Lakharis Inuzula
Universitas Islam Kebangsaan Indonesia

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Analisis Pengelolaan Dana Desa Bebas Praktik Riba dengan Pendekatan Trianggulasi Di Kecamatan Jeumpa Kabupaten Bireuen Murni Murni; Lakharis Inuzula
E-Mabis: Jurnal Ekonomi Manajemen dan Bisnis Vol 23, No 1 (2022): April
Publisher : Faculty of Economics and Business, Universitas Malikussaleh

Show Abstract | Download Original | Original Source | Check in Google Scholar | DOI: 10.29103/e-mabis.v23i1.806

Abstract

Penelitian ini bertujuan untuk menganalisis praktik riba dalam pengelolaan Dana Desa di Pemerintahan Desa Kecamatan Jeumpa Kabupaten Bireuen sebagai kontribusi dalam pelaksanaan syariat Islam di Aceh pada kegiatan ekonomi yang berbasis Pemerintahan Desa. Penelitian ini adalah penelitian kualitatif dengan pendekatan studi kasus untuk tujuan studi eksplorasi dan deskriptif. Menggunakan data primer dan sekunder dengan teknik wawancara terstuktur dan dokumentasi. Analisis data dilakukan secara interaktif dengan teknik trianggulasi guna meyakinkan validitas data. Hasil penelitian menunjukkan bahwa pengelolaan dana desa di Kecamatan Jeumpa Kabupaten Bireuen telah dilaksanakan sesuai dengan ketentuan syariah, namun hanya pada sistem peminjaman yang diperlukan pemahaman lebih lanjut sehingga tidak terjerumus kedalam riba yang dilarang dalam Islam. Adapun pengelolaan dana desa dijalankan berdasarkan teknik trianggulasi.
ANALYSIS ANALYSIS DETERMINANT ADOPTION Artificial Generative INTELLIGENCE IN SYSTEM CLOUD-BASED ACCOUNTING INFORMATION: A PERSPECTIVE TRUST AND ALGORITHMIC Accountability Lakharis Inuzula; Erika Fahmi Ginting; Agustina Br Surbakti; Koko Bustami; Lukman
International Journal of Economic, Business, Accounting, Agriculture Management and Sharia Administration (IJEBAS) Vol. 6 No. 4 (2026): August
Publisher : CV. Radja Publika

Show Abstract | Download Original | Original Source | Check in Google Scholar

Abstract

Generative AI is experiencing very rapid growth in use in the business and accounting world, cloud-based Accounting Information systems are becoming the main platform for modern AI implementation, the level of user trust determines the success of using AI technology, algorithmic accountability is a strategic issue related to transparency and governance of AI. The purpose of this study can be a basis for organizations in designing AI implementation strategies that are more responsible and acceptable to users. By conducting a study of the relationship between trust and algorithmic accountability on the adoption of Generative AI in the accounting context, the results of partial hypothesis testing show the influence of trust t count of 6.004 with a significance level of 0.000 <0.05 and a t table value of 2.024, meaning that trust provides evidence of influencing the perception of generative AI adoption. The algorithmic accountability hypothesis has not provided a significant influence on the perception of generative AI adoption with a t count of 0.489 with a significance level of 0.627 (>0.05). The hypothesis simultaneously provides a large influential contribution to the two independent variables with a calculated F value of 25.955 with a significance of 0.000 which can be compared with the F table of 3.25. Meanwhile, the contribution of the two variables trust and algorithmic accountability has a moderate relationship in influencing the dependent variable with a coefficient value of 0.764 and gives a sign that 58.4% of the independent variables can influence the dependent variable while the remaining 41.6% is influenced by other variables outside this model.