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Med., 130, 39, 10.1007\u002Fs00414-015-1217-z\nBalding, 1994, DNA profile match probability calculation: how to allow for population stratification, relatedness, database selection and single bands, Forensic Sci. Int., 64, 125, 10.1016\u002F0379-0738(94)90222-4\nWesten, 2014, Comparing six commercial autosomal STR kits in a large Dutch population sample, Forensic Sci. Int.: Genet., 10, 23\nGood, 1979, Studies in the history of probability and statistics. XXXVII A.M. Turing's statistical work in World War II, Biometrika, 66, 393, 10.1093\u002Fbiomet\u002F66.2.393\nTaroni, 2016, Dismissal of the illusion of uncertainty in the assessment of a likelihood ratio, Law Probab. Risk, 15, 1, 10.1093\u002Flpr\u002Fmgv008\nSjerps, 2016, Uncertainty and LR: to integrate or not to integrate, that's the question, Law Probab. Risk, 15, 23, 10.1093\u002Flpr\u002Fmgv005\nBalding, 2009, Interpreting low template DNA profiles, Forensic Sci. 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A study on scenarios involving a second person as carrier, Int. J. Leg. Med., 130, 121, 10.1007\u002Fs00414-015-1284-1\nGoray, 2013, DNA transfer during social interactions, Forensic Sci. Int Genet Suppl. Ser., 4, e101, 10.1016\u002Fj.fsigss.2013.10.052\nTaroni, 2013, Whose DNA is this? How relevant a question? (A note for forensic scientists), Forensic Sci. Int Genet, 7, 467, 10.1016\u002Fj.fsigen.2013.03.012\nChampod, 2013, DNA transfer: informed judgment or mere guesswork?, Front. Genet., 4, 300, 10.3389\u002Ffgene.2013.00300\nGosch, 2019, On DNA transfer: The lack and difficulty of systematic research and how to do it better, Forensic Sci. Int Genet., 40, 24, 10.1016\u002Fj.fsigen.2019.01.012\nBiedermann, 2016, The importance of critically examining the level of propositions when evaluating forensic DNA results, Front Genet., 7, 8, 10.3389\u002Ffgene.2016.00008\nCook, 1998, A hierarchy of propositions: deciding which level to address in casework, Sci. Justice, 38, 231, 10.1016\u002FS1355-0306(98)72117-3\nBuckleton, 2014, Helping formulate propositions in forensic DNA analysis, Sci. Justice, 54, 258, 10.1016\u002Fj.scijus.2014.02.007\nWillis, 2015, ENFSI guideline for evaluative reporting in forensic science, Eur. Netw. Forensic Sci. Inst.\nGill, 2020, Forensic Sci. Int. Genet., 44, 10.1016\u002Fj.fsigen.2019.102186\nRaymond, 2008, Assessing trace DNA evidence from a residential burglary: abundance, transfer and persistence, Forensic Sci. Int Genet Suppl. Ser., 1, 442, 10.1016\u002Fj.fsigss.2007.10.040\nEvett, 2000, More on the hierarchy of propositions: exploring the distinction between explanations and propositions, Sci. Justice, 40, 3, 10.1016\u002FS1355-0306(00)71926-5\nvan Oorschot, 2019, DNA transfer in forensic science: a review, Forensic Sci. Int. Genet., 38, 140, 10.1016\u002Fj.fsigen.2018.10.014\nMeakin, 2017, Trace DNA evidence dynamics: an investigation into the deposition and persistence of directly- and indirectly-transferred DNA on regularly-used knives, Forensic Sci. Int. Genet., 29, 38, 10.1016\u002Fj.fsigen.2017.03.016\nPfeifer, 2017, Persistence of touch DNA on burglary-related tools, Int. J. Leg. Med., 131, 941, 10.1007\u002Fs00414-017-1551-4\nvan Oorschot, 2014, Persistence of DNA deposited by the original user on objects after subsequent use by a second person, Forensic Sci. Int. Genet., 8, 219, 10.1016\u002Fj.fsigen.2013.10.005\nGoray, 2020, DNA detection of a temporary and original user of an office space, Forensic Sci. Int. Genet., 44, 10.1016\u002Fj.fsigen.2019.102203\nSessa, 2019, Touch DNA: impact of handling time on touch deposit and evaluation of different recovery techniques: an experimental study, Sci. Rep., 9, 9542, 10.1038\u002Fs41598-019-46051-9\nVerdon, 2013, The influence of substrate on DNA transfer and extraction efficiency, Forensic Sci. Int. Genet., 7, 167, 10.1016\u002Fj.fsigen.2012.09.004\nGoray, 2012, Evaluation of multiple transfer of DNA using mock case scenarios, Leg. Med. (Tokyo), 14, 40, 10.1016\u002Fj.legalmed.2011.09.006\nGoray, 2016, Shedder status-an analysis of self and non-self DNA in multiple handprints deposited by the same individuals over time, Forensic Sci. Int Genet, 23, 190, 10.1016\u002Fj.fsigen.2016.05.005\nGoray, 2021, Shedder status: exploring means of determination, Sci. Justice, 61, 391, 10.1016\u002Fj.scijus.2021.03.004\nLowe, 2002, The propensity of individuals to deposit DNA and secondary transfer of low level DNA from individuals to inert surfaces, Forensic Sci. Int., 129, 25, 10.1016\u002FS0379-0738(02)00207-4\nSzkuta, 2017, Transfer and persistence of DNA on the hands and the influence of activities performed, Forensic Sci. Int. Genet., 28, 10, 10.1016\u002Fj.fsigen.2017.01.006\nGoray, 2010, Investigation of secondary DNA transfer of skin cells under controlled test conditions, Leg. Med. (Tokyo), 12, 117, 10.1016\u002Fj.legalmed.2010.01.003\nGoray, 2010, Secondary DNA transfer of biological substances under varying test conditions, Forensic Sci. Int. Genet., 4, 62, 10.1016\u002Fj.fsigen.2009.05.001\nCale, 2016, Could secondary DNA transfer falsely place someone at the scene of a crime?, J. Forensic Sci., 61, 196, 10.1111\u002F1556-4029.12894\nSamie, 2016, Stabbing simulations and DNA transfer, Forensic Sci. Int. Genet., 22, 73, 10.1016\u002Fj.fsigen.2016.02.001\nOldoni, 2016, Shedding light on the relative DNA contribution of two persons handling the same object, Forensic Sci. Int. Genet., 24, 148, 10.1016\u002Fj.fsigen.2016.07.002\nSzkuta, 2019, Assessment of the transfer, persistence, prevalence and recovery of DNA traces from clothing: an inter-laboratory study on worn upper garments, Forensic Sci. Int. Genet., 42, 56, 10.1016\u002Fj.fsigen.2019.06.011\nMagee, 2018, Wearer and non-wearer DNA on the collars and cuffs of upper garments of worn clothing, Forensic Sci. Int. Genet., 34, 152, 10.1016\u002Fj.fsigen.2018.02.011\nMeakin, 2013, DNA transfer: review and implications for casework, Forensic Sci. Int. Genet., 7, 434, 10.1016\u002Fj.fsigen.2013.03.013\nFonnelop, 2015, Secondary and subsequent DNA transfer during criminal investigation, Forensic Sci. Int. Genet., 17, 155, 10.1016\u002Fj.fsigen.2015.05.009\nGoray, 2019, DNA transfer: DNA acquired by gloves during casework examinations, Forensic Sci. Int. Genet., 38, 167, 10.1016\u002Fj.fsigen.2018.10.018\nMargiotta, 2015, Risk of dna transfer by gloves in forensic casework, Forensic Sci. Int Genet Suppl. Ser., 5, e527, 10.1016\u002Fj.fsigss.2015.09.208\nPoy, 2006, Beware; gloves and equipment used during the examination of exhibits are potential vectors for transfer of DNA-containing material, Int. Congr. Ser., 1288, 556, 10.1016\u002Fj.ics.2005.09.126\nOtten, 2019, Secondary DNA transfer by working gloves, Forensic Sci. Int. Genet., 43, 10.1016\u002Fj.fsigen.2019.07.005\nTanzhaus, 2021, \"I've never been at the crime scene!\" - gloves as carriers for secondary DNA transfer, Int. J. Leg. Med., 135, 1385, 10.1007\u002Fs00414-021-02597-w\nvan Oorschot, 2021, DNA transfer in forensic science: recent progress towards meeting challenges, Genes (Basel), 12, 10.3390\u002Fgenes12111766\nLehmann, 2015, Following the transfer of DNA: How does the presence of background DNA affect the transfer and detection of a target source of DNA?, Forensic Sci. Int. Genet., 19, 68, 10.1016\u002Fj.fsigen.2015.05.002\nSzkuta, 2019, The presence of background DNA on common entry points to homes, Forensic Sci. Int. Genet. Suppl. Ser., 7, 784, 10.1016\u002Fj.fsigss.2019.10.177\nCastella, 2006, Forensic evaluation of the QIAshredder\u002FQIAamp DNA extraction procedure, Forensic Sci. Int., 156, 70, 10.1016\u002Fj.forsciint.2005.11.012\nBright, 2016, Developmental validation of STRmix, expert software for the interpretation of forensic DNA profiles, Forensic Sci. Int. Genet., 23, 226, 10.1016\u002Fj.fsigen.2016.05.007\nGehrig, 2014, Allelic proportions of 16 STR loci-including the new European Standard Set (ESS) loci-in a Swiss population sample, Int. J. Leg. Med., 128, 461, 10.1007\u002Fs00414-013-0949-x\nRussell, 2019, A guide to results and diagnostics within a STRmix™ report, Wiley Interdiscip. Rev.: Forensic Sci., 1\nBiedermann, 2009, Implementing statistical learning methods through Bayesian networks. Part 1: a guide to Bayesian parameter estimation using forensic science data, Forensic Sci. Int., 193, 63, 10.1016\u002Fj.forsciint.2009.09.007\nHicks, 2022, A logical framework for forensic DNA interpretation, Genes (Basel), 13, 10.3390\u002Fgenes13060957\nAitken C.G.G., Taroni F., Bozza S. 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Res. Pleistocene, 22, 33\nBorucki, 2011, The slave trade to the Rio de La Plata, 1777–1812: Trans-imperial networks and Atlantic warfare, Colonial Latin Am. Rev., 20, 81, 10.1080\u002F10609164.2011.552550\nAvena, 2012, Heterogeneity in genetic admixture across different regions of Argentina, PLoS One, 7, 10.1371\u002Fjournal.pone.0034695\nGarcía, 2018, Genetic variation in populations from central Argentina based on mitochondrial and Y chromosome DNA evidence, J. Hum. Genet., 63, 493, 10.1038\u002Fs10038-017-0406-7\nToscanini, 2007, Testing for genetic structure in different urban Argentinian populations, Forensic Sci. Int. Genet., 165, 35, 10.1016\u002Fj.forsciint.2006.02.042\nBianchi, 1998, Characterization of ancestral and derived Y-chromosome haplotypes of New World native populations, Am. J. Hum. Genet., 63, 1862, 10.1086\u002F302141\nDipierri, 1998, Paternal directional mating in two Amerindian subpopulations from the northwest of Argentina, Hum Biol., 70, 1001\nDemarchi, 2004, Genetic structure and gene flow in Gran Chaco populations of Argentina: evidence from Y-chromosome markers, Hum. Biol., 76, 413, 10.1353\u002Fhub.2004.0043\nFejerman, 2005, African ancestry of the population of Buenos Aires, Am. J. Phys. Anthropol., 128, 164, 10.1002\u002Fajpa.20083\nSalas, 2008, Gender bias in the multiethnic genetic composition of central Argentina, J. Hum. Gen., 53, 662, 10.1007\u002Fs10038-008-0297-8\nRamallo, 2009, Comparison of Y-chromosome haplogroup frequencies in eight Provinces of Argentina, Forensic Sci. Int. Genet. Suppl. Series, 431, 10.1016\u002Fj.fsigss.2009.08.047\nMotti, 2009, The genetic composition of Argentina prior to the massive immigration era: insights from matrilineages of extant criollos in centralwestern Argentina, Forensic Sci. Int. Genet. Suppl. Series, 342, 10.1016\u002Fj.fsigss.2009.09.034\nMartínez Marignac, 2004, Characterization of admixture in an urban sample from Buenos Aires, Argentina, using uniparentally and biparentally inherited genetic markers, Hum. Biol., 4, 543, 10.1353\u002Fhub.2004.0058\nCorach, 2010, Inferring continental ancestry of Argentineans from autosomal, Y-chromosomal and mitochondrial DNA, Ann. Hum. Gen., 74, 65, 10.1111\u002Fj.1469-1809.2009.00556.x\nMuzzio, 2018, Population structure in Argentina, PLoS One, 13, 10.1371\u002Fjournal.pone.0196325\nResano, 2018, Mestizaje genético en las poblaciones humanas actuales de Argentina, Revisión, Antropo, 39, 77\nPinto, 2013, Paternity exclusion power: comparative behaviour of autosomal and X-chromosomal markers in standard and deficient cases with inbreeding, Forensic Sci. Int. Genet., 7, 290, 10.1016\u002Fj.fsigen.2012.12.002\nTillmar, 2017, DNA commission of the International Society for Forensic Genetics (ISFG): guidelines on the use of X-STRs in kinship analysis, Forensic Sci. Int. Genet., 29, 269, 10.1016\u002Fj.fsigen.2017.05.005\nPinto, 2011, X-chromosome markers in kinship testing: a generalization of the IBD approach identifying situations where their contribution is crucial, Forensic Sci. Int. Genet., 1, 27, 10.1016\u002Fj.fsigen.2010.01.011\nGarcía, 2017, Mutation rate of 12 X-STRs from investigator argus X-12 kit in argentine population, Genetics Supplement Series, 6, e562, 10.1016\u002Fj.fsigss.2017.09.219\nSambrook, 2001\nSzibor, 2007, X-chromosomal markers: past, present and future, Forensic Sci. Int. Genet, 1, 93, 10.1016\u002Fj.fsigen.2007.03.003\nSzibor, 2005, A new website compiling forensic chromosome X research is now online, Int. J. Legal Med., 4, 252\nDesmarais, 1998, Development of a highly polymorphic STR marker for identity testing purposes at the human androgen receptor gene (HUMARA), J. Forensic Sci., 43, 1046, 10.1520\u002FJFS14355J\nTomas, 2012, Analysis of 12 X-STRs in Greenlanders, Danes and Somalis using Argus X-12, Int. J. Legal Med., 126, 121, 10.1007\u002Fs00414-011-0609-y\nFerragut, 2015, Genetic analysis of 12 X-chromosome STRs in Western Mediterranean populations, Int. J. Legal Med., 129, 253, 10.1007\u002Fs00414-014-1071-4\nPasino, 2011, Allele and haplotype diversity of X-chromosomal STRs in Ivory Coast, Int. J. Legal Med., 125, 749, 10.1007\u002Fs00414-011-0591-4\nGomes, 2017, Genetic characterization of Guinea-Bissau using a 12 X-chromosomal STR system: inferences from a multiethnic population, Forensic Sci. Int. Genet, 31, 89, 10.1016\u002Fj.fsigen.2017.08.016\nTilmar, 2008, Analysis of linkage and linkage disequilibrium for eight X-STR markers, Forensic Sci. Int. 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Justice, 38, 231, 10.1016\u002FS1355-0306(98)72117-3\nJuusola, 2003, Messenger RNA profiling: a prototype method to supplant conventional methods for body fluid identification, Forensic Sci.Int., 135, 85, 10.1016\u002FS0379-0738(03)00197-X\nAlberts, 1994\nHanson, 2010, RNA profiling for the identification of the tissue origin of dried stains in forensic biology, Forensic Sci. Rev., 22, 145\nHanson, 2011, Identification of skin in touch\u002Fcontact forensic samples by messenger RNA profiling, Forensic Sci. Int. Genet. Supp. Ser., 3, e306\nHanson, 2012, Specific and sensitive mRNA biomarkers for the identification of skin in ‘touch DNA’ evidence, Forensic Sci. Int. Genet., 6, 548, 10.1016\u002Fj.fsigen.2012.01.004\nHanson, 2013, Highly specific mRNA biomarkers for the identification of vaginal secretions in sexual assault investigations, Sci. Justice, 53, 14, 10.1016\u002Fj.scijus.2012.03.007\nJuusola, 2005, Multiplex mRNA profiling for the identification of body fluids, Forensic Sci. Int., 152, 1, 10.1016\u002Fj.forsciint.2005.02.020\nJuusola, 2007, mRNA profiling for body fluid identification by multiplex quantitative RT-PCR, J. Forensic Sci., 52, 1252\nFerri, 2004, Successful identification of two years old menstrual bloodstain by using MMP-11 horter amplicons, J. Forensic Sci., 49, 89\nHaas, 2009, mRNA profiling for body fluid identification by reverse transcription endpoint PCR and realtime PCR, Forensic Sci. Int. Genet., 3, 80, 10.1016\u002Fj.fsigen.2008.11.003\nLindenbergh, 2012, multiplex (m)RNA-profiling system for the forensic identification of body fluids and contact traces, Forensic Sci Int Genet., 6, 565, 10.1016\u002Fj.fsigen.2012.01.009\nSetzer, 2008, Recovery and stability of RNA in vaginal swabs and blood, semen, and saliva stains, J. Forensic Sci., 53, 296, 10.1111\u002Fj.1556-4029.2007.00652.x\nZubakov, 2008, Stable RNA markers for identification of blood and saliva stains revealed from whole genome expression analysis of time-wise degraded samples, Int. J. Legal Med., 122, 135, 10.1007\u002Fs00414-007-0182-6\nZubakov, 2009, New markers for old stains: stable mRNA markers for blood and saliva identification from up to 16-year-old stains, Int J. Legal Med., 123, 71, 10.1007\u002Fs00414-008-0249-z\nHaas, 2011, mRNA profiling for the identification of blood–results of a collaborative EDNAP exercise, Forensic Sci. Int. Genet., 5, 21, 10.1016\u002Fj.fsigen.2010.01.003\nHaas, 2011, RNA\u002FDNA co-analysis from blood stains-results of a second collaborative EDNAP exercise, Forensic Sci. Int. Genet., 6, 70, 10.1016\u002Fj.fsigen.2011.02.004\nHaas, 2011, Collaborative EDNAP exercises on messenger RNA\u002FDNA co-analyis for body fluid identification (blood, saliva, semen) and STR profiling, Forensic Sci. Int. Genet. Supp. Ser., 3, e5, 10.1016\u002Fj.fsigss.2011.08.002\nHaas, 2012, RNA\u002FDNA co-analysis from blood stains–results of a second collaborative EDNAP exercise, Forensic Sci Int Genet., 6, 70, 10.1016\u002Fj.fsigen.2011.02.004\nHaas, 2013, RNA\u002FDNA co-analysis from human saliva and semen stains–results of a third collaborative EDNAP exercise, Forensic Sci. Int. Genet., 7, 230, 10.1016\u002Fj.fsigen.2012.10.011\nHaas, 2014, RNA\u002FDNA co-analysis from human menstrual blood and vaginal secretion stains: results of a fourth and fifth collaborative EDNAP exercise, Forensic Sci. Int. Genet., 8, 203, 10.1016\u002Fj.fsigen.2013.09.009\nHaas, 2012, Capillary electrophoresis of a multiplex reverse transcription-polymerase chain reaction to target messenger RNA markers for body fluid identification, Methods Mol. Biol., 830, 169, 10.1007\u002F978-1-61779-461-2_12\nHanson, 2013, Rapid and inexpensive body fluididentification by RNA profiling-based multiplex High Resolution Melt (HRM) analysis, F1000 Res., 2, 281, 10.12688\u002Ff1000research.2-281.v1\nShendure, 2008, Next-generation DNA sequencing, Nat. Biotechnol., 26, 1135, 10.1038\u002Fnbt1486\nChomczynski, 1993, A reagent for the single-step simultaneous isolation of RNA, DNA and proteins from cell and tissue samples, Biotechniques, 15, 532\nJain, 1999, Data clustering: a review, ACM Comput. Surv., 31, 264, 10.1145\u002F331499.331504\nBauer, 2002, Evaluation of mRNA markers for the identification of menstrual blood, J. Forensic Sci., 47, 1278, 10.1520\u002FJFS15560J\nBauer, 2003, Protamine mRNA as molecular marker for spermatozoa in semen stains, Int. J. Legal Med., 117, 175, 10.1007\u002Fs00414-002-0347-2\nBauer, 2008, Identification of menstrual blood by real time RT-PCR: technical improvements and the practical value of negative test results, Forensic Sci.Int., 174, 55, 10.1016\u002Fj.forsciint.2007.03.016\nFleming, 2010, The development of a mRNA multiplex RT-PCR assay for the definitive identification of body fluids, Forensic Sci.Int.Genet., 4, 244, 10.1016\u002Fj.fsigen.2009.10.006\nHaas, 2011, Selection of highly specific and sensitive mRNA biomarkers for the identification of blood, Forensic Sci.Int.Genet., 5, 449, 10.1016\u002Fj.fsigen.2010.09.006\nLindenbergh, 2012, multiplex (m)RNA-profiling system for the forensic identification of body fluids and contact traces, Forensic Sci. Int. Genet., 6, 565, 10.1016\u002Fj.fsigen.2012.01.009\nRoeder, 2013, mRNA profiling using a minimum of five mRNA markers per body fluid and a novel scoring method for body fluid identification, Int. J. Legal Med., 127, 707, 10.1007\u002Fs00414-012-0794-3\nvan den Berge, 2014, A collaborative European exercise on mRNA-based body fluid\u002Fskin typing and interpretation of DNA and RNA results, Forensic Sci. Int. Genet., 10, 40, 10.1016\u002Fj.fsigen.2014.01.006\nZubakov, 2009, New markers for old stains: stable mRNA markers for blood and saliva identification from up to 16-year-old stains, Int. J. Legal Med., 123, 71, 10.1007\u002Fs00414-008-0249-z\nHaas, 2011, Collaborative EDNAP exercises on messenger RNA\u002FDNA co-analyis for body fluid identification (blood, saliva, semen) and STR profiling, Forensic Sci. Int. Genet. Supp. Ser., 3, e5, 10.1016\u002Fj.fsigss.2011.08.002\nHaas, 2013, RNA\u002FDNA co-analysis from human saliva and semen stains–results of a third collaborative EDNAP exercise, Forensic Sci. Int. 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Int. Genet., 12, 107, 10.1016\u002Fj.fsigen.2014.04.010\nGettings, 2016, Sequence variation of 22 autosomal STR loci detected by next generation sequencing, Forensic Sci. Int. Genet., 21, 15, 10.1016\u002Fj.fsigen.2015.11.005\nMa, 2016, Next generation sequencing: improved resolution for paternal\u002Fmaternal duos analysis, Forensic Sci. Int. Genet., 24, 83, 10.1016\u002Fj.fsigen.2016.05.015\nGuo, 2016, Evaluation of the early access STR kit v1 on the ion torrent PGM™ platform, Forensic Sci. Int. Genet., 23, 111, 10.1016\u002Fj.fsigen.2016.04.004\nKim, 2016, Massively parallel sequencing of 17 commonly used forensic autosomal STRs and amelogenin with small amplicons, Forensic Sci. Int. Genet., 22, 1, 10.1016\u002Fj.fsigen.2016.01.001\nFordyce, 2015, Second-generation sequencing of forensic STRs using the ion torrent™ HID STR 10-plex and the ion PGM™, Forensic Sci. Int. 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Genet., 12, 30, 10.1016\u002Fj.fsigen.2014.03.014\nParson, 2016, Massively parallel sequencing of forensic STRs: considerations of the DNA commission of the International Society for Forensic Genetics (ISFG) on minimal nomenclature requirements, Forensic Sci. Int. Genet., 22, 54, 10.1016\u002Fj.fsigen.2016.01.009\nNovroski, 2016, Characterization of genetic sequence variation of 58 STR loci in four major population groups, Forensic Sci. Int. Genet., 25, 214, 10.1016\u002Fj.fsigen.2016.09.007\nIllumina, 2015\nNiederstätter, 2007, A modular real-time PCR concept for determining the quantity and quality of human nuclear and mitochondrial DNA, Forensic Sci. Int. Genet., 1, 29, 10.1016\u002Fj.fsigen.2006.10.007\nBauer, 2013, Comparison of morphological and molecular genetic sex-typing on mediaeval human skeletal remains, Forensic Sci. Int. Genet., 7, 581, 10.1016\u002Fj.fsigen.2013.05.005\nIllumina, 2015\nWhite, 2015, Development and validation of a rapid PCR method for the PowerPlex® 16 HS system for forensic DNA identification, Int. J. Legal Med., 129, 715, 10.1007\u002Fs00414-014-1102-1\nEnsenberger, 2010, Developmental validation of the PowerPlex® 16 HS system: an improved 16-locus fluorescent STR multiplex, Forensic Sci. Int. Genet., 4, 257, 10.1016\u002Fj.fsigen.2009.10.007\nEnsenberger, 2014, Developmental validation of the PowerPlex® 21 system, Forensic Sci. Int. Genet., 9, 169, 10.1016\u002Fj.fsigen.2013.12.005\nOostdik, 2014, Developmental validation of the PowerPlex® Fusion System for analysis of casework and reference samples: a 24-locus multiplex for new database standards, Forensic Sci. Int. Genet., 12, 69, 10.1016\u002Fj.fsigen.2014.04.013\nHennessy, 2014, Developmental validation of the GlobalFiler® express kit, a 24-marker STR assay, on the RapidHIT® System, Forensic Sci. Int. Genet., 13, 247, 10.1016\u002Fj.fsigen.2014.08.011\nMusgrave-Brown, 2007, Forensic validation of the SNPforID 52-plex assay, Forensic Sci. Int. Genet., 1, 186, 10.1016\u002Fj.fsigen.2007.01.004\nBodner, 2016, Recommendations of the DNA commission of the International Society for Forensic Genetics (ISFG) on quality control of autosomal Short Tandem Repeat allele frequency databasing (STRidER), Forensic Sci. Int. Genet., 24, 97, 10.1016\u002Fj.fsigen.2016.06.008\nHantschel, 1999, Population genetics of nine short tandem repeat (STR) loci –DNA typing using the AmpFlSTR Profiler PCR amplification kit, Int. J. 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J. Legal Med.\nNiederstätter, 2007, A modular real-time PCR concept for determining the quantity and quality of human nuclear and mitochondrial DNA, Forensic Sci. Int. Genet., 1, 29, 10.1016\u002Fj.fsigen.2006.10.007\nWalker, 2005, Multiplex polymerase chain reaction for simultaneous quantitation of human nuclear, mitochondrial and male Y-chromosome DNA: application in human identification, Anal. Biochem., 337, 89, 10.1016\u002Fj.ab.2004.09.036\nEgeland, 2000, Beyond traditional paternity and identification cases: selecting the most probable pedigree, Forensic Sci. Int., 110, 47, 10.1016\u002FS0379-0738(00)00147-X\nNussbaumer, 2001, STR data for the AmpFℓSTR SGM plus from a regional population of Austria, Forensic Sci. Int., 122, 181, 10.1016\u002FS0379-0738(01)00497-2\nSteinlechner, 2001, Population genetics of ten STR loci (AmpFℓSTR SGM plus) in Austria, Int. J. Legal Med., 114, 288, 10.1007\u002Fs004140000171\nKlintschar, 1998, A study on the short tandem repeat system ACTBP2 (SE33) in an Austrian population sample, Int. J. Legal Med., 111, 46, 10.1007\u002Fs004140050111\nHatzer-Grubwieser, 2012, Allele frequencies and concordance study of 16 STR loci – including the new European Standard Set (ESS) loci – in an Austrian population sample, Forensic Sci. Int. Genet., 6, e50, 10.1016\u002Fj.fsigen.2011.04.006\nWilluweit, 2007, Y chromosome haplotype reference database (YHRD): update, Forensic Sci. Int. Genet., 1, 83, 10.1016\u002Fj.fsigen.2007.01.017\nBerger, 2009, Mini-midi-mito: adapting the amplification and sequencing strategy of mtDNA to the degradation state of crime scene samples, Forensic Sci. Int. Genet., 3, 149, 10.1016\u002Fj.fsigen.2009.01.011\nBandelt, 2008, Consistent treatment of length variants in the human mtDNA control region: a reappraisal, Int. J. Legal Med., 122, 11, 10.1007\u002Fs00414-006-0151-5\nParson, 2007, EMPOP – a forensic mtDNA database, Forensic Sci. Int. Genet., 1, 88, 10.1016\u002Fj.fsigen.2007.01.018\nTully, 2001, Considerations by the European DNA profiling (EDNAP) group on the working practices, nomenclature and interpretation of mitochondrial DNA profiles, Forensic Sci. Int., 124, 83, 10.1016\u002FS0379-0738(01)00573-4\nGilbert, 2005, Assessing ancient DNA studies, Trends Ecol. Evol., 20, 541, 10.1016\u002Fj.tree.2005.07.005\nAndrews, 1999, Reanalysis and revision of the Cambridge reference sequence for human mitochondrial DNA, Nat. 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