国际学生入学条件
3 Letters of Recommendation and a Statement of Purpose.
All Transcripts from past schools.
GRE
The School of Electrical Engineering and Computer Science (EECS) evaluates applicants for admission to its graduate programs based on college transcripts, undergraduate/graduate GPA, GRE score, letters of recommendation (minimum of three), a statement of purpose, and an English language proficiency score (if applicable).
93 TOEFL Minimum score
The minimum acceptable IELTS score is 7 toefl pbt 580
Applicants with at least a B (3.0 on a 4.0 scale) grade point Avg, or the equivalent in the last 60 graded semester (90 quarter) hours, from an accredited college or university, or at least a B grade point Avg in any graduate work from a recognized graduate school are eligible for admission to regular student status. Applicants with at least 12 semester hours of approved coursework from accredited graduate schools with at least a B grade point Avg are eligible for admission to regular student status.
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IDP—雅思考试联合主办方

雅思考试总分
7.0
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雅思考试指南
- 雅思总分:7
- 托福网考总分:93
- 托福笔试总分:580
- 其他语言考试:MELAB -82
CRICOS代码:
申请截止日期: 请与IDP顾问联系以获取详细信息。
课程简介
The recent advances in supercomputing technologies coupled with data generation technologies, have led to a convergence of High performance computing (HPC) and data science applications. In HPC, the advances in parallel and distributed computing have led to an increased availability of heterogeneous manycore architectures, commodity clusters with Graphic Processing Units (GPUs), and supercomputing platforms that are starting to breach the exascale barrier. Concomitantly, the proliferation of high throughput data generation technologies coupled with scalable algorithms and analytics, intelligent tools for decision making, and efficient methods for large-scale data management and access, have collectively led to scalable data science taking a center-stage in accelerating scientific discovery and engineering innovation. Researchers at WSU are working at various areas of intersection of HPC and scalable data science, and are at the forefront of developing scalable algorithms, parallel computing solutions, AI and learning frameworks, programming models, large-scale data management, and large-scale applications for data-rich domains in science and engineering.
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