select NAME, rank, count, surname_entries.id 'wiki_id' from surnames left join surname_entries on surname_entries.surname = surnames.name and surname_entries.entry_type = 1 where index2 = '36' order by rank asc limit 0,100 Surnames > 3 > 36 > 365

Surnames > 3 > 36 > 365

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Full Surname List Starting with 365(Alphabetical)