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◇ Mendeley Data2026-08-03· Suicidal ideation

Dataset on Depression Symptoms and Severity among University Students in Bangladesh using Burn Depression Checklist

Tumpa Shaha, Momotaz Begum, Abdullah Al Mamun Mamun, Tulika Podder, Ayesha Siddika, Tahmina Naznin

原始摘要(英文原文)· Original abstract
This dataset contains self-reported survey responses on depressive symptomatology collected from university students across multiple faculties and departments in Bangladesh. Data were gathered using a structured questionnaire that recorded demographic and academic information (age, gender, faculty, department, study year, and GPA/academic result) alongside responses to the 25-item Burns Depression Checklist (BDC). Each BDC item was rated on a 5-point Likert scale ("Not at all," "Somewhat," "Moderately," "A lot," "Extremely"), covering core depressive symptoms (mood, self-esteem, guilt, social withdrawal, motivation, sleep, appetite, and somatic complaints) as well as three safety-related items assessing suicidal ideation and self-harm risk. Total and item-level BDC scores were used to classify participants into six depression severity categories (No depression, Normal but Unhappy, Mild, Moderate, Severe, Extreme). The dataset is provided as a raw Excel file (Student Data Collection Form.xlsx), accompanied by a Python script (BD_student_BDC_eda_code.py) that performs data cleaning, descriptive statistics, reliability analysis (Cronbach's alpha), and generates 15 publication-quality (600 dpi) figures summarizing demographic distributions, BDC score distributions, item-level response patterns, inter-item correlations, and severity breakdowns by gender and academic year. This dataset may be useful for researchers studying student mental health, depression screening tool validation, or demographic/academic correlates of depressive symptoms in South Asian higher education settings. Note on sensitive content: Three items in the BDC relate to suicidal ideation and self-harm risk. Researchers using this dataset should handle it with appropriate ethical care, in line with their institution's guidelines for sensitive mental health data.
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