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Predicting the Outcome of Startups: Less Failure, More Success

机译:预测创业的结果:更少的失败,更多的成功

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On an average 9 out of 10 startups fail(industry standard). Several reasons are responsible for the failure of a startup including bad management, lack of funds, etc. This work aims to create a predictive model for startups based on many key things involved at various stages in the life of a startup. It is highly desirable to increase the success rate of startups and not much work have been done to address the same. We propose a method to predict the outcome of a startups based on many key factors like seed funding amount, seed funding time, Series A funding, factors contributing to the success and failure of the company at every milestone. We can have created several models based on the data that we have carefully put together from various sources like Crunchbase, Tech Crunch, etc. Several data mining classification techniques were used on the preprocessed data along with various data mining optimizations and validations. We provide our analysis using techniques such as Random Forest, ADTrees, Bayesian Networks, and so on. We evaluate the correctness of our models based on factors like area under the ROC curve, precision and recall. We show that a startup can use our models to decide which factors they need to focus more on, in order to hit the success mark.
机译:平均而言,十分之九的初创企业失败(行业标准)。造成创业公司失败的原因有很多,包括管理不善,资金不足等。这项工作旨在基于创业公司生命周期各个阶段涉及的许多关键因素,为创业公司创建一个预测模型。迫切需要提高初创企业的成功率,而解决这一问题的工作还很少。我们提出了一种基于许多关键因素来预测初创企业结果的方法,这些因素包括种子资金数额,种子资金时间,A轮融资,在每个里程碑都对公司的成败有贡献的因素。我们可以根据我们从各种来源(如Crunchbase,Tech Crunch等)精心组合而成的数据创建多个模型。对预处理数据使用了多种数据挖掘分类技术,并进行了各种数据挖掘优化和验证。我们使用随机森林,ADTrees,贝叶斯网络等技术提供分析。我们根据ROC曲线下的面积,精度和召回率等因素评估模型的正确性。我们表明,一家初创公司可以使用我们的模型来确定他们需要更关注哪些因素,才能取得成功。

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