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Thread: Balto-Slavic scale

  1. #41
    Veteran Member cass's Avatar
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    Target: Sorb_Niederlausitz
    Distance: 1.9298% / 0.01929826 | ADC: 0.25x

    67.0 Slavic
    18.2 Baltic
    14.8 Balkan

    0 Germanic?
    It seems to be wrongly calibrated.

  2. #42
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    Quote Originally Posted by cass View Post
    Target: Sorb_Niederlausitz
    Distance: 1.9298% / 0.01929826 | ADC: 0.25x

    67.0 Slavic
    18.2 Baltic
    14.8 Balkan

    0 Germanic?
    It seems to be wrongly calibrated.
    They score no similarity with medieval Germanic samples, sorry. Not weird considering they plot east of Czechs.
    However Balkan samples have some western european drift, especially those from Croatia.

    My guess is David handpicked purest Sorbs for his average he could find. His Polish average is also very Slavic and eastern shifted.

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    Quote Originally Posted by Feiichy View Post
    WEST SLAVS

    Target: Polish
    Distance: 1.0294% / 0.01029432 | ADC: 0.25x

    86.0 Slavic
    9.6 Germanic
    4.4 Baltic

    Target: Slovakian
    Distance: 1.9145% / 0.01914454 | ADC: 0.25x

    84.2 Slavic
    10.8 Balkan
    4.2 Germanic
    0.8 Baltic

    Target: Sorb_Niederlausitz
    Distance: 1.9298% / 0.01929826 | ADC: 0.25x

    67.0 Slavic
    18.2 Baltic
    14.8 Balkan

    Target: Czech
    Distance: 1.1885% / 0.01188460 | ADC: 0.25x

    56.6 Slavic
    34.2 Germanic
    5.2 Balkan
    2.6 Greco-Roman
    1.4 Celtic

    How do Slovaks and Sorbs have Balkan but Poles don't? Sorbs are further west than Poles

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    Senior Member -Scar-'s Avatar
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    Quote Originally Posted by Stearsolina View Post
    WEST SLAVS

    Target: Polish
    Distance: 1.0294% / 0.01029432 | ADC: 0.25x

    86.0 Slavic
    9.6 Germanic
    4.4 Baltic

    Best model based on historical data.
    Before the Slavic migration the people in Western Poland were Swedish-like, clearly there was a large scale replacement.

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    Quote Originally Posted by Stearsolina View Post

    Target: Hungarian
    Distance: 0.7988% / 0.00798832 | ADC: 0.25x

    52.8 Slavic
    23.8 Germanic
    21.8 Balkan
    1.6 Greco-Roman
    I've been playing with this Hungarian academic average with qpAdm. Apparently they don't need anything besides Germanic and Slavic, the Balkan stuff is just Global25 overfitting the data. This is one of the models that i ran (obs: qpAdm does not distinguish North Europeans, so Germany_EMedieval is a stand in for both Slavic and Germanic. The exact proportions of both should be analysed using G25):

    Hungarian
    Germany_EMedieval 0.873 +- 0.100
    Lech_MBA 0.127 +- 0.100
    chisq 10.154
    tail prob 0 516617

    So Lech_MBA isn't required (and neither are Hungary_Scythian and Croatia_EIA) since the std.error is basically equal to the admixture coefficient, so the nested model with only Germany_EMedieval (p-value: 0.14) is closer to optimal.

    Full output:
    Code:
    left pops:
    Hungarian
    Germany_EMedieval.SG
    Germany_Lech_MBA
    
    right pops:
    Czech_Vestonice16
    Russia_Ust_Ishim.DG
    Russia_MA1_HG.SG
    Italy_North_Villabruna_HG
    Jordan_PPNB
    Romania_Mesolithic_IronGates
    Georgia_Satsurblia.SG
    Morocco_Iberomaurusian
    Iran_GanjDareh_N
    Cameroon_SMA.DG
    Anatolia_N
    Russia_Steppe_Eneolithic
    Russia_HG_Karelia
    
      0            Hungarian   20
      1 Germany_EMedieval.SG   35
      2     Germany_Lech_MBA    7
      3    Czech_Vestonice16    1
      4  Russia_Ust_Ishim.DG    1
      5     Russia_MA1_HG.SG    1
      6 Italy_North_Villabruna_HG    1
      7          Jordan_PPNB    4
      8 Romania_Mesolithic_IronGates    4
      9 Georgia_Satsurblia.SG    1
     10 Morocco_Iberomaurusian    6
     11     Iran_GanjDareh_N    8
     12      Cameroon_SMA.DG    1
     13           Anatolia_N   22
     14 Russia_Steppe_Eneolithic    3
     15    Russia_HG_Karelia    2
    jackknife block size:     0.050
    snps: 593124  indivs: 117
    number of blocks for block jackknife: 711
    dof (jackknife):   602.170
    numsnps used: 46474
    codimension 1
    f4info: 
    f4rank: 1 dof:     11 chisq:    10.154 tail:           0.51661742 dofdiff:     13 chisqdiff:   -10.154 taildiff:                    1
    B:
              scale     1.000 
    Russia_Ust_Ishim.DG     1.491 
    Russia_MA1_HG.SG     1.268 
    Italy_North_Villabruna_HG     0.060 
        Jordan_PPNB    -0.175 
    Romania_Mesolithic_IronGates     1.095 
    Georgia_Satsurblia.SG     0.757 
    Morocco_Iberomaurusian     0.364 
    Iran_GanjDareh_N     0.759 
    Cameroon_SMA.DG     1.266 
         Anatolia_N     0.177 
    Russia_Steppe_Eneolithic     1.180 
    Russia_HG_Karelia     1.621 
    A:
              scale   941.312 
    Germany_EMedieval.SG     0.204 
    Germany_Lech_MBA    -1.399 
    
    
    full rank 1
    f4info: 
    f4rank: 2 dof:      0 chisq:     0.000 tail:                    1 dofdiff:     11 chisqdiff:    10.154 taildiff:           0.51661742
    B:
              scale     1.000     1.000 
    Russia_Ust_Ishim.DG     1.520    -0.475 
    Russia_MA1_HG.SG     1.145     0.221 
    Italy_North_Villabruna_HG     0.102     0.032 
        Jordan_PPNB    -0.226     1.608 
    Romania_Mesolithic_IronGates     1.080     0.028 
    Georgia_Satsurblia.SG     0.674     1.886 
    Morocco_Iberomaurusian     0.357     1.491 
    Iran_GanjDareh_N     0.776     0.505 
    Cameroon_SMA.DG     1.309    -0.603 
         Anatolia_N     0.145     1.543 
    Russia_Steppe_Eneolithic     1.170     0.137 
    Russia_HG_Karelia     1.692    -0.584 
    A:
              scale   991.102  3066.804 
    Germany_EMedieval.SG     0.674     1.243 
    Germany_Lech_MBA    -1.243     0.674 
    
    
    best coefficients:     0.873     0.127 
    ssres:
        0.000479023     0.000581661     0.000056186     0.000515624     0.000479649     0.001012712     0.000723984     0.000529943     0.000338111     0.000651928     0.000560565     0.000512255 
        0.828304055     1.005779384     0.097153245     0.891591578     0.829385221     1.751132727     1.251877553     0.916352117     0.584644749     1.127281671     0.969301143     0.885767176 
    
    Jackknife mean:      0.864886518     0.135113482 
          std. errors:     0.100     0.100 
    
    error covariance (* 1000000)
         10007     -10007 
        -10007      10007 
    
    
        fixed pat  wt  dof     chisq       tail prob
               00  0    11    10.154        0.516617     0.873     0.127 
               01  1    12    12.339        0.418882     1.000    -0.000 
               10  1    12    41.981     3.35445e-05     0.000     1.000 
    best pat:           00         0.516617              -  -
    best pat:           01         0.418882  chi(nested):     2.185 p-value for nested model:        0.139368

  6. #46
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    Quote Originally Posted by Token View Post
    I've been playing with this Hungarian academic average with qpAdm. Apparently they don't need anything besides Germanic and Slavic, the Balkan stuff is just Global25 overfitting the data. This is one of the models that i ran (obs: qpAdm does not distinguish North Europeans, so Germany_EMedieval is a stand in for both Slavic and Germanic. The exact proportions of both should be analysed using G25):

    Hungarian
    Germany_EMedieval 0.873 +- 0.100
    Lech_MBA 0.127 +- 0.100
    chisq 10.154
    tail prob 0 516617

    So Lech_MBA isn't required (and neither are Hungary_Scythian and Croatia_EIA) since the std.error is basically equal to the admixture coefficient, so the nested model with only Germany_EMedieval (p-value: 0.14) is closer to optimal.

    Full output:
    Code:
    left pops:
    Hungarian
    Germany_EMedieval.SG
    Germany_Lech_MBA
    
    right pops:
    Czech_Vestonice16
    Russia_Ust_Ishim.DG
    Russia_MA1_HG.SG
    Italy_North_Villabruna_HG
    Jordan_PPNB
    Romania_Mesolithic_IronGates
    Georgia_Satsurblia.SG
    Morocco_Iberomaurusian
    Iran_GanjDareh_N
    Cameroon_SMA.DG
    Anatolia_N
    Russia_Steppe_Eneolithic
    Russia_HG_Karelia
    
      0            Hungarian   20
      1 Germany_EMedieval.SG   35
      2     Germany_Lech_MBA    7
      3    Czech_Vestonice16    1
      4  Russia_Ust_Ishim.DG    1
      5     Russia_MA1_HG.SG    1
      6 Italy_North_Villabruna_HG    1
      7          Jordan_PPNB    4
      8 Romania_Mesolithic_IronGates    4
      9 Georgia_Satsurblia.SG    1
     10 Morocco_Iberomaurusian    6
     11     Iran_GanjDareh_N    8
     12      Cameroon_SMA.DG    1
     13           Anatolia_N   22
     14 Russia_Steppe_Eneolithic    3
     15    Russia_HG_Karelia    2
    jackknife block size:     0.050
    snps: 593124  indivs: 117
    number of blocks for block jackknife: 711
    dof (jackknife):   602.170
    numsnps used: 46474
    codimension 1
    f4info: 
    f4rank: 1 dof:     11 chisq:    10.154 tail:           0.51661742 dofdiff:     13 chisqdiff:   -10.154 taildiff:                    1
    B:
              scale     1.000 
    Russia_Ust_Ishim.DG     1.491 
    Russia_MA1_HG.SG     1.268 
    Italy_North_Villabruna_HG     0.060 
        Jordan_PPNB    -0.175 
    Romania_Mesolithic_IronGates     1.095 
    Georgia_Satsurblia.SG     0.757 
    Morocco_Iberomaurusian     0.364 
    Iran_GanjDareh_N     0.759 
    Cameroon_SMA.DG     1.266 
         Anatolia_N     0.177 
    Russia_Steppe_Eneolithic     1.180 
    Russia_HG_Karelia     1.621 
    A:
              scale   941.312 
    Germany_EMedieval.SG     0.204 
    Germany_Lech_MBA    -1.399 
    
    
    full rank 1
    f4info: 
    f4rank: 2 dof:      0 chisq:     0.000 tail:                    1 dofdiff:     11 chisqdiff:    10.154 taildiff:           0.51661742
    B:
              scale     1.000     1.000 
    Russia_Ust_Ishim.DG     1.520    -0.475 
    Russia_MA1_HG.SG     1.145     0.221 
    Italy_North_Villabruna_HG     0.102     0.032 
        Jordan_PPNB    -0.226     1.608 
    Romania_Mesolithic_IronGates     1.080     0.028 
    Georgia_Satsurblia.SG     0.674     1.886 
    Morocco_Iberomaurusian     0.357     1.491 
    Iran_GanjDareh_N     0.776     0.505 
    Cameroon_SMA.DG     1.309    -0.603 
         Anatolia_N     0.145     1.543 
    Russia_Steppe_Eneolithic     1.170     0.137 
    Russia_HG_Karelia     1.692    -0.584 
    A:
              scale   991.102  3066.804 
    Germany_EMedieval.SG     0.674     1.243 
    Germany_Lech_MBA    -1.243     0.674 
    
    
    best coefficients:     0.873     0.127 
    ssres:
        0.000479023     0.000581661     0.000056186     0.000515624     0.000479649     0.001012712     0.000723984     0.000529943     0.000338111     0.000651928     0.000560565     0.000512255 
        0.828304055     1.005779384     0.097153245     0.891591578     0.829385221     1.751132727     1.251877553     0.916352117     0.584644749     1.127281671     0.969301143     0.885767176 
    
    Jackknife mean:      0.864886518     0.135113482 
          std. errors:     0.100     0.100 
    
    error covariance (* 1000000)
         10007     -10007 
        -10007      10007 
    
    
        fixed pat  wt  dof     chisq       tail prob
               00  0    11    10.154        0.516617     0.873     0.127 
               01  1    12    12.339        0.418882     1.000    -0.000 
               10  1    12    41.981     3.35445e-05     0.000     1.000 
    best pat:           00         0.516617              -  -
    best pat:           01         0.418882  chi(nested):     2.185 p-value for nested model:        0.139368
    Your right pops are too old and basic for such a recent run(migration era samples).
    There’s absolutely no way Hungarians don’t have any more Southern ancestry than the Belarussian-like early Slavs and the Scandinavian-like early Germanics, Hungarians score significantly more Barcin than both these populations. There’s some East Eurasian there too albeit noise level.

  7. #47
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    Target: Knez_scaled
    Distance: 2.2982% / 0.02298201
    33.2 Slavic
    31.8 Greco-Roman
    23.0 Baltic
    12.0 Balkan

    Target: Knez_scaled
    Distance: 2.4368% / 0.02436807 | ADC: 0.25x
    66.4 Slavic
    23.0 Greco-Roman
    10.6 Balkan

  8. #48
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    Quote Originally Posted by Token View Post
    I've been playing with this Hungarian academic average with qpAdm. Apparently they don't need anything besides Germanic and Slavic, the Balkan stuff is just Global25 overfitting the data. This is one of the models that i ran (obs: qpAdm does not distinguish North Europeans, so Germany_EMedieval is a stand in for both Slavic and Germanic. The exact proportions of both should be analysed using G25):

    Hungarian
    Germany_EMedieval 0.873 +- 0.100
    Lech_MBA 0.127 +- 0.100
    chisq 10.154
    tail prob 0 516617

    So Lech_MBA isn't required (and neither are Hungary_Scythian and Croatia_EIA) since the std.error is basically equal to the admixture coefficient, so the nested model with only Germany_EMedieval (p-value: 0.14) is closer to optimal.

    Full output:
    Code:
    left pops:
    Hungarian
    Germany_EMedieval.SG
    Germany_Lech_MBA
    
    right pops:
    Czech_Vestonice16
    Russia_Ust_Ishim.DG
    Russia_MA1_HG.SG
    Italy_North_Villabruna_HG
    Jordan_PPNB
    Romania_Mesolithic_IronGates
    Georgia_Satsurblia.SG
    Morocco_Iberomaurusian
    Iran_GanjDareh_N
    Cameroon_SMA.DG
    Anatolia_N
    Russia_Steppe_Eneolithic
    Russia_HG_Karelia
    
      0            Hungarian   20
      1 Germany_EMedieval.SG   35
      2     Germany_Lech_MBA    7
      3    Czech_Vestonice16    1
      4  Russia_Ust_Ishim.DG    1
      5     Russia_MA1_HG.SG    1
      6 Italy_North_Villabruna_HG    1
      7          Jordan_PPNB    4
      8 Romania_Mesolithic_IronGates    4
      9 Georgia_Satsurblia.SG    1
     10 Morocco_Iberomaurusian    6
     11     Iran_GanjDareh_N    8
     12      Cameroon_SMA.DG    1
     13           Anatolia_N   22
     14 Russia_Steppe_Eneolithic    3
     15    Russia_HG_Karelia    2
    jackknife block size:     0.050
    snps: 593124  indivs: 117
    number of blocks for block jackknife: 711
    dof (jackknife):   602.170
    numsnps used: 46474
    codimension 1
    f4info: 
    f4rank: 1 dof:     11 chisq:    10.154 tail:           0.51661742 dofdiff:     13 chisqdiff:   -10.154 taildiff:                    1
    B:
              scale     1.000 
    Russia_Ust_Ishim.DG     1.491 
    Russia_MA1_HG.SG     1.268 
    Italy_North_Villabruna_HG     0.060 
        Jordan_PPNB    -0.175 
    Romania_Mesolithic_IronGates     1.095 
    Georgia_Satsurblia.SG     0.757 
    Morocco_Iberomaurusian     0.364 
    Iran_GanjDareh_N     0.759 
    Cameroon_SMA.DG     1.266 
         Anatolia_N     0.177 
    Russia_Steppe_Eneolithic     1.180 
    Russia_HG_Karelia     1.621 
    A:
              scale   941.312 
    Germany_EMedieval.SG     0.204 
    Germany_Lech_MBA    -1.399 
    
    
    full rank 1
    f4info: 
    f4rank: 2 dof:      0 chisq:     0.000 tail:                    1 dofdiff:     11 chisqdiff:    10.154 taildiff:           0.51661742
    B:
              scale     1.000     1.000 
    Russia_Ust_Ishim.DG     1.520    -0.475 
    Russia_MA1_HG.SG     1.145     0.221 
    Italy_North_Villabruna_HG     0.102     0.032 
        Jordan_PPNB    -0.226     1.608 
    Romania_Mesolithic_IronGates     1.080     0.028 
    Georgia_Satsurblia.SG     0.674     1.886 
    Morocco_Iberomaurusian     0.357     1.491 
    Iran_GanjDareh_N     0.776     0.505 
    Cameroon_SMA.DG     1.309    -0.603 
         Anatolia_N     0.145     1.543 
    Russia_Steppe_Eneolithic     1.170     0.137 
    Russia_HG_Karelia     1.692    -0.584 
    A:
              scale   991.102  3066.804 
    Germany_EMedieval.SG     0.674     1.243 
    Germany_Lech_MBA    -1.243     0.674 
    
    
    best coefficients:     0.873     0.127 
    ssres:
        0.000479023     0.000581661     0.000056186     0.000515624     0.000479649     0.001012712     0.000723984     0.000529943     0.000338111     0.000651928     0.000560565     0.000512255 
        0.828304055     1.005779384     0.097153245     0.891591578     0.829385221     1.751132727     1.251877553     0.916352117     0.584644749     1.127281671     0.969301143     0.885767176 
    
    Jackknife mean:      0.864886518     0.135113482 
          std. errors:     0.100     0.100 
    
    error covariance (* 1000000)
         10007     -10007 
        -10007      10007 
    
    
        fixed pat  wt  dof     chisq       tail prob
               00  0    11    10.154        0.516617     0.873     0.127 
               01  1    12    12.339        0.418882     1.000    -0.000 
               10  1    12    41.981     3.35445e-05     0.000     1.000 
    best pat:           00         0.516617              -  -
    best pat:           01         0.418882  chi(nested):     2.185 p-value for nested model:        0.139368
    Hungarians are a Nordo-Slavic mix like northeast Germans? this doesn't make sense.

    could you try it with these outgroups?

    set 1: Anatolia_N (25), CHG (2), EHG (4), ElMiron (1), Iran_Ganj_Dareh_N (3),
    Jordan_PPNB (1), MA1 (1), Mbuti (10), Natufian (6), Ust_Ishim (1), Vestonice16 (1), WHG (6),
    Russia_Yamnaya_Samara (9)

    set 2: Anatolia_N (25), CHG (2), EHG (4), ElMiron (1), GoyetQ116-1 (1), Iran_Ganj_Dareh_N (3),
    Jordan_PPNB (1), Kostenki14 (1), MA1 (1), Morocco_Iberomaurusian (6), Mota (1), Natufian (6),
    Ust_Ishim (1), Vestonice16 (1), Italy_Villabruna (1), WHG (6), Russia_Yamnaya_Samara (9).

    that's what was used in the Rome study

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    Target: Chris_scaled
    Distance: 1.9340% / 0.01933960 | ADC: 0.25x
    45.8 Slavic
    41.0 Balkan
    9.2 Celtic
    4.0 Greco-Roman

    Target: ChrisFather
    Distance: 4.3609% / 0.04360857 | ADC: 0.25x
    50.6 Balkan
    33.6 Slavic
    15.8 Greco-Roman

  10. #50
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    0 Not allowed! Not allowed!

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    Quote Originally Posted by Aren View Post
    Your right pops are too old and basic for such a recent run(migration era samples).
    There’s absolutely no way Hungarians don’t have any more Southern ancestry than the Belarussian-like early Slavs and the Scandinavian-like early Germanics, Hungarians score significantly more Barcin than both these populations. There’s some East Eurasian there too albeit noise level.
    No, my right pops are very solid for my purpose, have you bothered reading Patterson's notes or looking at the supp. files of genetic papers? Actually i am being quite restrictive here.

    Your observations are all based on Global25 so they are meaningless for formal stats, run your qpAdm model and prove me wrong (spoiler: they will show the same). There is no East Eurasian in this Hungarian sample, albeit i am pretty sure Hungarians from the Great Plain will show some.

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