (P123): Research@Lincoln[4].
- Two reduction methods to simplify complex ODE mathematical models of biological networks and a case study: The G1/S checkpoint/DNA-damage signal transduction pathways's language of work or name is recorded as The G1/S checkpoint/DNA-damage signal transduction pathways — language of work or name (P407): English[5].
- Two reduction methods to simplify complex ODE mathematical models of biological networks and a case study: The G1/S checkpoint/DNA-damage signal transduction pathways's country of origin is recorded as The G1/S checkpoint/DNA-damage signal transduction pathways — country of origin (P495): New Zealand[6].
- Two reduction methods to simplify complex ODE mathematical models of biological networks and a case study: The G1/S checkpoint/DNA-damage signal transduction pathways's publication date is recorded as +2018-00-00T00:00:00Z[7].
- Two reduction methods to simplify complex ODE mathematical models of biological networks and a case study: The G1/S checkpoint/DNA-damage signal transduction pathways's main subject is recorded as The G1/S checkpoint/DNA-damage signal transduction pathways — main subject (P921): medical mathematics[8].
- Two reduction methods to simplify complex ODE mathematical models of biological networks and a case study: The G1/S checkpoint/DNA-damage signal transduction pathways's main subject is recorded as The G1/S checkpoint/DNA-damage signal transduction pathways — main subject (P921): conceptual model[9].
- Two reduction methods to simplify complex ODE mathematical models of biological networks and a case study: The G1/S checkpoint/DNA-damage signal transduction pathways's main subject is recorded as The G1/S checkpoint/DNA-damage signal transduction pathways — main subject (P921): ordinary differential equation[10].
- Two reduction methods to simplify complex ODE mathematical models of biological networks and a case study: The G1/S checkpoint/DNA-damage signal transduction pathways's main subject is recorded as The G1/S checkpoint/DNA-damage signal transduction pathways — main subject (P921): complexity[11].
- Two reduction methods to simplify complex ODE mathematical models of biological networks and a case study: The G1/S checkpoint/DNA-damage signal transduction pathways's work available at URL is recorded as https://researcharchive.lincoln.ac.nz/handle/10182/10385[12].
- Two reduction methods to simplify complex ODE mathematical models of biological networks and a case study: The G1/S checkpoint/DNA-damage signal transduction pathways's Handle ID is recorded as 10182/10385[13].
- Two reduction methods to simplify complex ODE mathematical models of biological networks and a case study: The G1/S checkpoint/DNA-damage signal transduction pathways's title is recorded as Two reduction methods to simplify complex ODE mathematical models of biological networks and a case study: The G1/S checkpoint/DNA-damage signal transduction pathways[14].
- Two reduction methods to simplify complex ODE mathematical models of biological networks and a case study: The G1/S checkpoint/DNA-damage signal transduction pathways's copyright holder is recorded as The G1/S checkpoint/DNA-damage signal transduction pathways — copyright holder (P3931): Mutaz Khazaaleh[15].
- Two reduction methods to simplify complex ODE mathematical models of biological networks and a case study: The G1/S checkpoint/DNA-damage signal transduction pathways's thesis submitted to is recorded as The G1/S checkpoint/DNA-damage signal transduction pathways — thesis submitted to (P4101): Lincoln University[16].
- Two reduction methods to simplify complex ODE mathematical models of biological networks and a case study: The G1/S checkpoint/DNA-damage signal transduction pathways's on focus list of Wikimedia project is recorded as The G1/S checkpoint/DNA-damage signal transduction pathways — on focus list of Wikimedia project (P5008): NZThesisProject[17].
- Two reduction methods to simplify complex ODE mathematical models of biological networks and a case study: The G1/S checkpoint/DNA-damage signal transduction pathways's copyright status is recorded as The G1/S checkpoint/DNA-damage signal transduction pathways — copyright status (P6216): copyrighted[18].
- Two reduction methods to simplify complex ODE mathematical models of biological networks and a case study: The G1/S checkpoint/DNA-damage signal transduction pathways's thesis committee member is recorded as The G1/S checkpoint/DNA-damage signal transduction pathways — thesis committee member (P9161): Sandhya Samarasinghe[19].
- Two reduction methods to simplify complex ODE mathematical models of biological networks and a case study: The G1/S checkpoint/DNA-damage signal transduction pathways's thesis committee member is recorded as The G1/S checkpoint/DNA-damage signal transduction pathways — thesis committee member (P9161): Don Kulasiri[20].
Body
Designation and Status
Two reduction methods to simplify complex ODE mathematical models of biological networks and a case study: The G1/S checkpoint/DNA-damage signal transduction pathways's instance of is recorded as The G1/S checkpoint/DNA-damage signal transduction pathways — instance of (P31): doctoral thesis[3].