BankheadM.M., TotoD., StarR.A.Accuracy of urea removal estimated by kinetic models.Kidney Int1995; 48: 785–93.
2.
PyleW.K., MoncriefJ.W., PopovichR.P.Peritoneal evaluation in CAPD. In: MoncriefJ.W., PopovichR.P., eds. Proceedings of the 2nd International Symposium on CAPD.New York: Masson, 1981; 35–52.
3.
VoneshE.F., LysaghtM.J., MoranJ., FarrellP.Kinetic modeling as a prescription aid in peritoneal dialysis.Blood Purif1991; 9: 246–70.
4.
RippeB., StelinG.Simulations of peritoneal solute transport during CAPD. Application of two-pore formalism.Kidney Int1989; 35: 1234–44.
5.
StelinG., RippeB.A phenomenological interpretation of the variation in dialysate volume with dwell time in CAPD.Kidney Int1990; 38: 465–72.
6.
RippeB., StelinG., HaraldssonB.Computer simulations of peritoneal fluid transport in CAPD.Kidney Int1991; 40: 315–25.
7.
LandisE.M., PappenheimerJ.R.Exchange of substances through the capillary walls. In: HamiltonW.F., DowP., eds. Handbook of Physiology.Washington D.C.: Am Physiol Soc (Circulation), 1963; 2: 961–1034.
8.
HaraldssonB.Assessing the peritoneal dialysis capacities of individual patients.Kidney Int1995; 47: 1187–98.
9.
BergstromJ, FürstP., AlvestrandA., LindholmB.Protein and energy intake, nitrogen balance and nitrogen losses in patients treated with continuous ambulatory peritoneal dialysis.Kidney Int1993; 44: 1048–57.
10.
VoneshE.F., RippeB.Net fluid absorption under membrane transport models of peritoneal dialysis.Blood Purif1992; 10: 209–26.
11.
RippeB.A three-pore model of peritoneal transport.Perit Dial Int1993; 13(2): S35–8.