Datasets:
audio
audio | source
string | text
string |
|---|---|---|
97f373e8-f6e6-63b1-68ad-946915fb5757
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Kyauta
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97f373e8-f6e6-63b1-68ad-946915fb5757
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Zan ci kwakwa
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97f373e8-f6e6-63b1-68ad-946915fb5757
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Kunun akwai tsami
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97f373e8-f6e6-63b1-68ad-946915fb5757
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Ladi taci kwakwa
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97f373e8-f6e6-63b1-68ad-946915fb5757
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Shan ruwa sukayi
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97f373e8-f6e6-63b1-68ad-946915fb5757
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Ɗan almajiri yana bara
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97f373e8-f6e6-63b1-68ad-946915fb5757
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Ƙwaƙwalwa ta ɗimauta
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97f373e8-f6e6-63b1-68ad-946915fb5757
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Jaririn yana ƙyalƙyala dariya
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97f373e8-f6e6-63b1-68ad-946915fb5757
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Wannan ƙanƙanin al'amarine
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97f373e8-f6e6-63b1-68ad-946915fb5757
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Gidan nan akwai kyan gani
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97f373e8-f6e6-63b1-68ad-946915fb5757
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Unguwar gyaranya
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97f373e8-f6e6-63b1-68ad-946915fb5757
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Mune muka ƙwanƙwasa ƙofar
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97f373e8-f6e6-63b1-68ad-946915fb5757
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Ta kasa ƙwakwkwaran motsi
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97f373e8-f6e6-63b1-68ad-946915fb5757
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Gwanjo taqamar yan birni
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97f373e8-f6e6-63b1-68ad-946915fb5757
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Ina san madara ta gwangwani
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97f373e8-f6e6-63b1-68ad-946915fb5757
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Alhajin ya na cikin shigifa
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97f373e8-f6e6-63b1-68ad-946915fb5757
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Gyaɗar dik ta karr
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97f373e8-f6e6-63b1-68ad-946915fb5757
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Gwamnan Kano adali ne
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97f373e8-f6e6-63b1-68ad-946915fb5757
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Wannan yayi kyau sosai
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97f373e8-f6e6-63b1-68ad-946915fb5757
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Lokacin damuna shine lokacin da a ka fi cin gyaɗa
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97f373e8-f6e6-63b1-68ad-946915fb5757
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Tsafi Gaskiyar Mai Shi
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97f373e8-f6e6-63b1-68ad-946915fb5757
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Ya ɓincina min biredin
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97f373e8-f6e6-63b1-68ad-946915fb5757
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Filin wasan kwallon ya cika
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97f373e8-f6e6-63b1-68ad-946915fb5757
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Ƙato ya ƙwace fartanya
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97f373e8-f6e6-63b1-68ad-946915fb5757
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Gyara kayan ka
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97f373e8-f6e6-63b1-68ad-946915fb5757
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Shinkafa ƴar gwamnati ta na sa basir
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97f373e8-f6e6-63b1-68ad-946915fb5757
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Gidan yanada ɓangare biyu
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97f373e8-f6e6-63b1-68ad-946915fb5757
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Babu kyakkyawar alaƙa tsakanin mu
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97f373e8-f6e6-63b1-68ad-946915fb5757
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Kowa ya samu waje sai yayi Shanya
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97f373e8-f6e6-63b1-68ad-946915fb5757
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Ƙyanƙyasar Kaji abune me wuyar Sha'ani
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97f373e8-f6e6-63b1-68ad-946915fb5757
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Takardar ƙunshe take da bayanai
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97f373e8-f6e6-63b1-68ad-946915fb5757
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Gwanda da Gwazarma
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97f373e8-f6e6-63b1-68ad-946915fb5757
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Abdullahi yana ajiye motarsa a cikin ɗaki
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97f373e8-f6e6-63b1-68ad-946915fb5757
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Saniyar ƙatuwace
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97f373e8-f6e6-63b1-68ad-946915fb5757
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Akwai wani ƙayataccen gida a layin mu
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97f373e8-f6e6-63b1-68ad-946915fb5757
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Shayin da zafi kar ka ƙona baki
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97f373e8-f6e6-63b1-68ad-946915fb5757
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Mu kyautatawa iyayenmu
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97f373e8-f6e6-63b1-68ad-946915fb5757
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Akwai ta da kyauta
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97f373e8-f6e6-63b1-68ad-946915fb5757
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Shayin bala ba zaƙi
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97f373e8-f6e6-63b1-68ad-946915fb5757
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Ya zuba ruwa a gwangwani
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97f373e8-f6e6-63b1-68ad-946915fb5757
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Ɓaure dan itaciya ne
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97f373e8-f6e6-63b1-68ad-946915fb5757
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Kayan sunyi tsaɗa
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97f373e8-f6e6-63b1-68ad-946915fb5757
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Ɗinkin kaya sai tela
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97f373e8-f6e6-63b1-68ad-946915fb5757
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Daman na fa ɗama
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97f373e8-f6e6-63b1-68ad-946915fb5757
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Ɗaukaka daga Allah
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97f373e8-f6e6-63b1-68ad-946915fb5757
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Shehu yana sayar da shinkafa a kasuwar safe
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97f373e8-f6e6-63b1-68ad-946915fb5757
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Ya shiga gasar wasa ƙwaƙwalwa
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97f373e8-f6e6-63b1-68ad-946915fb5757
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Ruwa kaɗai ke maganin ƙishi
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97f373e8-f6e6-63b1-68ad-946915fb5757
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Gyara samun sa'a
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97f373e8-f6e6-63b1-68ad-946915fb5757
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Shamsu ya dawo
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97f373e8-f6e6-63b1-68ad-946915fb5757
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Aunty ta dauko fyaifayin tukunya
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97f373e8-f6e6-63b1-68ad-946915fb5757
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Ba'a hawa bishiyar gwanda
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97f373e8-f6e6-63b1-68ad-946915fb5757
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Mai Kan kwakwa
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97f373e8-f6e6-63b1-68ad-946915fb5757
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Yau nayi tsuntuwa
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97f373e8-f6e6-63b1-68ad-946915fb5757
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Miqo min farar kwalbar
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97f373e8-f6e6-63b1-68ad-946915fb5757
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Yarinyar ƙyaƙƙyawa ce
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97f373e8-f6e6-63b1-68ad-946915fb5757
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Ƙawayena mutanen kirki ne
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97f373e8-f6e6-63b1-68ad-946915fb5757
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Mutane sun tsare bakin fadar
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97f373e8-f6e6-63b1-68ad-946915fb5757
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Ƙoƙarin sa yasa aka bashi lambar yabo
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97f373e8-f6e6-63b1-68ad-946915fb5757
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Gwargwadon tunanin ka gwargwadon matsayin ka
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97f373e8-f6e6-63b1-68ad-946915fb5757
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Tsofaffi suna bada shawara mai amfani
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97f373e8-f6e6-63b1-68ad-946915fb5757
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Tsuntsu ya tashi sama
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97f373e8-f6e6-63b1-68ad-946915fb5757
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I na son kyanwa
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97f373e8-f6e6-63b1-68ad-946915fb5757
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Yaron ya iya ta'tsuniya
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97f373e8-f6e6-63b1-68ad-946915fb5757
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Shirirtar shi tayi yawa
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97f373e8-f6e6-63b1-68ad-946915fb5757
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Me yasa kake gwalale ido
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97f373e8-f6e6-63b1-68ad-946915fb5757
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Ƙarfin iko sai Gwamnati
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97f373e8-f6e6-63b1-68ad-946915fb5757
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Abubakar ya aiko a ba shi kwanon abinci
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97f373e8-f6e6-63b1-68ad-946915fb5757
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Yana magana dashi amma ya ƙyaleshi
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97f373e8-f6e6-63b1-68ad-946915fb5757
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Ana ta gyare gyare a birnin tarayya
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97f373e8-f6e6-63b1-68ad-946915fb5757
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Alon ya ɓantare
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97f373e8-f6e6-63b1-68ad-946915fb5757
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An dade ana shan gwagwarmaya
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97f373e8-f6e6-63b1-68ad-946915fb5757
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Shan ruwa a tsaye ba koyarwar manzon Allah bane
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97f373e8-f6e6-63b1-68ad-946915fb5757
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Ruwan yayi ƙanƙara
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97f373e8-f6e6-63b1-68ad-946915fb5757
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Ansha gwagwarmaya kamin a isa
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97f373e8-f6e6-63b1-68ad-946915fb5757
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Wannan gonar shanu ce
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97f373e8-f6e6-63b1-68ad-946915fb5757
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Ta gyara kujerar data karya
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97f373e8-f6e6-63b1-68ad-946915fb5757
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yanasa kaya masu ƙyalli
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97f373e8-f6e6-63b1-68ad-946915fb5757
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Yaron yanada kwakwalwa
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97f373e8-f6e6-63b1-68ad-946915fb5757
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Ɗaure kayan ka
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97f373e8-f6e6-63b1-68ad-946915fb5757
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Ƙwaƙwalwa ta na da ja
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97f373e8-f6e6-63b1-68ad-946915fb5757
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Mata suna mutuƙar tsoron kyankyaso
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97f373e8-f6e6-63b1-68ad-946915fb5757
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Mangwaro mai daɗi har tsolon ka
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97f373e8-f6e6-63b1-68ad-946915fb5757
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Tsuntsuwar ta gudu
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97f373e8-f6e6-63b1-68ad-946915fb5757
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Shimfiɗar fuska ta fi ta tabarma
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97f373e8-f6e6-63b1-68ad-946915fb5757
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yanada cutar ƙarzuwa ne
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97f373e8-f6e6-63b1-68ad-946915fb5757
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Ta siyo sabon gyale
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97f373e8-f6e6-63b1-68ad-946915fb5757
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Yayi fice wajen ƙwallon ƙafa
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97f373e8-f6e6-63b1-68ad-946915fb5757
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Hular na ta ƙyalli
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97f373e8-f6e6-63b1-68ad-946915fb5757
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Yaron yafi kowa kyau a ajinsu
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97f373e8-f6e6-63b1-68ad-946915fb5757
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Zaki yana da fadin ƙirji
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97f373e8-f6e6-63b1-68ad-946915fb5757
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Umar yan gyaranya
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97f373e8-f6e6-63b1-68ad-946915fb5757
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Ka tabbatar ka kwashe shi duka
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97f373e8-f6e6-63b1-68ad-946915fb5757
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Ɗanwake akwai daɗi
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97f373e8-f6e6-63b1-68ad-946915fb5757
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Maƙwabtan mu sun dawo
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97f373e8-f6e6-63b1-68ad-946915fb5757
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I na tsoron ƙadangare
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97f373e8-f6e6-63b1-68ad-946915fb5757
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Tsumagiyar kan hanya fyaɗe yaro fyaɗe babba
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97f373e8-f6e6-63b1-68ad-946915fb5757
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Bari fyace hanci na
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97f373e8-f6e6-63b1-68ad-946915fb5757
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Nine Gwarzon shekara
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97f373e8-f6e6-63b1-68ad-946915fb5757
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Wannan ƙwaman Sauna jack ne
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Hausa TTS Dataset
Dataset Description
This dataset contains Hausa language text-to-speech (TTS) recordings from multiple speakers. It includes audio files paired with their corresponding Hausa text transcriptions.
Dataset Structure
The dataset is organized as follows:
├── data/
│ ├── metadata.csv # Metadata (source, audio paths, text)
│ └── audio_files/
│ ├── 97f373e8-f6e6-.../ # Speaker 1 audio files
│ ├── b0db0a87-2206-.../ # Speaker 2 audio files
│ └── c3621689-ca53-.../ # Speaker 3 audio files
└── README.md
Data Fields
The metadata.csv contains the following columns:
- file_name: Relative path to the audio file in WAV format
- source: Speaker ID (UUID format) identifying the speaker
- text: Hausa text transcription corresponding to the audio
Dataset Statistics
- Total Samples: ~100 recordings
- Number of Speakers: 3 unique speakers
- Audio Format: WAV files
- Sample Rate: 24,000 Hz (target)
- Language: Hausa (ha)
Usage
Loading the Dataset
from datasets import load_dataset
# Load from Hugging Face
dataset = load_dataset("Aybee5/hausa-tts-csv", split="train")
# Access the data
print(dataset[0])
# Output: {'source': 'speaker_id', 'audio': {'path': '...', 'array': [...], 'sampling_rate': 24000}, 'text': '...'}
Example with Audio Processing
from datasets import load_dataset, Audio
# Load dataset
dataset = load_dataset("Aybee5/hausa-tts-csv", split="train")
# Cast audio column to specific sampling rate
dataset = dataset.cast_column("audio", Audio(sampling_rate=24000))
# Process audio
for example in dataset:
audio_array = example["audio"]["array"]
sampling_rate = example["audio"]["sampling_rate"]
text = example["text"]
speaker_id = example["source"]
# Your processing here...
Speaker Information
The dataset includes recordings from 3 unique speakers, each identified by a UUID in the source field. For training multi-speaker TTS models, you can map these UUIDs to numeric speaker IDs:
unique_speakers = sorted(set(dataset["source"]))
speaker_to_id = {speaker: idx for idx, speaker in enumerate(unique_speakers)}
Use Cases
This dataset is suitable for:
- Text-to-Speech (TTS) model training
- Multi-speaker voice synthesis
- Hausa language speech research
- Voice cloning applications
- Speech corpus analysis
Languages
- Hausa (ha)
Licensing Information
This dataset is released under the Creative Commons Attribution 4.0 International (CC BY 4.0) license.
Citation
If you use this dataset in your research, please cite:
@dataset{hausa_tts_dataset,
title={Hausa TTS Dataset},
author={Your Name},
year={2025},
publisher={Hugging Face},
howpublished={\url{https://huggingface.co/datasets/Aybee5/hausa-tts-csv}}
}
Data Collection and Processing
The audio data was collected using MimicStudio recording system and includes native Hausa speakers reading text prompts. All audio files are stored in WAV format with metadata tracked in an SQLite database, which has been exported to CSV format for easy dataset distribution.
Considerations for Using the Data
- Audio quality may vary between speakers
- Some audio files may have background noise
- Text transcriptions are in Hausa language using Latin script
- Speaker characteristics (gender, age, accent) are not explicitly labeled
Additional Information
For questions or issues with this dataset, please open an issue on the dataset repository or contact the dataset maintainer.
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