AUC的音標是/??t?/,基本翻譯為“上限”、“最高點”,速記技巧可以考慮諧音記憶,將其與“奧數”相聯系進行記憶。
AUC這個詞的英文詞源可以追溯到拉丁語“audire”和“crescere”,意為“聽”和“生長”。它的變化形式包括“auximus”和“audax”,前者表示“我們聽到了”,后者表示“大膽的,勇敢的”。
相關單詞:
1. Audacity - 勇敢,大膽,無畏
2. Audition - 試聽,試奏
3. Auditory - 聽覺的
4. Accuracy - 準確度
5. Audacious - 英勇的,大膽的
6. Audit - 審計,檢查
7. Audiovisual - 視聽
8. Audiophile - 音響愛好者
9. Audience - 觀眾,聽眾
10. Assurance - 信心,擔保
AUC這個詞在醫學和機器學習領域中經常使用,用于評估預測模型的性能,特別是在分類問題中。它可以幫助我們理解模型的泛化能力,即在未見過的數據上表現的能力。
AUC(Area Under the Curve)常用短語:
1. AUC值大于0.7表示模型表現良好。
2. AUC值越接近1,模型表現越好。
雙語例句:
1. The model achieved an AUC of 0.9, indicating excellent performance.
2. The results show that the proposed model outperforms the baseline by a significant margin with an AUC of 0.85.
英文小作文:
Title: AUC Analysis of a Machine Learning Model
AUC(Area Under the Curve)is a metric commonly used in machine learning to evaluate the performance of a binary classification model. When the AUC value is above 0.7, it indicates that the model performs well, and the closer the value is to 1, the better the performance of the model.
In this analysis, we applied a machine learning model to a dataset and obtained an AUC value of 0.9. This indicates that the model performed extremely well and was able to correctly classify most of the samples. In comparison, a baseline model only achieved an AUC of 0.7, indicating that the proposed model outperformed the baseline significantly.
Through this analysis, we can see that AUC is a valuable metric to evaluate the performance of a binary classification model, and it can help us identify which models perform better and which ones can be safely discarded.
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