[1] Richard M., Ibberson William, I.F. David, “Neutron powder diffraction”, Chapter 5 of Structure determination form powder diffraction data IUCr monographphs on crystallography, Oxford scientific publications (2002).
[2] Bonneau L., Quentin P., "Microscopic calculations of potential energy surfaces: fission and fusion properties", Los Alamos National Laboratory, Theoretical Division, MS B283, Los Alamos, New Mexico.
[3] http://scripts.iucr.org, “Size-strain line-broadening analysis of the ceria round-robin sample”.
[4] Warren B.E., "X-Ray Diffraction", Reading Mass.:Addison-Wesley, (1969)
[5] Groma I., Szekely F., “Analysis of the asymptotic properties of X-ray line broadening caused by dislocations”, J. Appl. Cryst. 33, 1328(2000)
[6] A.J.C. Wilson, “On Variance as a Measure of Line Broadening in Diffractometry General Theory and Small Particle Size”, Proc. Phys. Soc.80 (1962) 286.
[7] A.J.C. Wilson, Nuovo Cimento “The Effects of Dislocations on X-ray Diffraction”. 1, 277 (1955).
[8] Langford J., “The variance and other measures of line broadening in powder diffractometry”, J. Appl. Cryst. 1, 48 (1968)
[9] Groma I., Ungar T., Wilkens M., “Asymmetric X-ray line broadening of palastically deformed crystals. I. Theory”, J Appl. Cryst. 21 (1988) 47.
[10] Borbely A., Groma I., "Variance method for the evaluation of particle size and dislocation density from x-ray Bragg peaks", Appl. Phys. Lett 79(2001).
[11] Groma I., Ungar T., Wilkens M., “Asymmetric X-ray line broadening of palastically deformed crystals. II. Evaluation Procedure”, J Appl. Cryst. 22 (1989) 26.
[12] Ribarik G., "modeling of diffraction patterns based on microstructural properties", Ph.D. Thesis, Physics Doctorate School, Department of Materials Physics, (2008).
[13] Groma I., "X-ray line broadening due to an inhomogeneous dislocation distribution", Phys. Rev. B 57 7535 (1998).